版權 © 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008 FreeBSD 文件計畫
歡迎使用FreeBSD! 本使用手冊涵蓋範圍包括了 FreeBSD 8.3-RELEASE 和 FreeBSD 9.1-RELEASE 的安裝和日常使用。 這份使用手冊是很多人的集體創作,而且仍然『持續不斷』的進行中。 許多章節仍未完成,已完成的部份也有些需要更新。 如果您有興趣協助本計畫的話,請寄 e-mail 到 FreeBSD documentation project 郵遞論壇。 在 FreeBSD 網站 可以找到這份文件的最新版本(舊版文件可從 http://docs.FreeBSD.org/doc/ 取得),也可以從 FreeBSD FTP 伺服器 或是眾多 mirror 站臺 下載不同格式的資料。 如果比較偏好實體書面資料,那可以在 FreeBSD Mall 購買。 此外,也可以在 使用手冊 中搜尋資料。
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FreeBSD 是 FreeBSD基金會的註冊商標
3Com 和 HomeConnect 是 3Com Corporation 的註冊商標。
3ware 和 Escalade 是 3ware Inc 的註冊商標。
ARM 是 ARM Limited. 的註冊商標。
Adaptec 是 Adaptec, Inc. 的註冊商標。
Adobe, Acrobat, Acrobat Reader, 以及 PostScript 是 Adobe Systems Incorporated 在美國和/或其他國家的商標或註冊商標。
Apple, AirPort, FireWire, Mac, Macintosh, Mac OS, Quicktime, 以及 TrueType 是 Apple Computer, Inc. 在美國以及其他國家的註冊商標。
Corel 和 WordPerfect 是 Corel Corporation 和/或其子公司在加拿大、美國和/或其他國家的註冊商標。
Sound Blaster 是 Creative Technology Ltd. 在美國和/或其他國家的註冊商標。
CVSup 是 John D. Polstra 的註冊商標。
Heidelberg, Helvetica, Palatino, 和 Times Roman 是 Heidelberger Druckmaschinen AG 在美國以及其他國家的商標或註冊商標。
IBM, AIX, EtherJet, Netfinity, OS/2, PowerPC, PS/2, S/390, 和 ThinkPad 是 國際商用機器公司在美國和其他國家的註冊商標或商標。
IEEE, POSIX, 和 802 是 Institute of Electrical and Electronics Engineers, Inc. 在美國的註冊商標。
Intel, Celeron, EtherExpress, i386, i486, Itanium, Pentium, 和 Xeon 是 Intel Corporation 及其分支機構在美國和其他國家的商標或註冊商標。
Intuit 和 Quicken 是 Intuit Inc., 或其子公司在美國和其他國家的商標或註冊商標。
Linux 是 Linus Torvalds 的註冊商標。
LSI Logic, AcceleRAID, eXtremeRAID, MegaRAID 和 Mylex 是 LSI Logic Corp 的商標或註冊商標。
M-Systems 和 DiskOnChip 是 M-Systems Flash Disk Pioneers, Ltd. 的商標或註冊商標。
Macromedia, Flash, 以及 Shockwave Macromedia, Inc. 在美國和/或其他國家的商標或註冊商標。
Microsoft, IntelliMouse, MS-DOS, Outlook, Windows, Windows Media, 和 Windows NT 是 Microsoft Corporation 在美國和/或其他國家的商標或註冊商標。
Netscape 以及 Netscape Navigator 是 Netscape Communications Corporation 在美國和其他國家的註冊商標。
GateD 和 NextHop 是 NextHop 在美國和其他國家的商標或註冊商標。
Motif, OSF/1, 和 UNIX 是 The Open Group 在美國和其他國家的註冊商標; IT DialTone 和 The Open Group 是其商標。
Oracle 是 Oracle Corporation 的註冊商標。
PowerQuest 和 PartitionMagic 是 PowerQuest Corporation 在美國和/或其他國家的註冊商標。
RealNetworks, RealPlayer, 和 RealAudio 是 RealNetworks, Inc. 的註冊商標。
Red Hat, RPM, 是 Red Hat, Inc. 在美國和其他國家的註冊商標。
SAP, R/3, 和 mySAP 是 SAP AG 在德國以及許多其他國家的商標或註冊商標。
Sun, Sun Microsystems, Java, Java Virtual Machine, JavaServer Pages, JDK, JSP, JVM, Netra, Solaris, StarOffice, Sun Blade, Sun Enterprise, Sun Fire, SunOS, 和 Ultra 是 Sun Microsystems, Inc. 在美國和其他國家的商標或註冊商標。
Symantec 和 Ghost 是 Symantec Corporation 在美國和其他國家的註冊商標。
MATLAB 是 The MathWorks, Inc. 的註冊商標。
SpeedTouch 是 Thomson 的商標。
U.S. Robotics 和 Sportster 是 U.S. Robotics Corporation 的註冊商標。
VMware 是 VMware, Inc. 的商標
Waterloo Maple 和 Maple 是 Waterloo Maple Inc 的商標或註冊商標
Mathematica 是 Wolfram Research, Inc 的註冊商標。
XFree86 是 The XFree86 Project, Inc 的商標。.
Ogg Vorbis 和 Xiph.Org 是 Xiph.Org 的商標。
許多製造商和經銷商使用一些稱為商標的圖案或文字設計來彰顯自己的產品。 本文中出現的眾多商標,以及 FreeBSD Project 本身廣所人知的商標,後面將以 '™' 或 '®' 符號來標註。
若您是第一次接觸 FreeBSD 的新手,可以在本書第一部分找到 FreeBSD 的安裝方法,同時會逐步介紹 UNIX® 的基礎概念與一些常用、共通的東西。而閱讀這部分並不難,只需要您有探索的精神和接受新概念。
讀完這些之後,手冊中的第二部分花很長篇幅介紹的各種廣泛主題,相當值得系統管理者去注意。 在閱讀這些章節的內容時所需要的背景知識,都註釋在該章的大綱裡面,若不熟的話,可在閱讀前先預習一番。
延伸閱讀方面,可參閱 附錄 B。
您目前看到的這本手冊第三版是 FreeBSD 文件計劃的成員歷時兩年完成的心血之作。 新版的主要修訂部分,如下:
µÚ 11 章, 設定與效能調校(Tuning),該章節針對新內容作更新,比如: ACPI 電源管理、cron、以及其他更多的 kernel tuning 選項說明內容。
µÚ 14 章, 系統安全篇,該章節增加了虛擬私人網路(VPN)、檔案系統的存取控制(ACL),以及安全公告(Security Advisories)的內容。
µÚ 16 章, 集權式存取控制(MAC)是本版所增加的章節。本章介紹:什麼是 MAC 機制?以及如何運用它來使您的 FreeBSD 系統更安全。
µÚ 18 章, 儲存設備篇,新增了像是:USB 隨身碟、檔案系統快照(snapshot)、檔案系統配額(quota) 、檔案及網路的備援檔案系統、以及如何對硬碟分割區作加密等詳解。
µÚ 20 章Vinum是本版所新增的章節。本章介紹:如何運用 Vinum 這種邏輯磁碟(device-independent) ,以及軟體 RAID-0, RAID-1 和 RAID-5 。
µÚ 25 章PPP 及 SLIP 一章中增加了故障排除的說明。
µÚ 26 章電子郵件一章中新增有關如何使用其它的 MTA 程式、SMTP 認証、UUCP、fecthmail、procmail 的運用以及其它進階專題。
µÚ 27 章, 網路伺服器篇,是新版中全新的一章。這一章介紹了如何架設 Apache HTTP 伺服器、FTPd,以及用於支援 Microsoft Windows client 的 Samba 伺服器。其中有些段落來自原先的µÚ 29 章進階網路應用一章。
µÚ 29 章進階網路應用一章新增有關在 FreeBSD 中使用藍芽設備、安裝無線網路以及使用 ATM(Asynchronous Transfer Mode) 網路的介紹。
增加了一份詞彙表(Glossary),用以說明全書中出現的術語。
重新美編書中所列的圖表。
本手冊的第二版是 FreeBSD 文件計劃的成員歷時兩年完成的心血之作。第二版包含了如下的主要變動︰
增加完整的目錄索引。
所有的 ASCII 圖表均改成圖檔格式的圖表。
每個章節均加入概述,以便快速的瀏覽該章節內容摘要、讀者所欲了解的部分。
內容架構重新組織成三大部分: “開始使用 FreeBSD”, “系統管理”, and “附錄”。
µÚ 2 章 (“安裝 FreeBSD”) 已經重新改寫,並加入許多說明圖片, 讓第一次接觸 FreeBSD 的人,直接看圖就很清楚明瞭重點(一圖抵千字的效果)。
µÚ 3 章(“UNIX 基礎概念篇”)新增了 processes, daemons 和 signals 的介紹。
µÚ 4 章 (“軟體套件管理篇”)新增了介紹如何管理 binary package 套件的資訊。
µÚ 5 章 (“X Window 視窗系統篇”) 經過全面改寫,著重於在 XFree86™ 4.X 上的流行 x11-wm,像是: KDE 和 GNOME 。
µÚ 12 章 (“FreeBSD 開機流程篇”)更新相關內容。
µÚ 18 章 (“儲存設備篇(Storage)”) 分別以兩個章節 “Disks” 與 “Backups” 來撰寫。我們認為這樣子會比單一章節來得容易瞭解。還有關於 RAID(包含硬體、軟體RAID) 的段落也新增上去了。
µÚ 24 章(“Serial 通訊篇”)架構重新改寫,並更新至 FreeBSD 4.X/5.X 的內容。
µÚ 25 章 (“PPP 及 SLIP”)有相當程度的更新。
µÚ 29 章(“進階網路應用篇”)加入許多新內容。
µÚ 26 章 (“電子郵件篇”)大量新增了設定 sendmail 的介紹。
µÚ 10 章 (“Linux® 相容篇”) 增加許多有關安裝 Oracle® 及 SAP® R/3® 的介紹。
此外,第二版還新加章節,以介紹下列專題:
本書主要分為五大部分,第一部份『開始使用』:介紹 FreeBSD 的安裝、基本操作。 讀者可根據自己的程度,循序或者跳過一些熟悉的主題來閱讀; 第二部分『常用操作』:介紹 FreeBSD 常用功能,這部分可以不按順序來讀。 每章前面都會有概述,概述會描述本章節涵蓋的內容和讀者應該已知的, 這主要是讓讀者可以挑喜歡的章節閱讀; 第三部分『系統管理』:介紹 FreeBSD 老手所感興趣的各種專題部分; 第四部分『網路通訊』:則包括網路和各式 Server 專題;而第五部分『附錄』:是各種有關 FreeBSD 的資源。
向新手介紹 FreeBSD。該篇說明了 FreeBSD 計劃的歷史、目標和開發模式。
介紹安裝程序。其中還有介紹一些進階的安裝主題,包括像是如何透過 serial console 來安裝。
Covers the basic commands and functionality of the FreeBSD operating system. If you are familiar with Linux or another flavor of UNIX then you can probably skip this chapter.
Covers the installation of third-party software with both FreeBSD's innovative “Ports Collection” and standard binary packages.
Describes the X Window System in general and using X11 on FreeBSD in particular. Also describes common desktop environments such as KDE and GNOME.
Lists some common desktop applications, such as web browsers and productivity suites, and describes how to install them on FreeBSD.
Shows how to set up sound and video playback support for your system. Also describes some sample audio and video applications.
Explains why you might need to configure a new kernel and provides detailed instructions for configuring, building, and installing a custom kernel.
Describes managing printers on FreeBSD, including information about banner pages, printer accounting, and initial setup.
Describes the Linux compatibility features of FreeBSD. Also provides detailed installation instructions for many popular Linux applications such as Oracle, SAP R/3, and Mathematica®.
Describes the parameters available for system administrators to tune a FreeBSD system for optimum performance. Also describes the various configuration files used in FreeBSD and where to find them.
Describes the FreeBSD boot process and explains how to control this process with configuration options.
Describes the creation and manipulation of user accounts. Also discusses resource limitations that can be set on users and other account management tasks.
Describes many different tools available to help keep your FreeBSD system secure, including Kerberos, IPsec and OpenSSH.
Explains what Mandatory Access Control (MAC) is and how this mechanism can be used to secure a FreeBSD system.
Describes how to manage storage media and filesystems with FreeBSD. This includes physical disks, RAID arrays, optical and tape media, memory-backed disks, and network filesystems.
Describes what the GEOM framework in FreeBSD is and how to configure various supported RAID levels.
Describes how to use Vinum, a logical volume manager which provides device-independent logical disks, and software RAID-0, RAID-1 and RAID-5.
Describes how to use FreeBSD in languages other than English. Covers both system and application level localization.
Explains the differences between FreeBSD-STABLE, FreeBSD-CURRENT, and FreeBSD releases. Describes which users would benefit from tracking a development system and outlines that process.
Explains how to connect terminals and modems to your FreeBSD system for both dial in and dial out connections.
Describes how to use PPP, SLIP, or PPP over Ethernet to connect to remote systems with FreeBSD.
Explains the different components of an email server and dives into simple configuration topics for the most popular mail server software: sendmail.
Provides detailed instructions and example configuration files to set up your FreeBSD machine as a network filesystem server, domain name server, network information system server, or time synchronization server.
Explains the philosophy behind software-based firewalls and provides detailed information about the configuration of the different firewalls available for FreeBSD.
Describes many networking topics, including sharing an Internet connection with other computers on your LAN, advanced routing topics, wireless networking, bluetooth, ATM, IPv6, and much more.
Lists different sources for obtaining FreeBSD media on CDROM or DVD as well as different sites on the Internet that allow you to download and install FreeBSD.
This book touches on many different subjects that may leave you hungry for a more detailed explanation. The bibliography lists many excellent books that are referenced in the text.
Describes the many forums available for FreeBSD users to post questions and engage in technical conversations about FreeBSD.
Lists the PGP fingerprints of several FreeBSD Developers.
為方便閱讀本書,以下是一些本書所遵循的編排體裁:
斜體字型(Italic) 用於:檔名、目錄、網址(URL)、 強調語氣、以及第一次提及的技術詞彙。
定寬字(Monospace) 用於: 錯誤訊息、指令、環境變數、port 名稱、主機名稱(hostname)、帳號、群組、設備(device)名稱、變數、 程式碼等。
以粗體字表示:應用程式、命令、按鍵。
鍵盤輸入以 粗體字(Bold) 表示,以便與一般文字做區隔。 組合鍵是指同時按下一些按鍵,我們以 `+' 來表示連接,像是:
Ctrl+Alt+Del
也就是說,一起按 Ctrl 鍵、 Alt 鍵,以及 Del 鍵。
若要逐一按鍵,那麼會以逗號(,)來表示,像是:
Ctrl+X, Ctrl+S
也就是說:先同時按下 Ctrl 與 X 鍵, 然後放開後再同時按 Ctrl 與 S 鍵。
下面例子以 E:\> 為開頭的代表 MS-DOS® 指令部分。 若沒有特殊情況的話,這些指令應該是在 Microsoft® Windows® 環境的 “命令提示字元(Command Prompt)” 內執行。
E:\> tools\fdimage floppies\kern.flp A:
例子若是先以 # 為開頭再接指令的話,就是指在 FreeBSD 中以 root 權限來下命令。 你可以先以 root登入系統並下指令,或是以你自己的帳號登入,並使用 su(1) 來取得 root 權限。
# dd if=kern.flp of=/dev/fd0
例子若是先以 % 為開頭再接指令的話,就是指在 FreeBSD 中以一般帳號來下命令即可。 除非有提到其他用法,否則都是預設為 C-shell(csh/tcsh) 語法,用來設定環境變數以及下其他指令的意思。
% top
您所看到的這本書是經過數百個分散在世界各地的人所努力而來的結果。 無論他們只是糾正一些錯誤或提交完整的章節,所有的點滴貢獻都是非常寶貴有用的。
也有一些公司透過提供資金讓作者專注於撰稿、提供出版資金等模式來支持文件的寫作。 其中,BSDi (之後併入 Wind River Systems) 資助 FreeBSD 文件計劃成員來專職改善這本書直到 2000 年 3 月第一版的出版。(ISBN 1-57176-241-8) Wind River Systems 同時資助其他作者來對輸出架構做很多改進,以及給文章增加一些附加章節。這項工作結束於 2001 年 11 月第二版。(ISBN 1-57176-303-1) 在 2003-2004 兩年中,FreeBSD Mall 把報酬支付給改進這本手冊以使第三版印刷版本能夠出版的志工。
這部份是提供給初次使用 FreeBSD 的使用者和系統管理者。 這些章節包括:
介紹 FreeBSD 給您。
在安裝過程給您指引。
教您 UNIX 的基礎及原理。
展示給您看如何安裝豐富的 FreeBSD 的應用軟體
向您介紹 X, UNIX 的視窗系統以及詳細的桌面環境設定,讓您更有生產力。
我們試著儘可能的讓這段文字的參考連結數目降到最低,讓您在讀使用手冊的這部份時可以不太需要常常前後翻頁。
非常感謝您對 FreeBSD 感興趣!以下章節涵蓋 FreeBSD 計劃的各方面:比如它的歷史、目標、開發模式等等。
讀完這章,您將了解︰
FreeBSD 與其他 OS 之間的關係;
FreeBSD 計劃的歷史源流;
FreeBSD 計劃的目標;
FreeBSD open-source 開發模式的基礎概念;
當然囉,還有 “FreeBSD” 這名字的由來。
FreeBSD 是一個從 4.4BSD-Lite 衍生出而能在以 Intel (x86 and Itanium®), AMD64, Alpha™, Sun UltraSPARC® 為基礎的電腦上執行的作業系統。同時,移植到其他平台的工作也在進行中。 對於本計劃歷史的介紹,請看 FreeBSD 歷史源流, 對於 FreeBSD 的最新版本介紹,請看 current release 。若打算對於 FreeBSD 計劃有所貢獻的話(像是程式碼硬體設備、基金), 請看 如何對 FreeBSD 有貢獻。
FreeBSD 提供給你許多先進功能。這些功能包括:
動態優先權調整的『先佔式多工』能夠確保,即使在系統負擔很重的情況下, 程式執行平順並且應用程式與使用者公平地共享資源。
『多人共用(multi-user)』代表著許多人可以同時使用一個 FreeBSD 系統來處理各自的事務。 系統的硬體周邊(如印表機及磁帶機)也可以讓所有的使用者適當地分享。 也可以針對各別使用者或一群使用者的系統資源,予以設限, 以保護系統不致被過度使用。
好用的『TCP/IP 網路功能』可支援許多業界標準,比如: SCTP、DHCP、NFS、NIS、PPP、SLIP、IPSec、IPv6 的支援,也就是說 FreeBSD 可以容易地跟其他作業系統透過網路共同運作,或是當作企業的伺服器用途 ,例如提供遠端檔案共享(NFS)及電子郵件(email)等服務, 或是讓您的企業連上網際網路(Internet)並提供 WWW、FTP、 路由(routing)、及防火牆(firewall、security) 等必備服務。
『記憶體保護(Memory protection)』能確保程式(或是使用者)不會互相干擾, 即使任何程式有不正常的運作,都不會影響其他程式的執行。
FreeBSD 是『32位元(32-bit)』的作業系統 (在 Alpha、Itanium、 AMD64 及 UltraSPARC 上則是『64位元(64-bit)』) — 打從一開始便是這樣設計的。
業界標準的『X Window 系統』(X11R7)可以在常見的便宜 VGA 顯示卡/螢幕, 提供了圖形化的使用者介面(GUI),並且包括了完整的原始程式碼。
能『直接執行』許多其他作業系統(比如: Linux、SCO、SVR4、BSDI 和 NetBSD) 的可執行檔。
數以萬計的立即可以執行的應用程式,這些都可透過 FreeBSD 的『ports』及『packages』軟體管理機制來取得。 不再需要費心到網路上到處搜尋所需要的軟體。
此外,網路上尚有可非常容易移植的數以萬計應用程式。 FreeBSD 的原始程式碼與許多常見的商業版 UNIX 系統都相容, 所以大部分的程式都只需要很少的修改(或根本不用修改) ,就可以編譯執行。
需要時才置換(demand paged) virtual memory 及 “merged VM/buffer cache” 的設計, 這點在系統中有用去大量記憶體的程式執行時,仍然有不錯的效率表現。
支援 CPU 的對稱多工處理(SMP):可以支援多 CPU 的電腦系統。
完全相容的 C、C++ 以及 Fortran 的環境和其他開發工具。 以及其他許多可供進階研發的程式語言也收集在 ports 和 packages。
整個系統都有『原始程式碼』, 這讓你對作業環境擁有最完全的掌握度。 既然能擁有完全開放的系統,何苦被特定封閉軟體所約束,任廠商擺佈呢?
廣泛且豐富的『線上文件』。
當然囉,還不止如此!
FreeBSD 系統乃是基於美國加州大學柏克萊分校的電腦系統研究群 (Computer Systems Research Group 也就是 CSRG) 所發行的 4.4BSD-Lite,以及基於 BSD 系統開發的優良傳統。 除了由 CSRG 所提供的高品質的成果, 為了提供可處理真正具負荷的工作, FreeBSD 計劃也投入了數千小時以上的細部調整, 以能獲得最好的執行效率以及系統的穩定度。 正當許多商業上的巨人正努力地希望能提供效能及穩定時, FreeBSD 已經具備這樣的特質 -- 就是現在!
FreeBSD 的運用範圍無限,其實完全限制在你的想像力上。 從軟體的開發到工廠自動化,或是人造衛星上面的天線的方位角度的遠端控制; 這些功能若可以用商用的 Unix 產品來達成, 那麼極有可能使用 FreeBSD 也能辦到! FreeBSD 也受益於來自於全球各研究中心及大學所開發的數千個高品質的軟體 ,這些通常只需要花費很少的費用或根本就是免費的。 當然也有商業軟體,而且出現的數目是與日俱增。
由於每個人都可以取得 FreeBSD 的原始程式碼, 這個系統可以被調整而能執行任何原本完全無法想像的功能或計劃, 而對於從各廠商取得的作業系統通常沒有辦法這樣地被修改。 以下提供一些人們使用 FreeBSD 的例子:
網路服務: FreeBSD 內建強勁的網路功能使它成為網路服務(如下例)的理想平台:
檔案伺服器(FTP servers)
全球資訊網伺服器(WWW servers) (標準的或更安全的 [SSL] 連線)
IPv4 及 IPv6 routing
防火牆以及 NAT (“IP masquerading”) gateways。
電子郵件伺服器(Electronic Mail servers)
網路新聞伺服器(USENET News) 或是電子佈告欄系統(BBS)
還有更多...
有了 FreeBSD,您可以容易地先用便宜的 386 PC, 再逐步升級您的機器到四個 CPU 的 Xeon 並使用磁碟陣列(RAID)來滿足您企業運用上的需求。
教育: 若您是資工相關領域的學生,再也沒有比使用 FreeBSD 能學到更多作業系統、計算機結構、及網路的方法了。 另外如果你想利用電腦來處理一些其他的 工作,還有一些如 CAD、 數學運算以及圖形處理軟體等可以免費地取得使用。
研究:有了完整的原始程式碼,FreeBSD 是研究作業系統及電腦科學的極佳環境。 具有免費且自由取得特性的 FreeBSD 也使得一個分置兩地的合作計劃,不必擔心版權及系統開放性的問題, 而能自在的交流。
網路: 你如果需要 router、Name Server (DNS) 或安全的防火牆(Firewall), FreeBSD 可以輕易的將你沒有用到的 386 或 486 PC 變身成為絕佳的伺服器,甚至具有過濾封包(packet-filter) 的功能。
X 視窗工作站: FreeBSD 是 X 終端機的良策,你可以使用免費的 X11 Server。 FreeBSD 不但可以充當遠端 X 程式終端機, 也可以執行本地的 X 程式而減輕大型工作站的負荷。 如果有一台中央伺服器的話,FreeBSD 甚至可以經由網路開機 (不需硬碟,也就是“diskless”) ,而變成更便宜且易於管理的工作站。
軟體開發: 基本安裝的 FreeBSD 就包含了完整的程式開發工具,如 GNU C/C++ 編譯器及除錯器。
你可以經由燒錄 CD-ROM、DVD 或是從 FTP 站上抓回 FreeBSD -- 包括立即可執行的系統以及系統的完整程式碼。 詳情請參閱 附錄 A 取得 FreeBSD。
接下來講的是 FreeBSD 計劃的背景,包含歷史源流的簡介、計劃的目標,以及開發的模式。
FreeBSD 計畫的想法是在 1993 年初所形成的, 那是源自於維護一組 『非官方 386BSD 的 patchkit(修正工具)』計劃的三個協調維護人 Nate Williams,Rod Grimes 和我(Jordan Hubbard)。
我們最初的目標是做出一份 386BSD 綜合修正的 snapshot 版,以便修正當時一堆 patchkit 都不容易解決的問題。有些人可能還記得早期的計劃名稱叫做 “386BSD 0.5” 或 “386BSD Interim” 就是這個原因。
386BSD 是 Bill Jolitz 的作業系統,在當時就已有約一年的分裂討論。 當該修正工具 (patchkit) 日漸龐雜得令人不舒服,我們無異議地同意要作一些事了, 並決定提供一份臨時性的 “淨化版(cleanup)” 來幫助 Bill。 然而,由於 Bill Jolitz 忽然決定取消其對該計劃的認可,且沒有明確指出未來的打算, 所以該計劃便突然面臨斷炊危機。
不久我們便決定在即使沒有 Bill 的支持下,讓該計劃仍然繼續下去, 最後我們採用 David Greenman 丟銅板決定的名字,也就是『FreeBSD』。 在詢問了當時的一些使用者意見之後,就開始決定了最初的目標, 當該計劃開始實施一切就要成真時,一切就變得更清楚了。 我跟 Walnut Creek CD-ROM 討論發行 CD-ROM 這樣子不便上網的人就可以用比較簡單的方式取得 FreeBSD。 Walnut Creek CD-ROM 不只贊成以 CD-ROM 來發行 FreeBSD 的想法,同時提供了一台機器以及快速的網際網路的頻寬。 如果不是 Walnut Creek CD-ROM 幾乎是空前的信任這個剛開始還是完全默默無聞的計劃, 那麼很可能 FreeBSD 不會如此快速的成長到今日這樣的規模。
第一張以 CD-ROM (及網路)發行的 FreeBSD 1.0 是在 1993 年十二月。 該版本是基於由 U.C. Berkeley 以磁帶方式發行的 4.3BSD-Lite (“Net/2”)以及許多來自於 386BSD 和自由軟體基金會的軟體。對於第一次發行而言還算成功, 我們又接著於 1994 年 5 月發行了相當成功的 FreeBSD 1.1。
然而此後不久,另一個意外的風暴在 Novell 和 U.C. Berkeley 關於 Berkeley Net/2 磁帶之法律地位的訴訟確定之後形成。 U.C. Berkeley 接受大部份的 Net/2 的程式碼都是『侵佔來的』且是屬於 Novell 的財產 -- 事實上是當時不久前從 AT&T 取得的。 Berkeley 得到的是 Novell 對於 4.4BSD-Lite 的『祝福』,最後當 4.4BSD-Lite 終於發行之後,便不再是侵佔行為。 而所有現有 Net/2 使用者都被強烈建議更換新版本,這包括了 FreeBSD。 於是,我們被要求於 1994 年 6 月底前停止散佈基於 Net/2 的產品。在此前提之下,本計劃被允許在期限以前作最後一次發行,也就是 FreeBSD 1.1.5.1。
FreeBSD 便開始了這宛如『重新發明輪子』的艱鉅工作 -- 從全新的且不完整的 4.4BSD-Lite 重新整合。 這個 “Lite” 版本是不完整的,因為 Berkeley 的 CSRG 已經刪除了大量在建立一個可以開機執行的系統所需要的程式碼 (基於若干法律上的要求),且該版本在 Intel 平台的移植是非常不完整的。 直到 1994 年 11 月本計劃才完成了這個轉移, 同時在該年 12 月底以 CD-ROM 以及網路的形式發行了 FreeBSD 2.0。 雖然該份版本在當時有點匆促粗糙,但仍是富有意義的成功。 隨之於 1995 年 6 月又發行了更容易安裝,更好的 FreeBSD 2.0.5。
我們在 1996 年 8 月發行了 FreeBSD 2.1.5,在 ISP 和商業團體中非常流行。 隨後, 2.1-STABLE 分支的另一個版本應運而生,它就是在 1997 年 2 月發行 FreeBSD 2.1.7.1 ,同時也是 2.1-STABLE 分支的最後版。之後此分支便進入維護狀態, 僅僅提供安全性的加強和其他嚴重錯誤修補的維護(RELENG_2_1_0)。
1996 年 11 月 FreeBSD 2.2 從開發主軸分支 (“-CURRENT”) 出來成為 RELENG_2_2 分支。它的第一個完整版(2.2.1)於 1997 年 4 月發行。 2.2 分支的延續版本在 97 年夏秋之間發行的,其最後版是在 1998 年 11 月發行的 2.2.8 版。 第一個正式的 3.0 版本在 1998 年 10 月發行,亦即宣告 2.2 分支的落幕。
1999/01/20 日再度分支,這產生了 4.0-CURRENT 以及 3.X-STABLE 兩個分支。 3.X-STABLE 方面,3.1 發行於 1999/02/15,3.2 發行於1999/05/15,3.3 發行於 1999/09/16, 3.4 發行於 1999/12/20,3.5 發行於 2000/06/24 ,接下來幾天後發佈了一些的修補檔(對 Kerberos 安全性方面的修正),就升級至 3.5.1 ,這是 3.X 分支最後一個發行版本。
在 2000/03/13 又有了一個新的分支, 也就是 4.X-STABLE 。這個分支之後發佈了許多的發行版本︰ 4.0-RELEASE 在 2000 年 3 月發行, 而最後的 4.11-RELEASE 則在 2005 年 1 月發行。4-STABLE 分支的支援會持續到 2007/01/31 ,但主要焦點在於安全方面的漏洞、臭蟲及其他嚴重問題的修補。
期待已久的 5.0-RELEASE 在 2003/01/19 正式發行。這是將近開發三年的巔峰之作,同時 也開始加強多顆CPU(SMPng)的支援、kernel thread(KSE) 的支援、檔案系統採用 UFS2 以及支援 snapshot 等, 並支援 UltraSPARC 和 ia64 平台、支援藍芽、32 bit 的 PCMCIA 等。之後於 2003 年 6 月發行了 5.1。 而 -CURRENT 這個發展主軸分支的最後 5.X 版本是在 2004 年 2 月正式發行的 5.2.1-RELEASE,在 5.X 系列進入 -STABLE (RELENG_5分支)之後,-CURRENT 就轉移為 6.X 系列。
RELENG_5 分支於 2004 年 8 月正式開跑,之後是 5.3-RELEASE ,它是 5-STABLE 分支的第一個發行版本。 最後的 5.5-RELEASE 是在 2006 年 5 月發行的,在此之後 RELENG_5 分支不再繼續。
RELENG_6 分支於 2005 年 7 月開跑,而 6.X 分支的第一個 release(6.0-RELEASE) 是在 2005 年 11 月出的。 最新的 8.3-RELEASE 是在 2006 年 5 月 發行。 當然囉,RELENG_6 分支還將有後續的發行版。
RELENG_7 分支於 2007 年 10 月開跑,最新的 9.1-RELEASE 是在 2006 年 5 月 發行。 RELENG_7 分支還將有後續的發行版。
目前,長期的開發計畫繼續在 8.X-CURRENT (trunk) 分支中進行,而 8.X 的 CD-ROM (當然,也可以用網路抓) snapshot 版本可以在 FreeBSD snapshot server 取得。
FreeBSD 計劃的目標在於提供可作任意用途的軟體而不附帶任何限制條文。 我們之中許多人對程式碼 (以及計畫本身) 都有非常大的投入, 因此,當然不介意偶爾有一些資金上的補償,但我們並沒打算堅決地要求得到這類資助。 我們認為我們的首要『使命(mission)』是為任何人提供程式碼, 不管他們打算用這些程式碼做什麼, 因為這樣程式碼將能夠被更廣泛地使用,從而發揮其價值。 我認為這是自由軟體最基本的,同時也是我們所倡導的一個目標。
我們程式碼樹中,有若干是以 GNU GPL 或者 LGPL 發佈的那些程式碼帶有少許的附加限制,還好只是強制性的要求開放程式碼而不是別的。 由於使用 GPL 的軟體在商業用途上會增加若干複雜性,因此,如果可以選擇的話, 我們會比較喜歡使用限制相對更寬鬆的 BSD 版權來發佈軟體。
FreeBSD 的開發是一個非常開放且具彈性的過程,就像從 貢獻者名單 所看到的,是由全世界成千上萬的貢獻者發展起來的。 FreeBSD 的開發基礎架構允許數以百計的開發者透過網際網路協同工作。 我們也經常關注著那些對我們的計畫感興趣的新開發者和新的創意, 那些有興趣更進一步參與計劃的人只需要在 FreeBSD technical discussions 郵遞論壇 連繫我們。 FreeBSD announcements 郵遞論壇 對那些希望了解我們進度的人也是相當有用的。
無論是單獨開發者或者封閉式的團隊合作,多瞭解 FreeBSD 計劃和它的開發過程會是不錯的︰
過去數年來 FreeBSD 的中央 source tree 一直是以 CVS (Concurrent Versions System) 來維護的, 它是個自由軟體,可用來做為版本控制,一裝完 FreeBSD 內就有附了。 然而在 2008 年 6 月起, FreeBSD 版本控制系統改用 SVN(Subversion)。 這切換動作我們認為是有必要,因為 CVS 先天的技術限制,導致 source tree 以及歷史版本數量不斷快速擴張。 因此,主要的 repository 目前是採用 SVN ,而 client 端的工具像是 CVSup、 csup 都是以舊式的 CVS 架構為基礎,仍可以繼續正常運作 —— 此乃因 SVN repository 有 backport 回 CVS 才可以繼續讓 client 端相容。 目前,就只有中央 source tree 是採 SVN 版本控制方式。 而文件、網頁、 Ports 這些 repository 仍持續使用 CVS 版本控制方式。 而主要的 CVS repository 是位於美國加州 Santa Clara 的某台機器上, 然後再 mirror 到世界上其他的許多機器上。 SVN tree 內有兩個主分支: -CURRENT 以及 -STABLE ,這些都可輕鬆複製到自己機器上。 詳情請參閱 更新你的 source tree 一節。
所謂的 committers 指的是對 CVS tree 有 write 權限, 並依不同授權部分,而有不同權限可修改 FreeBSD source。 (“committer” 這詞源自 cvs(1) 中的 commit 指令,該指令是用來把新的修改提交給 CVS repository。) 而提交修改給 committer 們檢查的最好方式,就是用 send-pr(1) 指令。 若提交 PR 的流程系統上有壅塞現象的話, 也可以改用寄信方式,寄信到 FreeBSD committer's 郵遞論壇 即可。
如果把 FreeBSD 看成是一家公司的話, FreeBSD core team 就相當於『董事會(board of directors)』。 core team 的主要職責在於確保此計劃有良好的架構,以朝著正確的方向發展。 此外,邀請熱血且負責的軟體開發者加入 committers 行列, 以在若干成員離去時得以補充新血。 目前的 core team 是在 2008 年 7 月 committers 候選人中選出來的,每兩年會舉辦一次選舉。
有些 core team 成員還負責某些特定範圍, 也就是說他們必須盡量確保一些子系統的穩定、效能。 關於 FreeBSD 開發者們以及各自責任範圍,請參閱 貢獻者名單 。
注: core team 大部分成員加入 FreeBSD 開發都是志工性質而已, 並未從本計劃中獲得任何薪酬,所以不該把 “commitment” 誤解為 “guaranteed support” 才對。 剛前面所講的『董事會』可能是不恰當的類推,或許我們應該說: 他們是一群自願放棄原本的優渥生活、個人其他領域成就, 而選擇投入 FreeBSD 開發的熱血有為者才對!
最後一點,但這點絕非最不重要的, 最大的開發者團隊就是持續為我們提供回饋以及錯誤修正的使用者自己。 與 FreeBSD 非核心開發者互動的主要方式,便是透過訂閱 FreeBSD technical discussions 郵遞論壇 來進行溝通,這方面可參考,請參閱 附錄 C 以瞭解各式不同的 FreeBSD 郵遞論壇(mailing lists)。
FreeBSD 貢獻者名單 相當長且不斷成長中, 只要有貢獻就會被列入其中, 要不要立即考慮貢獻 FreeBSD 一些回饋呢?
然而,提供原始碼並非為這個計劃做貢獻的唯一方式; 還需要大家投入的完整工作列表、說明,請參閱 FreeBSD 官網。
簡單的說,我們的開發模式就像是一組沒有拘束的同心圓。 這種集中開發模式是以 給使用者方便 為主, 同時讓他們能很容易地共同維護軟體,而不會把潛在的貢獻者排除在外! 我們的目標是提供含有大量一致性的 應用軟體(ports/packages) ,以便讓使用者輕鬆安裝、使用的作業系統 —— 而這開發模式相當符合此一目標。
我們對於那些想要加入 FreeBSD 開發者的期待是: 請保持如同前人一樣的投入,以確保繼續成功!
FreeBSD 是免費使用且帶有完整原始程式碼的以 4.4BSD-Lite 為基礎的系統,可以在 Intel i386™, i486™, Pentium®, Pentium Pro, Celeron®, Pentium II, Pentium III, Pentium 4 (或者相容型號), Xeon™, DEC Alpha 和 Sun UltraSPARC 為基礎的電腦上執行的作業系統。 它主要以加州大學巴爾克利分校 的 CSRG 研究小組的軟體為基礎,並加入了 NetBSD、OpenBSD、386BSD 以及自由軟體基金會的一些東西。
自從 1994 年末,我們發佈了 FreeBSD 2.0 之後,系統的執行效率、 功能、穩定性都有了令人注目的提升。 最大的改變就是我們將記憶體與檔案系統的 cache 機制結合在一起。 這不只使得系統的表現變得更好, 並且使得 FreeBSD 系統最少的記憶體需求減少到 5 MB。 其它的改進包括完整的 NIS cilent and server 功能支援, 支援 transaction TCP、PPP 撥接連線、整合的 DHCP 支援、 SCSI 子系統的改進、ISDN 的支援,ATM、FDDI 以及乙太網路 (Ethernet、包括 100 Mbit 和 Gigabit) 的支援,提升了最新的 Adaptec 控制卡驅動程式的改善,以及數以千計的 bug 修正。
除了最基本的系統軟體,FreeBSD 還提供了廣受歡迎的套件軟體管理機制: Ports Collection。 到本書付印時,已有超過 24,000 個 ports,這範疇涵蓋從 http(WWW) 伺服器到遊戲、程式語言、編輯器以及您能想到的幾乎所有的東西。 完整的 Ports Collection 需要約 500 MB 的硬碟空間,除了 port 基本架構檔案外,都只儲存與該 port 軟體的原始碼有『須要變更』的部份。 如此一來,我們可以更容易更新這些 ports,也大量的減少如舊的 1.0 版 Ports Collection 對於硬碟空間的需求。 要安裝一個 port 的話,只需要進入該 port 的目錄,輸入 make install,這樣子系統就會幫你裝好了。 您要編譯的每個程式的完整原始程式, 都可從 FTP 或 CD-ROM 中獲得,所以您只需準備足夠的硬碟空間來編譯你要的 port 軟體。 幾乎每一個 port 都有已事先編譯好的 “package”以方便安裝, 如果不想從編譯 port 的人,只要用個簡單指令 (pkg_add)就可以安裝。 有關 packages 和 ports 的細節,可以參閱 µÚ 4 章。
FreeBSD 主機的 /usr/share/doc 目錄下找到許多有用的文件, 來幫助您安裝、使用 FreeBSD。 也可以使用下面的網址,以瀏覽器來翻閱本機上安裝的手冊︰
此外,可在下列網址找到最新版 (也是更新最頻繁的版本):http://www.FreeBSD.org/。
FreeBSD 提供一個簡單好用的文字介面安裝程式,叫做 sysinstall。 這是 FreeBSD 預設使用的安裝程式 。協力廠商若有意願的話,也可以改用自己的安裝程式。 本章將說明如何使用 sysinstall 來安裝 FreeBSD。
讀完這章,您將了解︰
如何製作 FreeBSD 安裝片
FreeBSD 對硬碟的使用及配置。
如何啟動 sysinstall 程式。
在執行 sysinstall 時會問的相關問題有哪些、這些問題的意思為何、以及該如何回答。
在開始閱讀這章之前,您需要︰
閱讀要安裝的 FreeBSD 版本所附之硬體支援表, 以確定您的硬體有沒有被支援。
注: 一般來說,此安裝說明是針對 i386 (相容的 PC 機種) 架構的電腦。 如果有其他架構(比如 Alpha)的安裝說明,我們會一併列出。 雖然本文件會常常更新,但有可能與您安裝版本上所附的說明文件有些許出入。 在此,我們建議您把本說明文章當作一般的安裝參考原則就好。
安裝 FreeBSD 的硬體方面最低需求,依各 FreeBSD 版本與硬體架構差別而有所不同。
關於安裝所需的最低需求,可在 FreeBSD 網站的 Release Information 找相關的 Installation Notes 說明。 接下來的章節會有相關說明整理。 根據安裝 FreeBSD 的方式不同,可能會需要軟碟機或光碟機, 或某些情況則是要網路卡。 這些部份會在 µÚ 2.3.7 節 有介紹。
FreeBSD/i386 及 FreeBSD/pc98 兩種版本均須 486 或更好的處理器, 以及至少 24 MB 的 RAM、至少 150 MB 的硬碟空間, 才能進行最小安裝。
注: 對老舊硬體而言,在大部份情況裝更多的 RAM 與更大的硬碟空間,會比使用更快的 CPU 更有用。
若要裝 FreeBSD/alpha,則需確認該機型是否有支援 (請參閱 µÚ 2.2.2 節) 且必須整顆硬碟皆給 FreeBSD 使用。 目前無法同時與其他作業系統共存。 這硬碟須接到 SRM 韌體有支援的 SCSI controller 上,或者 IDE 硬碟 (該機型的 SRM 有支援可從 IDE 硬碟開機)。
此外,還需該機型的 SRM console firmware。 有些機型可以選擇 AlphaBIOS (or ARC) firmware 或 SRM 來用。 若沒有的話,則需從硬體廠商的網站去下載新的韌體。
注: 從 FreeBSD 7.0 就不再支援 Alpha。 FreeBSD 6.X 系列則是此架構的最後支援 。
有兩種 CPU 能跑 FreeBSD/amd64。 第一種是包括 AMD Athlon™64 、AMD Athlon64-FX、AMD Opteron™ 或更好的 CPU。
第二種則是 Intel® EM64T 架構的 CPU,這些也可以用 FreeBSD/amd64。 這些 CPU 包括了 Intel Core™ 2 Duo 、Quad、Extreme 系列以及 Intel Xeon 3000、5000、7000 相關系列的 CPU。
若主機板晶片組為 nVidia nForce3 Pro-150,則 必須 調整 BIOS 設定,將 IO APIC 停用才行。 若找不到這選項,那可能就是找 ACPI 停用。 因為 Pro-150 晶片組有個 bug,目前我們尚無找到堪解之道。
若要裝 FreeBSD/sparc64,則需確認該機型是否有支援 (請參閱 µÚ 2.2.2 節)。
FreeBSD/sparc64 必須使用整顆硬碟, 因為無法同時與其他作業系統共存。
FreeBSD 每次 release 時都會有附上 FreeBSD Hardware Notes 來說明有支援的硬體列表。 通常這份文件可在光碟或 FTP 的最上層目錄找到,也就是名為 HARDWARE.TXT 的檔案。 此外,在 sysinstall 的 documentation 選項內也可以看到。 每次 FreeBSD release 時該列表會依各不同架構, 而列出相關已知有支援的硬體。 在 FreeBSD 網站的 Release Information 頁可以找到各不同 release 版本與各架構上的硬體支援列表。
在安裝 FreeBSD 之前,您應該試著將您電腦中的硬體清單列出來。 FreeBSD 安裝程式會將這些硬體(硬碟、網路卡、光碟機等等) 以型號及製造廠商列出來。 FreeBSD 也會嘗試為這些硬體找出最適當的 IRQ 及 IO port 的設定。 但是因為 PC 的硬體種類實在太過複雜,這個步驟不一定保證絕對成功。 這時,您就可能需要手動更改有問題的設定值哩。
如果您已裝了其它的作業系統,如: Windows 或 Linux,那麼可先由這些系統所提供的工具, 來查看這些硬體設定值是怎麼設定的。 若真的沒辦法確定某些卡用什麼設定值, 那麼可以檢查看看卡上面所標示的東西,說不定它的設定已有標示在卡上。 常用的 IRQ 號碼為 3、5 以及 7;而 IO 埠的值通常以 16 進位表示, 例如 0x330。
建議您在安裝 FreeBSD 之前,把這些資料列印或抄錄下來做成表格, 也許會較有用喔,例如:
表格 2-1. 硬體清單(舉例)
硬體名稱 | IRQ | IO port(s) | 備註 |
---|---|---|---|
第一顆 IDE 硬碟 | N/A | N/A | 40 GB,Seagate 製造,接在第一條 IDE 排線的 master |
CDROM | N/A | N/A | 接在第一條 IDE 排線的 slave |
第二顆硬碟 | N/A | N/A | 20 GB,IBM 製造,接在第二條 IDE 排線的 master |
第一個 IDE controller | 14 | 0x1f0 | |
網路卡 | N/A | N/A | Intel 10/100 |
數據機 | N/A | N/A | 3Com® 56K faxmodem,接在 COM1 |
… |
硬體清單完成之後,就需針對你所要裝的 FreeBSD 版本之硬體需求, 來檢查是否有支援。
如果要裝的電腦上面存有重要資料,那麼在安裝 FreeBSD 前, 請確定您已經將這些資料備份了,並且先測試過這些備份檔是否沒有問題。 FreeBSD 安裝程式在要寫入任何資料到您的硬碟前,都會先提醒您確認, 一旦您確定要寫入,那麼之後就再也沒有反悔的機會囉。
如果您想讓 FreeBSD 直接使用整顆硬碟,那麼請直接跳到下一節。
然而,如果您想要 FreeBSD 跟既有的系統並存,那麼, 您必須對硬碟的資料分佈方式有深入的了解,以及其所造成的影響。
PC 上的硬碟可以被細分為許多分散區(chunk)。這些區域叫做 分割區(Partitions)。 由於 FreeBSD 內部也有 partition,名稱可能很容易造成混淆, 因此通常在 FreeBSD 這邊會稱呼這些磁碟分散區為 disk slices 或簡稱 slices。 舉例來說,FreeBSD 的 fdisk 的對象是針對 PC 硬碟的 slice 而非 partition。 因為 PC 本身先天設計,每個硬碟最多可以有 4 個分割區,而這些分割叫做 主要分割區(Primary Partitions)。 為了突破這個限制,以便能使用更多的分割區,就有了新的分割區類型,叫作: 延伸分割區(Extended Partition)。 每個硬碟就只能有一個延伸分割區。 然而,在延伸分割區裡面可以建立許多個特殊分割區,叫作 邏輯分割區(Logical Partitions)。
每種分割區都有其 分割區代號(Partition ID) 用以區別每種分割區的資料類型。 而 FreeBSD 分割區代號是 165。
一般來講,每種作業系統都會有自己獨特的方式來區別分割區。 舉例: DOS 及其之後的作業系統,比如 Windows 會分配給每個主要分割區及邏輯分割區 1 個 磁碟代號(drive letter),從 C: 開始。
FreeBSD 必須安裝在主要分割區。 FreeBSD 可以在這個分割區上面存放資料或是您建立的任何檔案。 然而,如果您有很多顆硬碟,也可以在這些(或部份)硬碟建立 FreeBSD 分割區。 安裝 FreeBSD 的時候,必須至少要有 1 個分割區給 FreeBSD 使用, 這個分割區可以是尚未使用的分割區,或是現存的分割區 (但上面的資料不打算繼續使用)。
如果已經用完了磁碟上所有的分割區, 那麼您必須使用其他作業系統所提供的工具 (像是 DOS or Windows 上的 fdisk) 來騰出一個分割區給 FreeBSD 用。
如果有多餘的分割區,也可以使用它。 但使用前,您可能需要先整理一下這些分割區。
FreeBSD最小安裝需要約 100 MB 的空間,但是這只是『最小安裝』, 幾乎沒剩下多少空間來存放您自己的檔案。 較理想的(不含圖形介面)最小安裝是約 250 MB,或者是 350 MB 左右(包含圖形介面)。 還需要安裝其他的套件軟體,那麼將需要更多的硬碟空間。
您可以使用商業軟體像是 PartitionMagic® 或免費自由工具像是 GParted 來重新調整分割區空間, 來給 FreeBSD 用的空間。FreeBSD 光碟、FTP 上面的 tools 目錄包含兩個免費的工具, 也可以達成這個工作,叫作:FIPS 及 PResizer。 這些工具的說明文件可以在同個目錄內找到。 FIPS、 PResizer 和 PartitionMagic 可以重新調整在 MS-DOS 到 Windows ME 所使用的 FAT16 及 FAT32 分割區大小。 目前已知可更改 NTFS 分割區的有 PartitionMagic 及 GParted 這兩種工具程式。 GParted在許多 Linux distributions 的 Live CD 都有提供,像是 SystemRescueCD。
目前已知 Microsoft Vista 分割區的重新調整大小會有問題。 在做上述類似動作時,請記得手邊要有 Vista 安裝光碟以免萬一。 此外,強烈建議先做磁碟維護,以及現有資料備份。
警告不當的使用這些工具,可能會刪除所有硬碟上的資料。 在使用這些工具前,請確定您已有先備份好資料。
在 Alpha 上,您必須使用一整顆硬碟給 FreeBSD, 沒有辦法在同顆硬碟上跟其他作業系統共存。 依不同型號的 Alpha 機器,您的硬碟可以是 SCSI 或 IDE 硬碟, 只要您的機器可以從這些硬碟開機就可以。
按照 Digital / Compaq 使用手冊的編排風格, 所有 SRM 輸入的部分都用大寫表示。 注意:SRM 大小寫有別。
要得知您磁碟的名稱以及型號,可以在 SRM console 提示下使用 SHOW DEVICE 命令:
>>>SHOW DEVICE dka0.0.0.4.0 DKA0 TOSHIBA CD-ROM XM-57 3476 dkc0.0.0.1009.0 DKC0 RZ1BB-BS 0658 dkc100.1.0.1009.0 DKC100 SEAGATE ST34501W 0015 dva0.0.0.0.1 DVA0 ewa0.0.0.3.0 EWA0 00-00-F8-75-6D-01 pkc0.7.0.1009.0 PKC0 SCSI Bus ID 7 5.27 pqa0.0.0.4.0 PQA0 PCI EIDE pqb0.0.1.4.0 PQB0 PCI EIDE
例子中機器為 Digital Personal Workstation 433au, 並且顯示出此機器有連接三個磁碟機。 第一個是 CDROM,叫做 DKA0 ;另外兩個是磁碟機, 分別叫做: DKC0 及 DKC100。
磁碟機的名稱中有 DKx 字樣的是 SCSI 硬碟。例如: DKA100 表示是 SCSI 硬碟,其 SCSI ID 為 1, 位在第一個 SCSI 匯流排(A); 而 DKC300 表示是 SCSI 硬碟, 其 SCSI ID 為 3,位於第三個 SCSI 匯流排(C)。 裝置名稱 PKx 則為 SCSI 控制卡。 由上述 SHOW DEVICE 的結果看來, SCSI 光碟機也被視為是 SCSI 硬碟的一種。
若為 IDE 硬碟的話,名稱會有 DQx 字樣, 而 PQx 則表示相對應的 IDE 磁碟控制器。
如果想透過網路( FTP 站或 NFS)安裝 FreeBSD, 那麼就必須知道您的網路設定。 在安裝 FreeBSD 的過程中將會提示您輸入這些資訊,以順利完成安裝過程。
若使用乙太網路,或是要透過 Cable/DSL 數據機上網, 那麼您必須準備下面的資訊:
IP 位址
預設 Gateway(閘道) 的 IP 位址
Hostname(機器名稱)
DNS 伺服器的 IP 位址
Subnet Mask
若不知道這些資訊,您可以詢問系統管理者或是您的 ISP 業者。 他們可能會說這些資訊會由 DHCP 自動指派; 如果是這樣的話,請記住這一點就可以了。
若由一般的數據機撥接上網,您仍然可以安裝 FreeBSD, 只是會需要很長的時間。
您必須知道:
撥接到 ISP 的電話號碼。
您的數據機是連到哪個 COM 埠。
您撥接到 ISP 所用的帳號跟密碼。
雖然我們盡力使得每個 FreeBSD 發行版本都很穩定, 但是過程中仍然不免有時會發生錯誤。 在某些很罕見的情形下,這些錯誤會影響到安裝的過程。 當發現這些錯誤且修正後,會將它們列在 FreeBSD 勘誤表(Errata) 中。 在您安裝 FreeBSD 前,應該先看看勘誤表中有沒有什麼問題會影響到您的安裝。
關於所有發行版本的資訊(包括勘誤表),可以在 FreeBSD 網站 的 發行情報(release information) 找到。
FreeBSD 可以透過下面任何一種安裝來源進行安裝︰
Local Media
CDROM 或 DVD
現有的 DOS 分割區
SCSI 或 QIC 磁帶。
軟碟磁片
Network
FTP 站、支援 Passvie 模式的 FTP 站(若您機器在 NAT 內) 、甚至 HTTP proxy 都可以。
NFS 伺服器
專用(dedicated)的 parallel 或 serial 連線
若已經有 FreeBSD 的 CD 或 DVD,但機器不支援從光碟開機的話, 那麼請直接進下一節 (µÚ 2.3.7 節)。
若沒有 FreeBSD 安裝片的話,那麼請先看 µÚ 2.13 節 這裡會介紹如何準備所需要的安裝片, 照該節步驟弄好後,就可以繼續下一步 µÚ 2.4 節。
FreeBSD 安裝流程是要從電腦開機後,進入 FreeBSD 安裝畫面 —— 而不是在其他作業系統上執行程式。 一般來講,電腦都是用裝在硬碟上的作業系統來開機, 也可以用開機磁片來開機; 此外,現在大多數電腦都可以從光碟開機。
提示: 如果您有 FreeBSD 的 CDROM 或 DVD(無論是用買現成的或是自己燒錄的), 且您的電腦可支援由光碟開機,(通常在 BIOS 中會有 “Boot Order” 或類似選項),那麼您就可以跳過此小節。 因為 FreeBSD CDROM 或 DVD 都可以用來開機。
請按照下面步驟,以製作開機片:
取得開機片的映像檔(images)
開機磁片用的映像檔(images)通常會放在光碟片上的 floppies/ 目錄內, 另外也可以從像是下面 FTP 站的 floppies 目錄下載: ftp://ftp.FreeBSD.org/pub/FreeBSD/releases/<arch>/<version>-RELEASE/floppies/ 。請將『arch』、『version』替換為打算安裝的電腦架構、OS 版本。 例如:想裝的是 FreeBSD/i386 9.1-RELEASE ,那麼可以到 下載。
映像檔(images)的附檔名都是 .flp。而 floppies/ 目錄內包含一些不同用途的映像檔 (images),這取決於您要裝的 FreeBSD 版本、需求、硬體配備為何。 通常要 4 個映像檔,也就是: boot.flp、 kern1.flp、kern2.flp、 kern3.flp。 若有疑問的話,請翻閱同一目錄下的 README.TXT 文件檔,以瞭解相關最新注意事項。
重要: 在使用 FTP 下載時,必須使用 binary 模式 進行傳輸。 有些瀏覽器預設是以 text (或 ASCII) 模式來傳輸資料, 所以這些錯誤傳輸模式下載的映像檔所做成的磁片,會無法使用。
準備開機磁片
每個映像檔都需要一張磁片,並且請避免使用到壞的磁片。 最簡單的檢測方式就是自己先把這些磁片再重新格式化(format) 而不要相信所謂的已格式化的磁片,Windows 內的 format 在格式化時,並不會告訴你是否有壞軌, 而只會直接將它們標示壞軌而不使用壞軌部分而已。 此外,建議採用全新的磁片來製作安裝片比較保險。
重要: 若在安裝 FreeBSD 的過程中發生當機、 畫面凍結或是其他怪異的現象,首先要懷疑的就是開機磁片是否壞掉。 請用其他的磁片製作映像檔再試試看。
將映像檔(images)寫入到磁片內
.flp 檔並非一般檔案, 不能直接把它複製到磁片上。 事實上它是包含整張磁片所有內容的映像檔(image)。 也就是說,不能純粹複製檔案到磁片上, 而必須使用特別的工具程式,來將映像檔直接寫到磁片上。
若要用 MS-DOS/Windows 來作安裝片的話,那麼可以用 fdimage 工具程式來將映像檔,寫到磁片上。
若您用的是 FreeBSD 光碟的話(假設光碟機代號為 E: ,那麼請執行類似下面的指令:
E:\> tools\fdimage floppies\boot.flp A:
請針對每個需要用到的 .flp 映像檔, 重複上述的指令(記得更改相關檔名),每次的映像檔完成後, 都需要換另外一片來裝新的映像檔; 請記得: 在作好的磁片上註明是使用哪個映像檔作的。 若 .flp 映像檔放在不同地方, 請自行修改上述指令。若沒有 FreeBSD 光碟的話, 可以到 FTP 上面的 tools 目錄 下載 fdimage 使用。
如果要用 UNIX 系統(比如其他台 FreeBSD 機器) 來製作開機片的話,可以用 dd(1) 指令來把映像檔直接寫入到磁片上。 在 FreeBSD上的話,可以打類似下面的指令:
# dd if=boot.flp of=/dev/fd0
在 FreeBSD 中,/dev/fd0 就是指第一台軟碟機(即一般 MS-DOS/Windows 上的 A: 磁碟機); 而 /dev/fd1 指 B: 磁碟機,其餘的依此類推。 不過其他的 UNIX 系統可能會用不同的名稱,這時就要查閱該系統的說明文件了。
現在起,我們可以開始安裝 FreeBSD 囉!
重要: 預設的情況下,安裝過程並不會改變您磁碟機中的任何資料, 除非您看到下面的訊息:
Last Chance: Are you SURE you want continue the installation? If you're running this on a disk with data you wish to save then WE STRONGLY ENCOURAGE YOU TO MAKE PROPER BACKUPS before proceeding! We can take no responsibility for lost disk contents!在看到這最後的警告訊息前, 您都可以隨時離開安裝程式而不會變更您的硬碟。 如果您發現有任何設定錯誤, 這時您可以直接將電源關掉而不會造成任何傷害。
在一開始,電腦電源開關是關閉的。
打開電腦電源開關。剛開始的時候, 它應該會顯示進入系統設定選單或 BIOS 要按哪個鍵, 常見的有: F2, F10, Del 或 Alt+S。(按鍵請依據實際情況決定) 不論是要按哪個鍵, 請按它進入 BIOS 設定畫面。 有時您的電腦可能會顯示一個圖形畫面, 通常做法是按 Esc 鍵將離開這個圖形畫面, 以使您能夠看到必要的設定訊息。
找出可以設定『開機順序(Boot Order)』的選項, 通常該選項會列出一些設備讓您選擇,例如︰ Floppy, CDROM, First Hard Disk 等等。
如果要用軟碟安裝,請確定 floppy disk 要列為開機順序的第一個; 若要用光碟安裝,記得 CDROM 要列為開機順序的第一個。 為了避免不必要的疑惑,請參考機器、主機板說明手冊。
儲存設定並離開,系統應該會重新啟動。
若要用磁片安裝,請把在 µÚ 2.3.7 節一節中製作好的 boot.flp 那張安裝磁片放到第一台軟碟機中。
如果是從光碟安裝,那麼開機後請將 FreeBSD 光碟放入光碟機中。
如果,開機後如往常一樣而沒有從軟碟或光碟開機,請檢查︰
是不是磁片或光碟太晚放入而錯失開機時間。 如果是,請將它們放入,然後重新開機。
BIOS 設定不對或忘了儲存設定,請重新檢查 BIOS 的設定。
您的電腦 BIOS 不支援從光碟開機。
此時,FreeBSD 就開始啟動了。 如果是從光碟開機,會見到類似下面的畫面(版本部分省略):
Booting from CD-Rom... CD Loader 1.2 Building the boot loader arguments Looking up /BOOT/LOADER... Found Relocating the loader and the BTX Starting the BTX loader BTX loader 1.00 BTX version is 1.01 Console: internal video/keyboard BIOS CD is cd0 BIOS drive C: is disk0 BIOS drive D: is disk1 BIOS 639kB/261120kB available memory FreeBSD/i386 bootstrap loader, Revision 1.1 Loading /boot/defaults/loader.conf /boot/kernel/kernel text=0x64daa0 data=0xa4e80+0xa9e40 syms=[0x4+0x6cac0+0x4+0x88e9d] \
如果您從軟碟開機,會看到類似下面的畫面(版本部分省略):
Booting from Floppy... Uncompressing ... done BTX loader 1.00 BTX version is 1.01 Console: internal video/keyboard BIOS drive A: is disk0 BIOS drive C: is disk1 BIOS 639kB/261120kB available memory FreeBSD/i386 bootstrap loader, Revision 1.1 Loading /boot/defaults/loader.conf /kernel text=0x277391 data=0x3268c+0x332a8 | Insert disk labelled "Kernel floppy 1" and press any key...
請根據提示將 boot.flp 磁片取出, 並放入 kern1.flp 這張磁片, 然後按 Enter 鍵。 總之,您只需從第一張磁片啟動,然後根據提示,再放入相關磁片即可。
無論從軟碟或光碟開機,接下來會進入 FreeBSD boot loader 選單畫面:
您可以等待 10 秒,或是按 Enter 鍵。
在一開始,電腦電源開關是關閉的。
打開電腦電源開關,然後等開機畫面出現。
若要用磁片安裝,請把在 µÚ 2.3.7 節一節中製作好的 boot.flp 那張安裝磁片放到第一台軟碟機中。 然後,打下列指令來從磁片開機 (請把下列軟碟機代號改為你電腦的軟碟機代號):
>>>BOOT DVA0 -FLAGS '' -FILE ''
若要用光碟安裝,請把做好的安裝片放入光碟機, 然後打下列指令來從光碟開機 (請把下列光碟機代號改為你電腦的光碟機代號):
>>>BOOT DKA0 -FLAGS '' -FILE ''
接著 FreeBSD 開機片就會開始了。若是由軟碟開機的話, 這時會看到以下訊息:
Insert disk labelled "Kernel floppy 1" and press any key...
請照指示,拿走 boot.flp 片,改放 kern1.flp 片, 然後按 Enter。
無論從軟碟或光碟開機,您都會看到下面這段訊息:
Hit [Enter] to boot immediately, or any other key for command prompt. Booting [kernel] in 9 seconds... _
您可以等待 10 秒,或是按 Enter 鍵。 接下來就會進入kernel configuration 選單。
大多數的 Sparc64® 機器預設會自動從硬碟開機。 因此要裝 FreeBSD 的話,則需要進入 PROM(OpenFirmware) 設定由網路或光碟開機才可。
請先重開機,然後等待直到開機訊息出現。 這部分可能會隨機器型號不同 ,而有所差異,但大概會出現像下列這樣:
Sun Blade 100 (UltraSPARC-IIe), Keyboard Present Copyright 1998-2001 Sun Microsystems, Inc. All rights reserved. OpenBoot 4.2, 128 MB memory installed, Serial #51090132. Ethernet address 0:3:ba:b:92:d4, Host ID: 830b92d4.
若您機器此時會先由硬碟開機,那麼需要按 L1+A 或 Stop+A 或者是透過 serial console (用法請參閱 tip(1) 或 cu(1) 內有關 ~# 的說明) 送出 BREAK 指令來進入 PROM prompt。 大概會像下面:
ok ok {0}
此時請把安裝光碟放入光碟機內,然後在 PROM prompt 打 boot cdrom 即可。
先前在螢幕上所顯示的最後幾百行字,會存在暫存區(buffer) 以便您翻閱。
若要翻閱暫存區,請按 Scroll Lock 鍵, 這會開啟捲動畫面功能。 然後就可以使用方向鍵,或是 PageUp、 PageDown 鍵來上下翻閱。 再按一次 Scroll Lock 鍵,就會停止畫面捲動。
現在就請試試看,翻閱一下偵測硬體的畫面吧, 你應該會看到類似 圖形 2-2 的畫面, 真正畫面會依你的電腦設備而有所不同。
圖形 2-2. 偵測硬體的例子
avail memory = 253050880 (247120K bytes) Preloaded elf kernel "kernel" at 0xc0817000. Preloaded mfs_root "/mfsroot" at 0xc0817084. md0: Preloaded image </mfsroot> 4423680 bytes at 0xc03ddcd4 md1: Malloc disk Using $PIR table, 4 entries at 0xc00fde60 npx0: <math processor> on motherboard npx0: INT 16 interface pcib0: <Host to PCI bridge> on motherboard pci0: <PCI bus> on pcib0 pcib1:<VIA 82C598MVP (Apollo MVP3) PCI-PCI (AGP) bridge> at device 1.0 on pci0 pci1: <PCI bus> on pcib1 pci1: <Matrox MGA G200 AGP graphics accelerator> at 0.0 irq 11 isab0: <VIA 82C586 PCI-ISA bridge> at device 7.0 on pci0 isa0: <iSA bus> on isab0 atapci0: <VIA 82C586 ATA33 controller> port 0xe000-0xe00f at device 7.1 on pci0 ata0: at 0x1f0 irq 14 on atapci0 ata1: at 0x170 irq 15 on atapci0 uhci0 <VIA 83C572 USB controller> port 0xe400-0xe41f irq 10 at device 7.2 on pci 0 usb0: <VIA 83572 USB controller> on uhci0 usb0: USB revision 1.0 uhub0: VIA UHCI root hub, class 9/0, rev 1.00/1.00, addr1 uhub0: 2 ports with 2 removable, self powered pci0: <unknown card> (vendor=0x1106, dev=0x3040) at 7.3 dc0: <ADMtek AN985 10/100BaseTX> port 0xe800-0xe8ff mem 0xdb000000-0xeb0003ff ir q 11 at device 8.0 on pci0 dc0: Ethernet address: 00:04:5a:74:6b:b5 miibus0: <MII bus> on dc0 ukphy0: <Generic IEEE 802.3u media interface> on miibus0 ukphy0: 10baseT, 10baseT-FDX, 100baseTX, 100baseTX-FDX, auto ed0: <NE2000 PCI Ethernet (RealTek 8029)> port 0xec00-0xec1f irq 9 at device 10. 0 on pci0 ed0 address 52:54:05:de:73:1b, type NE2000 (16 bit) isa0: too many dependant configs (8) isa0: unexpected small tag 14 orm0: <Option ROM> at iomem 0xc0000-0xc7fff on isa0 fdc0: <NEC 72065B or clone> at port 0x3f0-0x3f5,0x3f7 irq 6 drq2 on isa0 fdc0: FIFO enabled, 8 bytes threshold fd0: <1440-KB 3.5" drive> on fdc0 drive 0 atkbdc0: <Keyboard controller (i8042)> at port 0x60,0x64 on isa0 atkbd0: <AT Keyboard> flags 0x1 irq1 on atkbdc0 kbd0 at atkbd0 psm0: <PS/2 Mouse> irq 12 on atkbdc0 psm0: model Generic PS/@ mouse, device ID 0 vga0: <Generic ISA VGA> at port 0x3c0-0x3df iomem 0xa0000-0xbffff on isa0 sc0: <System console> at flags 0x100 on isa0 sc0: VGA <16 virtual consoles, flags=0x300> sio0 at port 0x3f8-0x3ff irq 4 flags 0x10 on isa0 sio0: type 16550A sio1 at port 0x2f8-0x2ff irq 3 on isa0 sio1: type 16550A ppc0: <Parallel port> at port 0x378-0x37f irq 7 on isa0 pppc0: SMC-like chipset (ECP/EPP/PS2/NIBBLE) in COMPATIBLE mode ppc0: FIFO with 16/16/15 bytes threshold plip0: <PLIP network interface> on ppbus0 ad0: 8063MB <IBM-DHEA-38451> [16383/16/63] at ata0-master UDMA33 acd0: CD-RW <LITE-ON LTR-1210B> at ata1-slave PIO4 Mounting root from ufs:/dev/md0c /stand/sysinstall running as init on vty0
請仔細檢查每項檢測結果,以確定 FreeBSD 有正確偵測到每項硬體。 若沒偵測到硬體的話,那畫面就不會列出來了。 自訂 kernel 可以讓您加上原本預設的 GENERIC kernel 所不支援的硬體,像是音效卡之類。
而 FreeBSD 6.2 起的版本,在偵測硬體後會看到 圖形 2-3,請用方向鍵選擇你的國別、地區或群組。 然後按 Enter 鍵就會幫你設定相關國別、鍵盤對應。 此外,要離開、重啟 sysinstall 程式,也很簡單。
在主畫面選擇
, 接下來應該會出現以下訊息:User Confirmation Requested Are you sure you wish to exit? The system will reboot (be sure to remove any floppies/CDs/DVDs from the drives). [ Yes ] No
若按下
之後,卻忘了把光碟退出來的話, 那麼等下重開機後又會再次啟動安裝程式了。若你是用磁片開機的話,那麼重開機之前,請記得先退出 boot.flp 片吧。
sysinstall 是 FreeBSD 計劃所提供的安裝程式。 它是以文字模式操作方式為主,分為幾層選單、畫面,以讓您進行安裝。
sysinstall 選單主要由方向鍵、 Enter、Tab、Space 以及其他按鍵來進行操作, 在 sysinstall 主畫面的 Usage 內有這些鍵盤操作上的說明。
要查閱這些說明,請將游標移到 圖形 2-5,接著請按 Enter 鍵。
,然後選 ,這時你畫面應該會長像接下來,會出現安裝的使用說明,閱讀完畢請按 Enter 以跳回主畫面。
在主畫面用方向鍵選擇
,然後按 Enter 鍵。這時會出現說明文件的選單。
閱讀這些說明文件很重要。
要閱讀文件的話,請用方向鍵選取要閱讀的文件然後按 Enter 鍵。讀完後,再按一次 Enter 鍵就會回到說明文件畫面了。
若要回到主畫面,用方向鍵選擇
然後按下 Enter 鍵即可。如果要改變鍵盤按鍵的對應模式,請在主選單選取
然後按 Enter 鍵即可。 一般情況下是不用去改, 除非你用的鍵盤不是一般標準或非美式鍵盤。您可以使用上下鍵移動到您想使用的鍵盤對應方式,然後按下 Space 鍵以選取它;再按一下 Space 鍵可以取消選取。當您完成後,請選擇
然後按 Enter 鍵即可。在這個畫面顯示的只是其中一小部分; 若只要用預設鍵盤對應方式就好的話,可以用 Tab 來選
這樣就會返回主畫面。請選
然後按 Enter 鍵。通常,使用者大多用預設值就可以了,而不用修改它們。 而 Release Name 的地方則依你所安裝的版本而有所不同。
而目前所選的的項目,會在畫面下方以藍底白字顯示說明。 注意:其中右邊最後的選項是
,您可以藉由此選項將所有的設定還原為預設值。另外,可以按 F1 鍵來閱讀各選項的說明。
而按 Q 鍵則是可以回到主畫面。
您的第一個任務就是要決定分配給 FreeBSD 用的磁碟空間、label, 以便 sysinstall 幫你做相關準備動作。 因此,你必須先對 FreeBSD 是如何確認磁碟的流程有個概念。
在安裝、設定 FreeBSD 之前,有很重要的一點必須注意, 尤其當您有許多顆硬碟的時候。
在 PC 架構,當您跑像 MS-DOS 或 Microsoft Windows 這種跟 BIOS 設定相關的作業系統, BIOS 那邊可以調整正常的磁碟機順序,然後這些作業系統會跟著 BIOS 做改變。 這讓使用者不一定非得要由所謂的 “primary master” 硬碟開機。 有人發現最簡單、便宜的備份系統方式,就是再去買一顆一模一樣的硬碟, 然後定期使用 Ghost® 或 XCOPY 以將資料從第一顆硬碟複製到第二顆硬碟上面去。 所以,當第一顆硬碟掛了(可能是病毒或壞軌造成的), 就可以輕鬆透過調整 BIOS 中的開機順序, 而直接用第二顆硬碟開機。 這跟將機殼拆開,把第二顆硬碟跟第一顆對調(要調 jumper)有同樣的效果, 差別就是:不用拆機殼。
此外,若裝有比較貴的 SCSI 卡系統,通常本身也有 BIOS 的功能來讓 SCSI 設備(最多可到 7 個)達到類似改變順序的功能。
習慣上述方式的使用者很可能會感到驚訝,因為在 FreeBSD 中並非如此, FreeBSD 不會參考 BIOS 設定值,而且也不能偵測 “logical BIOS drive mapping” 設定。 這會讓人感覺很疑惑,明明就是一樣的硬碟, 而且資料也完全從另一顆複製過來,結果卻沒辦法像以前那樣用。
使用 FreeBSD 的時候,請將 BIOS 中的硬碟開機順序調回原本正常的順序, 並且以後不要再改這設定。如果您需要切換硬碟順序的話,那請用硬體方式, 直接打開機殼,調 jumper 及排線即可。
注: 在這時候您所做的變更都還不會真正寫入硬碟中。 如果你發現弄錯了,想要重來一遍的話, 可以用選單來離開 sysinstall, 或是按 U 鍵來
所有設定。 如果你弄亂了而且不知道怎麼離開,你可以直接將電腦電源關掉再重來。
在 sysinstall 主畫面選擇使用標準安裝後, 應該會看到下面的訊息:
Message In the next menu, you will need to set up a DOS-style ("fdisk") partitioning scheme for your hard disk. If you simply wish to devote all disk space to FreeBSD (overwriting anything else that might be on the disk(s) selected) then use the (A)ll command to select the default partitioning scheme followed by a (Q)uit. If you wish to allocate only free space to FreeBSD, move to a partition marked "unused" and use the (C)reate command. [ OK ] [ Press enter or space ]
這時請依畫面說明,按 Enter 鍵。 然後會看到一個列表,上面會列出所有在偵測硬體時所找到的硬碟。 圖形 2-13 範例顯示的是有找到兩個 IDE 磁碟機的情形,這兩個磁碟機分別為: ad0 與 ad2。
你可能會好奇,為何 ad1 沒列在這裡。 為什麼會不見了呢?
試想,如果您有兩顆 IDE 硬碟,一個是 primary master,一個是 secondary master,這樣會發生什麼事呢? 如果 FreeBSD 依照找到的順序來為他們命名, 比如首先是 ad0 再來是 ad1 那麼就不會出現困擾。
但是,現在問題來了。如果您現在想在 primary slave 加裝第三顆硬碟, 那麼這顆硬碟的名稱就會是 ad1,之前原本的 ad1 就會變成 ad2。 這樣會造成什麼問題呢? 因為硬體設備的名稱(像是 ad1s1a)是用來尋找檔案系統的, 因此您可能會突然發現,有些檔案系統從此無法正常顯示, 必須修改 FreeBSD 設定(/etc/fstab)才可以正確顯示。
為了解決這個問題,在設定 kernel 時可以採用 IDE 硬碟所在的位置來命名,而非根據找到的順序。 使用這種方式的話, 在 secondary master 的 IDE 硬碟就永遠會是 ad2, 即使系統中並沒有 ad0 或 ad1 也不受影響。
由於此為 FreeBSD kernel 預設設定,也就是為何上述畫面只顯示 ad0 及 ad2 之故。 畫面上這台機器的兩顆硬碟是分別裝在 primary 以及 secondary 排線上的 master,這兩顆都沒有裝在 slave 上。
請選好想安裝 FreeBSD 的硬碟,然後按下 圖形 2-14 的畫面。
。 接著就會開始 FDisk,然後會看到類似FDisk 的顯示畫面分為三個部分。
第一部份是畫面最上方的前兩行,這裡會顯示目前所選的硬碟資訊, 包括它在 FreeBSD 的名稱、硬碟 geometry、硬碟總容量。
第二部分會顯示目前所選的硬碟上有哪些 slice 以及各 slice 的起末位置、 所佔容量、FreeBSD 名稱、描述說明、子類別(sub-type)。 例子中顯示出有 2 個小的並且尚未使用的 slice,這是受到 PC 的硬碟本身架構影響之故。 此外, 還有一個大的 FAT slice(通常是 MS-DOS / Windows 中的 C:),以及一個延伸磁碟分割區 (在 MS-DOS / Windows 內的其他磁碟代號)。
第三部分則顯示 FDisk 可用的指令。
接下來要做的事,跟您要怎麼分割硬碟有關。
若要讓 FreeBSD 使用整顆硬碟(稍後的安裝會再要您確認以 sysinstall 來繼續安裝, 就會清除該硬碟內上的資料),那麼就可以按 A 鍵( 圖形 2-15。 請注意: 在 Flags 欄位的 A 值表示該 slice 屬於 active,也會由此 slice 來開機。
),以刪除所有既存的 slice, 取而代之的是一個小的並標示為 unused(同樣的,這也是 PC 硬碟架構所造成)的 slice,以及一個大的 FreeBSD slice。 之後, 請用方向鍵把光棒移至該 FreeBSD slice,然後按 S 鍵以便將此 slice 標為開機 slice。 此時的畫面應該類似若要刪除現有 slice 以挪出空間給 FreeBSD 使用,可以把光棒移到要刪除的 slice 後按 D 鍵,然後再按 C 鍵, 此時會出現對話框,請輸入要新增的 slice 大小為何,輸入合適大小之後按 Enter 鍵即可。 該預設值為可分配空間的最大值, 可以是最大的或尚未分配的整顆硬碟大小。
若已建立完畢給 FreeBSD 的空間(透過類似 PartitionMagic 之類的工具),那麼可以按 C 鍵以新增 slice。同樣也會有對話框出現,來問想要新增的 slice 大小為何。
完畢後請按 Q 鍵。 這些更改會暫存給 sysinstall 使用,但還不會真正寫入到硬碟 。
現在可以選擇是否要裝 boot manager。 一般而言, 遇到下列情況才會需要裝 boot manager:
有一個以上的硬碟,而 FreeBSD 並非裝在第一個硬碟上。
同一顆硬碟上除了有裝 FreeBSD 之外,還有裝其他作業系統, 所以需要在開機時選擇要進入哪個作業系統。
若只裝 FreeBSD,並且是裝在第一顆硬碟,那麼選
即可。 若已經有使用其他的 boot manager 可開機進入 FreeBSD 那麼請選 即可。請依自身需求與情況做抉擇,然後按 Enter 鍵。
按 F1 會有不同作業系統共存時, 有可能遇到的相關問題說明。
若有一個以上的硬碟,那麼在選完 boot manager 之後會再回到選擇硬碟的畫面。 若要把 FreeBSD 裝在多個硬碟上, 那麼可以在此選擇其他硬碟,並重複使用 FDisk 來建立 slice 。
重要: 若第一顆硬碟不是裝 FreeBSD 的話,那麼每一顆就要都裝 FreeBSD boot manager 才可以。
Tab 鍵可以在最後選擇的硬碟以及
、 之間進行切換。先按一次 Tab 會先移到
,然後再按 Enter 鍵以繼續安裝。現在必須在剛建立好的 slice 規劃一些分割區。 請注意: 每個分割區的代號是從 a 到 h, 此外 b、c、d 通常是特殊用途,不該隨意變動。
有些程式可以透過特殊的分割方式而達到更好的效果, 尤其是分割區是分散在不同硬碟上的時候。 但是,現在是您第一次裝 FreeBSD, 所以請不要去煩惱該如何分割硬碟才好。 最重要的是,裝好 FreeBSD 然後學習如何善用之。 當對 FreeBSD 有一定程度的熟悉之後,可以隨時重裝 FreeBSD,並改變分割的方式。
下面例子有四個分割區 —— 其中一個是 swap 空間,i 其他三個是檔案系統。
表格 2-2. 第一顆硬碟的分割區(Partition)配置
分割區 | 檔案系統 | 大小 | 介紹 |
---|---|---|---|
a | / | 128 MB | 此為根目錄檔案系統(root filesystem)。 其他的檔案系統都會掛載在根目錄之下。 128 MB 對於此檔案系統來說是相當合理的大小, 因為通常這裡並不會放太多資料,而在 FreeBSD 裝完後會用到約 40 MB 的根目錄空間。 剩下的空間是放臨時資料用的, 此外也應該要預留一些空間,因為日後的 FreeBSD 版本可能會需要更多的 /(根目錄) 空間 。 |
b | N/A | RAM 的 2~3 倍 |
系統的 swap 空間是放在 b 分割區。 如何選擇適合的 swap 空間大小可是一門學問。 一般來說, swap 空間應該是記憶體(RAM)大小的 2 或 3 倍。 此外,swap 至少需要 64 MB,因此若 RAM 小於 32 MB 的話,請把 swap 大小設為 64 MB。 若有一個以上的硬碟,則可以在每個硬碟都配置 swap 空間。 FreeBSD 會善用每個硬碟上的 swap 空間,如此一來便能有效提高 swap 的性能。 若您屬這類情況,請先算出總共需要的 swap 總大小 (比如:128 MB),然後除以全部的硬碟數量(比如:兩顆硬碟), 這樣算出來的結果就是每個硬碟上所需配置的 swap 大小, 在這個例子中,則每個硬碟所需之 swap 空間為 64 MB 。 |
e | /var | 256 MB | /var 目錄會放的檔案有很多種,像是 log 檔案以及其他的系統管理檔案。 這些檔案大部分都是 FreeBSD 每日運作所會讀、寫。 把這些檔案另外放到專門的檔案系統(即 /var) 則可以最佳化這些檔案的存取, 而不致於影響其他目錄的存取。 |
f | /usr | 剩餘的硬碟空間 | 所有其他檔案通常會存在 /usr 及其子目錄內。 |
若要把 FreeBSD 裝在多個硬碟上,那麼必須在您所配置的其他 slice 上新增分割區。 最簡單的方式,就是在每個硬碟上建立分割區,一個給 swap 空間,另一個則是檔案系統。
表格 2-3. 其他硬碟的分割區(Partition)配置
分割區 | 檔案系統 | 大小 | 介紹 |
---|---|---|---|
b | N/A | 請參閱右側的介紹 | 前面有提過,swap 空間是可以跨各硬碟。 即使沒有使用 a 分割區,但習慣上還是會把 swap 空間設為 b 分割區。 |
e | /diskn | 剩餘的硬碟空間 | 剩下的空間是一個大的分割區,最簡單的做法是將之規劃為 a 分割區,而不是 e 分割區。 然而,習慣上 a 分割區是保留給 根目錄(/)所使用的。 當然, 您不一定要遵循此習慣,但 sysinstall 本身會,所以照它既有的方式會讓你安裝更加清爽、潔淨。 你可以把這些檔案系統掛載在任何地方,本範例是建議把它們掛載於 /diskn 目錄, 其中的 n 的數字, 則依各硬碟的順序而有所變化。 但若您高興, 也可以把它們掛載於其他地方。 |
完成分割區配置之後,就可以用 sysinstall 來建立之。 您會看到如下訊息:
Message Now, you need to create BSD partitions inside of the fdisk partition(s) just created. If you have a reasonable amount of disk space (200MB or more) and don't have any special requirements, simply use the (A)uto command to allocate space automatically. If you have more specific needs or just don't care for the layout chosen by (A)uto, press F1 for more information on manual layout. [ OK ] [ Press enter or space ]
請按 Enter 鍵以進入 FreeBSD 分割區編輯器,叫做 Disklabel。
圖形 2-18 顯示第一次執行 Disklabel 的畫面, 這畫面可區分為三個區塊。
前幾行顯示的是正在編輯的硬碟,以及目前正在建立的 slice 位於哪個 分割區上。(在此處,Disklabel 是使用 Partition name(分割區名稱),而非 slice 名稱)。 此畫面也會顯示目前 slice 還有多少空間可供使用, 換句話說就是尚未指定分割區的多餘空間。
在畫面中間,則顯示已建立的分割區、每個分割區的檔案系統名稱、 所佔大小,以及一些參數。
在畫面下方,則顯示 Disklabel 可用的按鍵。
Disklabel 可自動分配分割區, 並賦予預設值大小,按 A 即可自動完成。 您會看到類似 圖形 2-19 的畫面。 不過, 由於所用的硬碟大小不一,所以自動分配所設定的大小不一定合用,不要緊, 您不一定得使用預設大小才可以。
注: 預設會給 /tmp 目錄作為獨立分割區, 而非附屬於 / 之下。 如此一來, 可避免 / 會被一堆臨時檔案塞爆。
如果您不想用自動分配分割區而希望自行設定, 請用方向鍵選擇第一個分割區,並按下 D 刪除之。 重複此動作直到刪除所有分割區。
建立第一個分割區(a,掛載為 / —— 根目錄), 請在畫面最上方選擇正確的磁碟分割磁區(slice)並按下 C。 接下來將出現對話框, 會要求輸入新的分割區大小(如 圖形 2-20 所示) 。 這邊可以直接輸入以 block 為單位, 或者是以 M(MB)為單位、 或以 G(GB)為單位, 或者以 C(磁柱,cylinders) 為單位。
注: 自 FreeBSD 5.X 起,則可使用 Custom Newfs 選項來用 UFS2 (從 FreeBSD 5.1 起,此即為預設值)。 若是使用 Auto Defaults 自動預設的情況下,則可以再用 Custom Newfs 選項,或者在建立檔案系統時指定
-O 2
參數亦可。 若用 Custom Newfs 選項的話,則別忘了要加上-U
來啟用 SoftUpdates 功能!
此處預設顯示的大小,會是整個 slice 的所有空間。 若要採用先前例子所介紹的劃分大小,則按 Backspace 鍵來消除這些數字,並輸入例子中的 128M,如 圖形 2-21 所示。 接著按下 。
在輸入之後會問所要建立的是檔案系統(file system)或者是 swap 空間, 如 圖形 2-22 所示。 第一個選項為檔案系統,所以選擇 後按下Enter。
最後,因為要新增的是檔案系統,所以必須告訴 Disklabel 要將其掛載至何處。 如 圖形 2-23 所示。 根目錄檔案系統 的掛載點為 /,所以請輸入 / ,然後按下 Enter。
剛所建立的分割區會顯示在畫面上,可以用上述類似動作來建立其他分割區。 然而在建立 swap 分割區時,系統並不會問要掛載於哪邊,因為 swap 空間是不必額外掛載的。 此外在建立最後分割區 /usr 時,可以直接採用預設大小,也就是該 slice 剩餘的所有空間。
最後 FreeBSD 上的 DiskLabel 編輯器畫面會類似 圖形 2-24,實際數字則依安裝選擇而有所不同。 請按下 Q 即可完成分割區規劃。
要裝哪些套件,主要取決於該系統的用途為何及磁碟空間而定。 預置的套件,從最小安裝到完整安裝都有。 若是 UNIX 或 FreeBSD 新手,通常直接選其中之一即可。 而自訂套件比較適合有經驗的人來用。
若要瞭解各套件的選項細節資訊,請按 F1 鍵。 看完之後按 Enter 即會回到剛才的套件選擇畫面。
若需要 GUI 介面,那必需加選 X 開頭的相關套件。 至於 X server 的設定及要用哪一類的桌面管理,必須在 FreeBSD 裝好之後才能進行。 X server 設定細節部分請參閱 µÚ 5 章。
預設安裝的 X11 版本為 Xorg。
若需要自訂 kernel,那麼需加選有含 source code 的選項。 至於為何需自訂 kernel 及相關細節,請參閱 µÚ 8 章。
很明顯地,全部都裝就不用困擾需要裝什麼了。 若硬碟夠大,請以方向鍵選 圖形 2-25 圖下的 選項,並按下 Enter 即可。 若硬碟空間不夠,請依自身需求選擇安裝。 當然在安裝完畢後, 還是可以依需求再加裝其他套件。
在裝完套件集之後,接著會問是否要裝 FreeBSD Ports 套件。 Ports 套件可以讓您輕鬆安裝各種常見的軟體,它本身並不含那些軟體的原始碼, 而是一個包含如何自動下載、編譯、安裝 third-party 軟體的檔案集合。 µÚ 4 章 會介紹如何使用 ports。
安裝程式並不會檢查是否有足夠空間來放 ports tree, 所以請先確認有足夠空間。 目前 FreeBSD 9.1 的 FreeBSD Ports Collection 大約需要 500 MB 的空間。 因此, 可以推估更新版的 FreeBSD 會需要更多的空間來裝。
User Confirmation Requested Would you like to install the FreeBSD ports collection? This will give you ready access to over 24,000 ported software packages, at a cost of around 500 MB of disk space when "clean" and possibly much more than that if a lot of the distribution tarballs are loaded (unless you have the extra CDs from a FreeBSD CD/DVD distribution available and can mount it on /cdrom, in which case this is far less of a problem). The Ports Collection is a very valuable resource and well worth having on your /usr partition, so it is advisable to say Yes to this option. For more information on the Ports Collection & the latest ports, visit: http://www.FreeBSD.org/ports [ Yes ] No
用方向鍵選
就會裝 Ports Collection,否則就選 以略過。 選好後按 Enter 繼續, 然後會再次回到選擇套件集的畫面。若要勾選的項目都確認沒問題的話,就以方向鍵選
退出並確認 有選到,然後按I Enter 繼續。若要從 CDROM 或 DVD 安裝,用方向鍵將游標移到
,並確定 選 後按下 Enter 就會開始裝了。若是要用其他的方式安裝的話,請選擇適當的安裝來源, 然後遵照螢幕指示進行安裝即可。
按 F1 可以顯示針對此部分(安裝來源)的線上說明。 按一下 Enter 就會回到『選擇安裝來源』的畫面了。
FTP 安裝模式: 使用 FTP 安裝的話,有分三種模式︰主動式(active)FTP、 被動式(passive)FTP 或是透過 HTTP proxy server。
- 主動式 FTP:
該選項會透過 “Active” 模式作 FTP 傳輸動作。 這會無法穿過防火牆,但可用在那些較古早、不支援被動模式的 FTP 站。 若 FTP 連線會卡住(預設為被動模式), 那請改換主動模式看看!
- 被動式 FTP:
該選項會讓 sysinstall 全程使用 “Passive(被動式)” 來進行 FTP 連線, 就可以穿過只允許使用固定 TCP port 連入的防火牆。
- 透過 HTTP proxy 的 FTP:
該選項會讓 sysinstall 的 FTP 連線, 先透過 HTTP 協定(就像網頁瀏覽器一樣)連到 proxy server,而 proxy server 會解譯送過來的的請求,然後轉送給 FTP server。 這可以穿透只允許 HTTP 連線但不允許 FTP 連線的防火牆。 但記得要用之時,必須指定 proxy server 的位址。
對 proxy FTP server 而言,通常要在登入用的帳號名稱後面, 加上 “@” 符號再加上要登入的 server 名稱。 然後, proxy server 就會 “fakes(偽裝)” 為真的 server 樣子。 舉個例子,若要到 ftp.FreeBSD.org 來裝, 但中間透過 proxy FTP server 也就是 foo.example.com 並且使用 port 1234。
在此情況下,可以到 options 選單,將 FTP username 設為 ftp@ftp.FreeBSD.org,密碼則設為自己的 email 信箱。 安裝來源部分,則使用 FTP (或 proxy 有支援的話,就用 passive FTP), 而 URL 則用 ftp://foo.example.com:1234/pub/FreeBSD。
因為 ftp.FreeBSD.org 的 /pub/FreeBSD 會被 porxy 到 foo.example.com,所以就可以從 foo.example.com 這台 機器(這台會從 ftp.FreeBSD.org 抓檔回來給您) 安裝。
到此為止,可以開始進行安裝了, 這也是您避免更動到硬碟的最後機會。
User Confirmation Requested Last Chance! Are you SURE you want to continue the installation? If you're running this on a disk with data you wish to save then WE STRONGLY ENCOURAGE YOU TO MAKE PROPER BACKUPS before proceeding! We can take no responsibility for lost disk contents! [ Yes ] No
選擇
並按下 Enter以確認真的要開始安裝安裝所需時間會依據所選擇安裝的套件集(distribution) 、安裝來源以及電腦速度而有所不同。 在安裝的過程中,會有一些訊息顯示目前的安裝進度。
當您看到下面的訊息表示已經安裝完成了︰
Message Congratulations! You now have FreeBSD installed on your system. We will now move on to the final configuration questions. For any option you do not wish to configure, simply select No. If you wish to re-enter this utility after the system is up, you may do so by typing: /usr/sbin/sysinstall. [ OK ] [ Press enter or space ]
請按 Enter 鍵來進行相關的後續設定。
如果剛選的是
並按下 Enter 鍵,那麼會中斷安裝(就不會動到你的原有系統)。 接著,會出現以下訊息:Message Installation complete with some errors. You may wish to scroll through the debugging messages on VTY1 with the scroll-lock feature. You can also choose "No" at the next prompt and go back into the installation menus to retry whichever operations have failed. [ OK ]
這段訊息乃是因為都沒裝任何東西之故,請按 Enter 以跳回主畫面。
安裝系統成功之後,可以在新裝好的 FreeBSD 重開機之前,或者是事後再透過 sysinstall (FreeBSD 5.2 之前版本則是 /stand/sysinstall) 然後選擇
選項以進行後續設定。如果您之前有設定用 PPP 連線透過 FTP 安裝,那麼這個畫面將不會出現; 正如上面剛所說的,您可以稍後再做更改。
有關 LAN 或把 FreeBSD 設定為 gateway 或 router 請參閱使用手冊中有關 網路進階運用 的章節。
User Confirmation Requested Would you like to configure any Ethernet or SLIP/PPP network devices? [ Yes ] No
如果要設定網路卡,請選擇
然後按 Enter。 否則請選 以繼續。用方向鍵選擇您要設定的網路卡,然後按 Enter。
User Confirmation Requested Do you want to try IPv6 configuration of the interface? Yes [ No ]
在私人區域網路的情況,由於目前的 Internet 協定 (IPv4)還算夠用, 所以請選
不設定 IPv6,然後按 Enter。若是透過 RA server 連到既有的 IPv6 環境,那麼就選
並按 Enter,之後系統會花幾秒鐘去搜尋 RA server。User Confirmation Requested Do you want to try DHCP configuration of the interface? Yes [ No ]
接下來,若不需要 DHCP (Dynamic Host Configuration Protocol)請選
並按Enter。選擇 µÚ 27.5 節。
的話,則會執行 dhclient,若成功要到 IP, 則其會自動填上相關的環境設定,細節請參閱下面的網路設定圖顯示如何在區域網路(LAN)中, 將該機器設定為 gateway 的方式:
可用 Tab 鍵在各欄位間作切換, 並填上適合的資料:
完整的機器名稱,例如本例中的 k6-2.example.com。
機器所屬的網域名稱,例如本例中的 example.com。
這裡請輸入 Gateway 的 IP 位址,其可負責將封包轉遞到遠端網路。 只有在該 gateway 屬於該網路其中節點之一時,才要輸入。 若這機器本身要做為該區域網路的 gateway 的話, 請保持本欄為空白。 此外, 通常 IPv4 Gateway 也會被認為是 default gateway 或 default route。
該網路所用的 DNS server 之 IP。 本例假設該機器所在的網路沒有 DNS,故填上的是該 ISP 所提供的 DNS server (208.163.10.2)。
The IP address to be used for this interface was 192.168.0.1
The address block being used for this local area network is a Class C block (192.168.0.0 - 192.168.0.255). The default netmask is for a Class C network (255.255.255.0).
Any interface-specific options to ifconfig you would like to add. There were none in this case.
Use Tab to select
when finished and press Enter.User Confirmation Requested Would you like to Bring Up the ed0 interface right now? [ Yes ] No
Choosing
and pressing Enter will bring the machine up on the network and be ready for use. However, this does not accomplish much during installation, since the machine still needs to be rebooted.User Confirmation Requested Do you want this machine to function as a network gateway? [ Yes ] No
If the machine will be acting as the gateway for a local area network and forwarding packets between other machines then select
and press Enter. If the machine is a node on a network then select and press Enter to continue.User Confirmation Requested Do you want to configure inetd and the network services that it provides? Yes [ No ]
If
is selected, various services such telnetd will not be enabled. This means that remote users will not be able to telnet into this machine. Local users will still be able to access remote machines with telnet.These services can be enabled after installation by editing /etc/inetd.conf with your favorite text editor. See µÚ 27.2.1 節 for more information.
Select
if you wish to configure these services during install. An additional confirmation will display:User Confirmation Requested The Internet Super Server (inetd) allows a number of simple Internet services to be enabled, including finger, ftp and telnetd. Enabling these services may increase risk of security problems by increasing the exposure of your system. With this in mind, do you wish to enable inetd? [ Yes ] No
Select
to continue.User Confirmation Requested inetd(8) relies on its configuration file, /etc/inetd.conf, to determine which of its Internet services will be available. The default FreeBSD inetd.conf(5) leaves all services disabled by default, so they must be specifically enabled in the configuration file before they will function, even once inetd(8) is enabled. Note that services for IPv6 must be separately enabled from IPv4 services. Select [Yes] now to invoke an editor on /etc/inetd.conf, or [No] to use the current settings. [ Yes ] No
Selecting
will allow adding services by deleting the # at the beginning of a line.After adding the desired services, pressing Esc will display a menu which will allow exiting and saving the changes.
User Confirmation Requested Would you like to enable SSH login? Yes [ No ]
選擇 sshd(8),也就是 OpenSSH 的 daemon 程式。 這會允許該機器可從遠端安全登入。 關於 OpenSSH 請參閱 µÚ 14.11 節 部分的說明。
就會啟用User Confirmation Requested Do you want to have anonymous FTP access to this machine? Yes [ No ]
Selecting the default
and pressing Enter will still allow users who have accounts with passwords to use FTP to access the machine.Anyone can access your machine if you elect to allow anonymous FTP connections. The security implications should be considered before enabling this option. For more information about security see µÚ 14 章.
To allow anonymous FTP, use the arrow keys to select
and press Enter. The following screen (or similar) will display:Pressing F1 will display the help:
This screen allows you to configure the anonymous FTP user. The following configuration values are editable: UID: The user ID you wish to assign to the anonymous FTP user. All files uploaded will be owned by this ID. Group: Which group you wish the anonymous FTP user to be in. Comment: String describing this user in /etc/passwd FTP Root Directory: Where files available for anonymous FTP will be kept. Upload subdirectory: Where files uploaded by anonymous FTP users will go.
The ftp root directory will be put in /var by default. If you do not have enough room there for the anticipated FTP needs, the /usr directory could be used by setting the FTP Root Directory to /usr/ftp.
When you are satisfied with the values, press Enter to continue.
User Confirmation Requested Create a welcome message file for anonymous FTP users? [ Yes ] No
If you select
and press Enter, an editor will automatically start allowing you to edit the message.This is a text editor called ee. Use the instructions to change the message or change the message later using a text editor of your choice. Note the file name/location at the bottom of the editor screen.
Press Esc and a pop-up menu will default to
. Press Enter to exit and continue. Press Enter again to save changes if you made any.Network File System (NFS) allows sharing of files across a network. A machine can be configured as a server, a client, or both. Refer to µÚ 27.3 節 for a more information.
User Confirmation Requested Do you want to configure this machine as an NFS server? Yes [ No ]
If there is no need for a Network File System server, select
and press Enter.If
is chosen, a message will pop-up indicating that the exports file must be created.Message Operating as an NFS server means that you must first configure an /etc/exports file to indicate which hosts are allowed certain kinds of access to your local filesystems. Press [Enter] now to invoke an editor on /etc/exports [ OK ]
Press Enter to continue. A text editor will start allowing the exports file to be created and edited.
Use the instructions to add the actual exported filesystems now or later using a text editor of your choice. Note the file name/location at the bottom of the editor screen.
Press Esc and a pop-up menu will default to
. Press Enter to exit and continue.The NFS client allows your machine to access NFS servers.
User Confirmation Requested Do you want to configure this machine as an NFS client? Yes [ No ]
With the arrow keys, select
or as appropriate and press Enter.There are several options available to customize the system console.
User Confirmation Requested Would you like to customize your system console settings? [ Yes ] No
To view and configure the options, select
and press Enter.A commonly used option is the screen saver. Use the arrow keys to select
and then press Enter.Select the desired screen saver using the arrow keys and then press Enter. The System Console Configuration menu will redisplay.
The default time interval is 300 seconds. To change the time interval, select
again. At the Screen Saver Options menu, select using the arrow keys and press Enter. A pop-up menu will appear:The value can be changed, then select
and press Enter to return to the System Console Configuration menu.Selecting
and pressing Enter will continue with the post-installation configurations.Setting the time zone for your machine will allow it to automatically correct for any regional time changes and perform other time zone related functions properly.
The example shown is for a machine located in the Eastern time zone of the United States. Your selections will vary according to your geographical location.
User Confirmation Requested Would you like to set this machine's time zone now? [ Yes ] No
Select
and press Enter to set the time zone.User Confirmation Requested Is this machine's CMOS clock set to UTC? If it is set to local time or you don't know, please choose NO here! Yes [ No ]
Select
or according to how the machine's clock is configured and press Enter.The appropriate region is selected using the arrow keys and then pressing Enter.
Select the appropriate country using the arrow keys and press Enter.
The appropriate time zone is selected using the arrow keys and pressing Enter.
Confirmation Does the abbreviation 'EDT' look reasonable? [ Yes ] No
Confirm the abbreviation for the time zone is correct. If it looks okay, press Enter to continue with the post-installation configuration.
User Confirmation Requested Would you like to enable Linux binary compatibility? [ Yes ] No
Selecting
and pressing Enter will allow running Linux software on FreeBSD. The install will add the appropriate packages for Linux compatibility.If installing by FTP, the machine will need to be connected to the Internet. Sometimes a remote ftp site will not have all the distributions like the Linux binary compatibility. This can be installed later if necessary.
This option will allow you to cut and paste text in the console and user programs with a 3-button mouse. If using a 2-button mouse, refer to manual page, moused(8), after installation for details on emulating the 3-button style. This example depicts a non-USB mouse configuration (such as a PS/2 or COM port mouse):
User Confirmation Requested Does this system have a PS/2, serial, or bus mouse? [ Yes ] No
Select
for a PS/2, serial, or bus mouse, or for a USB mouse and press Enter.Use the arrow keys to select
and press Enter.The mouse used in this example is a PS/2 type, so the default
was appropriate. To change protocol, use the arrow keys to select another option. Ensure that is highlighted and press Enter to exit this menu.Use the arrow keys to select
and press Enter.This system had a PS/2 mouse, so the default
was appropriate. To change the port, use the arrow keys and then press Enter.Last, use the arrow keys to select
, and press Enter to enable and test the mouse daemon.Move the mouse around the screen and verify the cursor shown responds properly. If it does, select
and press Enter. If not, the mouse has not been configured correctly —— select and try using different configuration options.Select
with the arrow keys and press Enter to return to continue with the post-installation configuration.Packages are pre-compiled binaries and are a convenient way to install software.
Installation of one package is shown for purposes of illustration. Additional packages can also be added at this time if desired. After installation sysinstall can be used to add additional packages.
User Confirmation Requested The FreeBSD package collection is a collection of hundreds of ready-to-run applications, from text editors to games to WEB servers and more. Would you like to browse the collection now? [ Yes ] No
Selecting
and pressing Enter will be followed by the Package Selection screens:Only packages on the current installation media are available for installation at any given time.
All packages available will be displayed if
is selected or you can select a particular category. Highlight your selection with the arrow keys and press Enter.A menu will display showing all the packages available for the selection made:
The bash shell is shown selected. Select as many as desired by highlighting the package and pressing the Space key. A short description of each package will appear in the lower left corner of the screen.
Pressing the Tab key will toggle between the last selected package,
, and .When you have finished marking the packages for installation, press Tab once to toggle to the
and press Enter to return to the Package Selection menu.The left and right arrow keys will also toggle between
and . This method can also be used to select and press Enter to return to the Package Selection menu.Use the Tab and arrow keys to select
and press Enter. You will then need to confirm that you want to install the packages:Selecting
and pressing Enter will start the package installation. Installing messages will appear until completed. Make note if there are any error messages.The final configuration continues after packages are installed. If you end up not selecting any packages, and wish to return to the final configuration, select
anyways.You should add at least one user during the installation so that you can use the system without being logged in as root. The root partition is generally small and running applications as root can quickly fill it. A bigger danger is noted below:
User Confirmation Requested Would you like to add any initial user accounts to the system? Adding at least one account for yourself at this stage is suggested since working as the "root" user is dangerous (it is easy to do things which adversely affect the entire system). [ Yes ] No
Select
and press Enter to continue with adding a user.Select
with the arrow keys and press Enter.The following descriptions will appear in the lower part of the screen as the items are selected with Tab to assist with entering the required information:
The login name of the new user (mandatory).
The numerical ID for this user (leave blank for automatic choice).
The login group name for this user (leave blank for automatic choice).
The password for this user (enter this field with care!).
The user's full name (comment).
The groups this user belongs to (i.e. gets access rights for).
The user's home directory (leave blank for default).
The user's login shell (leave blank for default, e.g. /bin/sh).
The login shell was changed from /bin/sh to /usr/local/bin/bash to use the bash shell that was previously installed as a package. Do not try to use a shell that does not exist or you will not be able to login. The most common shell used in the BSD-world is the C shell, which can be indicated as /bin/tcsh.
The user was also added to the wheel group to be able to become a superuser with root privileges.
When you are satisfied, press
and the User and Group Management menu will redisplay:Groups can also be added at this time if specific needs are known. Otherwise, this may be accessed through using sysinstall (/stand/sysinstall in FreeBSD versions older than 5.2) after installation is completed.
When you are finished adding users, select
with the arrow keys and press Enter to continue the installation.Message Now you must set the system manager's password. This is the password you'll use to log in as "root". [ OK ] [ Press enter or space ]
Press Enter to set the root password.
The password will need to be typed in twice correctly. Needless to say, make sure you have a way of finding the password if you forget. Notice that the password you type in is not echoed, nor are asterisks displayed.
New password : Retype new password :
The installation will continue after the password is successfully entered.
If you need to configure additional network devices or any other configuration, you can do it at this point or after installation with sysinstall (/stand/sysinstall in FreeBSD versions older than 5.2).
User Confirmation Requested Visit the general configuration menu for a chance to set any last options? Yes [ No ]
Select
with the arrow keys and press Enter to return to the Main Installation Menu.Select
with the arrow keys and press Enter. You will be asked to confirm exiting the installation:User Confirmation Requested Are you sure you wish to exit? The system will reboot (be sure to remove any floppies/CDs/DVDs from the drives). [ Yes ] No
Select
and remove the floppy if booting from the floppy. The CDROM drive is locked until the machine starts to reboot. The CDROM drive is then unlocked and the disk can be removed from drive (quickly).The system will reboot so watch for any error messages that may appear, see µÚ 2.10.16 節 details.
Configuring network services can be a daunting task for new users if they lack previous knowledge in this area. Networking, including the Internet, is critical to all modern operating systems including FreeBSD; as a result, it is very useful to have some understanding FreeBSD's extensive networking capabilities. Doing this during the installation will ensure users have some understanding of the various services available to them.
Network services are programs that accept input from anywhere on the network. Every effort is made to make sure these programs will not do anything “harmful”. Unfortunately, programmers are not perfect and through time there have been cases where bugs in network services have been exploited by attackers to do bad things. It is important that you only enable the network services you know that you need. If in doubt it is best if you do not enable a network service until you find out that you do need it. You can always enable it later by re-running sysinstall or by using the features provided by the /etc/rc.conf file.
Selecting the
option will display a menu similar to the one below:The first option, µÚ 2.10.1 節, thus this option can safely be ignored.
, was previously covered during theSelecting the
option adds support for the BSD automatic mount utility. This is usually used in conjunction with the NFS protocol (see below) for automatically mounting remote file systems. No special configuration is required here.Next in line is the
option. When selected, a menu will pop up for you to enter specific AMD flags. The menu already contains a set of default options:-a /.amd_mnt -l syslog /host /etc/amd.map /net /etc/amd.map
The -a
option sets the default mount location which
is specified here as /.amd_mnt. The -l
option specifies the default log
file; however, when syslogd is used all log activity
will be sent to the system log daemon. The /host directory
is used to mount an exported file system from a remote host, while /net directory is used to mount an exported file system from
an IP address. The /etc/amd.map file defines the default options for AMD exports.
The
option permits anonymous FTP connections. Select this option to make this machine an anonymous FTP server. Be aware of the security risks involved with this option. Another menu will be displayed to explain the security risks and configuration in depth.The
configuration menu will set the machine up to be a gateway as explained previously. This can be used to unset the option if you accidentally selected it during the installation process.The inetd(8) daemon as discussed above.
option can be used to configure or completely disable theThe
option is used to configure the system's default MTA or Mail Transfer Agent. Selecting this option will bring up the following menu:Here you are offered a choice as to which MTA to install and set as the default. An MTA is nothing more than a mail server which delivers email to users on the system or the Internet.
Selecting
will install the popular sendmail server which is the FreeBSD default. The option will set sendmail to be the default MTA, but disable its ability to receive incoming email from the Internet. The other options here, and act similar to . They both deliver email; however, some users prefer these alternatives to the sendmail MTA.After selecting an MTA, or choosing not to select an MTA, the network configuration menu will appear with the next option being
.The µÚ 27.3 節 for more information about client and server configuration.
option will configure the system to communicate with a server via NFS. An NFS server makes file systems available to other machines on the network via the NFS protocol. If this is a stand-alone machine, this option can remain unselected. The system may require more configuration later; seeBelow that option is the
option, permitting you to set the system up as an NFS server. This adds the required information to start up the RPC remote procedure call services. RPC is used to coordinate connections between hosts and programs.Next in line is the
option, which deals with time synchronization. When selected, a menu like the one below shows up:From this menu, select the server which is the closest to your location. Selecting a close one will make the time synchronization more accurate as a server further from your location may have more connection latency.
The next option is the PCNFSD selection. This option will install the net/pcnfsd package from the Ports Collection. This is a useful utility which provides NFS authentication services for systems which are unable to provide their own, such as Microsoft's MS-DOS operating system.
Now you must scroll down a bit to see the other options:
The rpcbind(8), rpc.statd(8), and rpc.lockd(8) utilities are all used for Remote Procedure Calls (RPC). The rpcbind utility manages communication between NFS servers and clients, and is required for NFS servers to operate correctly. The rpc.statd daemon interacts with the rpc.statd daemon on other hosts to provide status monitoring. The reported status is usually held in the /var/db/statd.status file. The next option listed here is the option, which, when selected, will provide file locking services. This is usually used with rpc.statd to monitor what hosts are requesting locks and how frequently they request them. While these last two options are marvelous for debugging, they are not required for NFS servers and clients to operate correctly.
As you progress down the list the next item here is routed(8) utility
manages network routing tables, discovers multicast routers, and supplies a copy of
the routing tables to any physically connected host on the network upon
request. This is mainly used for machines which act as a gateway for the local
network. When selected, a menu will be presented requesting the default location of
the utility. The default location is already defined for you and can be
selected with the Enter key. You will then be presented
with yet another menu, this time asking for the flags you wish to pass on to routed. The default is -q
and it
should already appear on the screen.
Next in line is the rwhod(8) daemon during system initialization. The rwhod utility broadcasts system messages across the network periodically, or collects them when in “consumer” mode. More information can be found in the ruptime(1) and rwho(1) manual pages.
option which, when selected, will start theThe next to the last option in the list is for the sshd(8) daemon. This is the secure shell server for OpenSSH and it is highly recommended over the standard telnet and FTP servers. The sshd server is used to create a secure connection from one host to another by using encrypted connections.
Finally there is the
option. This enables the TCP Extensions defined in RFC 1323 and RFC 1644. While on many hosts this can speed up connections, it can also cause some connections to be dropped. It is not recommended for servers, but may be beneficial for stand alone machines.Now that you have configured the network services, you can scroll up to the very top item which is
and continue on to the next configuration item or simply exit sysinstall in selecting twice then .If everything went well, you will see messages scroll off the screen and you will arrive at a login prompt. You can view the content of the messages by pressing Scroll-Lock and using PgUp and PgDn. Pressing Scroll-Lock again will return to the prompt.
The entire message may not display (buffer limitation) but it can be viewed from the command line after logging in by typing dmesg at the prompt.
Login using the username/password you set during installation (rpratt, in this example). Avoid logging in as root except when necessary.
Typical boot messages (version information omitted):
Copyright (c) 1992-2002 The FreeBSD Project. Copyright (c) 1979, 1980, 1983, 1986, 1988, 1989, 1991, 1992, 1993, 1994 The Regents of the University of California. All rights reserved. Timecounter "i8254" frequency 1193182 Hz CPU: AMD-K6(tm) 3D processor (300.68-MHz 586-class CPU) Origin = "AuthenticAMD" Id = 0x580 Stepping = 0 Features=0x8001bf<FPU,VME,DE,PSE,TSC,MSR,MCE,CX8,MMX> AMD Features=0x80000800<SYSCALL,3DNow!> real memory = 268435456 (262144K bytes) config> di sn0 config> di lnc0 config> di le0 config> di ie0 config> di fe0 config> di cs0 config> di bt0 config> di aic0 config> di aha0 config> di adv0 config> q avail memory = 256311296 (250304K bytes) Preloaded elf kernel "kernel" at 0xc0491000. Preloaded userconfig_script "/boot/kernel.conf" at 0xc049109c. md0: Malloc disk Using $PIR table, 4 entries at 0xc00fde60 npx0: <math processor> on motherboard npx0: INT 16 interface pcib0: <Host to PCI bridge> on motherboard pci0: <PCI bus> on pcib0 pcib1: <VIA 82C598MVP (Apollo MVP3) PCI-PCI (AGP) bridge> at device 1.0 on pci0 pci1: <PCI bus> on pcib1 pci1: <Matrox MGA G200 AGP graphics accelerator> at 0.0 irq 11 isab0: <VIA 82C586 PCI-ISA bridge> at device 7.0 on pci0 isa0: <ISA bus> on isab0 atapci0: <VIA 82C586 ATA33 controller> port 0xe000-0xe00f at device 7.1 on pci0 ata0: at 0x1f0 irq 14 on atapci0 ata1: at 0x170 irq 15 on atapci0 uhci0: <VIA 83C572 USB controller> port 0xe400-0xe41f irq 10 at device 7.2 on pci0 usb0: <VIA 83C572 USB controller> on uhci0 usb0: USB revision 1.0 uhub0: VIA UHCI root hub, class 9/0, rev 1.00/1.00, addr 1 uhub0: 2 ports with 2 removable, self powered chip1: <VIA 82C586B ACPI interface> at device 7.3 on pci0 ed0: <NE2000 PCI Ethernet (RealTek 8029)> port 0xe800-0xe81f irq 9 at device 10.0 on pci0 ed0: address 52:54:05:de:73:1b, type NE2000 (16 bit) isa0: too many dependant configs (8) isa0: unexpected small tag 14 fdc0: <NEC 72065B or clone> at port 0x3f0-0x3f5,0x3f7 irq 6 drq 2 on isa0 fdc0: FIFO enabled, 8 bytes threshold fd0: <1440-KB 3.5" drive> on fdc0 drive 0 atkbdc0: <keyboard controller (i8042)> at port 0x60-0x64 on isa0 atkbd0: <AT Keyboard> flags 0x1 irq 1 on atkbdc0 kbd0 at atkbd0 psm0: <PS/2 Mouse> irq 12 on atkbdc0 psm0: model Generic PS/2 mouse, device ID 0 vga0: <Generic ISA VGA> at port 0x3c0-0x3df iomem 0xa0000-0xbffff on isa0 sc0: <System console> at flags 0x1 on isa0 sc0: VGA <16 virtual consoles, flags=0x300> sio0 at port 0x3f8-0x3ff irq 4 flags 0x10 on isa0 sio0: type 16550A sio1 at port 0x2f8-0x2ff irq 3 on isa0 sio1: type 16550A ppc0: <Parallel port> at port 0x378-0x37f irq 7 on isa0 ppc0: SMC-like chipset (ECP/EPP/PS2/NIBBLE) in COMPATIBLE mode ppc0: FIFO with 16/16/15 bytes threshold ppbus0: IEEE1284 device found /NIBBLE Probing for PnP devices on ppbus0: plip0: <PLIP network interface> on ppbus0 lpt0: <Printer> on ppbus0 lpt0: Interrupt-driven port ppi0: <Parallel I/O> on ppbus0 ad0: 8063MB <IBM-DHEA-38451> [16383/16/63] at ata0-master using UDMA33 ad2: 8063MB <IBM-DHEA-38451> [16383/16/63] at ata1-master using UDMA33 acd0: CDROM <DELTA OTC-H101/ST3 F/W by OIPD> at ata0-slave using PIO4 Mounting root from ufs:/dev/ad0s1a swapon: adding /dev/ad0s1b as swap device Automatic boot in progress... /dev/ad0s1a: FILESYSTEM CLEAN; SKIPPING CHECKS /dev/ad0s1a: clean, 48752 free (552 frags, 6025 blocks, 0.9% fragmentation) /dev/ad0s1f: FILESYSTEM CLEAN; SKIPPING CHECKS /dev/ad0s1f: clean, 128997 free (21 frags, 16122 blocks, 0.0% fragmentation) /dev/ad0s1g: FILESYSTEM CLEAN; SKIPPING CHECKS /dev/ad0s1g: clean, 3036299 free (43175 frags, 374073 blocks, 1.3% fragmentation) /dev/ad0s1e: filesystem CLEAN; SKIPPING CHECKS /dev/ad0s1e: clean, 128193 free (17 frags, 16022 blocks, 0.0% fragmentation) Doing initial network setup: hostname. ed0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 192.168.0.1 netmask 0xffffff00 broadcast 192.168.0.255 inet6 fe80::5054::5ff::fede:731b%ed0 prefixlen 64 tentative scopeid 0x1 ether 52:54:05:de:73:1b lo0: flags=8049<UP,LOOPBACK,RUNNING,MULTICAST> mtu 16384 inet6 fe80::1%lo0 prefixlen 64 scopeid 0x8 inet6 ::1 prefixlen 128 inet 127.0.0.1 netmask 0xff000000 Additional routing options: IP gateway=YES TCP keepalive=YES routing daemons:. additional daemons: syslogd. Doing additional network setup:. Starting final network daemons: creating ssh RSA host key Generating public/private rsa1 key pair. Your identification has been saved in /etc/ssh/ssh_host_key. Your public key has been saved in /etc/ssh/ssh_host_key.pub. The key fingerprint is: cd:76:89:16:69:0e:d0:6e:f8:66:d0:07:26:3c:7e:2d root@k6-2.example.com creating ssh DSA host key Generating public/private dsa key pair. Your identification has been saved in /etc/ssh/ssh_host_dsa_key. Your public key has been saved in /etc/ssh/ssh_host_dsa_key.pub. The key fingerprint is: f9:a1:a9:47:c4:ad:f9:8d:52:b8:b8:ff:8c:ad:2d:e6 root@k6-2.example.com. setting ELF ldconfig path: /usr/lib /usr/lib/compat /usr/X11R6/lib /usr/local/lib a.out ldconfig path: /usr/lib/aout /usr/lib/compat/aout /usr/X11R6/lib/aout starting standard daemons: inetd cron sshd usbd sendmail. Initial rc.i386 initialization:. rc.i386 configuring syscons: blank_time screensaver moused. Additional ABI support: linux. Local package initialization:. Additional TCP options:. FreeBSD/i386 (k6-2.example.com) (ttyv0) login: rpratt Password:
Generating the RSA and DSA keys may take some time on slower machines. This happens only on the initial boot-up of a new installation. Subsequent boots will be faster.
If the X server has been configured and a Default Desktop chosen, it can be started by typing startx at the command line.
Once the install procedure has finished, you will be able to start FreeBSD by typing something like this to the SRM prompt:
>>>BOOT DKC0
This instructs the firmware to boot the specified disk. To make FreeBSD boot automatically in the future, use these commands:
>>> SET BOOT_OSFLAGS A >>> SET BOOT_FILE '' >>> SET BOOTDEF_DEV DKC0 >>> SET AUTO_ACTION BOOT
The boot messages will be similar (but not identical) to those produced by FreeBSD booting on the i386.
It is important to properly shutdown the operating system. Do not just turn off power. First, become a superuser by typing su at the command line and entering the root password. This will work only if the user is a member of the wheel group. Otherwise, login as root and use shutdown -h now.
The operating system has halted. Please press any key to reboot.
It is safe to turn off the power after the shutdown command has been issued and the message “Please press any key to reboot” appears. If any key is pressed instead of turning off the power switch, the system will reboot.
You could also use the Ctrl+Alt+Del key combination to reboot the system, however this is not recommended during normal operation.
The following section covers basic installation troubleshooting, such as common problems people have reported. There are also a few questions and answers for people wishing to dual-boot FreeBSD with MS-DOS or Windows.
Due to various limitations of the PC architecture, it is impossible for probing to be 100% reliable, however, there are a few things you can do if it fails.
Check the Hardware Notes document for your version of FreeBSD to make sure your hardware is supported.
若硬體有在支援清單內,但使用 GENERIC kernel 仍有問題,那麼就可能需要 自訂 kernel,以加入有支援的硬體。 The kernel on the boot disks is configured assuming that most hardware devices are in their factory default configuration in terms of IRQs, IO addresses, and DMA channels. If your hardware has been reconfigured, you will most likely need to edit the kernel configuration and recompile to tell FreeBSD where to find things.
It is also possible that a probe for a device not present will cause a later probe for another device that is present to fail. In that case, the probes for the conflicting driver(s) should be disabled.
注: Some installation problems can be avoided or alleviated by updating the firmware on various hardware components, most notably the motherboard. The motherboard firmware may also be referred to as BIOS and most of the motherboard or computer manufactures have a website where the upgrades and upgrade information may be located.
Most manufacturers strongly advise against upgrading the motherboard BIOS unless there is a good reason for doing so, which could possibly be a critical update of sorts. The upgrade process can go wrong, causing permanent damage to the BIOS chip.
At this time, FreeBSD does not support file systems compressed with the Double Space™ application. Therefore the file system will need to be uncompressed before FreeBSD can access the data. This can be done by running the Compression Agent located in the
> > menu.FreeBSD can support MS-DOS based file systems(FAT16 and FAT32). This requires you use the mount_msdosfs(8) command with the required parameters. The utility most common usage is:
# mount -t msdosfs /dev/ad0s1 /mnt
In this example, the MS-DOS file system is located on the first partition of the primary hard disk. Your situation may be different, check the output from the dmesg, and mount commands. They should produce enough information to give an idea of the partition layout.
注: Extended MS-DOS file systems are usually mapped after the FreeBSD partitions. In other words, the slice number may be higher than the ones FreeBSD is using. For instance, the first MS-DOS partition may be /dev/ad0s1, the FreeBSD partition may be /dev/ad0s2, with the extended MS-DOS partition being located on /dev/ad0s3. To some, this can be confusing at first.
NTFS partitions can also be mounted in a similar manner using the mount_ntfs(8) command.
2.11.3.1. My system hangs while probing hardware during boot, or it behaves strangely during install, or the floppy drive isn't probed.
FreeBSD 5.0 and above makes extensive use of the system ACPI service on the i386, amd64 and ia64 platforms to aid in system configuration if it's detected during boot. Unfortunately, some bugs still exist in both the ACPI driver and within system motherboards and BIOS. The use of ACPI can be disabled by setting the hint.acpi.0.disabled hint in the third stage boot loader:
set hint.acpi.0.disabled="1"
This is reset each time the system is booted, so it is necessary to add hint.acpi.0.disabled="1" to the file /boot/loader.conf. More information about the boot loader can be found in µÚ 12.1 節.
2.11.3.2. I go to boot from the hard disk for the first time after installing FreeBSD, the kernel loads and probes my hardware, but stops with messages like:
changing root device to ad1s1a panic: cannot mount root
What is wrong? What can I do?
What is this bios_drive:interface(unit,partition)kernel_name thing that is displayed with the boot help?
There is a longstanding problem in the case where the boot disk is not the first disk in the system. The BIOS uses a different numbering scheme to FreeBSD, and working out which numbers correspond to which is difficult to get right.
In the case where the boot disk is not the first disk in the system, FreeBSD can need some help finding it. There are two common situations here, and in both of these cases, you need to tell FreeBSD where the root filesystem is. You do this by specifying the BIOS disk number, the disk type and the FreeBSD disk number for that type.
The first situation is where you have two IDE disks, each configured as the master on their respective IDE busses, and wish to boot FreeBSD from the second disk. The BIOS sees these as disk 0 and disk 1, while FreeBSD sees them as ad0 and ad2.
FreeBSD is on BIOS disk 1, of type ad and the FreeBSD disk number is 2, so you would say:
1:ad(2,a)kernel
Note that if you have a slave on the primary bus, the above is not necessary (and is effectively wrong).
The second situation involves booting from a SCSI disk when you have one or more IDE disks in the system. In this case, the FreeBSD disk number is lower than the BIOS disk number. If you have two IDE disks as well as the SCSI disk, the SCSI disk is BIOS disk 2, type da and FreeBSD disk number 0, so you would say:
2:da(0,a)kernel
To tell FreeBSD that you want to boot from BIOS disk 2, which is the first SCSI disk in the system. If you only had one IDE disk, you would use '1:' instead.
Once you have determined the correct values to use, you can put the command exactly as you would have typed it in the /boot.config file using a standard text editor. Unless instructed otherwise, FreeBSD will use the contents of this file as the default response to the boot: prompt.
2.11.3.3. I go to boot from the hard disk for the first time after installing FreeBSD, but the Boot Manager prompt just prints F? at the boot menu each time but the boot won't go any further.
The hard disk geometry was set incorrectly in the Partition editor when you installed FreeBSD. Go back into the partition editor and specify the actual geometry of your hard disk. You must reinstall FreeBSD again from the beginning with the correct geometry.
If you are failing entirely in figuring out the correct geometry for your machine, here's a tip: Install a small DOS partition at the beginning of the disk and install FreeBSD after that. The install program will see the DOS partition and try to infer the correct geometry from it, which usually works.
The following tip is no longer recommended, but is left here for reference:
If you are setting up a truly dedicated FreeBSD server or workstation where you don't care for (future) compatibility with DOS, Linux or another operating system, you've also got the option to use the entire disk (`A' in the partition editor), selecting the non-standard option where FreeBSD occupies the entire disk from the very first to the very last sector. This will leave all geometry considerations aside, but is somewhat limiting unless you're never going to run anything other than FreeBSD on a disk.
2.11.3.4. The system finds my ed(4) network card, but I keep getting device timeout errors.
Your card is probably on a different IRQ from what is specified in the /boot/device.hints file. The ed driver does not use the `soft' configuration by default (values entered using EZSETUP in DOS), but it will use the software configuration if you specify -1 in the hints for the interface.
Either move the jumper on the card to a hard configuration setting (altering the kernel settings if necessary), or specify the IRQ as -1 by setting the hint “hint.ed.0.irq="-1"” This will tell the kernel to use the soft configuration.
Another possibility is that your card is at IRQ 9, which is shared by IRQ 2 and frequently a cause of problems (especially when you have a VGA card using IRQ 2!). You should not use IRQ 2 or 9 if at all possible.
This section describes how to install FreeBSD in exceptional cases.
This type of installation is called a “headless install”, because the machine that you are trying to install FreeBSD on either does not have a monitor attached to it, or does not even have a VGA output. How is this possible you ask? Using a serial console. A serial console is basically using another machine to act as the main display and keyboard for a system. To do this, just follow the steps to create installation floppies, explained in µÚ 2.3.7 節.
To modify these floppies to boot into a serial console, follow these steps:
Enabling the Boot Floppies to Boot into a Serial Console
If you were to boot into the floppies that you just made, FreeBSD would boot into its normal install mode. We want FreeBSD to boot into a serial console for our install. To do this, you have to mount the boot.flp floppy onto your FreeBSD system using the mount(8) command.
# mount /dev/fd0 /mnt
Now that you have the floppy mounted, you must change into the /mnt directory:
# cd /mnt
Here is where you must set the floppy to boot into a serial console. You have to make a file called boot.config containing /boot/loader -h. All this does is pass a flag to the bootloader to boot into a serial console.
# echo "/boot/loader -h" > boot.config
Now that you have your floppy configured correctly, you must unmount the floppy using the umount(8) command:
# cd / # umount /mnt
Now you can remove the floppy from the floppy drive.
Connecting Your Null-modem Cable
You now need to connect a null-modem cable between the two machines. Just connect the cable to the serial ports of the 2 machines. A normal serial cable will not work here, you need a null-modem cable because it has some of the wires inside crossed over.
Booting Up for the Install
It is now time to go ahead and start the install. Put the boot.flp floppy in the floppy drive of the machine you are doing the headless install on, and power on the machine.
Connecting to Your Headless Machine
Now you have to connect to that machine with cu(1):
# cu -l /dev/cuad0
在 FreeBSD 5.X,請改用 /dev/cuaa0 而非 /dev/cuad0。
That's it! You should now be able to control the headless machine through your cu session. It will ask you to put in the kern1.flp, and then it will come up with a selection of what kind of terminal to use. Select the FreeBSD color console and proceed with your install!
注: 為避免重覆說明,在文中所提到的「FreeBSD 光碟」, 在這裡指的是您所購買或自行燒錄的 FreeBSD CDROM 或 DVD。
There may be some situations in which you need to create your own FreeBSD installation media and/or source. This might be physical media, such as a tape, or a source that sysinstall can use to retrieve the files, such as a local FTP site, or an MS-DOS partition.
For example:
You have many machines connected to your local network, and one FreeBSD disc. You want to create a local FTP site using the contents of the FreeBSD disc, and then have your machines use this local FTP site instead of needing to connect to the Internet.
You have a FreeBSD disc, and FreeBSD does not recognize your CD/DVD drive, but MS-DOS/Windows does. You want to copy the FreeBSD installation files to a DOS partition on the same computer, and then install FreeBSD using those files.
The computer you want to install on does not have a CD/DVD drive or a network card, but you can connect a “Laplink-style” serial or parallel cable to a computer that does.
You want to create a tape that can be used to install FreeBSD.
As part of each release, the FreeBSD project makes available at least two CDROM images (“ISO images”) per supported architecture. These images can be written (“burned”) to CDs if you have a CD writer, and then used to install FreeBSD. If you have a CD writer, and bandwidth is cheap, then this is the easiest way to install FreeBSD.
Download the Correct ISO Images
The ISO images for each release can be downloaded from ftp://ftp.FreeBSD.org/pub/FreeBSD/ISO-IMAGES-arch/version or the closest mirror. Substitute arch and version as appropriate.
That directory will normally contain the following images:
表格 2-4. FreeBSD 5.X and 6.X ISO Image Names and Meanings
檔名 | 內容 |
---|---|
版本-RELEASE-架構-bootonly.iso | Everything you need to boot into a FreeBSD kernel and start the installation interface. The installable files have to be pulled over FTP or some other supported source. |
版本-RELEASE-架構-disc1.iso | Everything you need to install FreeBSD and a “live filesystem”, which is used in conjunction with the “Repair” facility in sysinstall. |
版本-RELEASE-架構-disc2.iso | FreeBSD 文件(FreeBSD 6.2 之前的),以及許多 third-party packages。 |
版本-RELEASE-架構-docs.iso | FreeBSD 文件(FreeBSD 6.2 及之後)。 |
You must download one of either the bootonly ISO image (if available), or the image of disc one. Do not download both of them, since the disc one image contains everything that the bootonly ISO image contains.
Use the bootonly ISO if Internet access is cheap for you. It will let you install FreeBSD, and you can then install third-party packages by downloading them using the ports/packages system (see µÚ 4 章) as necessary.
Use the image of disc one if you want to install a FreeBSD release and want a reasonable selection of third-party packages on the disc as well.
The additional disc images are useful, but not essential, especially if you have high-speed access to the Internet.
Write the CDs
You must then write the CD images to disc. If you will be doing this on another FreeBSD system then see µÚ 18.6 節 for more information (in particular, µÚ 18.6.3 節 and µÚ 18.6.4 節).
If you will be doing this on another platform then you will need to use whatever utilities exist to control your CD writer on that platform. The images provided are in the standard ISO format, which many CD writing applications support.
注: If you are interested in building a customized release of FreeBSD, please see the Release Engineering Article.
FreeBSD discs are laid out in the same way as the FTP site. This makes it very easy for you to create a local FTP site that can be used by other machines on your network when installing FreeBSD.
On the FreeBSD computer that will host the FTP site, ensure that the CDROM is in the drive, and mounted on /cdrom.
# mount /cdrom
Create an account for anonymous FTP in /etc/passwd. Do this by editing /etc/passwd using vipw(8) and adding this line:
ftp:*:99:99::0:0:FTP:/cdrom:/nonexistent
Ensure that the FTP service is enabled in /etc/inetd.conf.
Anyone with network connectivity to your machine can now chose a media type of FTP and type in ftp://your machine after picking “Other” in the FTP sites menu during the install.
注: If the boot media (floppy disks, usually) for your FTP clients is not precisely the same version as that provided by the local FTP site, then sysinstall will not let you complete the installation. If the versions are not similar and you want to override this, you must go into the
menu and change distribution name to .
警告This approach is OK for a machine that is on your local network, and that is protected by your firewall. Offering up FTP services to other machines over the Internet (and not your local network) exposes your computer to the attention of crackers and other undesirables. We strongly recommend that you follow good security practices if you do this.
若您必須從磁片安裝(雖然我們不建議這樣做), 不論是因為硬體不支援或是您堅持要用這麼刻苦的方式, 您都必須先準備一些磁片以供安裝。
磁片至少得是 1.44 MB At a minimum, you will need as many 1.44 MB floppies as it takes to hold all the files in the base (base distribution) directory. If you are preparing the floppies from DOS, then they must be formatted using the MS-DOS FORMAT command. If you are using Windows, use Explorer to format the disks (right-click on the A: drive, and select “Format”).
Do not trust factory pre-formatted floppies. Format them again yourself, just to be sure. Many problems reported by our users in the past have resulted from the use of improperly formatted media, which is why we are making a point of it now.
If you are creating the floppies on another FreeBSD machine, a format is still not a bad idea, though you do not need to put a DOS filesystem on each floppy. You can use the disklabel and newfs commands to put a UFS filesystem on them instead, as the following sequence of commands (for a 3.5" 1.44 MB floppy) illustrates:
# fdformat -f 1440 fd0.1440 # bsdlabel -w fd0.1440 floppy3 # newfs -t 2 -u 18 -l 1 -i 65536 /dev/fd0
Then you can mount and write to them like any other filesystem.
After you have formatted the floppies, you will need to copy the files to them. The distribution files are split into chunks conveniently sized so that five of them will fit on a conventional 1.44 MB floppy. Go through all your floppies, packing as many files as will fit on each one, until you have all of the distributions you want packed up in this fashion. Each distribution should go into a subdirectory on the floppy, e.g.: a:\base\base.aa, a:\base\base.ab, and so on.
重要: The base.inf file also needs to go on the first floppy of the base set since it is read by the installation program in order to figure out how many additional pieces to look for when fetching and concatenating the distribution.
Once you come to the Media screen during the install process, select
and you will be prompted for the rest.若準備要從 MS-DOS 分割區進行安裝, 請把所有安裝檔都複製到該分割區根目錄內的 freebsd 目錄。 比如:c:\freebsd。 此目錄結構必須與光碟或 FTP 內的目錄結構一致, 因此若是要從光碟複製檔案,建議使用 DOS 的 xcopy 指令。 例如,要複製 FreeBSD 最小安裝所需的檔案:
C:\> md c:\freebsd C:\> xcopy e:\bin c:\freebsd\bin\ /s C:\> xcopy e:\manpages c:\freebsd\manpages\ /s
假設 C: 槽有多餘空間,可以放 FreeBSD 安裝檔;E:則是光碟機代號。
若沒有光碟機,可以到 ftp.FreeBSD.org 去下載安裝檔。 每個安裝套件都有其相對應的目錄;比如 base 是放在 9.1/base/ 目錄內。
請將您要安裝的套件(當然空間要夠)放到 MS-DOS 分割區的 c:\freebsd 裡 —— 因為這個 BIN 安裝套件僅供最精簡安裝而已。
從磁帶上安裝也許是最簡單的方式,比用 FTP 或光碟安裝還快。 安裝程式假設所有檔案都會壓縮放在磁帶上。 在取得所有要裝的安裝檔之後 ,可以用下列指令把它們壓縮放在磁帶上:
# cd /freebsd/distdir # tar cvf /dev/rwt0 dist1 ... dist2
當要安裝時,必須先確認磁帶還有足夠空間, 以便讓安裝過程暫存空間(可以自行選擇要放在哪個目錄), 可以容納磁帶安裝時的全部檔案。 由於磁帶本身並不能隨機存取,因此用磁帶安裝會需要很大的暫存空間。
注: 在使用安裝磁片開機之前, 磁帶一定要先放入磁帶機內,否則在偵測硬體時可能會無法偵測到磁帶機。
有三種網路安裝方式: Ethernet (標準 Ethernet 晶片)、Serial port(SLIP 或 PPP)、 Parallel port (PLIP (laplink cable))。
透過網路安裝的最快方式,就是使用 Ethernet 網路卡! FreeBSD 支援大多數常見的 Ethernet 網路卡; 所有支援的網路卡(及其所需的設定)都有在各版本的 FreeBSD 內的 Hardware Note 說明文件內列出。 若您所用的是有支援的 PCMCIA 網路卡, 請務必在開機之前,先把該網路卡插上。 因為 FreeBSD 的安裝過程,目前並不支援 PCMCIA 卡的熱插拔。
此外,還需要知道該用的 IP 位址以及相對應的 netmask 為何, 以及機器名稱。 若所用的是 PPP 連線,而且沒有固定 IP,別擔心, 因為您的 ISP 會自動分配 IP 給您。 關於這些網路的細部設定, 可以洽詢您網路環境的系統管理者。 若要能以機器名稱就能連到相對應的機器,而非直接使用 IP位址去連, 那麼您還需要 DNS 以及 gateway 的位址(若用的是 PPP 連線, gateway 位址就是 ISP 所分配給你的 IP 位址)。 若想透過 HTTP proxy 來使用 FTP 安裝,那麼必須知道 proxy 的網址為何。 若您對上述所需資訊不甚了解,那麼請在安裝之前, 先詢問系統管理者或 ISP。
SLIP 的支援相當原始,並且主要受限於電腦之間的實體線路(hard-wired) ,比如筆記型電腦與其他電腦之間的 serial 線。 之所以得以電腦間以直接線路連結,乃是由於 SLIP 安裝目前並不支援撥接功能。 PPP 才有提供撥接功能, 所以請儘可能優先採用 PPP 而非 SLIP。
若要透過數據機(modem)來安裝,那 PPP 幾乎是您唯一選擇。 請先準備好 ISP 所提供的相關資料,因為在安裝之初就會用到。
若使用 PAP 或 CHAP 來連到 ISP(換句話說,若在 Windows 可以不透過 script 就可以連線到 ISP),那麼您僅需在 ppp 提示符號下輸入 dial 指令即可撥號。 否則,您必須知道如何以該數據機所採用的 “AT 指令集”來連到 ISP,因為 PPP 撥號程式僅提供非常陽春的 終端模擬器(terminal emulator)而起。 請參閱 Handbook 中 user-ppp 章節以及 FAQ 中的相關項目。 若有操作上的疑問,可以打 set log local ... 指令,以便在螢幕上顯示相關記錄。
若可直接以 hard-wired 方式連到另外的 FreeBSD(2.0-R 及之後) 機器, 那麼可以考慮透過 “laplink” 平行電纜來安裝。 平行埠的傳輸速率比序列埠高很多(最高可達每秒 50 kbytes/sec), 所以安裝速度會更快一些。
NFS 安裝方式相當簡便,只需將 FreeBSD 安裝檔案都放到某台 NFS server 上,然後再指定使用這台 NFS 作為安裝來源即可。
若該 server 只允許 “privileged port”(通常這是 Sun 工作站的預設值),那麼在安裝之前,必須先到
選單去指定 NFS Secure 設定值。若網路卡的連線品質不佳,那可能需要調整一下 NFS Slow 設定。
為了讓 NFS 安裝能順利完成,NFS 主機必須要可以支援子目錄的掛載 (mount),例如:FreeBSD 9.1 安裝目錄是在: ziggy:/usr/archive/stuff/FreeBSD,那麼 ziggy 必須允許直接掛載在 /usr/archive/stuff/FreeBSD,而非僅 /usr 或是 /usr/archive/stuff。
在 FreeBSD 的 /etc/exports 檔,上述功能是由 -alldirs
選項所設定。 其他的 NFS server
可能會有不同的設定方式。 若看到 “permission denied”
錯誤訊息, 則表示可能由於沒有啟用這選項所造成的。
接下來的這一章將涵蓋 FreeBSD 作業系統的基本指令及功能。 大部份的內容在 UNIX-like 作業系統中都是相通的。 如果您對這些內容熟悉的話,可以放心的跳過。 如果您剛接觸 FreeBSD,那您一定要仔細的讀完這章。
讀完這章,您將了解:
如何使用 FreeBSD 的“virtual consoles”。
UNIX 檔案權限運作的方式以及 FreeBSD 中檔案的 flags。
預設的 FreeBSD 檔案系統配置。
FreeBSD 的磁碟結構。
如何掛載(mount)、卸載(umount)檔案系統
什麼是processes、daemons 以及 signals 。
什麼是 shell ,以及如何變更您預設的登入環境。
如何使用基本的文字編輯器。
什麼是 devices 和 device nodes 。
FreeBSD 下使用的 binary 格式。
如何閱讀 manual pages 以獲得更多的資訊。
有很多方法可以操作 FreeBSD ,其中一種就是在文字終端機上打字。 如此使用 FreeBSD 即可輕易的體會到 UNIX 作業系統的威力和彈性。 這一節描述什麼是“終端機”和 “console” ,以及可以如何在 FreeBSD 中運用它們。
如果您沒有將 FreeBSD 設定成開機時自動進入圖形化模式,系統會在啟動的 script 跑完之後顯示登入的提示符號。 您將會看到像是這樣的東西:
Additional ABI support:. Local package initialization:. Additional TCP options:. Fri Sep 20 13:01:06 EEST 2002 FreeBSD/i386 (pc3.example.org) (ttyv0) login:
這個訊息在您的系統上會有些許的不同,但是應該會看到類似的東西。 我們感興趣的是最後兩行,最後兩行是:
FreeBSD/i386 (pc3.example.org) (ttyv0)
這行包含了剛開機完系統的資訊。 您看到的是在 Intel 或相容處理器的 x86 架構上執行的 “FreeBSD”的 console[1]。 這台機器的名字(每台 UNIX 機器都有一個名字)是 pc3.example.org,而您現在看到的是它的系統 console—— ttyv0終端機。
最後的一行應該都會是:
login:
這是您應該要輸入您的“帳號名稱”的地方。 下一小節將告訴您如何登入 FreeBSD。
FreeBSD 是一個 multiuser、multiprocessing 的系統。 這是一個正式的名稱,指的是在單一機器上可以同時被不同人使用, 但同時可以執行很多程式的系統。
每一種多使用者系統都需要可以分辨不同“使用者”的方法。 在 FreeBSD (以及所有的 UNIX-like 作業系統) 中,所有的使用者在執行程式之前必須先“登入”系統。 每個使用者都有一組獨特的帳號名稱 (“username”)及密碼(“password”)。 FreeBSD 在允許使用者執行程式前將會先問這兩個問題。
在 FreeBSD 開機並跑完啟動的 script 之後[2],它將會印出提示字元要求您輸入正確的帳號名稱:
login:
在這個範例裡,我們假設您的帳號是john。 在提示字元處輸入 john 並按下 Enter 。 接著您應該會看到另一個提示字元要您輸入“密碼”:
login: john Password:
輸入 john 的密碼,再按下 Enter。 輸入的密碼 不會顯示在螢幕上。 您不需要為此擔心,這樣做是為了安全上的問題。
如果您輸入了正確的密碼,您應該已經登入 FreeBSD。 現在就可以嘗試所有可用的指令了。
您應該會看到MOTD (即今日訊息、Messages Of The Day),後面接著命令提示字元 (一個 #,$, 或是 % 字元)。 這就表示您已經成功登入 FreeBSD 了。
在一個 Console 下執行 UNIX 當然是沒有問題,然而 FreeBSD 是可以同時執行很多程式的。 像 FreeBSD 這樣可以同時執行一大堆程式的作業系統,只有一個 console 可以輸入指令實在是有點浪費。 因此 “virtual consoles” 就顯得相當好用。
可以設定讓 FreeBSD 同時有很多 virtual console, 用幾個按鍵的組合就可以從一個 virtual console 跳到別的 virtual console 。 每一個 console 都有自已不同的輸出頻道,當從某一個 virtual console 切換到下一個的時候,FreeBSD 會自動處理鍵盤輸入及螢幕輸出。
FreeBSD 保留了特別的按鍵組合來切換 console [3]。 您可以用 Alt-F1、 Alt-F2、到 Alt-F8 來切換 FreeBSD 的不同 console。
當您從一個 console 切換到下一個的時候,FreeBSD 會處理螢幕輸出的儲存及回復。 這就“好像”有很多“虛擬”的螢幕和鍵盤, 可以讓您輸入指令到 FreeBSD 執行。 在某一個 console 上執行的程式並不會因為切到別的 console 而停止執行,切換到另一個 console 時,它們仍會繼續執行。
FreeBSD 預設的虛擬 console 總共有 8 個, 但這並非硬性規定,您可輕鬆設定這些虛擬 console 的數量增減。 有關虛擬 console 的編號跟設定都在 /etc/ttys 這檔案內設定。
可以用 /etc/ttys 檔案來設定 FreeBSD 的虛擬 console。 檔案內每行非註解文字(該行開頭沒有 # 這字)都是設定終端機或虛擬 console。 FreeBSD 預設有 9 個虛擬 console 但只啟動 8 個,也就是以下以 ttyv 開頭的那幾行設定。
# name getty type status comments # ttyv0 "/usr/libexec/getty Pc" cons25 on secure # Virtual terminals ttyv1 "/usr/libexec/getty Pc" cons25 on secure ttyv2 "/usr/libexec/getty Pc" cons25 on secure ttyv3 "/usr/libexec/getty Pc" cons25 on secure ttyv4 "/usr/libexec/getty Pc" cons25 on secure ttyv5 "/usr/libexec/getty Pc" cons25 on secure ttyv6 "/usr/libexec/getty Pc" cons25 on secure ttyv7 "/usr/libexec/getty Pc" cons25 on secure ttyv8 "/usr/X11R6/bin/xdm -nodaemon" xterm off secure
有關各欄位的設定以及其他選項,請參閱 ttys(5) 說明。
有關 “single user 模式” 的介紹在 µÚ 12.6.2 節 這邊有詳盡介紹。 在 single user 模式時,能夠使用的 console 只有一個,並無虛擬 console 可用。 而 single user 模式相關設定值可以在 /etc/ttys 檔做調整。 下面以 console 開頭的那行,就是了:
# name getty type status comments # # If console is marked "insecure", then init will ask for the root password # when going to single-user mode. console none unknown off secure
注: 在 console 那行前面的註解有提到,可以把那行的 secure 改為 insecure, 如此一來,即使 FreeBSD 進入 single user 模式, 仍會要求您輸入 root 的密碼。
請審慎考慮是否要改為 insecure。 因為萬一忘記 root 密碼的話,若要登入 single user 模式就有些麻煩了。儘管還有其他方式可以登入,但對不熟 FreeBSD 開機程序的人而言,就會相當棘手。
FreeBSD console 預設顯示大小可以調整為 1024x768、1280x1024 或其他顯示卡與螢幕有支援的解析度大小。 要切換顯示大小,必須要重新編譯 kernel 並加入下面這兩項設定:
options VESA options SC_PIXEL_MODE
一旦 kernel 有加入這兩項並重新編譯完畢,就可以用 vidcontrol(1) 來偵測目前所支援的模式有哪些。 若要查看支援的模式,可以打:
# vidcontrol -i mode
該指令會顯示該機器所支援的顯示模式清單。 然後可以在 root console 內透過 vidcontrol(1) 指令, 來更改顯示模式:
# vidcontrol MODE_279
若對新的顯示模式覺得還不錯,可以在 /etc/rc.conf 設定之,以讓每次重開機後會自動生效。 以上面這情況為例,就是:
allscreens_flags="MODE_279"
FreeBSD 源自於 BSD UNIX,繼承了幾個重要的 UNIX 概念。 首先也最明顯,它是一款 multi-user 作業系統。 它可以同時處理多人多工, 負責徹底的分享與管理來自每位使用者對硬碟裝置、週邊設備、記憶體及 CPU 時間的要求。
也因為系統能夠支援多使用者, 所以系統管理的一切都有權限來決定誰可以讀取、寫入或執行資源。 這些權限分別使用三組八進位的數字儲存,一組代表檔案的所有者, 一組代表檔案所屬的群組,而最後一組則代表其他所有人。 表示這些數字的方式如下:
值 | 權限 | 目錄顯示 |
---|---|---|
0 | 不可讀取, 不可寫入, 不可執行 | --- |
1 | 不可讀取, 不可寫入, 可執行 | --x |
2 | 不可讀取, 可寫入, 不可執行 | -w- |
3 | 不可讀取, 可寫入, 可執行 | -wx |
4 | 可讀取, 不可寫入, 不可執行 | r-- |
5 | 可讀取, 不可寫入, 可執行 | r-x |
6 | 可讀取, 可寫入, 不可執行 | rw- |
7 | 可讀取, 可寫入, 可執行 | rwx |
使用 ls(1) 指令時,可以加上
-l
參數, 來檢視詳細的目錄清單。
清單中欄位的資訊包含檔案對所有者、群組及其他人的權限。 在任一個目錄底下執行 ls -l,會顯示如下的結果:
% ls -l total 530 -rw-r--r-- 1 root wheel 512 Sep 5 12:31 myfile -rw-r--r-- 1 root wheel 512 Sep 5 12:31 otherfile -rw-r--r-- 1 root wheel 7680 Sep 5 12:31 email.txt ...
在這裡告所您該如何區分 ls -l 第一欄當中的資訊:
-rw-r--r--
第一個 (最左邊) 的字元用來表示這個檔案的類型為何, 除標準檔案以外,尚有目錄、特殊字元裝置 (Special character device)、 Socket 及其他特殊虛擬檔案裝置 (Special pseudo-file device), 在此例當中,- 表示該檔案為一個標準的檔案。 範例中接下來的三個字元中,rw- 代表所有者對檔案擁有的權限。 再接下來的三個字元, r-- 則代表群組對檔案擁有的權限, 最後三個字元,r-- 則代表其他人對檔案擁有的權限。 破折號 (-) 表示沒有權限,範例中的這個檔案的權限, 只允許所有者讀取、寫入檔案,群組以及其他人僅能讀取檔案。 根據以上的表格,此種權限的檔案可以使用 644 來表示, 每組數字分別代表檔案的三種權限。
以上是不錯的方式,但系統該如何控制裝置的權限? 實際上 FreeBSD 對大多的硬碟裝置就如同檔案,程式可以開啟、讀取以及寫入資料如一般檔案。 這些特殊裝置檔案 (Special device file) 都儲存於 /dev 目錄中。
目錄也同如檔案,擁有讀取、寫入及執行的權限, 但在執行權限上與檔案有明顯的差異。 當目錄被標示為可執行時,代表可以使用 “cd” (更改目錄) 進入該目錄。 也代表能夠存取在此目錄之中的已知檔名的檔案 (當然,檔案仍擁有自己的權限)
尤其,要能夠列出目錄內容,必須擁有目錄的讀取權限。 而當要刪除已知檔名的檔案時,也必須擁有檔案所在目錄的寫入 以及 執行的權限。
還有一些權限,但這些權限主要在特殊情況使用,如 setuid binaries 及 sticky directories。 如果您還想知道更多檔案權限的資訊及使用方法,請務必參閱 chmod(1) 說明文件。
權限符號可稱做符號表示, 使用字元的方式來取代使用數值來設定檔案或目錄的權限。 符號表示的格式依序為 (某人)(動作)(權限),可使用的符號如下:
項目 | 字母 | 意義 |
---|---|---|
(某人) | u | 使用者 |
(某人) | g | 群組所有者 |
(某人) | o | 其他 |
(某人) | a | 全部(“world”) |
(動作) | + | 增加權限 |
(動作) | - | 移除權限 |
(動作) | = | 指定權限 |
(權限) | r | 讀取 |
(權限) | w | 寫入 |
(權限) | x | 執行 |
(權限) | t | Sticky bit |
(權限) | s | Set UID 或 GID |
如先前同樣使用 chmod(1) 指令來設定,但使用的參數為這些字元。 例如,您可以使用下列指令禁止其他使用者存取檔案 FILE:
% chmod go= FILE
若有兩個以上的符號表示可以使用逗號 (,) 區隔。 例如,下列指令將會移除群組及其他人對檔案 FILE 的寫入權限, 並使全部人(“world”)對該檔有執行權限。
% chmod go-w,a+x FILE
除了前面提到的檔案權限外,FreeBSD 支援使用 “檔案旗標”。 這些旗標增加了檔案的安全性及管理性,但不包含目錄。
檔案旗標增加了管理性,確保在某些時候 root 不會意外將檔案修改或移除。
修改的檔案 flag 僅需要使用擁有簡易的介面的 chflags(1) 工具。 例如,標示系統禁止刪除的旗標於檔案 file1,使用下列指令:
# chflags sunlink file1
若要移除系統禁止刪除的旗標,只需要簡單在 sunlink
前加上 “no”,例如:
# chflags nosunlink file1
使用 ls(1) 及參數 -lo
可檢視檔案目前的旗標:
# ls -lo file1
輸出的結果如下:
-rw-r--r-- 1 trhodes trhodes sunlnk 0 Mar 1 05:54 file1
多數的旗標僅能由 root 使用者來標示或移除,而部份旗標可由檔案所有者設定。 我們建議系統管理者可閱讀 chflags(1) 及 chflags(2) 說明以瞭解相關細節。
認識 FreeBSD 的目錄架構,就可對系統有概略的基礎理解。 最重要的莫過於整個目錄的根目錄,就是 “/” 目錄, 該目錄會在開機時最先掛載 (mount),裡面會有開機所會用到必備檔案。 此外,根目錄還有紀錄其他檔案系統的掛載點相關設定。
「掛載點」就是讓新增的檔案系統,能接到上層的檔案系統 (通常就是「根目錄」檔案系統)
的目錄。 在 µÚ 3.5 節 這邊對此有更詳細介紹。
標準的掛載點包括了 /usr、/var、 /tmp、/mnt 以及 /cdrom。 這些目錄通常會記錄在 /etc/fstab
設定檔內。 /etc/fstab 是記錄各檔案系統及相關掛載點的表格。
大部分在 /etc/fstab 有記錄的檔案系統,會在開機時由 rc(8) script
來自動掛載,除非它們有設定 noauto
選項。 其中細節說明可參閱
µÚ 3.6.1 節。
有關檔案系統架構的完整說明可參閱 hier(7)。 現在呢,讓我們大致先一窺常見的目錄有哪些吧。
目錄 | 說明 |
---|---|
/ | 檔案系統的根目錄。 |
/bin/ | single-user、multi-user 兩種模式皆可使用的基本工具 。 |
/boot/ | 作業系統開機過程會用到的程式、設定檔。 |
/boot/defaults/ | 預設的開機啟動設定檔,詳情請參閱 loader.conf(5) 。 |
/dev/ | Device nodes,詳情請參閱 intro(4)。 |
/etc/ | 系統設定檔及一些 script 檔。 |
/etc/defaults/ | 預設的系統設定檔,詳情請參閱 rc(8)。 |
/etc/mail/ | MTA(Mail Transport Agent)的相關設定檔,像是 sendmail(8)。 |
/etc/namedb/ | named 設定檔,詳情請參閱 named(8)。 |
/etc/periodic/ | 每日、每週、每月透過 cron(8); 執行的定期排程 script, 詳情請參閱 periodic(8)。 |
/etc/ppp/ | ppp 設定檔,詳情請參閱 ppp(8)。 |
/mnt/ | 系統管理者慣用充當臨時掛載點的空目錄。 |
/proc/ | Process 檔案系統,詳情請參閱 procfs(5) 及 mount_procfs(8)。 |
/rescue/ | 緊急救援用途的一些 statically linked 程式,詳情請參閱 rescue(8)。 |
/root/ | root 帳號的家目錄。 |
/sbin/ | 供 single-user 及 multi-user 環境使用的系統程式及管理工具 。 |
/tmp/ | 臨時檔案。 一般而言,重開機之後 /tmp 內的東西會被清除掉。 而通常會將 memory-based 檔案系統掛載在 /tmp 上。 這些瑣事可透過 tmpmfs 相關的 rc.conf(5) 環境變數來自動完成 。(或是在 /etc/fstab 內做設定, 詳情請參閱 mdmfs(8)。) |
/usr/ | 主要是使用者所安裝的工具程式、應用程式存放處。 |
/usr/bin/ | 常用工具、開發工具、應用軟體。 |
/usr/include/ | 標準 C include 的相關 header 檔案庫。 |
/usr/lib/ | 函式庫存放處。 |
/usr/libdata/ | 其他各式工具的資料檔。 |
/usr/libexec/ | 系統 daemons 及系統工具程式(透過其他程式來執行)。 |
/usr/local/ | 存放一些自行安裝的執行檔、函式庫等等。 同時,也是 FreeBSD ports 架構的預設安裝目錄。 /usr/local 內的目錄架構大致與 /usr 相同,詳情請參閱 hier(7) 說明。 但 man 目錄例外,它們是直接放在 /usr/local 底下,而非 /usr/local/share,而 ports 所安裝的說明文件則在 share/doc/port。 |
/usr/obj/ | 在編譯 /usr/src 目錄時所產生的相關架構 object 檔案。 |
/usr/ports | FreeBSD Ports Collection (optional)。 |
/usr/sbin/ | 系統 daemon 及系統工具(直接由使用者執行)。 |
/usr/share/ | 各架構皆共通的檔案。 |
/usr/src/ | BSD 本身的原始碼(或自行新增的)。 |
/usr/X11R6/ | X11R6 相關套件的執行檔、函式庫等(optional)。 |
/var/ | 存放各種用途的 log 檔、臨時或暫時存放、列印或郵件的 spool 檔案。有時候,memory-based 檔案系統也會掛載在 /var。 這些瑣事可透過 varmfs 相關的 rc.conf(5) 環境變數來自動完成。(或是在 /etc/fstab 內做設定,相關細節請參閱 mdmfs(8)。) |
/var/log/ | 各項系統記錄的 log 檔案。 |
/var/mail/ | 各使用者的 mailbox 檔案。 |
/var/spool/ | 各種印表機、郵件系統的 spool 目錄。 |
/var/tmp/ | 臨時檔案。 這些檔案在重開機後通常仍會保留,除非 /var 是屬於 memory-based 檔案系統。 |
/var/yp | 記錄 NIS maps。 |
FreeBSD 用來尋找檔案的最小單位就是檔案的名稱了。 檔案的名稱有大小寫之分,所以說 readme.txt 和 README.TXT 是兩個不同的檔案。 FreeBSD 並不使用副檔名 (.txt) 來判別這是一個程式檔、文件檔或是其他類型的檔案。
檔案存在目錄裡面。 一個目錄中可能沒有任何檔案,也可能有好幾百個檔案。 目錄之中也可以包含其他的目錄; 您可以建立階層式的目錄以便資料的管理。
檔案或目錄的對應是藉由給定的檔案或目錄名稱,然後加上正斜線符號 (/);之後再視需要加上其他的目錄名稱。 如果您有一個目錄 foo ,裡面有一個目錄叫作 bar,這個目錄中又包含了一個叫 readme.txt 的檔案,那麼這個檔案的全名,或者說檔案的路徑就是 foo/bar/readme.txt。
目錄及檔案儲存在檔案系統之中。 每個檔案系統都有唯一一個最上層的目錄,叫做根目錄 (root directory)。 然後在這個根目錄下面才能有其他的目錄。
到目前為止大概和其他您用過的的作業系統都差不多。 還是有些不一樣的地方就是了,例如 MS-DOS 用 \ 當檔案和目錄名稱的分隔符號,而 Mac OS® 則是用 : 符號。
FreeBSD 的路徑中並沒有使用磁碟機代號或其他的磁碟名稱。 因此,您不可以使用像 c:/foo/bar/readme.txt 這樣子的檔案名稱。
相對的,在 FreeBSD 系統中有一個檔案系統被指定為根檔案系統。 根檔案系統的根目錄由 / 表示。 然後其他的檔案系統再掛載 (mount) 在根檔案系統之下。因此無論您的 FreeBSD 系統上有多少顆硬碟,每一個目錄看起來就像在同一個磁碟上。
假設您有三個檔案系統,分別叫作 A、 B 及 C。 每個檔案系統都包含兩個目錄,叫做 A1、A2 (依此類推得 B1、B2 及 C1、C2)。
稱 A 為主要的檔案系統;如果您用 ls 指令查看此目錄的內容,您會看到兩個子目錄: A1 及 A2,如下所示:
一個檔案系統必須以目錄形式掛載於另一個檔案系統上。 因此,假設您將 B 掛載於 A1 之上,則 B 的根目錄就變成了 A1,而在 B 之下的任何目錄的路徑也隨之改變:
在 B1 或 B2 目錄中的任何檔案必須經由路徑 /A1/B1 或 /A1/B2 才能達到。 所有原來在 /A1 中的檔案會暫時被隱藏起來,直到 B 被「移除 (unmounted)」後才會再顯現出來。
如果 B 掛載在 A2 之上,則會變成:
上面的路徑分別為 /A2/B1 及 /A2/B2。
檔案系統可以掛在其他檔案系統的目錄之上。 延續之前的例子,C 檔案系統可以掛在檔案系統 B 的 B1 目錄之上,如圖所示:
或者 C 直接掛載於 A 的 A1 目錄之上:
如果您熟悉 MS-DOS 的話,這和 join 指令很類似 (雖然不儘相同)。
一般情況下您不需要擔心這些東西。 除非您要安裝新的磁碟,不然通常在您安裝 FreeBSD 時建立好檔案系統並決定好要掛載在何處之後就不會再做任何更動了。
您完全可以使用單一的一個大的根檔案系統 (root file system) 而不建立其他的檔案系統。 這樣有好處也有有壞處。
使用多個檔案系統的好處
不同的檔案系統在掛上的時候可以有不同的 掛載參數。 舉例來說,為求謹慎您可以將根檔案系統設成唯讀, 以避免不小心刪除或修改掉重要的檔案。 將使用者可寫入的檔案系統 (例如 /home) 獨立出來也可以讓他們用 nosuid 的參數掛載,此選項可以讓在這個檔案系統中執行檔的 suid/guid bits 失效,也許可以讓系統更安全。
FreeBSD 會自動根據您檔案系統的使用方式來做最佳的檔案配置方式。 因此,一個有很多小檔案、 常常寫入的檔案系統跟只有幾個較大的檔案的檔案系統配置是不一樣的。 如果您只有單一一個大的檔案系統,這部分就沒用了。
FreeBSD 的檔案系統在停電的時候很穩固。 然而,在某些重要的時候停電仍然會對檔案系統結構造成損害。 分割成許多個檔案系統的話在系統在停電後比較能夠正常啟動, 以便您在需要的時候將備份資料回存回來。
使用單一檔案系統的好處
檔案系統的大小是固定的。 您當初安裝 FreeBSD 的時候應該會給定一個大小,可是後來您可能會想把空間加大。 如果沒有備份的話是很難達成的; 您必須將檔案系統重新建立為您需要的大小,然後將備份回存回來。
重要: FreeBSD 的 growfs(8) 指令可以突破此限制直接變更檔案系統的大小。
檔案系統包含在分割區裡面。 因為 FreeBSD 承襲 UNIX 架構,這邊講的分割區和一般提到的分割區 (例如 MS-DOS 分割區) 不同。 每一個分割區由一個代號(字母)表示,從 a 到 h。 每個分割區只能包含一個檔案系統。 因此除了說常見到用檔案系統同的掛載點來表示檔案系統外, 也可以用包含他的分割區代號來表示。
FreeBSD 也會拿磁碟空間來當 swap space。 Swap space 給 FreeBSD 當作虛擬記憶體用。 這讓您的電腦好像擁有比實際更多的記憶體。 當 FreeBSD 的記憶體用完的時候,它會把一些目前沒用到的資料移到 swap space,然後在用到的時候移回去 (同時移出部份沒用到的)。
某些分割區有慣例的使用方式如下:
分割區 | 慣例 |
---|---|
a | 通常包含根檔案系統 (root file system) |
b | 通常是 swap space |
c | 通常和整個 slice 的大小一樣,給一些會用到整個 slice 的工具程式 (例如硬碟壞軌檢查工具) 來使用。 一般來說您應該不會把檔案系統建立在這個分割區。 |
d | 分割區 d 曾經有代表特殊意義,但是已經不再使用。 所以現在 d 就和其他一般的分割區相同了。 |
每個包含有檔案系統的分割區是存在所謂的 slice 裡面。 FreeBSD 的 slice 就是指平常我們稱為分割區 (partition) 的東西。 同樣地,會這樣子稱呼也是因為 FreeBSD 的 UNIX 色彩。 而 slice 是有編號的,從 1 號編到 4 號。
slice 號碼跟在裝置名稱後面,先接一個字母 s,然後從 1 號開始編下去。 因此 “da0s1” 就是指第一個 SCSI 硬碟的第一個 slice。 一個磁碟上只能有四個實體的 slice,但是在實體的 slice 中您可以塞進適當類型的邏輯 slice。 這些延伸的 slice 編號從 5 開始,所以 “ad0s5” 是第一個 IDE 硬碟上的第一個延伸 slice。 檔案系統在裝置 (device) 裡就是在一個 slice 之中。
Slices、“dangerously dedicated” 模式的實體磁碟機,以及其他包含分割區(partition) 的磁碟都是以字母 a 到 h 的編號來表示。 編號是接在裝置名稱的後面的,因此 “da0a” 是磁碟機 da 上的第一個 “dangerously dedicated”模式之分割區。 而 “ad1s3e” 則是第二顆 IDE 硬碟上第三個 slice 的第五個分割區。
最後,我們就可以把系統上的每個磁碟都區分出來了。 一個磁碟的名稱會有一個代碼來表示這個磁碟的類型,接著是一個數字, 表示這是哪一個磁碟。 這邊跟 slice 每個磁碟編號從 0 開始不一樣。 常見的代碼可以參考 表格 3-1。
當要參照一個分割區的時候,FreeBSD 會要您一併輸入包含這個分割區的 slice 及磁碟機名稱;當要參照一個 slice 的時候,也必須輸入包含這個 slice 的磁碟名稱。 怎麼做呢?首先先列出磁碟名稱,然後 s 加上 slice 編號,最後再輸入分割區字母代號。 範例可以參考 範例 3-1.
範例 3-2 示範了一個基本的磁碟分布模式,相信對您有些幫助。
要安裝 FreeBSD,您必須先建置磁碟的 slice,接著於 slice 中建立要給 FreeBSD 用的分割區。 最後在這些分割區中建立檔案系統 (或 swap space) 並決定要將這些檔案系統掛載於哪裡。
檔案系統就像一顆樹。/ 就像是樹根,而 /dev,/usr 以及其他在根目錄下的目錄就像是樹枝,而這些樹枝上面又還有分支,像是 /usr/local 等。
因為某些原因,我們會將一些目錄分別放在不同的檔案系統上。 如 /var 包含了可能會滿出來的 log/,spool/ 等目錄以及各式各樣的暫存檔。 把根檔案系統塞到滿出來顯然不是個好主意,所以我們往往會比較傾向把 /var 從 / 中拉出來。
另一個常見到把某些目錄放在不同檔案系統上的理由是: 這些檔案在不同的實體或虛擬磁碟機上。 像是網路檔案系統 (Network File System) 或是光碟機。
在 /etc/fstab 裡面有設定的檔案系統會在開機 的過程中自動地被掛載 (除非該檔案系統有被加上 noauto
參數)。
/etc/fstab 檔案內容的格式如下:
device /mount-point fstype options dumpfreq passno
裝置名稱 (該裝置必須真的存在)。 詳情請參閱 µÚ 18.2 節.
檔案系統要掛載到的目錄 (該目錄必須真的存在)。
檔案系統類型,這是要傳給 mount(8) 的參數。 FreeBSD 預設的檔案系統是 ufs。
可讀可寫的檔案系統用 rw
,而唯讀的檔案系統則是用
ro
,後面視需要還可以加其他選項。 常見的選項如
noauto
是用在不要於開機過程中自動的掛載的檔案系統。
其他選項可參閱 mount(8) 說明。
dump(8) 由此項目決定那些檔案系統需要傾印。 如果這格空白則以零為預設值。
這個項目決定檔案系統檢查的順序。 對於要跳過檢查的檔案系統,它們的 passno 值要設為零。 根檔案系統的 passno 值應設為一 (因為需要比所有其他的還要先檢查),而其他的檔案系統的 passno 值應該要設得比一大。 若有多個檔案系統具有相同的 passno 值,則 fsck(8) 會試著平行地(如果可能的話)檢查這些檔案系統。
更多關於 /etc/fstab 檔案格式及選項的資訊請參閱 fstab(5) 說明文件。
mount(8) 指令是拿來掛載檔案系統用的。
基本的操作指令格式如下:
在 mount(8) 裡面有提到一大堆的選項,不過最常用的就是這些:
掛載選項
-a
把 /etc/fstab 裡面所有還沒有被掛載、沒有被標記成
“noauto” 而且沒有用 -t
排除的檔案系統掛載起來。
-d
執行所有的動作,但是不真的去呼叫掛載的 system call。 這個選項和 -v
搭配拿來推測 mount(8)
將要做什麼動作時很好用。
-f
強迫掛載不乾淨的檔案系統 (危險),或是用來強制取消寫入權限 (把檔案系統的掛載狀態從可存取變成唯讀)。
-r
用唯讀的方式掛載檔案系統。 這個選項和在 -o
選項中指定 ro
(在 FreeBSD 5.2之前的版本是用 rdonly
) 參數是一樣的。
-t
fstype用指定的檔案系統型態 (fstype) 來掛載指定的檔案系統,或是在有 -a
選項時只掛載指定型態的檔案系統。
預設的檔案系統是 “ufs”。
-u
更新檔案系統的掛載選項。
-v
顯示較詳細資訊。
-w
以可存取的模式掛載檔案系統。
-o
選項後面會接著以逗號分隔的參數,例如:
不允許在這個檔案系統上執行二進位程式碼, 這也是一個蠻有用的安全選項。
不解析檔案系統上的 setuid 或 setgid 旗標, 這也是一個蠻有用的安全選項。
umount(8)
指令的參數可以是掛載點 (mountpoint),裝置名稱,以及 -a
或是 -A
等選項。
加上 -f
可以強制卸載,加上 -v
則是會顯示詳細資訊。 要注意的是一般來說用 -f
並不是個好主意,強制卸載檔案系統有可能會造成電腦當機,
或者損壞檔案系統內的資料。
-a
和 -A
是用來卸載所有已掛載的檔案系統,另外還可以用 -t
來指定要卸載的是哪些種類的檔案系統。 要注意的是 -A
並不會試圖卸載根檔案系統。
FreeBSD 是一個多工的作業系統,也就是說在同一時間內可以跑超過一個程式。 每一個正在花時間跑的程式就叫做 程序 (process)。 您下的每個指令都至少會開啟一個新的程序, 而有些系統程序是一直在跑以維持系統正常運作的。
每一個程序都有一個不重覆的數字叫做 process ID ,或稱為 PID ,而且就像檔案一樣,每一個程序也有擁有者及群組。 擁有者及群組的資訊是用來決定什麼檔案或裝置是這個程序可以開啟的 (前面有提到過檔案權限)。 大部份的程序都有父程序。 父程序是開啟這個程序的程序,例如:您對 shell 輸入指令,shell 本身就是一個程序,而您執行的指令也是程序。 每一個您用這種方式跑的程序的父程序都是 shell。 有一個特別的程序叫做 init(8) 是個例外。init 永遠是第一個程序,所以他的 PID 一直都會是 1。 在 FreeBSD 開機的時候 init 會自動地被 kernel 開啟。
要看系統執行中的程序,有兩個相當有用的指令可用: ps(1) 以及 top(1)。ps 指令是用來列出正在執行之程序,而且可以秀它們的 PID、用了多少記憶體、執行的指令名稱及其後之參數是什麼等等。 top 指令則是顯示所有正在執行的程序, 並且數秒鐘更新一次。因此您可以互動式的觀看您的電腦正在做什麼。
在預設的情況下,ps 指令只會顯示您所擁有的的程序。 例如:
% ps PID TT STAT TIME COMMAND 298 p0 Ss 0:01.10 tcsh 7078 p0 S 2:40.88 xemacs mdoc.xsl (xemacs-21.1.14) 37393 p0 I 0:03.11 xemacs freebsd.dsl (xemacs-21.1.14) 48630 p0 S 2:50.89 /usr/local/lib/netscape-linux/navigator-linux-4.77.bi 48730 p0 IW 0:00.00 (dns helper) (navigator-linux-) 72210 p0 R+ 0:00.00 ps 390 p1 Is 0:01.14 tcsh 7059 p2 Is+ 1:36.18 /usr/local/bin/mutt -y 6688 p3 IWs 0:00.00 tcsh 10735 p4 IWs 0:00.00 tcsh 20256 p5 IWs 0:00.00 tcsh 262 v0 IWs 0:00.00 -tcsh (tcsh) 270 v0 IW+ 0:00.00 /bin/sh /usr/X11R6/bin/startx -- -bpp 16 280 v0 IW+ 0:00.00 xinit /home/nik/.xinitrc -- -bpp 16 284 v0 IW 0:00.00 /bin/sh /home/nik/.xinitrc 285 v0 S 0:38.45 /usr/X11R6/bin/sawfish
在這個範例裡可以看到 ps(1) 的輸出分成好幾個欄位。 PID 就是前面有提到的 process ID。 PID 的分配是從 1 開始一直到 99999,如果用完的話又會繞回來重頭開始分配 (若該 PID 已經在用了,則 PID 不會重新分配)。 TT 欄位是指這個程式在哪個 tty 上執行,在這裡可以先忽略不管。STAT 是程式的狀態,也可以先不要管。TIME 是這個程式在 CPU 上執行的時間——這通常不是程式總共花的時間, 因為當您開始執行程式後,大部份的程式在 CPU 上執行前會先花上不少時間等待 。 最後,COMMAND 是執行這個程式的命令列。
ps(1)
有幾個不同的選項組合可以用來變更顯示出來的資訊,其中一個最有用的組合是 auxww。 a
可以顯示所有正在跑的程序的指令,不只是您自已的。 u
則是顯示程序的擁有者名稱以及記憶體使用情況。 x
可以把 daemon
程序顯示出來, 而 ww
可讓 ps(1)
顯示出每個程序完整的內容, 而不致因過長而被螢幕截掉了。
top(1) 也有類似的輸出。 一般的情況看像是這樣:
% top last pid: 72257; load averages: 0.13, 0.09, 0.03 up 0+13:38:33 22:39:10 47 processes: 1 running, 46 sleeping CPU states: 12.6% user, 0.0% nice, 7.8% system, 0.0% interrupt, 79.7% idle Mem: 36M Active, 5256K Inact, 13M Wired, 6312K Cache, 15M Buf, 408K Free Swap: 256M Total, 38M Used, 217M Free, 15% Inuse PID USERNAME PRI NICE SIZE RES STATE TIME WCPU CPU COMMAND 72257 nik 28 0 1960K 1044K RUN 0:00 14.86% 1.42% top 7078 nik 2 0 15280K 10960K select 2:54 0.88% 0.88% xemacs-21.1.14 281 nik 2 0 18636K 7112K select 5:36 0.73% 0.73% XF86_SVGA 296 nik 2 0 3240K 1644K select 0:12 0.05% 0.05% xterm 48630 nik 2 0 29816K 9148K select 3:18 0.00% 0.00% navigator-linu 175 root 2 0 924K 252K select 1:41 0.00% 0.00% syslogd 7059 nik 2 0 7260K 4644K poll 1:38 0.00% 0.00% mutt ...
輸出的資訊分成兩個部份。開頭 (前五行) 秀出最近一個程序的 PID、系統平均負載 (系統有多忙錄的測試)、系統的開機時間 (從上次重開算起) 以及現在的時間等。 在開頭裡面的其他數字分別是在講有多少程序正在執行 (在本例中為47)、有多少記憶體及 swap space 被占用了,還有就是系統分別花了多少時間在不同的 CPU 狀態上。
接下來的部份是由好幾個欄位所構成,和 ps(1) 輸出的資訊類似。 就如同前例,您可以看到 PID、使用者名稱、CPU 花費的時間以及正在執行的指令。 top(1) 在預設的情況下還會告訴您程序用掉了多少的記憶體空間。 在這邊會分成兩欄,一個是總用量 (total size),另一個是實際用量 (resident size)——總用量是指這個應用程式需要的記憶體空間, 而實際用量則是指實際上該程式的記憶體使用量。 在這個例子裡面您可以看到 Netscape® 要了幾乎到 30 MB 的 RAM,但是只有用到 9 MB。
top(1) 每隔 2
秒鐘會自動更新顯示內容,可用 s
選項來改變間隔的時間。
當在執行文書編輯器時,您可以很容易地使用它,叫它讀取檔案或是什麼的。 可以這樣做是因為編輯器有提供這些功能, 還有就是編輯器依附在一個終端機 (Terminal) 之上。 有些程式並不是設計成一直在接收使用者的輸入的, 所以它們在一開始執行的時候就從終端機斷開了。 例如說, 網頁伺服器整天都在回應網頁方面的要求,它通常不需要您輸入任何東西。 另外,像是把信從一個站傳送到另一個站的程式,也是這種類型的應用程式。
我們把這種程式稱作 daemon。 Daemon (惡魔、守護神) 是希臘神話中的角色:祂們不屬於善良陣營或邪惡陣營,是守護的小精靈。 大致上來說祂們就是在替人類做一些有用的事情, 跟今天的網頁伺服器或是郵件伺服器很像。 這也就是為何 BSD 的吉祥物,長期以來都是一隻穿著帆布鞋拿著三叉耙的快樂小惡魔的原因。
通常來說 deamon 程式的名字後面都會加一個字母 “d”。 BIND 是 Berkeley Internet Name Domain 的縮寫 (但實際上執行的程式名稱是 named)、Apache 網頁伺服器的程式名稱是 httpd、印表機服務程式是 lpd,依此類推。 這是習慣用法,並沒有硬性規定,例如 Sendmail 主要的寄信 daemon 是叫做 sendmail 而不是 maild,跟您想像的不一樣。
有些時候會需要跟某個 daemon 程序溝通, 這些溝通是透過所謂的信號(signal)來傳遞給該 daemon 程序(或是其他執行中的程序)。 藉由送出信號,您可以和一個 daemon (或是任何一個正在跑的程序) 溝通。 信號有很多種——有些有特定的意義,有些則是會由應用程式來解讀。 應用程式的說明文件會告訴您該程式是如何解讀信號的。 您只能送信號給您擁有的程序,送 kill(1) 或 kill(2) 的信號給別人的程序是不被允許的。 不過 root 不受此限制,他可以送信號給任何人的程序。
FreeBSD 本身在某些情況也會送信號給應用程式。 假設有個應用程式寫得很爛,然後企圖要存取它不該碰的記憶體的時候,FreeBSD 會送一個 Segmentation Violation 信號 (SIGSEGV) 給這個程序。 又如果有一個應用程式用了 alarm(3) 的 system call 要求系統在過一段時間之後叫他一下,時間到了的時候鬧鐘的信號 (SIGALRM) 就會被送出了,其他的依此類推。
SIGTERM and SIGKILL 這兩個信號可以拿來終止程序。 用 SIGTERM 結束程序是比較有禮貌的方式,該程序會捕捉 (catch) 這個信號而了解到您想要把他關掉。 接著下來它會把它自已開的記錄檔通通關掉, 然後在關掉程序之前結束掉手邊的工作。 在某些情況下程序有可能會裝作沒看見 SIGTERM,假如它正在做一些不能中斷的工作的話。
SIGKILL 就沒有辦法被程序忽略了。 這是一個“我管你正在幹嘛,現在就給我停下來”的信號。 如果您送了 SIGKILL 信號給某個程序,FreeBSD 將會把它停掉[4]。
這些是其他您有可能會要用到的信號: SIGHUP,SIGUSR1,以及 SIGUSR2。 這些是通用的信號,當送出時不同的應用程式會有不同的反應。
假設您更動了您的網頁伺服器的設定檔—— 您想要叫網頁伺服器去重新讀取設定值。 您可以關閉後再重新啟動 httpd,但是這麼做會造成網頁伺服器暫停服務一段時間, 這樣子可能不太好。 大部份的 daemon 都寫成會去回應 SIGHUP。 當收到這個信號之後,它們會去重新讀取自已的設定檔。 因此您可以用送 SIGHUP 信號來取代關掉重開。 又因為沒有標準在規範如何回應這些信號,不同的 daemon 可能會有不同的行為,所以有疑問的話請先確認並翻閱 deamon 的說明文件。
信號是由 kill(1) 指令送出的,如範例所示:
送信號給程序
這個範例將會示範如何送一個信號給 inetd(8)。 inetd 的設定檔是 /etc/inetd.conf,而 inetd 會在收到 SIGHUP 的時候重新讀取這個設定檔。
找出您想要送信號的那個程序的 ID。 您會用到 ps(1) 以及 grep(1) 這兩個指令。
grep(1)
是用來在輸出中搜尋, 找出您指定的字串。 這個指令是由一般使用者執行,而 inetd(8) 是由 root 執行,所以在使用 ps(1) 時需要加上
ax
選項。
% ps -ax | grep inetd 198 ?? IWs 0:00.00 inetd -wW
因此可知 inetd(8) 的 PID 為 198。 在某些情況下 grep inetd 這個指令本身也會出現在輸出裡。 這是因為 ps(1) 乃是找所有執行中的程序的方式造成的。
用 kill(1) 來送信號。 又因為 inetd(8) 是由 root 執行的,您必須用 su(1) 切換成 root先。
% su Password: # /bin/kill -s HUP 198
一般情況對大多數 UNIX 指令來講,當 kill(1) 執行成功時並不會輸出任何訊息。 假設您送一個信號給某個不是您所擁有的程序, 那麼您就會吃到這個錯誤訊息: “kill: PID: Operation not permitted”。 而如果您打錯 PID 的話,那就會把信號送給錯誤的程序。 這樣可能會很糟, 不過如果您夠幸運的話,可能剛好就只是把信號送給一個非使用中的 PID,那您就只會看到 “kill: PID: No such process” 而已。
為什麼用 /bin/kill?: 很多 shell 有提供內建的 kill 指令。 也就是說這種 shell 會直接送信號,而不是執行 /bin/kill。 這樣是蠻方便的沒錯啦,但是不同的 shell 會有不同的語法來指定信號的名稱等。 與其嘗試去把它們通通學會,不如就單純的直接用 /bin/kill ... 吧。
要送其他的信號的話也是非常類似,就視需要把指令中的 TERM 或 KILL 替換掉即可。
在 FreeBSD 中,很多日常的工作是在一個叫做 shell 的文字介面中完成的。 Shell 的主要工作就是從輸入中收到命令並執行它們。 許多 shell 也有內建一些有助於日常工作的指令, 像是檔案管理、檔案比對、命令列編輯、指令巨集以及環境變數等。 FreeBSD 有內附了幾個 shell,像是 sh, Bourne Shell,以及 tcsh,改良版的 C-shell。 還有許多其他的 shell 可以從 FreeBSD Ports Collection 中取得,像是 zsh 以及 bash 等。
您用哪個 shell 呢? 其實每個人的喜好都不一樣。 如果您是一個 C 程式設計師,那對於使用像是 tcsh 這種 C-like 的 shell 可能會感到相當愉快。 如果你是從 Linux 跳過來的,或者您是一個 UNIX 新手,那您也許會想要用 bash 來當作文字介面。 每一個 shell 都有自已獨特之處,至於這些特點能不能配合您的工作環境? 那就是您選擇 shell 的重點了。
檔名自動補齊就是常見的 shell 功能。 首先輸入指令或檔案的前幾個字母,這時通常您只需要按下 Tab 鍵,接下來 shell 就會自動把指令或是檔案名稱剩餘的部份補齊。 假設您有兩個檔案分別叫作 foobar 及 foo.bar。 現在要刪掉 foo.bar,那麼可以輸入: rm fo[Tab].[Tab]
Shell 會印出這個: rm foo[嗶].bar。
[嗶] 是 console 的響鈴,這嗶的一聲是 shell 在告訴我說它沒有辦法完全自動補齊檔名,因為有不只一個檔名符合條件。 foobar 和 foo.bar 都是 fo 開頭的檔名,不過它至少可以補齊到 foo。 如果您接著輸入 . 然後再按 Tab 一次,那 shell 就能夠替您把剩下的檔名填滿了。
Shell 的另一項特點是使用了環境變數。 環境變數是以變數與鍵值(variable/key)的對應關係儲存於 shell 的環境空間中,任何由 shell 所產生的程序都可以讀取此空間, 因此這個空間儲存了許多程序的設定組態。 在此附上 一份常見環境變數與其涵義的列表:
變數 | 詳細說明 |
---|---|
USER | 目前登入的使用者名稱。 |
PATH | 以冒號(:)隔開的目錄列表,用以搜尋執行檔的路徑。 |
DISPLAY | 若存在這個環境變數,則代表 X11 連結顯示器的網路名稱。 |
SHELL | 目前使用的 shell。 |
TERM | 使用者終端機的名稱,能藉由此變數判斷終端機的能力。 |
TERMCAP | Database entry of the terminal escape codes to perform various terminal functions. |
OSTYPE | 作業系統的種類,如:FreeBSD。 |
MACHTYPE | 目前系統所用的 CPU 架構。 |
EDITOR | 使用者偏好的文字編輯器。 |
PAGER | 使用者偏好的文字分頁器(text pager)。 |
MANPATH | 以冒號(:)隔開的目錄列表,用以搜尋 manual pages 的路徑。 |
在不同的 shell 底下設定環境變數的方式也有所不同。 舉例來說,在 C-Style 的 shell 底下,像是 tcsh 和 csh,你必須使用 setenv 來設定環境變數。 但在 Bourne shells 底下,像是 sh 和 bash,你則必須使用 export 來設定你所使用的環境變數。 再舉個例子來說,若要設定或是修改 EDITOR 這個環境變數,在 csh 或 tcsh 下設定 EDITOR 這個環境變數為 /usr/local/bin/emacs 的指令是:
% setenv EDITOR /usr/local/bin/emacs
在 Bourne shells 下則是:
% export EDITOR="/usr/local/bin/emacs"
大多數的 shell 都支援使用者在命令列中將 $ 字元放在變數之前,以取得環境變數的值。 舉例來說,echo $TERM 會 顯示出 $TERM 的設定值,這是因為 shell 取得了 $TERM 的設定值, 並將其傳給 echo 顯示出來。
Shell 中有某些特別的字元是來表示特殊的資料,我們將其稱作 meta-characters。 其中最常見的是 * 字元,他代表了檔名中的任意字元。 這些特殊字元可以用在檔名展開(filename globbing)上,舉例來說,輸入 echo * 會和輸入 ls 得到幾乎相同的結果,這是因為 shell 會將所有符合 * 字元的檔案傳到命令列上,再由 echo 顯示出來。
為了避免 shell 轉譯這些特殊字元,我們可以在這些特殊字元前放一個反斜線 (\) 字元使他們跳脫(escape) shell 的轉譯。舉例來說, echo $TERM 會印出你目前設定的終端機格式, echo \$TERM 則會直接印出 $TERM 這幾個字。
變更 shell 最簡單的方法就是透過 chsh 命令。 執行 chsh 將會呼叫環境變數中 EDITOR 指定的文字編輯器。 如果沒有設定,則預設是 vi。 請依照需求去修改 “Shell:” 的值。
你也可以透過 chsh 的參數 -s
,
這可以直接設定你的 shell 而不需要透過任何文字編輯器。 例如, 假設想把所用的
shell 改為 bash, 可以透過下列的方式:
% chsh -s /usr/local/bin/bash
注: 你所使用的 shell 必須 列於 /etc/shells 裡頭。 如果是由 Ports Collection 來裝 shell, 那這個步驟已經完成了。 但若是手動安裝了一個 shell, 那麼就必須為新安裝的 shell 進行設定。
舉例來說,若手動安裝了 bash 並將它置於 /usr/local/bin 底下,你還得:
# echo "/usr/local/bin/bash" >> /etc/shells然後再重新執行 chsh。
在 FreeBSD 中有許多設定必須透過編輯文字檔完成。 因此,若能熟悉文字編輯器是再好不過的。 FreeBSD 本身(指 base system)就附有幾種文字編輯器, 此外,你也可以透過 Ports Collection 來安裝其他的文字編輯器。
最簡單易學的文字編輯器叫做 ee, 代表了其全名 easy editor。 要開始使用 ee, 必須在命令列上輸入 ee filename, 這邊的 filename 代表你想要編輯的檔案名稱。 舉例來說,要編輯 /etc/rc.conf,就要輸入 ee /etc/rc.conf。 而在 ee 的操作介面下, 所有編輯器的功能與操作都會顯示在螢幕的正上方。 其中的插入符號(^)代表鍵盤上的 Ctrl 鍵,所以 ^e 就等同於 Ctrl+e 。 若要結束 ee,請按下 Esc 鍵,接著選擇 leave editor 即可。 此時如果該檔案有修改過,編輯器會提醒你是否要存檔。
此外,FreeBSD 也內附了幾個好用的文字編輯器,像是 base system 的 vi 及 FreeBSD Ports Collection 內的其他編輯器, 比如 Emacs 及 vim (editors/emacs 及 editors/vim)。 這些文字編輯器提供更強的功能,但是也比較難學習。 然而若要從事大量文字編輯工作, 那麼花點時間來學習這些好用的編輯器, 會在日後為您省下更多的時間。
設備(device)主要是指跟硬體比較有關的術語, 包括磁碟、印表機、顯示卡和鍵盤。 FreeBSD 開機過程當中, 大多數硬體通常都能偵測到並顯示出來,也可以查閱 /var/run/dmesg.boot 內有開機的相關訊息。
舉例來說,acd0即為第一台 IDE 光碟機的代號, 而 kbd0 則代表鍵盤。
在 UNIX 作業系統, 大部分的設備都是透過叫做 device nodes(設備節點)的特殊檔案來作存取, 而這些檔案都位於 /dev 目錄。
若要在系統上建立新節點,或者是要編譯某些新硬體的支援軟體, 那麼就要先新增設備節點。
設備檔案系統(或稱為 DEVFS) 是指在整體檔案系統 namespace 提供 kernel 的設備 namespace。 DEVFS 乃是維護這些檔案系統,而不能新增或修改這些設備節點。
細節請參閱 devfs(5) 說明。
若要知道為何 FreeBSD 是採用 elf(5) 格式,必先瞭解當前 UNIX 系統中三種“影響最為重大”的可執行檔相關背景:
最古老、“經典” 的 UNIX object 檔格式。 It uses a short and compact header with a magic number at the beginning that is often used to characterize the format (see a.out(5) for more details). It contains three loaded segments: .text, .data, and .bss plus a symbol table and a string table.
COFF
The SVR3 object format. The header now comprises a section table, so you can have more than just .text, .data, and .bss sections.
The successor to COFF, featuring multiple sections and 32-bit or 64-bit possible values. One major drawback: ELF was also designed with the assumption that there would be only one ABI per system architecture. That assumption is actually quite incorrect, and not even in the commercial SYSV world (which has at least three ABIs: SVR4, Solaris, SCO) does it hold true.
FreeBSD tries to work around this problem somewhat by providing a utility for branding a known ELF executable with information about the ABI it is compliant with. See the manual page for brandelf(1) for more information.
FreeBSD comes from the “classic” camp and used the a.out(5) format, a technology tried and proven through many generations of BSD releases, until the beginning of the 3.X branch. Though it was possible to build and run native ELF binaries (and kernels) on a FreeBSD system for some time before that, FreeBSD initially resisted the “push” to switch to ELF as the default format. Why? Well, when the Linux camp made their painful transition to ELF, it was not so much to flee the a.out executable format as it was their inflexible jump-table based shared library mechanism, which made the construction of shared libraries very difficult for vendors and developers alike. Since the ELF tools available offered a solution to the shared library problem and were generally seen as “the way forward” anyway, the migration cost was accepted as necessary and the transition made. FreeBSD's shared library mechanism is based more closely on Sun's SunOS™ style shared library mechanism and, as such, is very easy to use.
So, why are there so many different formats?
Back in the dim, dark past, there was simple hardware. This simple hardware supported a simple, small system. a.out was completely adequate for the job of representing binaries on this simple system (a PDP-11). As people ported UNIX from this simple system, they retained the a.out format because it was sufficient for the early ports of UNIX to architectures like the Motorola 68k, VAXen, etc.
Then some bright hardware engineer decided that if he could force software to do some sleazy tricks, then he would be able to shave a few gates off the design and allow his CPU core to run faster. While it was made to work with this new kind of hardware (known these days as RISC), a.out was ill-suited for this hardware, so many formats were developed to get to a better performance from this hardware than the limited, simple a.out format could offer. Things like COFF, ECOFF, and a few obscure others were invented and their limitations explored before things seemed to settle on ELF.
In addition, program sizes were getting huge and disks (and physical memory) were still relatively small so the concept of a shared library was born. The VM system also became more sophisticated. While each one of these advancements was done using the a.out format, its usefulness was stretched more and more with each new feature. In addition, people wanted to dynamically load things at run time, or to junk parts of their program after the init code had run to save in core memory and swap space. Languages became more sophisticated and people wanted code called before main automatically. Lots of hacks were done to the a.out format to allow all of these things to happen, and they basically worked for a time. In time, a.out was not up to handling all these problems without an ever increasing overhead in code and complexity. While ELF solved many of these problems, it would be painful to switch from the system that basically worked. So ELF had to wait until it was more painful to remain with a.out than it was to migrate to ELF.
However, as time passed, the build tools that FreeBSD derived their build tools from (the assembler and loader especially) evolved in two parallel trees. The FreeBSD tree added shared libraries and fixed some bugs. The GNU folks that originally wrote these programs rewrote them and added simpler support for building cross compilers, plugging in different formats at will, and so on. Since many people wanted to build cross compilers targeting FreeBSD, they were out of luck since the older sources that FreeBSD had for as and ld were not up to the task. The new GNU tools chain (binutils) does support cross compiling, ELF, shared libraries, C++ extensions, etc. In addition, many vendors are releasing ELF binaries, and it is a good thing for FreeBSD to run them.
ELF is more expressive than a.out and allows more extensibility in the base system. The ELF tools are better maintained, and offer cross compilation support, which is important to many people. ELF may be a little slower than a.out, but trying to measure it can be difficult. There are also numerous details that are different between the two in how they map pages, handle init code, etc. None of these are very important, but they are differences. In time support for a.out will be moved out of the GENERIC kernel, and eventually removed from the kernel once the need to run legacy a.out programs is past.
在使用 FreeBSD 時,最詳細的使用說明莫過於 man 線上說明。 幾乎各程式都會有附上簡短說明,以介紹該程式的基本功能跟相關參數用法。 可以透過 man 指令來閱讀這些說明,而 man 指令的使用相當簡單易懂:
% man command
command 處就是想要知道的指令。 舉個例子, 若要知道 ls 的詳細用法,就可以打:
% man ls
而各線上說明因為性質不同,而區分為下列的數字章節:
使用者指令。
系統呼叫(System call) 及錯誤代號。
C 語言函式庫。
各設備的驅動程式。
檔案格式。
小遊戲程式及其他娛樂程式。
雜項工具、其他資訊。
系統維護、操作的指令。
Kernel 開發用途。
有些情況會有同樣主題但不同章節。 舉個例子,系統內會有 chmod 指令,但也有 chmod()
系統呼叫。 在這種情況,man
應該要指定所要查詢的章節:
% man 1 chmod
如此一來就會查 chmod 指令部分。 通常在寫文件時會把有參考到某特定章節的 man 號碼也一併寫在括號內。 所以 chmod(1) 就是指 chmod 指令,而 chmod(2) 則是指系統呼叫的部分。
如果您已經知道命令的名稱,只是不知道要怎樣使用的話,那就比較好辦。
但若不知道要用哪個指令時,該怎麼辦呢? 這個時候,就可以利用 man 的搜尋關鍵字功能,
以在各說明的介紹部分搜尋相關字眼。,它的選項是 -k
:
% man -k mail
如此一來會看到一堆有 “mail” 關鍵字的說明, 事實上該功能與 apropos 指令是一樣的。
而有時你會看到像是 /usr/bin 有許多看起來頗炫的指令,但不知其用途? 只要簡單輸入:
% cd /usr/bin % man -f *
或者是
% cd /usr/bin % whatis *
這兩者的指令效果是一樣的。
FreeBSD 有許多程式跟工具來自於自由軟體基金會(FSF)。 除了 man 線上說明之外,這些程式提供了另外一種更具有彈性的 hypertext 格式文件, 叫做 info。 可以用 info 指令來閱讀,或者若有裝 emacs 亦可透過 emacs 的 info 模式閱讀。
要用 info(1) 指令,只需打:
% info
按 h 會有簡單說明,而若要快速查閱相關操作方式, 則請按 ?。
儘管 FreeBSD 在 base system 已加了很多系統工具。 然而,在實務運用上,您可能仍需要安裝額外的軟體。 FreeBSD 提供了 2 種安裝應用程式的套件管理系統︰Ports Collection (以 soucre 來編譯、安裝) 和 package(預先編譯好的 binary 檔)。 上述的方式,無論要用哪一種,都可以由像是 CDROM 等或網路上來安裝想裝的最新版軟體。
讀完這章,您將了解:
如何以 packages 來安裝軟體。
如何以 ports 來安裝軟體。
已安裝的 packages 或 ports 要如何移除。
如何更改(override) ports collection 所使用的預設值。
如何在套件管理系統中,找出想裝的軟體。
如何升級已安裝的軟體。
通常要在 UNIX 系統上安裝軟體時,有幾個步驟要作:
先下載該軟體壓縮檔(tarball),有可能是原始碼或是 binary 執行檔。
解開該壓縮檔。(通常是以 compress(1) , gzip(1) 或 bzip2(1) 壓縮的)
閱讀相關文件檔,以了解如何安裝。(通常檔名是 INSTALL 或 README ,或在 doc/ 目錄下的一些文件)
如果所下載的是原始碼,可能要先修改 Makefile 或是執行 ./configure 之類的 script ,接著再編譯該軟體。
最後測試再測試與安裝。
如果一切順利的話,就這麼簡單。 如果在安裝非專門設計(移植)給 FreeBSD 的軟體時出問題, 那可能需要修改一下它的程式碼,才能正常使用。
當然,我們可以在 FreeBSD 上使用上述的傳統方式來安裝軟體, 但是,我們還有更簡單的選擇。 FreeBSD 提供了兩種省事的軟體管理機制: packages 和 ports。 就在寫這篇文章的時候, 已經有超過 24,000 個 port 軟體可以使用。
所謂的 FreeBSD package 就是別人把該應用程式編譯、打包完畢。 該 package 會包括該應用程式的所有執行檔、設定檔、文件等。 而下載到硬碟上的 package 都可透過 FreeBSD 套件管理指令來進行管理,比如: pkg_add(1)、pkg_delete(1)、pkg_info(1) 等指令。 所以,只需簡單打個指令就可輕鬆安裝新的應用程式了。
而 FreeBSD port 則是用一些檔案,來自動處理應用程式的安裝流程。
請記住:如果打算自己來編譯的話,需要執行很多操作步驟 (下載、解壓、patch、編譯、安裝)。 而 port 呢,則是涵蓋所有需要完成這些工作的必備步驟, 所以只需打一些簡單的指令,那些原始程式碼就會自動下載、解壓、 patch、編譯,直至安裝完畢。
事實上,ports 機制還可以用來產生 packages,以便他人可以用 pkg_add 來安裝, 或是稍後會介紹到的其他套件管理指令。
而 packages 以及 ports 它們都是一樣會認 dependencies(軟體相依關係)。 假設:您想安裝某程式,但它有相依另一個已裝的函式庫(library), 而在 FreeBSD 的 port 以及 package 都有這程式以及該函式庫了。 所以無論是用 pkg_add 指令或者 port 方式來裝該程式, 這兩者(package、port)都會先檢查有沒有裝該函式庫, 若沒有就會自動先裝該函式庫了。
這兩種技術都很相似,您可能會好奇為什麼 FreeBSD 會弄出這兩種技術來呢。 其實,packages 和 ports 都有它們各自的長處, 使用哪一種完全取決於您自己的喜好。
Package 好處在於:
同樣是壓縮過的 package 與原始碼 tarball 相比, 前者通常會比後者小多了。
package 並不需再進行編譯。 對大型應用程式如 Mozilla、 KDE、 GNOME 而言,這點顯得相當重要, 尤其是使用速度緩慢的機器。
不需要瞭解如何在 FreeBSD 上編譯軟體的相關細節過程, 即可使用 package。
Ports 好處在於:
為了讓 package 能在大多數系統上順利執行, 通常在編譯時會使用比較保守的選項。 然而, 透過 port 安裝的話,則可針對特定環境(比如: Pentium 4 或 Athlon CPU) 來調整選項,以符合需求。
有些程式在編譯時,會有一些選項可以選擇。 舉例來說,Apache 可以設定一大堆的編譯選項。 若透過 port 來安裝的話, 會比較彈性多了,可以自己選而不必使用預設的編譯選項。
在某些情況,同樣的程式但不同編譯選項,則會分成不同的 package。 比如: Ghostscript 會因為是否要裝 X11 server, 而劃分為 ghostscript 以及 ghostscript-nox11 這兩種 package。 如此的調整對 package 算是可成立的, 但若該程式有一個以上或兩種不同的編譯選項時, 這對 package 就沒辦法了。
某些軟體的禁止以 binary 方式散佈, 或者說必須以原始碼方式散佈才可。
有些人並不信任 binary 套件機制,因為他們覺得至少有原始碼, (理論上)就可以自己檢閱,並尋找是否有潛在的問題。
若要對軟體加上自己改過的 patch, 那麼就必須要先有原始碼才能去上相關 patch 修正。
有些人喜歡有原始碼在手邊, 所以他們無聊時就可以自己閱讀、鑽研、借用 (當然要符合原始碼本身的授權規定)原始碼等等。
若想注意 port 更新動態的話,可以訂閱 FreeBSD ports 郵遞論壇 以及 FreeBSD ports bugs 郵遞論壇。
警告在安裝軟體前,最好先看 http://vuxml.freebsd.org/ 內是否有該軟體的安全漏洞通報。
此外,也可以裝 ports-mgmt/portaudit,它會自動檢查所有已裝的 的軟體是否有已知的安全漏洞,另外,它還會在裝軟體的編譯過程前先行檢查。 也可以在裝了某些軟體之後,用 portaudit -F -a 來作全面強制安檢。
本章接下來將介紹如何在 FreeBSD 使用 package 及 port 來安裝、管理 third-party 軟體。
在安裝任何軟體之前,你必須先了解你想要什麼的軟體, 以及該軟體叫做什麼名稱。
FreeBSD 上可裝的軟體清單不斷在增加中, 不過,我們很慶幸有幾種方式可以來找你想裝的軟體:
FreeBSD 網站上有更新頻繁的軟體清單,在 http://www.FreeBSD.org/ports/ 。 各 ports 皆依其性質而分門別類,既可以透過軟體名稱來搜尋 (如果知道名字的話), 也可以在分類中列出所有可用的軟體。
由 Dan Langille 所維護 FreshPorts 網站,網址在 http://www.FreshPorts.org/。 FreshPorts 會不斷追蹤 port tree 中的各種變化, 也可以針對某些 port 以列入 “追蹤名單(watch)” 內, 當有任何軟體升級時,就會發 email 提醒。
如果不知道想裝的軟體名稱,那麼可透過像是 FreshMeat (http://www.freshmeat.net/) 這類的網站來找, 如果找到了,可以回 FreeBSD 網站去看一下這個應用程式是否已經被 port 進去了。
若知道該 port 的正確名稱,但不知道放在哪個分類目錄,可以用 whereis(1) 指令來找出來。 只要打 whereis file 即可,而 file 的地方請改為想裝的軟體名稱。 若找到該軟體,就會告訴你,就像下面這樣:
# whereis lsof lsof: /usr/ports/sysutils/lsof
如此一來,就會知道 lsof (系統工具程式) 是放在 /usr/ports/sysutils/lsof 目錄。
此外,也可以用 echo(1) 輕鬆找出該 port 是位於 porte tree 的何處。 舉例來說:
# echo /usr/ports/*/*lsof* /usr/ports/sysutils/lsof
請注意,這也會顯示 /usr/ports/distfiles 目錄內有符合檔名的檔案。
還有另一招,就是用 Ports Collection 本身內建的搜尋機制。 要用的時候,請先切換到 /usr/ports 目錄。 然後,打 make search name=程式名稱 ,其中 程式名稱 請改為想找的軟體名稱。 舉例來說,若要找的是 lsof 的話,那麼就是:
# cd /usr/ports # make search name=lsof Port: lsof-4.56.4 Path: /usr/ports/sysutils/lsof Info: Lists information about open files (similar to fstat(1)) Maint: obrien@FreeBSD.org Index: sysutils B-deps: R-deps:
這些搜尋結果中,要注意的是 “Path:” 這行, 因為這行會告訴你可以在哪邊找到該 port。 而搜尋結果的其他部分,因為與 port 安裝較無關係,所以這裡就不講了。
若要更徹底的搜尋,那麼可以改用 make search key=string,其中 string 請改為想搜尋的關鍵字。 如此一來會找 port 名稱、軟體簡介(comments)、軟體敘述檔(descriptions) 以及軟體相依關係(dependencies)裡面是否有符合關鍵字, 此外,不清楚軟體名稱的話,也可以拿來找有符合關鍵字主題的 port。
剛講的這兩種方式,搜尋字眼都是 case-insensitive(不必區分大小寫)。 比如,搜尋 “LSOF” 與 “lsof” 兩者結果都會是一樣的。
可以用 pkg_add(1) 從本機上或者透過網路來安裝任一 FreeBSD package。
範例 4-1. 手動下載、安裝 Package
# ftp -a ftp2.FreeBSD.org Connected to ftp2.FreeBSD.org. 220 ftp2.FreeBSD.org FTP server (Version 6.00LS) ready. 331 Guest login ok, send your email address as password. 230- 230- This machine is in Vienna, VA, USA, hosted by Verio. 230- Questions? E-mail freebsd@vienna.verio.net. 230- 230- 230 Guest login ok, access restrictions apply. Remote system type is UNIX. Using binary mode to transfer files. ftp> cd /pub/FreeBSD/ports/packages/sysutils/ 250 CWD command successful. ftp> get lsof-4.56.4.tgz local: lsof-4.56.4.tgz remote: lsof-4.56.4.tgz 200 PORT command successful. 150 Opening BINARY mode data connection for 'lsof-4.56.4.tgz' (92375 bytes). 100% |**************************************************| 92375 00:00 ETA 226 Transfer complete. 92375 bytes received in 5.60 seconds (16.11 KB/s) ftp> exit # pkg_add lsof-4.56.4.tgz
若手邊沒有 package 來源(像是 FreeBSD 光碟)的話, 那麼建議使用 pkg_add(1) 時,加上
-r
選項來更輕鬆安裝
package。如此一來,就會自動判斷正確的 package 格式、 以及所搭配的作業系統 release
版本, 然後會自己從 FTP 站抓回、安裝相對應的 package。
# pkg_add -r lsof
上面這例子會自動下載正確的 package 並安裝。 若想改換用其他 FreeBSD Packages Mirror 站,那麼就要設定 PACKAGESITE 環境變數, 如此一來才會取代預設設定。 pkg_add(1) 會用 fetch(3) 指令來下載檔案,而 fetch(3) 本身則會使用相關環境變數的設定, 像是: FTP_PASSIVE_MODE、FTP_PROXY 以及 FTP_PASSWORD。 如果你網路環境處於 firewall 後面,或者需要用 FTP/HTTP proxy 的話,那麼就需要設定。 設定細節請參閱 fetch(3)。 請注意:上面所說的例子是寫 lsof 而非 lsof-4.56.4。 當使用遠端抓取功能時,該 package 版號就不必加上去了。 pkg_add(1) 會自動下載該軟體的最新版回來安裝。
注: 若用的是 FreeBSD-CURRENT 或 FreeBSD-STABLE 的話,pkg_add(1) 會自動下載該軟體最新版回來。 若用的是屬於 -RELEASE 版本,那麼他會抓回屬於該 release 上所編譯的 package。 也可以更改 PACKAGESITE 環境變數,以改變下載方式。 舉例來說,如果是 FreeBSD 5.4-RELEASE 的話,那麼 pkg_add(1) 預設會從 ftp://ftp.freebsd.org/pub/FreeBSD/ports/i386/packages-5.4-release/Latest/ 來抓 package。若要強制 pkg_add(1) 下載 FreeBSD 5-STABLE 所用的 package,那麼就把 PACKAGESITE 改設為 ftp://ftp.freebsd.org/pub/FreeBSD/ports/i386/packages-5-stable/Latest/ 即可。
Package 檔有 .tgz 以及 .tbz 兩種格式。 這些都可透過 ftp://ftp.FreeBSD.org/pub/FreeBSD/ports/packages/ ,或者 FreeBSD 光碟內取得。 每張 4 片裝的 FreeBSD 光碟(以及 PowerPak 包等等)內都會在 /packages 目錄內放 package。 裡面的目錄架構類似 /usr/ports 的目錄架構。 每個分類都各自有專屬目錄,且每份 package 都會放在 All 目錄內。
package 目錄架構與 port 的都一致;它們共同構成整個 package/port 系統機制。
pkg_info(1) 可用來列出所有已安裝的軟體、軟體簡介。
# pkg_info cvsup-16.1 A general network file distribution system optimized for CV docbook-1.2 Meta-port for the different versions of the DocBook DTD ...
pkg_version(1) 則是列出所有已安裝的軟體版本。 它會顯示已裝版本以及目前機器上 port tree 的版本差異。
# pkg_version cvsup = docbook = ...
第二欄的符號表示:已安裝的軟體版本與目前機器上 port tree 的版本差異。
若要移除已裝的軟體,那麼請多利用 pkg_delete(1) 工具,比如:
# pkg_delete xchat-1.7.1
請注意 pkg_delete(1) 須要放上完整的軟體名稱以及版本, 若只輸入 xchat 就不行,必須換成 xchat-1.7.1 才可。 然而,我們可以用 pkg_version(1) 輕鬆找出已裝的所有軟體版本,或者以 wildcard (萬用字元) 的方式:
# pkg_delete xchat\*
以上面例子而言,將會移除所有以 xchat 開頭的軟體。
下面我們會介紹如何使用 Ports Collection 來安裝、移除軟體的基本用法。 至於其他可用的 make 詳細用法與環境設定,可參閱 ports(7)。
在安裝任一 ports 之前,必須先裝上 Ports Collection —— 它主要是由 /usr/ports 內一堆 Makefiles, patches 以及一些軟體簡介檔所組成的。
在裝 FreeBSD 時,若忘了在 sysinstall 內勾選要裝 Ports Collection 的話, 沒關係,可以照下列方式來安裝 ports collection:
CVSup 方式
使用 CVSup 是安裝、更新 Ports Collection 的快速方法之一。 若想更瞭解 CVSup 用法的話,請參閱 使用 CVSup。
注: csup 是以 C 語言對 CVSup 軟體的重寫,在 FreeBSD 6.2 及之後版本即有附在系統內。 可以直接用系統所附的 csup 即可跳過步驟一的動作, 並將本文相關提到 cvsup 之處, 都改為 csup 即可。 此外, FreeBSD 6.2 之前的版本,則可裝 net/csup 或者 package 來使用 csup。
第一次跑 CVSup 之前,請先確認 /usr/ports 是乾淨的! 若你已經裝了 Ports Collection ,但又自行加上其他 patch 檔,那麼 CVSup 並不會刪除你自行加上的 patch 檔,這樣可能會導致要安裝某些軟體時, 發生 patch 失敗或編譯失敗。
安裝 net/cvsup-without-gui package:
# pkg_add -r cvsup-without-gui
細節用法請參閱 安裝 CVSup(µÚ A.5.2 節)。
執行 cvsup:
# cvsup -L 2 -h cvsup.tw.FreeBSD.org /usr/share/examples/cvsup/ports-supfile
請把 cvsup.tw.FreeBSD.org 請改成離你比較近 (快)的 CVSup 主機。 這部分可以參閱完整的 CVSup mirror 站列表(µÚ A.5.7 節)。
注: 若想改用自己設的 ports-supfile,比如說, 不想每次都得打指令來指定所使用的 CVSup 主機。
這種情況下,請以 root 權限把 /usr/share/examples/cvsup/ports-supfile 複製到其他位置,比如 /root 或者自己帳號的家目錄。
修改新的 ports-supfile 檔。
把 CHANGE_THIS.FreeBSD.org 改為離你比較近(快)的 CVSup 主機。 這部分可以參閱完整的 CVSup Mirrors (µÚ A.5.7 節) 站列表
然後就開始以類似下列指令跑 cvsup:
# cvsup -L 2 /root/ports-supfile
執行 cvsup(1) 之後,就會開始更新 Ports Collection。 不過這動作只是『更新』並不是『升級』,不會把已裝的軟體重新編譯、升級。
Portsnap 方式
portsnap(8) 也是更新 Ports Collection 的方式之一。 FreeBSD 6.0 起開始內建 Portsnap 機制,而較舊的系統,則可透過 ports-mgmt/portsnap port 來安裝:
# pkg_add -r portsnap
Portsnap 細節功能,請參閱 Portsnap 使用篇。
若 /usr/ports 目錄不存在的話, 就建立一下吧:
# mkdir /usr/ports
接下來,下載壓縮的 Ports Collection 定期更新檔到 /var/db/portsnap 目錄。 完成下載後,要斷線與否都可以。
# portsnap fetch
若是第一次跑 Portsnap 的話, 則需要先解壓到 /usr/ports:
# portsnap extract
若已有 /usr/ports 而且只是想更新而已, 那麼就照下面作:
# portsnap update
Sysinstall 方式
這方式要用 sysinstall 透過安裝來源來裝 Ports Collection。 請注意:所安裝的 Ports Collection 版本只是該 release 發佈時的版本而已,而非最新。 若能上網(Internet)的話,請使用上述方式之一會比較好。
以 root 權限執行 sysinstall (在 FreeBSD 5.2 之前版本則是 /stand/sysinstall) ,方式如下:
# sysinstall
請以方向鍵移動選擇項目,選擇
,然後按 Enter 鍵。選擇
,然後按 Enter 鍵。選擇
,然後按 Space 鍵。選
,然後按 Enter 鍵。選擇要用的安裝來源,比如:CDROM(光碟)、FTP 等方式。
選
,然後按 Enter 鍵。按下 X 鍵就可離開 sysinstall 程式。
提到 Ports Collection,首先要先說明的是:何謂 “skeleton”。 簡單來講,port skeleton 就是讓軟體如何在 FreeBSD 順利編譯、安裝的最基本檔案組合。 每份 port skeleton 基本上會有:
Makefile 檔。 這個 Makefile 內容有分許多部分, 是用來指定要如何編譯,以及該裝在系統的何處。
distinfo 檔。 編譯該軟體所需下載的檔案、checksum(使用 md5(1) 及 sha256(1) 來檢驗檔案)都會記錄在這檔, 以確保所下載的檔案是正確無誤的。
files 目錄。 這目錄放的是讓軟體正常編譯、 安裝的 patch 檔。 Patches 檔基本上是一些小檔案,並針對特定檔案來做修改, 而且是純文字檔格式, 基本上內容通常會像是 “Remove line 10(刪除第 10 行)” 或 “Change line 26 to this ...(把第 26 行改為...)” 之類的。 這些 Patches 通常也稱為 “diffs” ,因為都是由 diff(1) 程式所產生的。
此外,本目錄也可能會放一些協助編譯該 port 的檔案。
pkg-descr 檔,內容是比較詳細的軟體介紹, 通常會寫得比較多行。
pkg-plist 檔,該 port 會安裝的所有檔案清單。 也是告訴系統在移除該 port 時,需要刪除哪些檔案。
有些 port 還會有其他檔案,像是 pkg-message 檔。 port 系統在一些情況時,會用這些檔案。 如果想知道這些檔案的更多細節用途,以及 port 一般用法,請參閱 FreeBSD Porter's Handbook。
port 內寫的是告訴系統如何編譯 source code 的相關指令, 但並不是真正的 source code。 而 source code 可以從光碟或網路(Internet)來取得, 該軟體開發者可能會把 source code 以各種格式來發佈。 通常是以 tar 以及 gzip 這兩者工具一起壓縮的檔案, 也有可能是以其他工具壓縮,或根本沒壓縮。 而軟體的 source code 無論是以哪一種壓縮檔型態,我們都稱之為 “distfile”。 下面將介紹兩種安裝 FreeBSD port 的方式。
注: 要安裝 port 的話,請務必切為 root 身份。
警告在安裝任何 port 之前,請務必確認有更新 Ports Collection 到最新版, 此外請檢閱 http://vuxml.freebsd.org/ 來檢查所要裝的 port 是否有相關安全漏洞議題需要注意的。
portaudit 會在安裝任何 port 之前, 先自動檢查是否有相關已知的安全漏洞。這個工具在 Ports Collection 內有 (ports-mgmt/portaudit)。 在安裝 port 之前,可以先跑 portaudit -F 指令, 如此一來就會抓最新的資安漏洞資料庫回來核對。 每天的系統定期安檢會自動更新資料庫,並作安全稽核。 詳情請參閱 portaudit(1) 以及 periodic(8) 的線上說明。
Ports Collection 會假設你的網路是可正常連線的。 如果沒有的話,那麼需手動把所需的 distfile 檔複製到 /usr/ports/distfiles 才行。
開始操作之前,要先進入打算安裝的 port 目錄內:
# cd /usr/ports/sysutils/lsof
一旦進入 lsof 目錄後,就可以看到這個 port 的 skeleton 結構。 接下來,就是編譯,也就是 “build” 這個 port。 只需簡單輸入 make 指令,就可輕鬆完成編譯。 完成後,應該可以看到類似下面訊息:
# make >> lsof_4.57D.freebsd.tar.gz doesn't seem to exist in /usr/ports/distfiles/. >> Attempting to fetch from ftp://lsof.itap.purdue.edu/pub/tools/unix/lsof/. ===> Extracting for lsof-4.57 ... [extraction output snipped] ... >> Checksum OK for lsof_4.57D.freebsd.tar.gz. ===> Patching for lsof-4.57 ===> Applying FreeBSD patches for lsof-4.57 ===> Configuring for lsof-4.57 ... [configure output snipped] ... ===> Building for lsof-4.57 ... [compilation output snipped] ... #
請注意:編譯完成後,就會回到提示列(prompt)。接下來就是安裝該 port 了,要裝的話,只需在原本的 make 指令後面再加上一個字即可, 那個字就是 install:
# make install ===> Installing for lsof-4.57 ... [installation output snipped] ... ===> Generating temporary packing list ===> Compressing manual pages for lsof-4.57 ===> Registering installation for lsof-4.57 ===> SECURITY NOTE: This port has installed the following binaries which execute with increased privileges. #
一旦回到提示列(prompt),就可以執行剛裝的程式了。 另外,因為 lsof 這程式執行時會有額外權限, 所以會出現安全警告。在編譯、安裝 port 的時候, 請留意任何出現的警告。
此外,建議刪除編譯用的工作目錄(預設是 work), 這目錄內為在編譯過程中所用到的一些臨時檔案, 這些檔案不只佔硬碟空間,而且也可能會在該 port 升級新版時, 造成不必要的困擾。
# make clean ===> Cleaning for lsof-4.57 #
注: 用 make install clean 就可以一口氣完成剛所說 make、make install、 make clean 這三個步驟了。
注: 有些 shell 會依據 PATH 環境變數的路徑, 把那些路徑的執行檔 cache 起來,來加速搜尋執行檔。 如果你用的是這類的 shell,那麼在裝完 port 後需要打 rehash 指令,才能執行新裝的執行檔,而 rehash 指令可以在 tcsh 之類的 shell 上使用,若是 sh 的話,則是 hash -r。 詳情請參閱你所使用的 shell 相關文件。
有些由所謂 third-party 所發行的 DVD-ROM 產品,像是 FreeBSD Mall 所發行的 FreeBSD Toolkit 會包括 distfiles 檔案, 這些檔案可用來搭配 Ports Collection。 把 DVD-ROM 掛載在 /cdrom。 若使用其他掛載點的話,要記得設定 CD_MOUNTPTS 環境變數為相對應的掛載點。 如此一來,光碟上若有所需的 distfiles 就會自動使用光碟的檔案。
注: 請注意,有少數 port 並不允許透過光碟來發佈檔案。 可能的原因有:需先填註冊單才能下載或散佈檔案,或其他原因。 如果想安裝在光碟上沒附上的 port,就需連上網路才能繼續進行安裝。
ports 系統採用 fetch(1) 來下載檔案, 它有許多可調整的環境變數,包括: FTP_PASSIVE_MODE、FTP_PROXY、 FTP_PASSWORD。 如果是處於有防火牆的環境, 或者需要使用 FTP/HTTP proxy,那麼就需要設定這些變數。 使用細節請參閱 fetch(3) 說明。
若無法隨時一直上網的話,那麼可以利用 make fetch。 只要在 port 的最上層路徑(/usr/ports) 打這指令,那麼所有需要用到的檔案都會下載。 這指令也可以在下層目錄使用,例如: /usr/ports/net。 請注意,若該 port 有相依的 library 或者其他 port 的話, 那麼它並不會跟著一起下載其他所相依的檔案。 若想一次下載所有相依的 port 所有檔案,那麼指令參數請改用 fetch-recursive 而非 fetch。
注: 可以在某類別或最上層路徑打 make 指令來編譯所有的 port,或者以上述的 make fetch 指令來下載所有檔案。 然而,這樣是相當危險,因為有些 port 不能並存。 也有另一種情況,有些 port 可能會以相同檔名, 但是實際上卻是不同內容的檔案。
在某些罕見情況,可能需加上 MASTER_SITES (檔案的原始下載處)之外的下載點,以下載所需的檔案。 可以用下列指令,來更改預設的 MASTER_SITES 下載點:
# cd /usr/ports/directory # make MASTER_SITE_OVERRIDE= \ ftp://ftp.FreeBSD.org/pub/FreeBSD/ports/distfiles/ fetch
上面這例子,是把 MASTER_SITES 改設 ftp.FreeBSD.org/pub/FreeBSD/ports/distfiles/ 為下載點。
注: 有些 port 允許(或要求)您得指定編譯選項, 以啟用、停用該軟體中非必須的功能、安全選項以及其他可自訂的選項。 具有代表性的包括了 www/mozilla、security/gpgme、mail/sylpheed-claws。 若有這類選項時,通常在編譯時會出現相關提示訊息。
有時候,會發現到使用其他目錄作為 port、distfiles 目錄可能相當有用(甚至是必須),可以設定 PORTSDIR 及 PREFIX 環境變數以修改預設的 port 目錄。舉例:
# make PORTSDIR=/usr/home/example/ports install
以上會在 /usr/home/example/ports 內進行編譯, 並把所有檔案安裝到 /usr/local 內。
# make PREFIX=/usr/home/example/local install
則會在 /usr/ports 目錄內編譯, 並把所有檔案安裝到 /usr/home/example/local 內。
當然囉,
# make PORTSDIR=../ports PREFIX=../local install
則會同時包含兩種設定(還有很多變化以致無法在本頁全部都有寫到, 但您應該已經有抓到大概概念了吧)。
此外,這些變數也以作為環境變數來設定。 請依您所使用的 shell 去參閱相關說明,以瞭解如何設定。
有些 port 會使用 imake(X Window 系統的一部份) 無法正常運用 PREFIX 變數, 它們會堅持把檔案都安裝到 /usr/X11R6 目錄。 同樣地,也有一些 Perl port 會忽略 PREFIX 並把檔案安裝到 Perl 目錄架構內。 讓這些 ports respect PREFIX 是相當困難,甚至是不可能的事。
在編譯某些 port 時會出現選單畫面(ncurses-based), 可以用來選擇安裝選項。 通常裝好該 port 之後,便不太會需要重加、 移除、更改一些當初安裝的選項。 但日後若有需要的話, 也有許多方式可以調整這些選項。 其中一種方式便是切到該 port 目錄, 並打 make config 即可再次回到選項畫面去作調整。 另外還可用 make showconfig 以顯示該 port 安裝時所用的選項。 也可以用 make rmconfig 來把所有選項回到初始設定。 這些選項跟其他動作都可參閱 ports(7) 內的詳細說明。
現在您已經知道如何安裝 port,而開始想瞭解如何移除。 比如裝了一個 port 後才意識到裝錯 port 了。 在此,我們將移除前面例子所裝的那個 port (沒仔細注意的話,我們再提醒一下就是 lsof)。 跟移除 package 時相當類似(在 Packages section 有介紹),都是使用 pkg_delete(1) 指令:
# pkg_delete lsof-4.57
首先,用 pkg_version(1) 指令來列出目前 Ports Collection 中提供了那些可升級的 port 版本:
# pkg_version -v
每次更新完 Ports Collection 之後,請務必記得在升級 port 前, 先看看 /usr/ports/UPDATING, 這裡會寫升級方面的各式問題,比如:檔案格式改變、變更設定檔位置、 與舊版不相容的問題等,以及怎麼解決的完整步驟。
若 UPDATING 內容與你看到的其他文件有些不同 、相衝的話, 那麼請以 UPDATING 為準。
portupgrade 可以輕鬆升級已裝的軟體。 該工具可從 ports-mgmt/portupgrade port 安裝, 安裝方式就如同其他 port 一樣,用 make install clean 指令就可以了:
# cd /usr/ports/ports-mgmt/portupgrade # make install clean
首先最好先以 pkgdb -F 來掃瞄已裝的 ports 資料庫是否有誤,並修正有問題的地方。 在每次做升級之前,最好定期做一下 pkgdb -F 動作會較為妥當。
跑 portupgrade -a 的話, portupgrade 會升級系統上所有已裝的過舊 ports。 若用 -i
則在升級每個 port 過程當中,
會要求確認相關動作是否符合所需。
# portupgrade -ai
若只想升級某特定程式而非全部,那麼可以用 portupgrade pkgname 來做指定。 若想要 portupgrade 優先升級某 port 所相依的相關套件,則請用 -R
參數即可。
# portupgrade -R firefox
若要用 package 而非 port 來安裝,則需指定 -P
才可以。
若有指定這選項,則 portupgrade 會搜尋 PKG_PATH 變數所指定的本機目錄, 若找不到則透過網路來下載安裝。
若本機跟網路都沒有可用的 package 的話,則 portupgrade 會使用 port 方式安裝。 若不想如此又變成使用 port
方式安裝,則用 -PP
即可強制避免使用 port 方式安裝。
# portupgrade -PP gnome2
若只想下載 distfiles(或者若指定 -P
的話,則是
package)而不想編譯或安裝檔案,可以使用 -F
。
詳情請參閱
portupgrade(1)
的說明。
Portmanager 也可以用來輕鬆升級已裝的軟體。 該工具可從 ports-mgmt/portmanager port 安裝:
# cd /usr/ports/ports-mgmt/portmanager # make install clean
所有已裝的軟體,都可以輕鬆用類似下列指令來升級:
# portmanager -u
此外,使用參數可以改為 -ui
,如此一來 Portmanager 在升級一些有特殊選項的軟體時
,就會詢問該如何升級。 Portmanager 也可以用來裝新
port。與以往常用的 make install clean 指令不同之處在於:
它會先升級你要裝的 port 所相依的所有 ports,然後才開始編譯、 安裝要裝的
port。
# portmanager x11/gnome2
若要裝的 port 之軟體相依關係有問題時,也可以用 Portmanager 使它們重歸正軌。 而 Portmanager 解決相依問題完畢之後,該 port 也會重新編譯,以因應正確的相依關係。
# portmanager graphics/gimp -f
其餘運用法門,請參閱 portmanager(1) 說明。
因為使用 Ports Collection 遲早可能會用光硬碟空間, 所以在裝完軟體後,記得要以 make clean 指令來清除臨時的 work 目錄。 此外,可以用下列指令來清除整個 Ports Collection 內的臨時目錄:
# portsclean -C
ports 用久了,您可能會在 distfiles 目錄內會累積著許多的原始碼檔案。 可以手動刪除這些檔案, 或者用下列指令來清除所有 port 都不使用的舊檔:
# portsclean -D
或者要清除所有已裝的 port 都不再使用的舊檔:
# portsclean -DD
注: portsclean 這工具乃是 portupgrade 套件的一部分。
不要忘了移除那些已經安裝,但不再需要用到的 ports。 有個 ports-mgmt/pkg_cutleaves port,正是可自動完成這功能的好工具。
通常,安裝完軟體後,我們可以閱讀所附的一些文件,或需要編輯設定檔, 來確保這個軟體能順利運作,或在機器開機的時候啟動(如果是 daemon 的話) 等等。
不同的軟體會有不同的設定步驟。不管怎樣,如果裝好了軟體, 但是不知道下一步怎麼辦的時候, 可以試試看這些小技巧:
善用 pkg_info(1) ,這指令可以顯示:透過套件管理系統 (Packages/Ports)裝了哪些軟體、檔案裝在哪邊。舉例來說,若剛裝了 FooPackage (版本 1.0.0),那麼下面這指令:
# pkg_info -L foopackage-1.0.0 | less
就會顯示這軟體所安裝的檔案清單。 請特別注意在 man/ 目錄內是說明檔、 etc/ 目錄內是設定檔、 doc/ 目錄內是完整文件。
若不確定已裝的套件版本為何,可以用類似下列指令來查:
# pkg_info | grep -i foopackage
以上將會搜尋所有已裝的套件,列出有符合 foopackage 的套件名稱。 請自行依需求,修改 foopackage 為想找的套件名稱。
一旦確認該程式的線上說明有安裝,就可以用 man(1) 來翻閱。 同樣地,若該程式有提供的話,也可以參考設定檔樣本,以及其他文件。
若該程式有官網的話,還可以透過網站來找文件、常見問答集(FAQ)等。 若不知道網址,請用下列指令:
# pkg_info foopackage-1.0.0
若該程式有官網的話,則會有一行 WWW: 開頭的出現,這行會列出該程式的官網網址(URL)。
Port 若須在開機時就會啟動(就像 Internet 主機),通常都會安裝 script 到 /usr/local/etc/rc.d 目錄。 您可以檢閱這 script 的正確與否,或若有需要,也可以修改、改名。 詳情請參閱 啟動 Services。
如果發現某個 port 無法順利安裝、運作, 有幾種方法可以試試看:
從 Problem Report 資料庫 中挖寶看看,說不定已經有人送可用的 patch 上去囉, 那麼或許就可以順利解決問題哩。
向該 port 的 maintainer 尋求協助:請打 make maintainer 或翻閱 Makefile 以查詢 maintainer 的 email address。記得寄信給 maintainer 時,要附註該 port 的名稱、版本(或是把 Makefile 內的 $FreeBSD: 那一整行附上) 以及相關錯誤訊息。
注: 有些 port 不是由專門的單一 maintainer 負責,而是透過 mailing list 的專題討論。許多(但非全部)的聯絡 email 格式通常是
<freebsd-list名稱@FreeBSD.org>
。發問時,請記得把『freebsd-list名稱』改為相關討論的 mailing list 名稱。尤其當 port 的 maintainer 欄位是
<freebsd-ports@FreeBSD.org>
時,事實上已經沒人當該 port maintainer 了。 因此若該 port 仍有修正或其他技術支援的話,相關討論都會在 freebsd-ports 郵遞論壇上出現。 喔,對了,如果有熟悉該軟體者,志願當該 port maintainer 的話,我們也都很歡迎您的加入喔。
若 port maintainer 沒有回覆您的信件, 則可以用 send-pr(1) 來提交問題報告 PR。(請參閱 Writing FreeBSD Problem Reports)。
試試看修正它吧! Porter's Handbook 包括了 “Ports” 架構的細節部份,這些書中內容有助您修好有問題的 port 甚至提交自己的 port﹗
從較近的 FTP 站點下載編譯好的 package。 package collection 的最上游站是在 ftp.FreeBSD.org 上的 packages 目錄內,但請記得先檢查是否已有 local mirror 站! 通常情況下這些 package 都可以直接使用, 而且應該比自行編譯快一些。 用 pkg_add(1) 即可順利安裝 package 。
FreeBSD 使用 X11 來提供使用者相當好用的 GUI 介面。 X11 是 X Window 系統,包括 Xorg 以及 XFree86 實作的自由軟體版本 (以及其他未在本章有介紹的軟體)。 FreeBSD 一直到 FreeBSD 5.2.1-RELEASE 都仍可在預設的安裝程式內去裝 XFree86 (由 The XFree86 Project, Inc 發行的 X11 server)。 而 FreeBSD 5.3-RELEASE 起,預設的 X11 改為 Xorg(由 X.Org 基金會所開發的 X11 server,並採用與 FreeBSD 相當類似的 license)。 此外,當然也有商業 X servers 的 FreeBSD 版。
本章主要是介紹 X11 (主要著重於 Xorg 7.5.2 版部分)的安裝與設定。 若欲瞭解 XFree86 的詳細資料(早期的 FreeBSD 內, XFree86 乃是預設的 X11 套件),請參閱舊版的 FreeBSD Handbook,網址為 http://docs.FreeBSD.org/doc/ 。
欲知 X11 對於顯示方面硬體的支援情況,請參閱 Xorg 網站。
讀完這章,您將了解:
X Window 系統的各組成部份,以及它們是如何相互運作。
如何安裝、設定 X11。
如何安裝並使用不同的 window managers。
如何在 X11 上使用 TrueType® 字型。
如何設定系統以使用圖形登入介面。 (XDM)
在開始閱讀這章之前,您需要︰
知道如何運用 ports、packages 來安裝軟體。 (µÚ 4 章)
第一次接觸 X 的人,大概都會有些震撼,尤其是熟悉其他 GUI 介面(像是 Microsoft Windows 或 Mac OS)的使用者。
雖然 X 各元件的所有細節及運作方式,並不是必須要知道的。 但對它們有些基本概念會更容易上手。
X 並非 UNIX 上第一套視窗系統,但它卻是最廣為流傳運用。 原本的 X 研發團隊在研發 X 之前有開發另一套視窗系統。 那套系統叫做 “W”(取 “Window” 的第一個字)。 而 X 則是 W 之後的下一個羅馬字母。
X 亦被稱之為 “X”、“X Window System”、 “X11”,以及其他一些詞彙。 使用 “X Windows” 這字眼來稱呼 X11,可能會讓有些人不爽;這部分細節可參閱 X(7) 說明。
X 一開始是設計為網路架構環境,並採用 “client-server” 架構。
在 X 架構下, “X server” 是在有鍵盤、螢幕、滑鼠的電腦上運作。 而 server 部份則是負責像是顯示部份的管理、 處理來自鍵盤、滑鼠及其他設備(比方像是以繪圖板來輸入、 或者是顯示到投影機)的輸入等等, 每個 X 程式(像是 XTerm,或 Netscape)都是 “client”。 client 會傳訊息到 server 上,比如:“Please draw a window at these coordinates”,接著 server 會傳回訊息,比如: “The user just clicked on the OK button”。
在家庭或小辦公室環境,通常 X server 跟 X client 都是在同一台電腦上執行的。 然而,也可以在比較爛的桌機上執行 X server, 並在比較強、比較貴的電腦上跑 X 程式(client)來做事情。 在這種場景,X client 與 server 之間的溝通就需透過網路來進行。
這點可能會讓有些人產生困惑,因為 X 術語與他們原本的認知剛好相反。 他們原本以為 “X server” 是要在最強悍的機器上跑才行,而 “X client” 則是在他們桌機上面跑。 實際上卻不是這樣。
有點相當重要,請記住 X server 是在有接螢幕、鍵盤的機器上運作, 而 X client 則是顯示這些視窗的程式。
協定(protocol)內並無強制規定 client 以及 server 兩邊機器都得是同一作業系統,或者得是同型機器才可以。 換句話說,也可以在 Microsoft Windows 或蘋果電腦(Apple)的 Mac OS 上跑 X server,而且可以透過許多免費或商業軟體完成這些安裝、設定。
X 設計哲學與 UNIX 設計哲學相當類似,都是 “tools, not policy”。 也就是說,X 不會試圖強制規定某任務應該要如何完成,而是只提供使用者一些工具, 至於如何運用這些工具,則是使用者本身的事了。
X 延續這哲學,它並不規定:螢幕上的視窗該長什麼樣、要如何移動滑鼠指標、 該用什麼組合鍵來切換各視窗(比如:在 Microsoft Windows 的 Alt+Tab鍵)、各視窗的標題列長相,以及是否該有關閉鈕等等。
事實上,X 把這部分交給所謂的 “Window Manager” 來管理。 有一堆 window manager 程式,像是: AfterStep 、Blackbox、ctwm 、Enlightenment、 fvwm、Sawfish、 twm、 Window Maker 等等。每一種 window manager 都提供不同的使用經驗; 有些還可使用 “virtual desktops(虛擬桌面) ”;有些則可自訂組合鍵來管理桌面;有些會有 “Start(開始) ”鈕或其他類似設計;有些則是 “可更換佈景主題”, 可自行安裝新的佈景主題以更換外觀。 這些跟其他的 window manager 在 Ports Collection 內的 x11-wm 目錄內都有。
此外,KDE 及 GNOME 桌面環境則有其自屬並整合完整的 window manager。
每個 window manager 也各有其不同的設定機制;有些需手動寫設定檔, 而有的則可透過 GUI 工具來完成大部分的設定。舉個例子: Sawfish 就有以 Lisp 語言寫的設定檔。
Focus Policy: window manager 的另一特色就是負責滑鼠指標的 “focus policy”。 每一種視窗系統都需要選擇作用視窗的方式 ,以接受鍵盤輸入,以及決定目前哪個視窗是處於使用中的狀態。
通常較為人熟悉的 focus policy 叫做 “click-to-focus”, 這是 Microsoft Windows 所採用的模式,也就是指標在該視窗按一下的話, 該視窗就會處於使用中的狀態。
X 並不支援一些特殊的 focus policy。 換句話說,window manager 會控制哪個視窗在何時是作用中。 不同的 window manager 有不同的支援方式。 但它們都支援 click-to-focus, 而且大多數都有支援多種方式。
以下是目前最流行的 focus policy:
- focus-follows-mouse
滑鼠移到哪個視窗就是使用該視窗。 該視窗不一定位於其他視窗上面, 但只要把滑鼠移到該視窗就可以改變作用中的視窗, 而不需在它上面點擊。
- sloppy-focus
該 policy 是針對 focus-follows-mouse 的小小延伸。 對於 focus-follows-mouse 而言,若把游標移到最初的視窗(或桌面), 那所有其他視窗都會處於非作用中,而且所有鍵盤輸入也會失效。 若是選用 sloppy-focus,則只有在游標移到新視窗時, 作用中的視窗才會變成新的, 而只離開目前作用中的視窗仍不會改變作用狀態。
- click-to-focus
由游標點擊才會決定作用中的視窗。 並且該視窗會被 “raised(凸顯)” 到所有其他視窗之前, 即使游標移到其他視窗,所有的鍵盤輸入仍會由該視窗所接收。
許多 window manager 也支援其他 policy,與這些相比起來又有些不同, 細節部分請參閱該 window manager 的文件說明。
The X approach of providing tools and not policy extends to the widgets seen on screen in each application.
“Widget” is a term for all the items in the user interface that can be clicked or manipulated in some way; buttons, check boxes, radio buttons, icons, lists, and so on. Microsoft Windows calls these “controls”.
Microsoft Windows and Apple's Mac OS both have a very rigid widget policy. Application developers are supposed to ensure that their applications share a common look and feel. With X, it was not considered sensible to mandate a particular graphical style, or set of widgets to adhere to.
As a result, do not expect X applications to have a common look and feel. There are several popular widget sets and variations, including the original Athena widget set from MIT, Motif® (on which the widget set in Microsoft Windows was modeled, all bevelled edges and three shades of grey), OpenLook, and others.
Most newer X applications today will use a modern-looking widget set, either Qt, used by KDE, or GTK+, used by the GNOME project. In this respect, there is some convergence in look-and-feel of the UNIX desktop, which certainly makes things easier for the novice user.
Xorg 是 FreeBSD 預設的 X11 實作。 Xorg 是由 X.Org 基金會所發行之開放源碼軟體 X Window 系統實作的 X server。 Xorg 乃是以 XFree86 4.4RC2 以及 X11R6.6 為基礎所產生的。 目前 FreeBSD Ports Collection 內的 Xorg 版本為 7.5.2。
從 Ports Collection 來安裝 Xorg 的安裝方式:
# cd /usr/ports/x11/xorg # make install clean
注: 若要編譯完整的 Xorg, 請先確認至少有 4 GB 的磁碟空間。
此外 X11 也可直接透過 package 方式來安裝,可使用 pkg_add(1) 來安裝編譯好的 X11 套件,記得在透過網路安裝時不要指定版本即可, pkg_add(1) 會自動抓該套件最新版的套件回來。
若要自動透過 package 方式來裝 Xorg ,直接打下面這行即可:
# pkg_add -r xorg
注: 上面的例子會裝完整的 X11 套件,包括 server、client、字型等。 此外,還有其他的 X11 子套件可透過 package 或 port 方式來單獨安裝。
本章其餘部分將介紹如何設定 X11, 以及如何打造高生產力的桌面環境。
在開始設定 X11 之前,要先瞭解所要裝的機器資料為何:
螢幕規格
顯示卡的晶片規格
顯示卡的記憶體容量
X11 會依螢幕規格來決定解析度以及更新頻率。 這些規格通常可從螢幕所附的文件或廠商網站上取得。 最重要的是要知道水平、垂直更新頻率為何。
而顯示卡晶片則決定 X11 要用哪一種驅動程式模組。 大多數的晶片都可以自動偵測,但最好還是要知道是何種晶片, 以免萬一自動偵測失敗。
Video memory on the graphic adapter determines the resolution and color depth which the system can run at. This is important to know so the user knows the limitations of the system.
Xorg 自 7.3 版起不再需任何設定檔,只要打下列即可:
% startx
若這指令不行或預設設定無法使用,那麼就需要手動設定 X11。 設定 X11 需要幾個步驟,首先是以系統管理者帳號來建立初始設定檔:
# Xorg -configure
這會在 /root 目錄內產生 xorg.conf.new 設定檔(無論是用 su(1) 或直接登入為 root,都會改變 root 預設的 $HOME 環境變數)。 X11 程式接著會偵測系統的顯示卡相關硬體,並將偵測到硬體訊息寫入設定檔, 以便載入正確的驅動程式。
下一步是測試現有的設定檔,以便確認 Xorg 可以與顯示卡、螢幕相關硬體正確運作:
# Xorg -config xorg.conf.new
若看得到一堆黑灰夾雜的網格畫面,以及 X 形的滑鼠游標, 那麼設定檔就是成功的。 要退出測試,只要同時按下 Ctrl+Alt+Backspace 即可。
注: 若滑鼠不正確運作,那麼需要先對其作設定。 請參閱 FreeBSD 安裝一章中的 µÚ 2.10.10 節 說明。
Next, tune the xorg.conf.new configuration file to taste. Open the file in a text editor such as emacs(1) or ee(1). First, add the frequencies for the target system's monitor. These are usually expressed as a horizontal and vertical synchronization rate. These values are added to the xorg.conf.new file under the "Monitor" section:
Section "Monitor" Identifier "Monitor0" VendorName "Monitor Vendor" ModelName "Monitor Model" HorizSync 30-107 VertRefresh 48-120 EndSection
The HorizSync and VertRefresh keywords may be missing in the configuration file. If they are, they need to be added, with the correct horizontal synchronization rate placed after the HorizSync keyword and the vertical synchronization rate after the VertRefresh keyword. In the example above the target monitor's rates were entered.
X allows DPMS (Energy Star) features to be used with capable monitors. The xset(1) program controls the time-outs and can force standby, suspend, or off modes. If you wish to enable DPMS features for your monitor, you must add the following line to the monitor section:
Option "DPMS"
While the xorg.conf.new configuration file is still open in an editor, select the default resolution and color depth desired. This is defined in the "Screen" section:
Section "Screen" Identifier "Screen0" Device "Card0" Monitor "Monitor0" DefaultDepth 24 SubSection "Display" Viewport 0 0 Depth 24 Modes "1024x768" EndSubSection EndSection
The DefaultDepth keyword describes the color depth to run at
by default. This can be overridden with the -depth
command
line switch to Xorg(1). The Modes keyword describes the resolution to run at for the given color
depth. Note that only VESA standard modes are supported as defined by the target system's
graphics hardware. In the example above, the default color depth is twenty-four bits per
pixel. At this color depth, the accepted resolution is 1024 by 768 pixels.
Finally, write the configuration file and test it using the test mode given above.
注: One of the tools available to assist you during troubleshooting process are the X11 log files, which contain information on each device that the X11 server attaches to. Xorg log file names are in the format of /var/log/Xorg.0.log. The exact name of the log can vary from Xorg.0.log to Xorg.8.log and so forth.
If all is well, the configuration file needs to be installed in a common location where Xorg(1) can find it. This is typically /etc/X11/xorg.conf or /usr/local/etc/X11/xorg.conf.
# cp xorg.conf.new /etc/X11/xorg.conf
The X11 configuration process is now complete. Xorg 目前可透過 startx(1) 來啟動之。 The X11 server may also be started with the use of xdm(1).
注: There is also a graphical configuration tool, xorgcfg(1), which comes with the X11 distribution. It allows you to interactively define your configuration by choosing the appropriate drivers and settings. This program can be invoked from the console, by typing the command xorgcfg -textmode. For more details, refer to the xorgcfg(1) manual pages.
Alternatively, there is also a tool called xorgconfig(1). This program is a console utility that is less user friendly, but it may work in situations where the other tools do not.
Configuration with Intel i810 integrated chipsets requires the agpgart AGP programming interface for X11 to drive the card. 詳情請參閱 agp(4) 說明。
This will allow configuration of the hardware as any other graphics board. Note on systems without the agp(4) driver compiled in the kernel, trying to load the module with kldload(8) will not work. This driver has to be in the kernel at boot time through being compiled in or using /boot/loader.conf.
本節假設各位已經有些微進階設定的功力。 如果試著使用上述設定工具會有問題的話,請多利用相關 log 檔 (會記錄相關訊息)以便找出解法。 找尋解法過程中,可能會需要用到文字編輯器作為輔助。
目前的寬螢幕 (WSXGA, WSXGA+, WUXGA, WXGA, WXGA+ 等) 都有支援 16:10 及 10:9 比例,以及一些可能有問題的比例。 以下是一些常見的 16:10 螢幕解析度:
2560x1600
1920x1200
1680x1050
1440x900
1280x800
某方面而言,要增加這些解析度設定也是相當容易的, 只要在 Section "Screen" 內的 Mode 加上去就好,比如:
Section "Screen" Identifier "Screen0" Device "Card0" Monitor "Monitor0" DefaultDepth 24 SubSection "Display" Viewport 0 0 Depth 24 Modes "1680x1050" EndSubSection EndSection
Xorg 可以透過 I2C/DDC 來得知該寬螢幕所支援的解析度等相關資訊, 因此就能正確偵測出該螢幕所能支援的頻率、解析度。
若驅動程式並未包括 ModeLine 訊息的話, 那麼就要為 Xorg 做些設定才行。 我們可以透過 /var/log/Xorg.0.log 檔來取得 ModeLine 相關設定資料,即可讓螢幕正常顯示。 應該可以看到類似下面的訊息:
(II) MGA(0): Supported additional Video Mode: (II) MGA(0): clock: 146.2 MHz Image Size: 433 x 271 mm (II) MGA(0): h_active: 1680 h_sync: 1784 h_sync_end 1960 h_blank_end 2240 h_border: 0 (II) MGA(0): v_active: 1050 v_sync: 1053 v_sync_end 1059 v_blanking: 1089 v_border: 0 (II) MGA(0): Ranges: V min: 48 V max: 85 Hz, H min: 30 H max: 94 kHz, PixClock max 170 MHz
這些訊息被稱為 EDID 訊息。 可以藉由這些資料, 搭配下列的正確順序來產生 ModeLine 設定:
ModeLine <name> <clock> <4 horiz. timings> <4 vert. timings>
所以這個案例 Section "Monitor" 的 ModeLine 就會是像下面這樣:
Section "Monitor" Identifier "Monitor1" VendorName "Bigname" ModelName "BestModel" ModeLine "1680x1050" 146.2 1680 1784 1960 2240 1050 1053 1059 1089 Option "DPMS" EndSection
這樣子就簡單完成了,X 視窗就可以打造為新的寬螢幕環境囉。
The default fonts that ship with X11 are less than ideal for typical desktop publishing applications. Large presentation fonts show up jagged and unprofessional looking, and small fonts in Netscape are almost completely unintelligible. However, there are several free, high quality Type1 (PostScript®) fonts available which can be readily used with X11. For instance, the URW font collection (x11-fonts/urwfonts) includes high quality versions of standard type1 fonts (Times Roman®, Helvetica®, Palatino® and others). The Freefonts collection (x11-fonts/freefonts) includes many more fonts, but most of them are intended for use in graphics software such as the Gimp, and are not complete enough to serve as screen fonts. In addition, X11 can be configured to use TrueType fonts with a minimum of effort. For more details on this, see the X(7) manual page or the section on TrueType fonts.
To install the above Type1 font collections from the ports collection, run the following commands:
# cd /usr/ports/x11-fonts/urwfonts # make install clean
And likewise with the freefont or other collections. To have the X server detect these fonts, add an appropriate line to the X server configuration file (/etc/X11/xorg.conf), which reads:
FontPath "/usr/local/lib/X11/fonts/URW/"
Alternatively, at the command line in the X session run:
% xset fp+ /usr/local/lib/X11/fonts/URW % xset fp rehash
This will work but will be lost when the X session is closed, unless it is added to the startup file (~/.xinitrc for a normal startx session, or ~/.xsession when logging in through a graphical login manager like XDM). A third way is to use the new /usr/local/etc/fonts/local.conf file: see the section on anti-aliasing.
Xorg has built in support for rendering TrueType fonts. There are two different modules that can enable this functionality. The freetype module is used in this example because it is more consistent with the other font rendering back-ends. To enable the freetype module just add the following line to the "Module" section of the /etc/X11/xorg.conf file.
Load "freetype"
Now make a directory for the TrueType fonts (for example, /usr/local/lib/X11/fonts/TrueType) and copy all of the TrueType fonts into this directory. Keep in mind that TrueType fonts cannot be directly taken from a Macintosh®; they must be in UNIX/MS-DOS/Windows format for use by X11. Once the files have been copied into this directory, use ttmkfdir to create a fonts.dir file, so that the X font renderer knows that these new files have been installed. ttmkfdir is available from the FreeBSD Ports Collection as x11-fonts/ttmkfdir.
# cd /usr/local/lib/X11/fonts/TrueType # ttmkfdir -o fonts.dir
Now add the TrueType directory to the font path. This is just the same as described above for Type1 fonts, that is, use
% xset fp+ /usr/local/lib/X11/fonts/TrueType % xset fp rehash
or add a FontPath line to the xorg.conf file.
That's it. Now Netscape, Gimp, StarOffice™, and all of the other X applications should now recognize the installed TrueType fonts. Extremely small fonts (as with text in a high resolution display on a web page) and extremely large fonts (within StarOffice) will look much better now.
Anti-aliasing has been available in X11 since XFree86 4.0.2. However, font configuration was cumbersome before the introduction of XFree86 4.3.0. Beginning with XFree86 4.3.0, all fonts in X11 that are found in /usr/local/lib/X11/fonts/ and ~/.fonts/ are automatically made available for anti-aliasing to Xft-aware applications. Not all applications are Xft-aware, but many have received Xft support. Examples of Xft-aware applications include Qt 2.3 and higher (the toolkit for the KDE desktop), GTK+ 2.0 and higher (the toolkit for the GNOME desktop), and Mozilla 1.2 and higher.
In order to control which fonts are anti-aliased, or to configure anti-aliasing properties, create (or edit, if it already exists) the file /usr/local/etc/fonts/local.conf. Several advanced features of the Xft font system can be tuned using this file; this section describes only some simple possibilities. For more details, please see fonts-conf(5).
This file must be in XML format. Pay careful attention to case, and make sure all tags are properly closed. The file begins with the usual XML header followed by a DOCTYPE definition, and then the <fontconfig> tag:
<?xml version="1.0"?> <!DOCTYPE fontconfig SYSTEM "fonts.dtd"> <fontconfig>
As previously stated, all fonts in /usr/local/lib/X11/fonts/ as well as ~/.fonts/ are already made available to Xft-aware applications. If you wish to add another directory outside of these two directory trees, add a line similar to the following to /usr/local/etc/fonts/local.conf:
<dir>/path/to/my/fonts</dir>
After adding new fonts, and especially new font directories, you should run the following command to rebuild the font caches:
# fc-cache -f
Anti-aliasing makes borders slightly fuzzy, which makes very small text more readable and removes “staircases” from large text, but can cause eyestrain if applied to normal text. To exclude font sizes smaller than 14 point from anti-aliasing, include these lines:
<match target="font"> <test name="size" compare="less"> <double>14</double> </test> <edit name="antialias" mode="assign"> <bool>false</bool> </edit> </match> <match target="font"> <test name="pixelsize" compare="less" qual="any"> <double>14</double> </test> <edit mode="assign" name="antialias"> <bool>false</bool> </edit> </match>
Spacing for some monospaced fonts may also be inappropriate with anti-aliasing. This seems to be an issue with KDE, in particular. One possible fix for this is to force the spacing for such fonts to be 100. Add the following lines:
<match target="pattern" name="family"> <test qual="any" name="family"> <string>fixed</string> </test> <edit name="family" mode="assign"> <string>mono</string> </edit> </match> <match target="pattern" name="family"> <test qual="any" name="family"> <string>console</string> </test> <edit name="family" mode="assign"> <string>mono</string> </edit> </match>
(this aliases the other common names for fixed fonts as "mono"), and then add:
<match target="pattern" name="family"> <test qual="any" name="family"> <string>mono</string> </test> <edit name="spacing" mode="assign"> <int>100</int> </edit> </match>
Certain fonts, such as Helvetica, may have a problem when anti-aliased. Usually this manifests itself as a font that seems cut in half vertically. At worst, it may cause applications such as Mozilla to crash. To avoid this, consider adding the following to local.conf:
<match target="pattern" name="family"> <test qual="any" name="family"> <string>Helvetica</string> </test> <edit name="family" mode="assign"> <string>sans-serif</string> </edit> </match>
Once you have finished editing local.conf make sure you end the file with the </fontconfig> tag. Not doing this will cause your changes to be ignored.
The default font set that comes with X11 is not very desirable when it comes to anti-aliasing. A much better set of default fonts can be found in the x11-fonts/bitstream-vera port. This port will install a /usr/local/etc/fonts/local.conf file if one does not exist already. If the file does exist, the port will create a /usr/local/etc/fonts/local.conf-vera file. Merge the contents of this file into /usr/local/etc/fonts/local.conf, and the Bitstream fonts will automatically replace the default X11 Serif, Sans Serif, and Monospaced fonts.
Finally, users can add their own settings via their personal .fonts.conf files. To do this, each user should simply create a ~/.fonts.conf. This file must also be in XML format.
One last point: with an LCD screen, sub-pixel sampling may be desired. This basically treats the (horizontally separated) red, green and blue components separately to improve the horizontal resolution; the results can be dramatic. To enable this, add the line somewhere in the local.conf file:
<match target="font"> <test qual="all" name="rgba"> <const>unknown</const> </test> <edit name="rgba" mode="assign"> <const>rgb</const> </edit> </match>
注: Depending on the sort of display, rgb may need to be changed to bgr, vrgb or vbgr: experiment and see which works best.
Anti-aliasing should be enabled the next time the X server is started. However, programs must know how to take advantage of it. At present, the Qt toolkit does, so the entire KDE environment can use anti-aliased fonts. GTK+ and GNOME can also be made to use anti-aliasing via the “Font” capplet (see µÚ 5.7.1.3 節 for details). By default, Mozilla 1.2 and greater will automatically use anti-aliasing. To disable this, rebuild Mozilla with the -DWITHOUT_XFT flag.
The X Display Manager (XDM) is an optional part of the X Window System that is used for login session management. This is useful for several types of situations, including minimal “X Terminals”, desktops, and large network display servers. Since the X Window System is network and protocol independent, there are a wide variety of possible configurations for running X clients and servers on different machines connected by a network. XDM provides a graphical interface for choosing which display server to connect to, and entering authorization information such as a login and password combination.
Think of XDM as providing the same functionality to the user as the getty(8) utility (see µÚ 24.3.2 節 for details). That is, it performs system logins to the display being connected to and then runs a session manager on behalf of the user (usually an X window manager). XDM then waits for this program to exit, signaling that the user is done and should be logged out of the display. At this point, XDM can display the login and display chooser screens for the next user to login.
The XDM daemon program is located in /usr/local/bin/xdm. This program can be run at any time as root and it will start managing the X display on the local machine. If XDM is to be run every time the machine boots up, a convenient way to do this is by adding an entry to /etc/ttys. For more information about the format and usage of this file, see µÚ 24.3.2.1 節. There is a line in the default /etc/ttys file for running the XDM daemon on a virtual terminal:
ttyv8 "/usr/local/bin/xdm -nodaemon" xterm off secure
By default this entry is disabled; in order to enable it change field 5 from off to on and restart init(8) using the directions in µÚ 24.3.2.2 節. The first field, the name of the terminal this program will manage, is ttyv8. This means that XDM will start running on the 9th virtual terminal.
The XDM configuration directory is located in /usr/local/lib/X11/xdm. In this directory there are several files used to change the behavior and appearance of XDM. Typically these files will be found:
File | Description |
---|---|
Xaccess | Client authorization ruleset. |
Xresources | Default X resource values. |
Xservers | List of remote and local displays to manage. |
Xsession | Default session script for logins. |
Xsetup_* | Script to launch applications before the login interface. |
xdm-config | Global configuration for all displays running on this machine. |
xdm-errors | Errors generated by the server program. |
xdm-pid | The process ID of the currently running XDM. |
Also in this directory are a few scripts and programs used to set up the desktop when XDM is running. The purpose of each of these files will be briefly described. The exact syntax and usage of all of these files is described in xdm(1).
The default configuration is a simple rectangular login window with the hostname of the machine displayed at the top in a large font and “Login:” and “Password:” prompts below. This is a good starting point for changing the look and feel of XDM screens.
The protocol for connecting to XDM-controlled displays is called the X Display Manager Connection Protocol (XDMCP). This file is a ruleset for controlling XDMCP connections from remote machines. It is ignored unless the xdm-config is changed to listen for remote connections. By default, it does not allow any clients to connect.
This is an application-defaults file for the display chooser and login screens. In it, the appearance of the login program can be modified. The format is identical to the app-defaults file described in the X11 documentation.
This is the default session script for XDM to run after a user has logged in. Normally each user will have a customized session script in ~/.xsession that overrides this script.
These will be run automatically before displaying the chooser or login interfaces. There is a script for each display being used, named Xsetup_ followed by the local display number (for instance Xsetup_0). Typically these scripts will run one or two programs in the background such as xconsole.
This contains settings in the form of app-defaults that are applicable to every display that this installation manages.
This contains the output of the X servers that XDM is trying to run. If a display that XDM is trying to start hangs for some reason, this is a good place to look for error messages. These messages are also written to the user's ~/.xsession-errors file on a per-session basis.
In order for other clients to connect to the display server, you must edit the access control rules, and enable the connection listener. By default these are set to conservative values. To make XDM listen for connections, first comment out a line in the xdm-config file:
! SECURITY: do not listen for XDMCP or Chooser requests ! Comment out this line if you want to manage X terminals with xdm DisplayManager.requestPort: 0
and then restart XDM. Remember that comments in app-defaults files begin with a “!” character, not the usual “#”. More strict access controls may be desired —— look at the example entries in Xaccess, and refer to the xdm(1) manual page for further infomation.
Several replacements for the default XDM program exist. One of them, kdm (bundled with KDE) is described later in this chapter. The kdm display manager offers many visual improvements and cosmetic frills, as well as the functionality to allow users to choose their window manager of choice at login time.
本章會介紹在 FreeBSD 中的 X 裡頭,有哪些不同的桌面環境。 “桌面環境”範圍很廣,從簡單的 window manager 到 完整的桌面應用程式,例如 KDE 或 GNOME。
GNOME is a user-friendly desktop environment that enables users to easily use and configure their computers. GNOME includes a panel (for starting applications and displaying status), a desktop (where data and applications can be placed), a set of standard desktop tools and applications, and a set of conventions that make it easy for applications to cooperate and be consistent with each other. Users of other operating systems or environments should feel right at home using the powerful graphics-driven environment that GNOME provides. More information regarding GNOME on FreeBSD can be found on the FreeBSD GNOME Project's web site. The web site also contains fairly comprehensive FAQs about installing, configuring, and managing GNOME.
可透過 package 或 Ports Collection 的方式來輕鬆安裝:
透過網路利用 package 安裝 GNOME:
# pkg_add -r gnome2
從 ports tree 透過原始碼編譯安裝 GNOME:
# cd /usr/ports/x11/gnome2 # make install clean
當 GNOME 安裝完成後, 必須告訴 X server 啟動 GNOME 而非原本的 window manager。
啟動 GNOME 最簡單的方法是利 用 GDM(GNOME Display Manager)。 GDM, which is installed as a part of the GNOME desktop (but is disabled by default), can be enabled by adding gdm_enable="YES" to /etc/rc.conf. Once you have rebooted, GNOME will start automatically once you log in —— no further configuration is necessary.
GNOME may also be started from the command-line by properly configuring a file named .xinitrc. If a custom .xinitrc is already in place, simply replace the line that starts the current window manager with one that starts /usr/local/bin/gnome-session instead. If nothing special has been done to the configuration file, then it is enough simply to type:
% echo "/usr/local/bin/gnome-session" > ~/.xinitrc
Next, type startx, and the GNOME desktop environment will be started.
注: If an older display manager, like XDM, is being used, this will not work. Instead, create an executable .xsession file with the same command in it. To do this, edit the file and replace the existing window manager command with /usr/local/bin/gnome-session:
% echo "#!/bin/sh" > ~/.xsession % echo "/usr/local/bin/gnome-session" >> ~/.xsession % chmod +x ~/.xsession
Yet another option is to configure the display manager to allow choosing the window manager at login time; the section on KDE details explains how to do this for kdm, the display manager of KDE.
X11 supports anti-aliasing via its “RENDER” extension. GTK+ 2.0 and
greater (the toolkit used by GNOME) can make use of this
functionality. Configuring anti-aliasing is described in µÚ 5.5.3 節. So, with up-to-date software,
anti-aliasing is possible within the GNOME desktop. Just
go to -> -> ,
and select either , , or . For a GTK+ application that is not part of the GNOME desktop, set the environment variable GDK_USE_XFT
to 1 before launching
the program.
KDE is an easy to use contemporary desktop environment. Some of the things that KDE brings to the user are:
A beautiful contemporary desktop
A desktop exhibiting complete network transparency
An integrated help system allowing for convenient, consistent access to help on the use of the KDE desktop and its applications
Consistent look and feel of all KDE applications
Standardized menu and toolbars, keybindings, color-schemes, etc.
Internationalization: KDE is available in more than 40 languages
Centralized, consistent, dialog-driven desktop configuration
A great number of useful KDE applications
KDE comes with a web browser called Konqueror, which is a solid competitor to other existing web browsers on UNIX systems. More information on KDE can be found on the KDE website. For FreeBSD specific information and resources on KDE, consult the KDE on FreeBSD team's website.
如同 GNOME 或其他桌面管理軟體一樣, 也可以輕鬆透過 package 或 Ports Collection 來安裝:
To install the KDE package from the network, simply type:
# pkg_add -r kde
pkg_add(1) will automatically fetch the latest version of the application.
To build KDE from source, use the ports tree:
# cd /usr/ports/x11/kde3 # make install clean
After KDE has been installed, the X server must be told to launch this application instead of the default window manager. This is accomplished by editing the .xinitrc file:
% echo "exec startkde" > ~/.xinitrc
Now, whenever the X Window System is invoked with startx, KDE will be the desktop.
If a display manager such as XDM is being used, the configuration is slightly different. Edit the .xsession file instead. Instructions for kdm are described later in this chapter.
Now that KDE is installed on the system, most things can be discovered through the help pages, or just by pointing and clicking at various menus. Windows or Mac® users will feel quite at home.
The best reference for KDE is the on-line documentation. KDE comes with its own web browser, Konqueror, dozens of useful applications, and extensive documentation. The remainder of this section discusses the technical items that are difficult to learn by random exploration.
An administrator of a multi-user system may wish to have a graphical login screen to welcome users. XDM can be used, as described earlier. However, KDE includes an alternative, kdm, which is designed to look more attractive and include more login-time options. In particular, users can easily choose (via a menu) which desktop environment (KDE, GNOME, or something else) to run after logging on.
To enable kdm, the ttyv8 entry in /etc/ttys has to be adapted. The line should look as follows:
ttyv8 "/usr/local/bin/kdm -nodaemon" xterm on secure
XFce is a desktop environment based on the GTK+ toolkit used by GNOME, but is much more lightweight and meant for those who want a simple, efficient desktop which is nevertheless easy to use and configure. Visually, it looks very much like CDE, found on commercial UNIX systems. Some of XFce's features are:
A simple, easy-to-handle desktop
Fully configurable via mouse, with drag and drop, etc.
Main panel similar to CDE, with menus, applets and applications launchers
Integrated window manager, file manager, sound manager, GNOME compliance module, and more
Themeable (since it uses GTK+)
Fast, light and efficient: ideal for older/slower machines or machines with memory limitations
More information on XFce can be found on the XFce website.
A binary package for XFce exists (at the time of writing). To install, simply type:
# pkg_add -r xfce4
Alternatively, to build from source, use the ports collection:
# cd /usr/ports/x11-wm/xfce4 # make install clean
Now, tell the X server to launch XFce the next time X is started. Simply type this:
% echo "/usr/local/bin/startxfce4" > ~/.xinitrc
The next time X is started, XFce will be the desktop. As before, if a display manager like XDM is being used, create an .xsession, as described in the section on GNOME, but with the /usr/local/bin/startxfce4 command; or, configure the display manager to allow choosing a desktop at login time, as explained in the section on kdm.
既然基礎的部分已經提過了,接下來的這個部分將會討論一些常會用到的 FreeBSD 的特色,這些章節包括:
介紹給您常見且實用的桌面應用軟體:網頁瀏覽器、生產力工具、文件檢視程式等。
介紹給您眾多 FreeBSD 上可用的多媒體工具。
解釋如何編譯自訂 FreeBSD 核心以增加額外系統功能的流程。
詳細描述列印系統,包含桌上型印表機及網路印表機的設定。
展示給您看如何在您的 FreeBSD 系統中執行 Linux 應用軟體。
這些章節中有些需要您預先閱讀些相關文件,在各章節開頭的概要內會提及。
在 FreeBSD 上面可以執行非常多種類的桌面應用程式, 像是網頁瀏覽器和文字處理軟體等。 這些程式大都可以透過套件來安裝或是從 Ports Collection 中自動編譯安裝。 許多新的使用者會希望能在在他們的桌面系統中找到這些程式。 這章將會告訴你如何不用費太多功夫去安裝一些熱門的桌面應用程式, 不管是從套件或是從 Ports Collection 中安裝。
需要注意到的是:當從 ports 中安裝程式的時候, 它們是從原始碼開始編譯的。依照你編譯的 ports 和電腦速度(硬體等級), 有可能會花很長一段時間才能完成。 如果從原始碼編譯對你來說會花太多時間的話, 大部分的 ports 你都能找到事先編譯好的套件來安裝。
因為 FreeBSD 具有相容 Linux 二進制的特性, 許多原先在 Linux 上開發的應用程式都能在你的 FreeBSD 桌面環境執行。 在安裝任何 Linux 應用程式之前,強烈建議你先閱讀 µÚ 10 章 Linux 執行相容模式這個章節。 而許多用 Linux 二進制相容模式的軟體在 ports 裡頭通常都會用 “linux-” 開頭。 當你在搜尋某個特定軟體時,記住這點,並且可以使用 whereis(1) 來找。 在下列的說明中, 都假設你在安裝任何 Linux 應用軟體之前, 已經事先啟用了 Linux 二進制相容模式。
下列目錄是這章中所涵蓋的應用程式:
瀏覽器 (像是 Mozilla, Opera, Firefox, Konqueror)
辦公軟體 (像是 KOffice, AbiWord, The GIMP, OpenOffice.org)
文件瀏覽軟體 (像是 Acrobat Reader®, gv, Xpdf, GQview)
財務處理軟體 (像是 GnuCash, Gnumeric, Abacus)
在閱讀這章之前,你必須
要知道更多關於多媒體環境的資訊,請先閱讀 µÚ 7 章 多媒體章節。 如果你想要設定和使用電子郵件,也請你先看 µÚ 26 章郵件章節。
在 FreeBSD 中並沒有預先安裝好的特定瀏覽器。 但在 Ports Collection 之中卻有許多瀏覽器可供你安裝使用。 如果你沒有足夠時間去編譯所有的東西 (在某些情況下這可能會花上很長的一段時間), 這些都有現成的套件可供直接安裝。
KDE 和 GNOME 桌面環境都已提供 HTML 瀏覽器。 請參考 µÚ 5.7 節 來了解更多有關如何設定這些完整的桌面環境系統資訊。
如果你在尋找輕量化的瀏覽器,你可以從 Ports Collection 中找到下面的幾種: www/dillo, www/links, 或 www/w3m。
這節介紹這些瀏覽器:
瀏覽器名稱 | 所需的系統資源 | 從 ports 安裝時間 | 主要相依的軟體 |
---|---|---|---|
Mozilla | 多 | 長 | Gtk+ |
Opera | 少 | 短 | FreeBSD 和 Linux 的版本都有。 Linux 的版本需要 Linux 二進制相容模組以及 linux-openmotif. |
Firefox | 中度 | 長 | Gtk+ |
Konqueror | 中度 | 長 | KDE 函式庫 |
Mozilla 是相當現代化、穩定且完全移植至 FreeBSD 系統上。 它也具備有十分符合 HTML 標準的顯示引擎, 它更提供了郵件及新聞群組的閱讀功能。 此外如果你打算要自己寫一些網頁的話,它還提供了 HTML 的編輯器。 如果是 Netscape 的使用者, 你可能會認出這跟 Communicator 很像, 它們其實同樣是使用相同基礎的瀏覽器。
在速度較慢,像是 CPU 速度少於 233MHz 或是小於 64MB 記憶體的機器上面, 完全使用 Mozilla 會是件極度耗費資源的事。 所以在這樣的機器上面,你可能會想要使用 Opera 這樣輕量級的瀏覽器,而接下來後面會提到。
如果你有什麼原因不能或是不想編譯 Mozilla 的話,FreeBSD GNOME 團隊已經為你做好了這件事。 只要用下面的指令透過網路安裝套件就行了:
# pkg_add -r mozilla
如果沒有找到套件可以使用,而你也有足夠的時間和磁碟空間來編譯 Mozilla 並安裝到你的系統中, 你可以透過下列步驟來安裝:
# cd /usr/ports/www/mozilla # make install clean
Mozilla 需要使用 root 的權限來執行 chrome 註冊來確保正確的初始化。 另外,如果你需要抓一些額外的外掛程式像是 mouse gestures, 你就必須要使用 root 的權限來安裝, 以適當的安裝這些外掛程式。
一旦你完成了 Mozilla 的安裝,你就再也不需要 root 的權限了。 你可以直接打下面的指令來啟動 Mozilla:
% mozilla
也可以直接打下列指令,直接啟動郵件和新聞閱讀器:
% mozilla -mail
Firefox 是以 Mozilla 原始碼為基礎的新世代瀏覽器。 Mozilla 是一堆應用軟體的整合套裝, 像是瀏覽器、郵件程式、聊天室軟體等所組成。 Firefox 則純粹是瀏覽器, 這也是為何它能短小精悍之故。
可以打下列指令來安裝:
#pkg_add -r firefox
也可以透過 Ports Collection,以編譯原始碼的方式來安裝:
#cd /usr/ports/www/firefox # make install clean
注: 本節以及下一節,均假設您已裝好 Firefox 或 Mozilla。
FreeBSD 基金會與 Sun Microsystems 有達成授權協議, 可以散播 Java Runtime Environment(JRE™) 及 Java Developement Kit(JDK™) 的 FreeBSD 版 binary(執行檔)。 FreeBSD 版的 binary 可以在 FreeBSD 基金會 網站下載。
要讓 Firefox 或 Mozilla 支援 Java™ 的話,首先要先裝 java/javavmwrapper 這個 port。 然後再去 http://www.freebsdfoundation.org/downloads/java.shtml 下載 Diablo JRE,並以 pkg_add(1) 指令來安裝之。
接著啟動瀏覽器,在網址列輸入 about:plugins 然後按 Enter 鍵,就會顯示目前已裝的 plugins 清單, 這時應該就可以看到 Java 也有列出來。 若仍未看到的話,那就切換為 root 帳號, 打下列指令:
# ln -s /usr/local/diablo-jre1.5.0/plugin/i386/ns7/libjavaplugin_oji.so \ /usr/local/lib/browser_plugins/
最後,重啟瀏覽器即可。
Macromedia® Flash™ plugin 程式並沒有 FreeBSD 版, 然而可以透過軟體層(wrapper)來執行 Linux 版的 plugin 程式。 這個 wrapper 同時也支援 Adobe® Acrobat® 以及 RealPlayer® plugin 等。
接下來去裝 www/linuxpluginwrapper。 linuxpluginwrapper 需要先裝一個很大的 emulators/linux_baseport。 然後根據 port 所指示的作法, 去正確地設定你的 /etc/libmap.conf! 設定的範例檔案位於 /usr/local/share/examples/linuxpluginwrapper/ 的目錄底下。
下一步,則是裝 www/linux-flashplugin7。 裝好後,再啟動瀏覽器,在網址列輸入 about:plugins, 然後按 Enter 鍵就會顯示目前已裝的 plugin 清單。
若 Flash plugin 沒出現的話,大多可能是因為漏了做 symlink 連結之故。 請切為 root 帳號,打下列指令:
# ln -s /usr/local/lib/npapi/linux-flashplugin/libflashplayer.so \ /usr/local/lib/browser_plugins/ # ln -s /usr/local/lib/npapi/linux-flashplugin/flashplayer.xpt \ /usr/local/lib/browser_plugins/
最後,重啟瀏覽器應該就可看到了。
注: linuxpluginwrapper 只能在 i386 的系統架構下運行。
Opera 是個具備完整功能、符合標準的瀏覽器。 它同時也具備了內建的郵件、新聞閱讀器、IRC、RSS/Atom feeds 閱讀器等。 此外 Opera 更是個輕量級、 執行速度又快的瀏覽器。 它在 ports 中有兩種版本:「原生」的 FreeBSD 版本還有在 Linux 模擬模式下的版本。
要用 Opera 的 FreeBSD 版本來瀏覽網頁的話, 用下面的指令安裝:
# pkg_add -r opera
有些 FTP 站台並沒有全部的套件, 但是打下面的指令就能從 Ports Collection 中安裝:
# cd /usr/ports/www/opera # make install clean
要安裝 Opera 的 Linux 版本的話, 請將上面例子中的 opera 替換成 linux-opera。 有些時候, Linux 的版本是十分有用的, 像是只有 Linux 版本外掛程式的時候。 但在其他方面來說, FreeBSD 和 Linux 的版本功能上是一樣的。
Konqueror 是 KDE 桌面系統的一部分,但是它也可以藉由安裝 x11/kdebase3 在 KDE 環境以外使用。 Konqueror 不只是個網頁瀏覽器, 他同時也是檔案管理器和多媒體瀏覽器。
Konqueror 也有許多的外掛程式, 這些外掛程式可以從 misc/konq-plugins 中安裝。
Konqueror 也支援 Flash 的外掛程式。 如何安裝的說明請參閱:http://freebsd.kde.org/howto.php。
當開始進行辦公, 新的使用者通常會去找好用的辦公室軟體或是好上手的文字處理器。 目前 有些桌面環境 像是 KDE已經提供了辦公軟體組合的套件。 FreeBSD 提供了所需的所有辦公軟體,桌面環境也不例外。
這節涵蓋了下列的這些軟體:
軟體名稱 | 所需系統資源 | 從 Ports 安裝的時間 | 主要相依套件 |
---|---|---|---|
KOffice | 少 | 長 | KDE |
AbiWord | 少 | 短 | Gtk+ 或是 GNOME |
The Gimp | 少 | 長 | Gtk+ |
OpenOffice.org | 多 | 很久 | JDK 1.4, Mozilla |
KDE 社群在它的桌面環境裡頭提供了一個可以在 KDE 外使用的辦公軟體組合。 它包含了四種模組: KWord 是文字處理器, KSpread 是試算表程式, KPresenter 是簡報播放程式, 另外 Karbon14 讓你可以產生圖形化的文件。 [5]
在安裝最新版的 KOffice 之前, 請先確定你有最新版本的 KDE。
若要用套件來安裝 KOffice, 請依照下面的指令:
# pkg_add -r koffice
如果套件不存在的話,你可以使用 ports collection. 例如要安裝 KDE3 中的 KOffice,請使用下列指令安裝:
# cd /usr/ports/editors/koffice-kde3 # make install clean
AbiWord 是一個免費的文字處理軟體,外觀和感覺都近似於 Microsoft Word。 它適合處理文件、信件、報告、備忘錄等等。 它也非常快速,包含了許多功能而且非常容易上手。
AbiWord 可以輸入或輸出許多檔案格式, 包括一些有專利的格式,例如微軟(Microsoft)公司的 .doc 格式。
AbiWord 也能用套件安裝, 你可以用下列指令來安裝:
# pkg_add -r abiword
如果找不到套件的話,它也可以從 Ports Collection 中編譯安裝。 而 Ports Collection 應該要保持在最新的狀態。 AbiWord 可以透過下列方式編譯安裝:
# cd /usr/ports/editors/abiword # make install clean
對於影像的編輯及修改來說,GIMP 是非常精緻的影像處理軟體。 它可以當作簡單的繪圖軟體或是高品質的相片處理軟體。 它支援為數眾多的外掛程式及指令稿 (script-fu) 介面。 GIMP 可以讀寫許多檔案格式。 它也支援掃描器 [6] 和手寫板。
譯註:GIMP 在目前是 2.x 版,如果你想要安裝 1.x 版的話,請用 Ports Collection 中的 graphics/gimp1。 另外如果你已經使用習慣 Adobe Photoshop,而且不習慣 GIMP 介面的話,你也可以嘗試安裝 graphics/gimpshop, 它的使用介面十分類似 Adobe Photoshop。
你可以使用下面指令安裝套件:
# pkg_add -r gimp
如果的你的 FTP 站台沒有這個套件,你可以使用 Ports Collection。 在 Ports Collection 的 graphics 目錄下也包含了 The Gimp Manual(GIMP 使用手冊)。 下面示範如何安裝這些程式:
# cd /usr/ports/graphics/gimp # make install clean # cd /usr/ports/graphics/gimp-manual-pdf # make install clean
譯註:另外在 Ports Collection 中也有一些外掛程式可以使用, 例如說可以處理數位相機 raw 檔案格式的 gimp-ufraw。
注: GIMP 使用手冊也有 HTML 格式的,你可以在 graphics/gimp-manual-html 中安裝。
OpenOffice.org 包含了所有完整的辦公軟體組合: 文字處理器、試算表、簡報軟體還有繪圖軟體。 除了它的使用者介面非常類似其他的辦公軟體, 他還能夠輸入和輸出許多熱門的檔案格式。 它也包含了不同語言的使用者介面、拼字檢查和字典。
OpenOffice.org 的文字處理器使用 XML 檔案格式來增加移植性及彈性。 試算表程式支援巨集(macro)功能而且能夠使用外來的資料庫介面。 OpenOffice.org 已經十分穩定, 並且能夠在 Windows, Solaris™, Linux, FreeBSD 及 Mac OS X 等作業系統上面執行。 想知道更多關於 OpenOffice.org 的資訊可以在 OpenOffice.org 網頁 上查詢。你也可以在 FreeBSD OpenOffice.org 移植團隊 的網頁上查詢關於 FreeBSD 上 OpenOffice 特定的資訊或直接下載已編譯好的套件
要安裝 OpenOffice.org, 請用以下方式來執行:
# pkg_add -r openoffice.org
注: 當你在使用 FreeBSD -RELEASE 版本的時候,上面的作法應該行得通。 要是其他的版本,你應該看一下 FreeBSD OpenOffice.org 移植團隊的網站,並且用 pkg_add(1) 安裝合適的套件。 在這個站台都可以下載到穩定的釋出版(release)或開發中的版本。
當已經安裝完之後,你只要鍵入下面的指令就能執行 OpenOffice.org:
% openoffice.org
譯註:端看你的版本,有時候需要輸入如 openoffice.org-2.0.1 之類的指令,不過你也可以用 shell 中的 alias 或是用 symbolic link 來處理。
注: 在第一次啟動的時候,OpenOffice 會問到一些問題。 而且在你的家目錄底下會自動建立 .openoffice.org2 的資料夾。
如果無法取得 OpenOffice.org 的套件,你仍然可以選擇從 port 編譯。 不過你必須謹記在心:編譯的過程會需要大量的磁碟空間且相當耗時。
# cd /usr/ports/editors/openoffice.org-2 # make install clean
注: 如果你想要安裝本地化的版本,把前面的指令代換成下面的:
# make LOCALIZED_LANG=你的語言 install clean你必須把你的語言 換成正確的語言 ISO-code [7] 所支援的語言代碼清單可以在 port 目錄裡的 files/Makefile.localized 檔案中找到。
一旦完成了上述步驟, OpenOffice.org 可用以下指令啟動:
% openoffice.org
近年來有些文件格式變得愈來愈流行, 基本的系統中也許不會有這些格式所需的標準閱覽器。 在這一節,我們來看看怎麼安裝這些軟體。
這張涵蓋了下列的軟體
軟體名稱 | 所需系統資源 | 從 Ports 安裝時間 | 主要相依套件 |
---|---|---|---|
Acrobat Reader | 少 | 短 | Linux 二進制相容模組 |
gv | 少 | 短 | Xaw3d |
Xpdf | 少 | 短 | FreeType |
GQview | 少 | 短 | Gtk+ 或是 GNOME |
許多文件在散佈的時候都是用 PDF 的檔案格式, 這個格式是基於 “可攜式文件格式(Portable Document Format)”。 其中一個推薦的閱覽軟體就是Acrobat Reader, 它是由 Adobe 公司發行給 Linux 使用的版本。 因為 FreeBSD 也可以執行 Linux 二進位檔案, 所以它也能在 FreeBSD 上面執行。
要從 Ports Collection 中安裝 Acrobat Reader 7 只要:
# cd /usr/ports/print/acroread7 # make install clean
因為授權的限制,所以不提供編譯好的套件。
gv是 PostScript 和 PDF 的閱覽器。 它建構於 ghostview的基礎上, 不過因為使用 Xaw3d 函式庫, 所以外觀看起來比較漂亮。 gv 速度快,介面簡潔並且有許多功能, 比如說方向性、紙張大小、縮放比例、和反鋸齒(antialias)等。 而且幾乎所有的使用都可以從鍵盤或滑鼠來完成。
用套件來安裝 gv,使用下列指令:
# pkg_add -r gv
如果你不能取得套件,你可以使用 Ports Collection:
# cd /usr/ports/print/gv # make install clean
如果你想要一個小型的 FreeBSD PDF 閱覽軟體, Xpdf是個輕量級而且有效率的閱覽器。 它只需要非常少的資源而且十分穩定。 它只使用標準的 X 字型而不需要 Motif 或是其他的 X 工具組(toolkit)。
用套件來安裝 Xpdf,使用下列指令:
# pkg_add -r xpdf
如果套件不存在或是你偏好使用 Ports Collection, 使用以下指令:
# cd /usr/ports/graphics/xpdf # make install clean
一旦完成了安裝,你可以啟動 Xpdf 並且使用滑鼠右鍵去使用選單。
GQview 是影像管理軟體。 你可以用單鍵來閱覽檔案、啟動額外的編輯器、縮圖預覽等功能。 它也有幻燈片播放(slideshow)及一些基本的檔案操作功能。 你可用 GQview 管理影像集並能輕鬆地找出重複的檔案。 GQview 能夠使用全螢幕觀看並支援國際化。
如果你想要安裝 GQview的套件, 請使用下列指令:
# pkg_add -r gqview
如果套件無法取得,或是你比較喜歡使用 Ports Collection,只要:
# cd /usr/ports/graphics/gqview # make install clean
如果有任何理由你想要在你的 FreeBSD 桌面環境上管理你的個人財務, 這裡有一些功能強大、使用簡單的應用程式可供安裝。 這些財務管理軟體之中有些是相容於流行的 Quicken® 或 Excel 文件。
這節涵蓋了下面這些軟體:
GnuCash 是 GNOME 團隊努力成果中的一部分, 而 GNOME 主要是提供終端使用者(end-users) 親切而強大的桌面應用程式。 使用 GnuCash, 你可以持續紀錄你的收入及花費、你的銀行帳戶、或是你的股票證券等。 它的特性是介面直覺但功能仍非常專業。
GnuCash 提供了一個智慧的註冊器、 帳戶層級系統、許多快速鍵及自動完成(auto-completion)模式。 它也能分開單一的報表至數個詳細的部份。 GnuCash 也能夠輸入及合併 Quicken QIF 檔案。 它也能處理大部分國際的日期及通用貨幣之格式。
要安裝 GnuCash 到你的系統中, 只要做下列步驟:
# pkg_add -r gnucash
如果不能取得套件,你可以使用 Ports Collection:
# cd /usr/ports/finance/gnucash # make install clean
Gnumeric 是 GNOME 桌面環境中的試算表。 它的特點是能夠根據儲存格格式(cell format)及自動補齊的系統, 來方便自動地「猜出」使用者的輸入。 它也能夠輸入許多熱門的檔案格式,像是 Excel, Lotus 1-2-3, 或是 Quattro Pro。 Gnumeric 支援使用 math/guppi 繪圖軟體來繪圖。 它有許多內建的函數而且允許一般的儲存格格式,像是: 數字、貨幣、日期、時間及其他格式等。
要用套件安裝 Gnumeric,只要打以下指令:
# pkg_add -r gnumeric
如果套件不存在,你可以做下面的步驟來使用 Ports Collection 編譯安裝:
# cd /usr/ports/math/gnumeric # make install clean
Abacus 是個小巧又使用簡單的試算表。 它包含了許多內建的函數,在相關的領域如統計學、財務、數學中很實用。 它也可以輸出輸入 Excel 的檔案格式。 另外 Abacus也能夠輸出 PostScript 格式。
從套件安裝 Abacus 只要做:
# pkg_add -r abacus
如果套件不能取得的話,你可以使用 Ports Collection, 並用以下指令:
# cd /usr/ports/deskutils/abacus # make install clean
雖然 FreeBSD 是因為效能及穩定性而在 ISP 之間很流行, 不過它也可以完全當作桌面環境(desktop)來使用, 並不侷限於使用在伺服器上面。目前有數千種應用程式的 套件(packages) 或 ports, 可供使用,你可以根據你的需求打造出一個完美的桌面環境。
下面是這章涵蓋的所有桌面應用軟體之快速回顧表:
軟體名稱 | 套件名稱 | Ports 名稱 |
---|---|---|
Mozilla | mozilla | www/mozilla |
Opera | opera | www/opera |
Firefox | firefox | www/firefox |
KOffice | koffice-kde3 | editors/koffice-kde3 |
AbiWord | abiword | editors/abiword |
The GIMP | gimp | graphics/gimp |
OpenOffice.org | openoffice | editors/openoffice-1.1 |
Acrobat Reader | acroread | print/acroread7 |
gv | gv | print/gv |
Xpdf | xpdf | graphics/xpdf |
GQview | gqview | graphics/gqview |
GnuCash | gnucash | finance/gnucash |
Gnumeric | gnumeric | math/gnumeric |
Abacus | abacus | deskutils/abacus |
FreeBSD 廣泛地支援各種音效卡, 讓您可以享受來自電腦上的高傳真音質(Hi-Fi), 此外還包括了錄製和播放 MPEG Audio Layer 3 (MP3)、 WAV、 以及 Ogg Vorbis 等許多種格式聲音的能力。同時 FreeBSD Ports Collection 也包括了許多的應用程式, 讓您可以錄音、編修音效以及控制 MIDI 配備。
要是喜歡動手嘗試不同的體驗, FreeBSD 也能播放一般的視訊檔和 DVD。 編碼、轉換和播放視訊的程式比起處理聲音的程式略少一些。例如, 在撰寫這章時, FreeBSD Ports Collection 中還沒有類似 audio/sox 那樣好用的編碼工具,能夠用來轉換不同的格式。 不過,這個領域的軟體研發進展是相當迅速的。
本章將介紹設定音效卡的必要步驟。先前介紹到的 X11 (µÚ 5 章) 安裝和設定裡,已經講到了顯示卡的部份, 但要想有更好的播放效果, 仍需要一些細部調整。
讀完這章,您將了解:
如何設定系統,以正確識別音效卡。
如何運用樣本程式,以測試音效卡是否正常運作。
如何解決音效卡的設定問題。
如何播放、錄製 MP3 及其他聲音檔案格式。
X server 是如何支援顯示卡。
Ports Collections 內有哪些好用的影像播放、錄製軟體。
如何播放 DVD 的 .mpg 及 .avi 檔
如何從 CD 和 DVD 中擷取(rip)檔案。
如何設定電視卡
如何設定掃描器
在閱讀這章之前,您應當了解:
知道如何設定、安裝新的 kernel (µÚ 8 章)。
警告如果要用 mount(8) 指令來 mount 音樂光碟的話,通常會發生錯誤, 甚至導致 kernel panic。 這是因為音樂光碟是特殊編碼,而非一般的 ISO 檔案系統之故。
開始設定之前,必須先知道你的音效卡型號、晶片為何,以及是 PCI 或 ISA 規格。 FreeBSD 有支援許多種的 PCI、ISA 音效卡,請檢查支援的音效硬體表 Hardware Notes,以確認你的音效卡是否支援。 本文也會提到相對應該卡的驅動程式。
要使用音效卡,必須要載入正確的驅動程式才行。有兩種方式都可以完成這動作, 最簡單方式就是以 kldload(8) 來輕鬆載入 kernel 動態模組(module), 像是下列指令:
# kldload snd_emu10k1
或者把相關驅動程式加到 /boot/loader.conf 檔,像是:
snd_emu10k1_load="YES"
上面例子是給 Creative SoundBlaster® Live! 音效卡使用的。 其他可用的音效卡驅動程式模組,可參考 /boot/defaults/loader.conf 範例。 若不確定到底該用哪一種驅動程式,那麼可以試試載入 snd_driver 模組看看:
# kldload snd_driver
This is a metadriver loading the most common device drivers at once. This speeds up the search for the correct driver. It is also possible to load all sound drivers via the /boot/loader.conf facility.
If you wish to find out the driver selected for your soundcard after loading the snd_driver metadriver, you may check the /dev/sndstat file with the cat /dev/sndstat command.
注: Under FreeBSD 4.X, to load all sound drivers, you have to load the snd module instead of snd_driver.
A second method is to statically compile in support for your sound card in your kernel. The section below provides the information you need to add support for your hardware in this manner. For more information about recompiling your kernel, please see µÚ 8 章.
The first thing to do is adding the generic audio driver sound(4) to the kernel, for that you will need to add the following line to the kernel configuration file:
device sound
Under FreeBSD 4.X, you would use the following line:
device pcm
Then we have to add the support for our sound card. Therefore, we need to know which driver supports the card. Check the supported audio devices list of the Hardware Notes, to determine the correct driver for your sound card. For example, a Creative SoundBlaster Live! sound card is supported by the snd_emu10k1(4) driver. To add the support for this card, use the following:
device snd_emu10k1
Be sure to read the manual page of the driver for the syntax to use. Information regarding the syntax of sound drivers in the kernel configuration can also be found in the /usr/src/sys/conf/NOTES file (/usr/src/sys/i386/conf/LINT for FreeBSD 4.X).
Non-PnP ISA cards may require you to provide the kernel with information on the sound card settings (IRQ, I/O port, etc). This is done via the /boot/device.hints file. At system boot, the loader(8) will read this file and pass the settings to the kernel. For example, an old Creative SoundBlaster 16 ISA non-PnP card will use the snd_sbc(4) driver in conjunction with snd_sb16(4). For this card the following lines have to be added to the kernel configuration file:
device snd_sbc device snd_sb16
as well as the following in /boot/device.hints:
hint.sbc.0.at="isa" hint.sbc.0.port="0x220" hint.sbc.0.irq="5" hint.sbc.0.drq="1" hint.sbc.0.flags="0x15"
In this case, the card uses the 0x220 I/O port and the IRQ 5.
The syntax used in the /boot/device.hints file is covered in the sound driver manual page. On FreeBSD 4.X, these settings are directly written in the kernel configuration file. In the case of our ISA card, we would only use this line:
device sbc0 at isa? port 0x220 irq 5 drq 1 flags 0x15
The settings shown above are the defaults. In some cases, you may need to change the IRQ or the other settings to match your card. See the snd_sbc(4) manual page for more information.
注: Under FreeBSD 4.X, some systems with built-in motherboard sound devices may require the following option in the kernel configuration:
options PNPBIOS
After rebooting with the modified kernel, or after loading the required module, the sound card should appear in your system message buffer (dmesg(8)) as something like:
pcm0: <Intel ICH3 (82801CA)> port 0xdc80-0xdcbf,0xd800-0xd8ff irq 5 at device 31.5 on pci0 pcm0: [GIANT-LOCKED] pcm0: <Cirrus Logic CS4205 AC97 Codec>
The status of the sound card may be checked via the /dev/sndstat file:
# cat /dev/sndstat FreeBSD Audio Driver (newpcm) Installed devices: pcm0: <Intel ICH3 (82801CA)> at io 0xd800, 0xdc80 irq 5 bufsz 16384 kld snd_ich (1p/2r/0v channels duplex default)
The output from your system may vary. If no pcm devices show up, go back and review what was done earlier. Go through your kernel configuration file again and make sure the correct device is chosen. Common problems are listed in µÚ 7.2.2.1 節.
If all goes well, you should now have a functioning sound card. If your CD-ROM or DVD-ROM drive is properly coupled to your sound card, you can put a CD in the drive and play it with cdcontrol(1):
% cdcontrol -f /dev/acd0 play 1
Various applications, such as audio/workman can provide a friendlier interface. You may want to install an application such as audio/mpg123 to listen to MP3 audio files. A quick way to test the card is sending data to the /dev/dsp, like this:
% cat filename > /dev/dsp
where filename can be any file. This command line should produce some noise, confirming the sound card is actually working.
注: FreeBSD 4.X users need to create the sound card device nodes before being able to use it. If the card showed up in message buffer as pcm0, you will have to run the following as root:
# cd /dev # sh MAKEDEV snd0If the card detection returned pcm1, follow the same steps as shown above, replacing snd0 with snd1.
MAKEDEV will create a group of device nodes that will be used by the different sound related applications.
Sound card mixer levels can be changed via the mixer(8) command. More details can be found in the mixer(8) manual page.
Error | Solution |
---|---|
“unsupported subdevice XX” |
One or more of the device nodes was not created correctly. Repeat the steps above. |
“sb_dspwr(XX) timed out” |
The I/O port is not set correctly. |
“bad irq XX” |
The IRQ is set incorrectly. Make sure that the set IRQ and the sound IRQ are the same. |
“xxx: gus pcm not attached, out of memory” |
There is not enough available memory to use the device. |
“xxx: can't open /dev/dsp!” |
Check with fstat | grep dsp if another application is holding the device open. Noteworthy troublemakers are esound and KDE's sound support. |
It is often desirable to have multiple sources of sound that are able to play simultaneously, such as when esound or artsd do not support sharing of the sound device with a certain application.
FreeBSD lets you do this through Virtual Sound Channels, which can be set with the sysctl(8) facility. Virtual channels allow you to multiplex your sound card's playback channels by mixing sound in the kernel.
To set the number of virtual channels, there are two sysctl knobs which, if you are the root user, can be set like this:
# sysctl hw.snd.pcm0.vchans=4 # sysctl hw.snd.maxautovchans=4
The above example allocates four virtual channels, which is a practical number for
everyday use. hw.snd.pcm0.vchans
is the number of virtual
channels pcm0 has, and is configurable once a device has been
attached. hw.snd.maxautovchans is the number of virtual channels
a new audio device is given when it is attached using kldload(8). Since the
pcm module can be loaded independently of the hardware
drivers, hw.snd.maxautovchans
can store how many virtual
channels any devices which are attached later will be given.
注: You cannot change the number of virtual channels for a device while it is in use. First close any programs using the device, such as music players or sound daemons.
If you are not using
devfs(5), you
will have to point your applications at /dev/dsp0.x, where x is 0 to 3
if hw.snd.pcm.0.vchans
is set to 4 as in the above example.
On a system using
devfs(5), the
above will automatically be allocated transparently to the user.
注: 本功能只有在 FreeBSD 5.3-RELEASE 及之後版本才有支援。
The default values for the different mixer channels are hardcoded in the sourcecode of the pcm(4) driver. There are a lot of different applications and daemons that allow you to set values for the mixer they remember and set each time they are started, but this is not a clean solution, we want to have default values at the driver level. This is accomplished by defining the appropriate values in /boot/device.hints. E.g.:
hint.pcm.0.vol="100"
This will set the volume channel to a default value of 100, when the pcm(4) module is loaded.
MP3 (MPEG Layer 3 Audio) accomplishes near CD-quality sound, leaving no reason to let your FreeBSD workstation fall short of its offerings.
By far, the most popular X11 MP3 player is XMMS (X Multimedia System). Winamp skins can be used with XMMS since the GUI is almost identical to that of Nullsoft's Winamp. XMMS also has native plug-in support.
XMMS can be installed from the multimedia/xmms port or package.
XMMS' interface is intuitive, with a playlist, graphic equalizer, and more. Those familiar with Winamp will find XMMS simple to use.
The audio/mpg123 port is an alternative, command-line MP3 player.
mpg123 can be run by specifying the sound device and the MP3 file on the command line, as shown below:
# mpg123 -a /dev/dsp1.0 Foobar-GreatestHits.mp3 High Performance MPEG 1.0/2.0/2.5 Audio Player for Layer 1, 2 and 3. Version 0.59r (1999/Jun/15). Written and copyrights by Michael Hipp. Uses code from various people. See 'README' for more! THIS SOFTWARE COMES WITH ABSOLUTELY NO WARRANTY! USE AT YOUR OWN RISK! Playing MPEG stream from Foobar-GreatestHits.mp3 ... MPEG 1.0 layer III, 128 kbit/s, 44100 Hz joint-stereo
/dev/dsp1.0 should be replaced with the dsp device entry on your system.
Before encoding a CD or CD track to MP3, the audio data on the CD must be ripped onto the hard drive. This is done by copying the raw CDDA (CD Digital Audio) data to WAV files.
The cdda2wav tool, which is a part of the sysutils/cdrtools suite, is used for ripping audio information from CDs and the information associated with them.
With the audio CD in the drive, the following command can be issued (as root) to rip an entire CD into individual (per track) WAV files:
# cdda2wav -D 0,1,0 -B
cdda2wav will support ATAPI (IDE) CDROM drives. To rip from an IDE drive, specify the device name in place of the SCSI unit numbers. For example, to rip track 7 from an IDE drive:
# cdda2wav -D /dev/acd0a -t 7
The -D 0,1,0
indicates the SCSI device 0,1,0, which corresponds
to the output of cdrecord -scanbus.
To rip individual tracks, make use of the -t
option
as shown:
# cdda2wav -D 0,1,0 -t 7
This example rips track seven of the audio CDROM. To rip a range of tracks, for example, track one to seven, specify a range:
# cdda2wav -D 0,1,0 -t 1+7
The utility dd(1) can also be used to extract audio tracks on ATAPI drives, read µÚ 18.6.5 節 for more information on that possibility.
Nowadays, the mp3 encoder of choice is lame. Lame can be found at audio/lame in the ports tree.
Using the ripped WAV files, the following command will convert audio01.wav to audio01.mp3:
# lame -h -b 128 \ --tt "Foo Song Title" \ --ta "FooBar Artist" \ --tl "FooBar Album" \ --ty "2001" \ --tc "Ripped and encoded by Foo" \ --tg "Genre" \ audio01.wav audio01.mp3
128 kbits seems to be the standard MP3 bitrate in use. Many enjoy the higher
quality 160, or 192. The higher the bitrate, the more disk space the resulting MP3
will consume--but the quality will be higher. The -h
option turns on the “higher quality but a little slower”
mode. The options beginning with --t
indicate ID3 tags,
which usually contain song information, to be embedded within the MP3 file.
Additional encoding options can be found by consulting the lame man page.
In order to burn an audio CD from MP3s, they must be converted to a non-compressed WAV format. Both XMMS and mpg123 support the output of MP3 to an uncompressed file format.
Writing to Disk in XMMS:
Launch XMMS.
Right-click on the window to bring up the XMMS menu.
Select Preference under Options.
Change the Output Plugin to “Disk Writer Plugin”.
Press Configure.
Enter (or choose browse) a directory to write the uncompressed files to.
Load the MP3 file into XMMS as usual, with volume at 100% and EQ settings turned off.
Press Play —— XMMS will appear as if it is playing the MP3, but no music will be heard. It is actually playing the MP3 to a file.
Be sure to set the default Output Plugin back to what it was before in order to listen to MP3s again.
Writing to stdout in mpg123:
Run mpg123 -s audio01.mp3 > audio01.pcm
XMMS writes a file in the WAV format, while mpg123 converts the MP3 into raw PCM audio data. Both of these formats can be used with cdrecord to create audio CDs. You have to use raw PCM with burncd(8). If you use WAV files, you will notice a small tick sound at the beginning of each track, this sound is the header of the WAV file. You can simply remove the header of a WAV file with the utility SoX (it can be installed from the audio/sox port or package):
% sox -t wav -r 44100 -s -w -c 2 track.wav track.raw
Read µÚ 18.6 節 for more information on using a CD burner in FreeBSD.
Video playback is a very new and rapidly developing application area. Be patient. Not everything is going to work as smoothly as it did with sound.
Before you begin, you should know the model of the video card you have and the chip it uses. While Xorg and XFree86 support a wide variety of video cards, fewer give good playback performance. To obtain a list of extensions supported by the X server using your card use the command xdpyinfo(1) while X11 is running.
It is a good idea to have a short MPEG file which can be treated as a test file for evaluating various players and options. Since some DVD players will look for DVD media in /dev/dvd by default, or have this device name hardcoded in them, you might find it useful to make symbolic links to the proper devices:
# ln -sf /dev/acd0c /dev/dvd # ln -sf /dev/racd0c /dev/rdvd
On FreeBSD 5.X, which uses devfs(5) there is a slightly different set of recommended links:
# ln -sf /dev/acd0 /dev/dvd # ln -sf /dev/acd0 /dev/rdvd
Note that due to the nature of devfs(5), manually created links like these will not persist if you reboot your system. In order to create the symbolic links automatically whenever you boot your system, add the following lines to /etc/devfs.conf:
link acd0 dvd link acd0 rdvd
Additionally, DVD decryption, which requires invoking special DVD-ROM functions, requires write permission on the DVD devices.
Some of the ports discussed rely on the following kernel options to build correctly. Before attempting to build, add this option to the kernel configuration file, build a new kernel, and reboot:
options CPU_ENABLE_SSE
注: On FreeBSD 4.X options USER_LDT should be added to the kernel configuration file. This option is not available on FreeBSD 5.X and later version.
To enhance the shared memory X11 interface, it is recommended that the values of some sysctl(8) variables should be increased:
kern.ipc.shmmax=67108864 kern.ipc.shmall=32768
There are several possible ways to display video under X11. What will really work is largely hardware dependent. Each method described below will have varying quality across different hardware. Secondly, the rendering of video in X11 is a topic receiving a lot of attention lately, and with each version of Xorg, or of XFree86, there may be significant improvement.
A list of common video interfaces:
X11: normal X11 output using shared memory.
XVideo: an extension to the X11 interface which supports video in any X11 drawable.
SDL: the Simple Directmedia Layer.
DGA: the Direct Graphics Access.
SVGAlib: low level console graphics layer.
Xorg and XFree86 4.X have an extension called XVideo (aka Xvideo, aka Xv, aka xv) which allows video to be directly displayed in drawable objects through a special acceleration. This extension provides very good quality playback even on low-end machines.
To check whether the extension is running, use xvinfo:
% xvinfo
XVideo is supported for your card if the result looks like:
X-Video Extension version 2.2 screen #0 Adaptor #0: "Savage Streams Engine" number of ports: 1 port base: 43 operations supported: PutImage supported visuals: depth 16, visualID 0x22 depth 16, visualID 0x23 number of attributes: 5 "XV_COLORKEY" (range 0 to 16777215) client settable attribute client gettable attribute (current value is 2110) "XV_BRIGHTNESS" (range -128 to 127) client settable attribute client gettable attribute (current value is 0) "XV_CONTRAST" (range 0 to 255) client settable attribute client gettable attribute (current value is 128) "XV_SATURATION" (range 0 to 255) client settable attribute client gettable attribute (current value is 128) "XV_HUE" (range -180 to 180) client settable attribute client gettable attribute (current value is 0) maximum XvImage size: 1024 x 1024 Number of image formats: 7 id: 0x32595559 (YUY2) guid: 59555932-0000-0010-8000-00aa00389b71 bits per pixel: 16 number of planes: 1 type: YUV (packed) id: 0x32315659 (YV12) guid: 59563132-0000-0010-8000-00aa00389b71 bits per pixel: 12 number of planes: 3 type: YUV (planar) id: 0x30323449 (I420) guid: 49343230-0000-0010-8000-00aa00389b71 bits per pixel: 12 number of planes: 3 type: YUV (planar) id: 0x36315652 (RV16) guid: 52563135-0000-0000-0000-000000000000 bits per pixel: 16 number of planes: 1 type: RGB (packed) depth: 0 red, green, blue masks: 0x1f, 0x3e0, 0x7c00 id: 0x35315652 (RV15) guid: 52563136-0000-0000-0000-000000000000 bits per pixel: 16 number of planes: 1 type: RGB (packed) depth: 0 red, green, blue masks: 0x1f, 0x7e0, 0xf800 id: 0x31313259 (Y211) guid: 59323131-0000-0010-8000-00aa00389b71 bits per pixel: 6 number of planes: 3 type: YUV (packed) id: 0x0 guid: 00000000-0000-0000-0000-000000000000 bits per pixel: 0 number of planes: 0 type: RGB (packed) depth: 1 red, green, blue masks: 0x0, 0x0, 0x0
Also note that the formats listed (YUV2, YUV12, etc) are not present with every implementation of XVideo and their absence may hinder some players.
If the result looks like:
X-Video Extension version 2.2 screen #0 no adaptors present
Then XVideo is probably not supported for your card.
If XVideo is not supported for your card, this only means that it will be more difficult for your display to meet the computational demands of rendering video. Depending on your video card and processor, though, you might still be able to have a satisfying experience. You should probably read about ways of improving performance in the advanced reading µÚ 7.4.3 節.
The Simple Directmedia Layer, SDL, was intended to be a porting layer between Microsoft Windows, BeOS, and UNIX, allowing cross-platform applications to be developed which made efficient use of sound and graphics. The SDL layer provides a low-level abstraction to the hardware which can sometimes be more efficient than the X11 interface.
The SDL can be found at devel/sdl12.
Direct Graphics Access is an X11 extension which allows a program to bypass the X server and directly alter the framebuffer. Because it relies on a low level memory mapping to effect this sharing, programs using it must be run as root.
The DGA extension can be tested and benchmarked by dga(1). When dga is running, it changes the colors of the display whenever a key is pressed. To quit, use q.
This section discusses the software available from the FreeBSD Ports Collection which can be used for video playback. Video playback is a very active area of software development, and the capabilities of various applications are bound to diverge somewhat from the descriptions given here.
Firstly, it is important to know that many of the video applications which run on FreeBSD were developed as Linux applications. Many of these applications are still beta-quality. Some of the problems that you may encounter with video packages on FreeBSD include:
An application cannot playback a file which another application produced.
An application cannot playback a file which the application itself produced.
The same application on two different machines, rebuilt on each machine for that machine, plays back the same file differently.
A seemingly trivial filter like rescaling of the image size results in very bad artifacts from a buggy rescaling routine.
An application frequently dumps core.
Documentation is not installed with the port and can be found either on the web or under the port's work directory.
Many of these applications may also exhibit “Linux-isms”. That is, there may be issues resulting from the way some standard libraries are implemented in the Linux distributions, or some features of the Linux kernel which have been assumed by the authors of the applications. These issues are not always noticed and worked around by the port maintainers, which can lead to problems like these:
The use of /proc/cpuinfo to detect processor characteristics.
A misuse of threads which causes a program to hang upon completion instead of truly terminating.
Software not yet in the FreeBSD Ports Collection which is commonly used in conjunction with the application.
So far, these application developers have been cooperative with port maintainers to minimize the work-arounds needed for port-ing.
MPlayer is a recently developed and rapidly developing video player. The goals of the MPlayer team are speed and flexibility on Linux and other Unices. The project was started when the team founder got fed up with bad playback performance on then available players. Some would say that the graphical interface has been sacrificed for a streamlined design. However, once you get used to the command line options and the key-stroke controls, it works very well.
MPlayer resides in multimedia/mplayer. MPlayer performs a variety of hardware checks during the build process, resulting in a binary which will not be portable from one system to another. Therefore, it is important to build it from ports and not to use a binary package. Additionally, a number of options can be specified in the make command line, as described in the Makefile and at the start of the build:
# cd /usr/ports/multimedia/mplayer # make N - O - T - E Take a careful look into the Makefile in order to learn how to tune mplayer towards you personal preferences! For example, make WITH_GTK1 builds MPlayer with GTK1-GUI support. If you want to use the GUI, you can either install /usr/ports/multimedia/mplayer-skins or download official skin collections from http://www.mplayerhq.hu/homepage/dload.html
The default port options should be sufficient for most users. However, if you need the XviD codec, you have to specify the WITH_XVID option in the command line. The default DVD device can also be defined with the WITH_DVD_DEVICE option, by default /dev/acd0 will be used.
As of this writing, the MPlayer port will build its HTML documentation and two executables, mplayer, and mencoder, which is a tool for re-encoding video.
The HTML documentation for MPlayer is very informative. If the reader finds the information on video hardware and interfaces in this chapter lacking, the MPlayer documentation is a very thorough supplement. You should definitely take the time to read the MPlayer documentation if you are looking for information about video support in UNIX.
Any user of MPlayer must set up a .mplayer subdirectory of her home directory. To create this necessary subdirectory, you can type the following:
% cd /usr/ports/multimedia/mplayer % make install-user
The command options for mplayer are listed in the manual page. For even more detail there is HTML documentation. In this section, we will describe only a few common uses.
To play a file, such as testfile.avi, through one of the various video
interfaces set the -vo
option:
% mplayer -vo xv testfile.avi
% mplayer -vo sdl testfile.avi
% mplayer -vo x11 testfile.avi
# mplayer -vo dga testfile.avi
# mplayer -vo 'sdl:dga' testfile.avi
It is worth trying all of these options, as their relative performance depends on many factors and will vary significantly with hardware.
To play from a DVD, replace the testfile.avi with
dvd://N -dvd-device DEVICE
where N
is the title number to play and DEVICE is the device node for the DVD-ROM. For
example, to play title 3 from /dev/dvd:
# mplayer -vo xv dvd://3 -dvd-device /dev/dvd
注: The default DVD device can be defined during the build of the MPlayer port via the WITH_DVD_DEVICE option. By default, this device is /dev/acd0. More details can be found in the port Makefile.
To stop, pause, advance and so on, consult the keybindings, which are output by running mplayer -h or read the manual page.
Additional important options for playback are: -fs -zoom
which engages the fullscreen mode and -framedrop
which helps
performance.
In order for the mplayer command line to not become too large, the user can create a file .mplayer/config and set default options there:
vo=xv fs=yes zoom=yes
Finally, mplayer can be used to rip a DVD title into a .vob file. To dump out the second title from a DVD, type this:
# mplayer -dumpstream -dumpfile out.vob dvd://2 -dvd-device /dev/dvd
The output file, out.vob, will be MPEG and can be manipulated by the other packages described in this section.
Before using mencoder it is a good idea to familiarize yourself with the options from the HTML documentation. There is a manual page, but it is not very useful without the HTML documentation. There are innumerable ways to improve quality, lower bitrate, and change formats, and some of these tricks may make the difference between good or bad performance. Here are a couple of examples to get you going. First a simple copy:
% mencoder input.avi -oac copy -ovc copy -o output.avi
Improper combinations of command line options can yield output files that are
unplayable even by mplayer. Thus, if you just want
to rip to a file, stick to the -dumpfile
in mplayer.
To convert input.avi to the MPEG4 codec with MPEG3 audio encoding (audio/lame is required):
% mencoder input.avi -oac mp3lame -lameopts br=192 \ -ovc lavc -lavcopts vcodec=mpeg4:vhq -o output.avi
This has produced output playable by mplayer and xine.
input.avi can be replaced with dvd://1 -dvd-device /dev/dvd
and run as root to re-encode a DVD title directly. Since you are likely
to be dissatisfied with your results the first time around, it is recommended you
dump the title to a file and work on the file.
The xine video player is a project of wide scope aiming not only at being an all in one video solution, but also in producing a reusable base library and a modular executable which can be extended with plugins. It comes both as a package and as a port, multimedia/xine.
The xine player is still very rough around the edges, but it is clearly off to a good start. In practice, xine requires either a fast CPU with a fast video card, or support for the XVideo extension. The GUI is usable, but a bit clumsy.
As of this writing, there is no input module shipped with xine which will play CSS encoded DVD's. There are third party builds which do have modules for this built in them, but none of these are in the FreeBSD Ports Collection.
Compared to MPlayer, xine does more for the user, but at the same time, takes some of the more fine-grained control away from the user. The xine video player performs best on XVideo interfaces.
By default, xine player will start up in a graphical user interface. The menus can then be used to open a specific file:
% xine
Alternatively, it may be invoked to play a file immediately without the GUI with the command:
% xine -g -p mymovie.avi
The software transcode is not a player, but a suite of tools for re-encoding video and audio files. With transcode, one has the ability to merge video files, repair broken files, using command line tools with stdin/stdout stream interfaces.
A great number of options can be specified during the build from the multimedia/transcode port, we recommend the following command line to build transcode:
# make WITH_OPTIMIZED_CFLAGS=yes WITH_LIBA52=yes WITH_LAME=yes WITH_OGG=yes \ WITH_MJPEG=yes -DWITH_XVID=yes
The proposed settings should be sufficient for most users.
To illustrate transcode capacities, one example to show how to convert a DivX file into a PAL MPEG-1 file (PAL VCD):
% transcode -i input.avi -V --export_prof vcd-pal -o output_vcd % mplex -f 1 -o output_vcd.mpg output_vcd.m1v output_vcd.mpa
The resulting MPEG file, output_vcd.mpg, is ready to be played with MPlayer. You could even burn the file on a CD-R media to create a Video CD, in this case you will need to install and use both multimedia/vcdimager and sysutils/cdrdao programs.
There is a manual page for transcode, but you should also consult the transcode wiki for further information and examples.
The various video software packages for FreeBSD are developing rapidly. It is quite possible that in the near future many of the problems discussed here will have been resolved. In the mean time, those who want to get the very most out of FreeBSD's A/V capabilities will have to cobble together knowledge from several FAQs and tutorials and use a few different applications. This section exists to give the reader pointers to such additional information.
The MPlayer documentation is very technically informative. These documents should probably be consulted by anyone wishing to obtain a high level of expertise with UNIX video. The MPlayer mailing list is hostile to anyone who has not bothered to read the documentation, so if you plan on making bug reports to them, RTFM.
The xine HOWTO contains a chapter on performance improvement which is general to all players.
Finally, there are some other promising applications which the reader may try:
Avifile which is also a port multimedia/avifile.
Ogle which is also a port multimedia/ogle.
multimedia/dvdauthor, an open source package for authoring DVD content.
電視卡(TV card)可以讓您用電腦來看無線、有線電視節目。許多卡都是透過 RCA 或 S-video 輸入端子來接收視訊,而且有些卡還可接收 FM 廣播的功能。
FreeBSD 可透過 bktr(4) 驅動程式,來支援 PCI 介面的電視卡,只要這些卡使用的是 Brooktree Bt848/849/878/879 或 Conexant CN-878/Fusion 878a 視訊擷取晶片。此外,要再確認哪些卡上所附的選台功能是否有支援,可以參考 bktr(4) 說明,以查看所支援的硬體清單。
要用電視卡的話,就要載入 bktr(4) 驅動程式,這個可以透過在 /boot/loader.conf 檔加上下面這一行就可以了:
bktr_load="YES"
此外,也可以把該 kernel module 直接與 kernel 編譯在一起,作法就是在你的 kernel 設定檔內,加上下面這幾行:
device bktr device iicbus device iicbb device smbus
之所以要加上這些額外的驅動程式,是因為卡的各組成部分都是透過 I2C 匯流排而相互連接的。接下來,請重新編譯、安裝新的 kernel 。
安裝好新的 kernel 之後,要重開機才會生效。開機時,應該會看到類似下面的正確偵測到 TV card 訊息:
bktr0: <BrookTree 848A> mem 0xd7000000-0xd7000fff irq 10 at device 10.0 on pci0 iicbb0: <I2C bit-banging driver> on bti2c0 iicbus0: <Philips I2C bus> on iicbb0 master-only iicbus1: <Philips I2C bus> on iicbb0 master-only smbus0: <System Management Bus> on bti2c0 bktr0: Pinnacle/Miro TV, Philips SECAM tuner.
當然,這些訊息可能因您的硬體不同而有所不同。However you should check if the tuner is correctly detected; it is still possible to override some of the detected parameters with sysctl(8) MIBs and kernel configuration file options. For example, if you want to force the tuner to a Philips SECAM tuner, you should add the following line to your kernel configuration file:
options OVERRIDE_TUNER=6
or you can directly use sysctl(8):
# sysctl hw.bt848.tuner=6
See the bktr(4) manual page and the /usr/src/sys/conf/NOTES file for more details on the available options. (If you are under FreeBSD 4.X, /usr/src/sys/conf/NOTES is replaced with /usr/src/sys/i386/conf/LINT.)
要用電視卡,可以視需要安裝下列應用程式之一︰
multimedia/fxtv provides TV-in-a-window and image/audio/video capture capabilities.
multimedia/xawtv is also a TV application, with the same features as fxtv.
misc/alevt decodes and displays Videotext/Teletext.
audio/xmradio, an application to use the FM radio tuner coming with some TV cards.
audio/wmtune, a handy desktop application for radio tuners.
More applications are available in the FreeBSD Ports Collection.
If you encounter any problem with your TV card, you should check at first if the video capture chip and the tuner are really supported by the bktr(4) driver and if you used the right configuration options. For more support and various questions about your TV card you may want to contact and use the archives of the freebsd-multimedia mailing list.
FreeBSD 就像任何現代作業系統一樣,都可以使用掃描器。 在 FreeBSD 是透過 Ports Collection 內的 SANE(Scanner Access Now Easy) 所提供的 API 來操作掃描器。 SANE 也會使用一些 FreeBSD 的驅動程式來控制掃描器硬體。
FreeBSD 同時支援 SCSI 和 USB 兩種介面的掃描器。在做任何設定之前,請確保 SANE 有支援您的掃描器。 SANE 有張 支援硬體 的清單,這裡有介紹掃描器的支援情況和狀態訊息。 在 uscanner(4) 內也有提供一份 USB 掃描器的支援列表。
如同上述所提的 SCSI 和 USB 界面都有支援。這要取決於您的掃描器界面,而需要不同的設備驅動程式。
The GENERIC kernel by default includes the device drivers needed to support USB scanners. Should you decide to use a custom kernel, be sure that the following lines are present in your kernel configuration file:
device usb device uhci device ohci device uscanner
Depending upon the USB chipset on your motherboard, you will only need either device uhci or device ohci, however having both in the kernel configuration file is harmless.
If you do not want to rebuild your kernel and your kernel is not the GENERIC one, you can directly load the uscanner(4) device driver module with the kldload(8) command:
# kldload uscanner
To load this module at each system startup, add the following line to /boot/loader.conf:
uscanner_load="YES"
After rebooting with the correct kernel, or after loading the required module, plug in your USB scanner. The scanner should appear in your system message buffer (dmesg(8)) as something like:
uscanner0: EPSON EPSON Scanner, rev 1.10/3.02, addr 2
This shows that our scanner is using the /dev/uscanner0 device node.
注: On FreeBSD 4.X, the USB daemon (usbd(8)) must be running to be able to see some USB devices. To enable this, add usbd_enable="YES" to your /etc/rc.conf file and reboot the machine.
If your scanner comes with a SCSI interface, it is important to know which SCSI controller board you will use. According to the SCSI chipset used, you will have to tune your kernel configuration file. The GENERIC kernel supports the most common SCSI controllers. Be sure to read the NOTES file (LINT under FreeBSD 4.X) and add the correct line to your kernel configuration file. In addition to the SCSI adapter driver, you need to have the following lines in your kernel configuration file:
device scbus device pass
Once your kernel has been properly compiled, you should be able to see the devices in your system message buffer, when booting:
pass2 at aic0 bus 0 target 2 lun 0 pass2: <AGFA SNAPSCAN 600 1.10> Fixed Scanner SCSI-2 device pass2: 3.300MB/s transfers
If your scanner was not powered-on at system boot, it is still possible to manually force the detection by performing a SCSI bus scan with the camcontrol(8) command:
# camcontrol rescan all Re-scan of bus 0 was successful Re-scan of bus 1 was successful Re-scan of bus 2 was successful Re-scan of bus 3 was successful
Then the scanner will appear in the SCSI devices list:
# camcontrol devlist <IBM DDRS-34560 S97B> at scbus0 target 5 lun 0 (pass0,da0) <IBM DDRS-34560 S97B> at scbus0 target 6 lun 0 (pass1,da1) <AGFA SNAPSCAN 600 1.10> at scbus1 target 2 lun 0 (pass3) <PHILIPS CDD3610 CD-R/RW 1.00> at scbus2 target 0 lun 0 (pass2,cd0)
More details about SCSI devices, are available in the scsi(4) and camcontrol(8) manual pages.
The SANE system has been splitted in two parts: the backends ( graphics/sane-backends) and the frontends ( graphics/sane-frontends). The backends part provides access to the scanner itself. The SANE's supported devices list specifies which backend will support your image scanner. It is mandatory to determine the correct backend for your scanner if you want to be able to use your device. The frontends part provides the graphical scanning interface (xscanimage).
The first thing to do is install the graphics/sane-backends port or package. Then, use the sane-find-scanner command to check the scanner detection by the SANE system:
# sane-find-scanner -q found SCSI scanner "AGFA SNAPSCAN 600 1.10" at /dev/pass3
The output will show the interface type of the scanner and the device node used to attach the scanner to the system. The vendor and the product model may not appear, it is not important.
注: Some USB scanners require you to load a firmware, this is explained in the backend manual page. You should also read sane-find-scanner(1) and sane(7) manual pages.
Now we have to check if the scanner will be identified by a scanning frontend. By
default, the SANE backends comes with a command line
tool called
scanimage(1).
This command allows you to list the devices and to perform an image acquisition from
the command line. The -L
option is used to list the
scanner device:
# scanimage -L device `snapscan:/dev/pass3' is a AGFA SNAPSCAN 600 flatbed scanner
No output or a message saying that no scanners were identified indicates that scanimage(1) is unable to identify the scanner. If this happens, you will need to edit the backend configuration file and define the scanner device used. The /usr/local/etc/sane.d/ directory contains all backends configuration files. This identification problem does appear with certain USB scanners.
For example, with the USB scanner used in the µÚ 7.6.2.1 節, sane-find-scanner gives us the following information:
# sane-find-scanner -q found USB scanner (UNKNOWN vendor and product) at device /dev/uscanner0
The scanner is correctly detected, it uses the USB interface and is attached to the /dev/uscanner0 device node. We can now check if the scanner is correctly identified:
# scanimage -L No scanners were identified. If you were expecting something different, check that the scanner is plugged in, turned on and detected by the sane-find-scanner tool (if appropriate). Please read the documentation which came with this software (README, FAQ, manpages).
Since the scanner is not identified, we will need to edit the /usr/local/etc/sane.d/epson.conf file. The scanner model used was the EPSON Perfection® 1650, so we know the scanner will use the epson backend. Be sure to read the help comments in the backends configuration files. Line changes are quite simple: comment out all lines that have the wrong interface for your scanner (in our case, we will comment out all lines starting with the word scsi as our scanner uses the USB interface), then add at the end of the file a line specifying the interface and the device node used. In this case, we add the following line:
usb /dev/uscanner0
Please be sure to read the comments provided in the backend configuration file as well as the backend manual page for more details and correct syntax to use. We can now verify if the scanner is identified:
# scanimage -L device `epson:/dev/uscanner0' is a Epson GT-8200 flatbed scanner
Our USB scanner has been identified. It is not important if the brand and the model do not match. The key item to be concerned with is the `epson:/dev/uscanner0' field, which give us the right backend name and the right device node.
Once the scanimage -L command is able to see the scanner, the configuration is complete. The device is now ready to scan.
While scanimage(1) does allow us to perform an image acquisition from the command line, it is preferable to use a graphical user interface to perform image scanning. SANE offers a simple but efficient graphical interface: xscanimage ( graphics/sane-frontends).
Xsane (graphics/xsane) is another popular graphical scanning frontend. This frontend offers advanced features such as various scanning mode (photocopy, fax, etc.), color correction, batch scans, etc. Both of these applications are useable as a GIMP plugin.
All previous operations have been done with root privileges. You may however, need other users to have access to the scanner. The user will need read and write permissions to the device node used by the scanner. As an example, our USB scanner uses the device node /dev/uscanner0 which is owned by the operator group. Adding the user joe to the operator group will allow him to use the scanner:
# pw groupmod operator -m joe
For more details read the pw(8) manual page. You also have to set the correct write permissions (0660 or 0664) on the /dev/uscanner0 device node, by default the operator group can only read the device node. This is done by adding the following lines to the /etc/devfs.rules file:
[system=5] add path uscanner0 mode 660
Then add the following to /etc/rc.conf and reboot the machine:
devfs_system_ruleset="system"
More information regarding these lines can be found in the devfs(8) manual page. Under FreeBSD 4.X, the operator group has, by default, read and write permissions to /dev/uscanner0.
注: Of course, for security reasons, you should think twice before adding a user to any group, especially the operator group.
kernel 是整個 FreeBSD 作業系統的核心。 它控制了系統的整體運作,包含和記憶體管理、安全控管、網路、硬碟存取等等。 儘管目前 FreeBSD 大多可以用動態 module 來載入、卸載所需功能, 但有時候仍有必要學會重新調配 kernel。
讀完這章,您將了解︰
為何需要重新調配、編譯 kernel?
要怎麼修改 kernel 設定檔?
如何以 kernel 設定檔來建立、編譯新的 kernel 呢?
如何安裝新的 kernel。
如何處理 kernel 錯誤無法開機的情形。
本章所舉例的相關指令都是以 root 權限來進行。
早期的 FreeBSD 的 kernel 被戲稱為 “monolithic” kernel。 這意思是說當時的 kernel 是個大塊頭程式,且只支援固定的硬體而已。 如果您想改變 kernel 的設定,那麼必須編譯一個新的並重新開機,才能啟用。
現在的 FreeBSD 已快速成長到新型態的管理模式,其重要特色是: kernel 功能可以隨時依據需求, 而以動態載入或卸載相關的 kernel module。 這使得 kernel 能夠快速因應新的環境而作調整 (有點像是:筆記型電腦上的 PCMCIA 卡一樣即插即用) ,或是增加其他原本的預設 kernel(GENERIC)所沒有的功能。 這種模式,就叫做 modular kernel(核心模組)。
儘管如此,還是有一些功能仍須編譯在 kernel 內才行。因為有時候是因為這些功能與 kernel 結合的相當複雜緊密,而無法將它們弄成可動態載入的 module ;而有時候,則是因為沒有人有空來弄那些 kernel module 的實作。
重新調配、編譯 kernel 幾乎是每位 BSD 使用者所必須經歷的過程。 儘管這項工作可能比較耗時,但在 FreeBSD 的使用上會有許多好處。 跟必須支援大多數各式硬體的 GENERIC kernel 相比的話, 自行調配 kernel 不同處在於:可以更『體貼』,只支援『自己硬體』的部分就好。 好處在於,譬如︰
開機速度更快:因為自行調配的 kernel 只需要偵測您系統上的硬體, 所以讓啟動所花的過程更流暢快速。
佔用的記憶體更少:自行調配的 kernel 通常會比 GENERIC 核心使用更少的記憶體,由於 kernel 必須一直存放在記憶體內,因此這就顯得更加重要。因此, 對於記憶體較小的系統來說, 自行調配的 kernel 就可發揮更多的作用、揮灑空間。
可支援更多硬體:您可在自行調配的 kernel 增加一些原本 GENERIC 核心沒有提供的硬體支援,像是音效卡之類的。
在進行 kernel 設定的探索之旅前, 先把該機器各項硬體資訊作點調查會是明智之舉。 若 FreeBSD 並非主要的作業系統,那麼也可以輕鬆透過目前所使用的作業系統, 來查看相關硬體資訊表。 舉例來說,Microsoft 的 裝置管理員(Device Manager) 內通常會有目前有裝的硬體資訊。 而 裝置管理員 是在控制台。
注: Microsoft Windows 某些版本則是先透過 系統(System) 再進入 裝置管理員。
若該機器尚未安裝任何作業系統,那麼就要親自找出相關硬體資訊。 其中一種方式是透過 dmesg(8) 以及 man(1)。 FreeBSD 上大多硬體都會有相關的 man 說明有支援的規格型號, 並且開機的偵測過程中,也會列出有找到的硬體。 舉個例子, 下面這幾行是說有偵測到滑鼠,並且是以 psm 驅動程式:
psm0: <PS/2 Mouse> irq 12 on atkbdc0 psm0: [GIANT-LOCKED] psm0: [ITHREAD] psm0: model Generic PS/2 mouse, device ID 0
驅動程式必須要在自訂的 kernel 設定檔內加入,或者是用 loader.conf(5)。
dmesg 有時只顯示系統訊息而沒有開機偵測的部份, 遇到這種情況請查閱 /var/run/dmesg.boot 檔。
另外也可以透過 pciconf(8) 來列出更詳細的相關資訊。 舉例說明:
ath0@pci0:3:0:0: class=0x020000 card=0x058a1014 chip=0x1014168c rev=0x01 hdr=0x00 vendor = 'Atheros Communications Inc.' device = 'AR5212 Atheros AR5212 802.11abg wireless' class = network subclass = ethernet
上面顯示是透過 pciconf -lv
所看到的 ath 無線網卡驅動程式。 可以用 man ath 來查看 ath(4)
的相關說明。
在使用 man(1) 時,加上 -k
參數也可以提供比較精準的資訊。 以上述例子而言,可以改為打:
# man -k Atheros
就會列出有含上述關鍵字的相關 man 說明:
ath(4) - Atheros IEEE 802.11 wireless network driver ath_hal(4) - Atheros Hardware Access Layer (HAL)
知己知彼,先瞭解相關硬體環境,才能讓接下來的自訂 kernel 打造過程更為順利。
首先對 kernel 相關目錄作快速介紹。 這裡所提到的所有目錄都在 /usr/src/sys 內, 也可以用 /sys 這個 symbolic link 來連到這。 這裡的許多子目錄分別擺放 kernel 的各組成部分,但對打造 kernel 影響最重要的目錄是 arch/conf, 這裡是可以針對需求來修改自訂 kernel 相關設定。 此外,還有在編譯 kernel 過程中會暫時擺放的 compile 目錄。 剛講到的 arch 可以是右列架構之一: i386、alpha、 amd64、ia64、 powerpc、sparc64、 pc98(在日本較流行的另一種 PC 硬體架構)。 在各特定硬體架構目錄的東西,只搭配相對應的硬體架構而已。 而其餘的原始碼則是與硬體架構無關,可以在所有 FreeBSD 可裝的平台上共用。 整體目錄架構都是有邏輯可循,像是各項有支援的硬體設備、檔案系統, 以及相關選項通常都會擺在它們自己的子目錄內。
本章所用到的例子,都是你使用 i386 架構的機器。 請依實際情況,對相關目錄作調整即可。
注: 若您系統上 沒裝 /usr/src/sys 目錄, 也就是說沒裝 kernel source code 的話,那麼最簡單安裝方式就是以 root 權限來執行 sysinstall, 接著請選 ,然後選 接著為 再選 最後選 。 若不喜歡用 sysinstall 而且手邊有 “正式的” FreeBSD 光碟可以用的話, 那麼也可以用以下指令來安裝:
# mount /cdrom # mkdir -p /usr/src/sys # ln -s /usr/src/sys /sys # cat /cdrom/src/ssys.[a-d]* | tar -xzvf - # cat /cdrom/src/sbase.[a-d]* | tar -xzvf -
接下來,切換到 arch/conf 目錄, 複製 GENERIC 設定檔為你想稱呼的新 kernel 名稱。 例如:
# cd /usr/src/sys/i386/conf # cp GENERIC MYKERNEL
通常,命名方式都是大寫。如果你負責維護許多不同硬體架構的 FreeBSD 機器的話,那麼照該機器名稱(hostname)來命名會是比較明智。 上面例子中之所以命名為 MYKERNEL 就是因為這緣故。
提示: 建議不要把改過的 kernel 設定檔直接放在 /usr/src。 因為若編譯遇到其他問題時, 直接砍掉 /usr/src 再重練, 可能會是比較乾脆的選擇之一。 一旦真的砍了之後,你可能幾秒之後才會醒悟到: 你同時也砍掉自己改的 kernel 設定檔。 此外,也不要直接修改 GENERIC,因為下次你 更新 source tree時, 它會被新版覆蓋,而相關修改也將隨之而逝。
你也可考慮把 kernel 設定檔改放到其他地方,然後再到 i386 目錄內建個指向它的 symbolic link。
舉例:
# cd /usr/src/sys/i386/conf # mkdir /root/kernels # cp GENERIC /root/kernels/MYKERNEL # ln -s /root/kernels/MYKERNEL
現在,就開始用自己喜歡的編輯器來修改 MYKERNEL。 若才剛裝好 FreeBSD 而已,唯一可用的編輯器很可能是 vi 了,由於它的用法很多種,礙於篇幅將不詳細介紹, 你可在 參考書目 內找到相關書籍。 不過,FreeBSD 也提供另一個更好用的編輯器,它叫做 ee,對新手而言,這可能是蠻好的選擇。 你可以任意修改檔案內的相關註解以說明相關設定為何, 或者其他想改的 GENERIC 設定內容。
若你有在 SunOS 或者其他種 BSD 作業系統下進行編譯 kernel 的經驗, 那麼應該已經很熟悉本篇所介紹的大部分步驟。 換句話說,若您之前用的是 DOS 這類作業系統,那麼 GENERIC 設定檔的內容就可能比較難懂些,沒關係, 我們將在下面的 kernel 設定 會循序漸進地介紹。
注: 若有從 FreeBSD 計劃去 更新你的 source tree 的話, 則切記在進行任何升級之前,務必要察看 /usr/src/UPDATING。 這檔會介紹在更新過程中的重大議題或要注意的事項。 由於 /usr/src/UPDATING 是對應於你機器上目前的 FreeBSD source code 版本,因此會提供比本手冊更新的內容。
現在開始來編譯 kernel 吧。
編譯 Kernel
請切換至 /usr/src 目錄:
# cd /usr/src
編譯 kernel:
# make buildkernel KERNCONF=MYKERNEL
安裝新 kernel:
# make installkernel KERNCONF=MYKERNEL
注: 要有完整的 FreeBSD source tree 才能編譯 kernel。
提示: 預設情況下,在編譯自訂 kernel 時,全部的 kernel modules 也會一起重編。 若要快速升級 kernel, 或是只想重編所需的 kernel module,那麼在編譯 kernel 前要先改一下 /etc/make.conf,比如:
MODULES_OVERRIDE = linux acpi sound/sound sound/driver/ds1 ntfs上面該設定值為所希望重編的 kernel module 列表。
WITHOUT_MODULES = linux acpi sound/sound sound/driver/ds1 ntfs而上面這設定值則為不要編入的 kernel module 列表。 若想更瞭解其他 kernel 編譯的相關變數,請參閱 make.conf(5) 說明。
新的 kernel 會複製到 /boot/kernel 目錄內的 /boot/kernel/kernel,而舊的則移至 /boot/kernel.old/kernel。 現在呢,先關機,然後就會以新 kernel 重開機 若有問題的話,本章後面會介紹一些疑難雜症來協助你。 若新 kernel 無法開機的話,請參閱 這裡 以恢復系統運作。
注: 至於開機過程的其他相關檔案、設定,比如 loader(8) 及其設定,則放在 /boot。 Third party 或自訂的 kernel modules 則會放在 /boot/kernel,不過, 應注意要保持 kernel module 與 kernel 是否有同步, 這點很重要,否則會導致不穩或出問題。
kernel 設定檔的內容格式相當簡單。 每一行都包括一個關鍵字,以及一個或多個參數。事實上, 很多行大多只有一個參數。任何以 # 開頭的敘述都將被視為註解而被忽略。 接下來將以在 GENERIC 所出現的順序一一介紹之。 若要看與該平台架構有關的各選項、設備列表, 請參閱與 GENERIC 檔同目錄的 NOTES 檔。 而與平台架構差異較無關的通用部份,則可參閱 /usr/src/sys/conf/NOTES。
注: 若為了測試,而需要一份含有所有可用設定的設定檔,那麼請以 root 身份下:
# cd /usr/src/sys/i386/conf && make LINT
下面為 GENERIC 設定檔的範例, 其中包括說明用的註釋。 這例子應該與您機器上的 /usr/src/sys/i386/conf/GENERIC 相當接近。
machine i386
此處是指機器架構,必須為 alpha、amd64、 i386、ia64、 pc98、powerpc、 sparc64 其中之一。
cpu I486_CPU cpu I586_CPU cpu I686_CPU
上面設定是指定要用哪一種 CPU 型號。 也可以同時加上多組 CPU 型號 (比如說萬一不確定是否要用 I586_CPU 或 I686_CPU)。 然而自訂 kernel 的話,建議先確認自己的 CPU 型號,然後只用最適合的那組就好了。 若不確定 CPU 到底是用哪一種, 可以查閱 /var/run/dmesg.boot 的開機訊息以確定。
ident GENERIC
這是設定該 kernel 名稱為何,可以隨意命名之,像是取名為 MYKERNEL,若是有照先前說明來作大概會取這樣名字。 ident 後面的字串會在開機時顯示,因此若要辨認新 kernel 與常用 kernel 的話,就設定不同組名稱即可(比如在自訂實驗用的 kernel)。
#To statically compile in device wiring instead of /boot/device.hints #hints "GENERIC.hints" # Default places to look for devices.
device.hints(5) 可用來設定各項驅動程式的選項。 開機時 loader(8) 會檢查預設的 /boot/device.hints 設定檔。 使用 hints 選項,就可以把這些 hints 靜態編入 kernel 內。 如此一來就不必在 /boot 內建立 device.hints 檔。
makeoptions DEBUG=-g # Build kernel with gdb(1) debug symbols
加上 -g
選項的話,FreeBSD 會在編譯過程加上 debug
用的資訊,透過這選項會讓 gcc(1) 啟用 debug
所會用到的相關資訊。
options SCHED_4BSD # 4BSD scheduler
FreeBSD. 傳統所用(並且是預設)的系統 CPU scheduler。 若您不清楚要如何設定 ,請保留這設定。
options PREEMPTION # Enable kernel thread preemption
Allows threads that are in the kernel to be preempted by higher priority threads. It helps with interactivity and allows interrupt threads to run sooner rather than waiting.
options INET # InterNETworking
Networking support. Leave this in, even if you do not plan to be connected to a network. Most programs require at least loopback networking (i.e., making network connections within your PC), so this is essentially mandatory.
options INET6 # IPv6 communications protocols
This enables the IPv6 communication protocols.
options FFS # Berkeley Fast Filesystem
This is the basic hard drive file system. Leave it in if you boot from the hard disk.
options SOFTUPDATES # Enable FFS Soft Updates support
This option enables Soft Updates in the kernel, this will help speed up write access on the disks. Even when this functionality is provided by the kernel, it must be turned on for specific disks. Review the output from mount(8) to see if Soft Updates is enabled for your system disks. If you do not see the soft-updates option then you will need to activate it using the tunefs(8) (for existing file systems) or newfs(8) (for new file systems) commands.
options UFS_ACL # Support for access control lists
This option enables kernel support for access control lists. This relies on the use of extended attributes and UFS2, and the feature is described in detail in µÚ 14.12 節. ACLs are enabled by default and should not be disabled in the kernel if they have been used previously on a file system, as this will remove the access control lists, changing the way files are protected in unpredictable ways.
options UFS_DIRHASH # Improve performance on big directories
This option includes functionality to speed up disk operations on large directories, at the expense of using additional memory. You would normally keep this for a large server, or interactive workstation, and remove it if you are using FreeBSD on a smaller system where memory is at a premium and disk access speed is less important, such as a firewall.
options MD_ROOT # MD is a potential root device
This option enables support for a memory backed virtual disk used as a root device.
options NFSCLIENT # Network Filesystem Client options NFSSERVER # Network Filesystem Server options NFS_ROOT # NFS usable as /, requires NFSCLIENT
The network file system. Unless you plan to mount partitions from a UNIX file server over TCP/IP, you can comment these out.
options MSDOSFS # MSDOS Filesystem
The MS-DOS file system. Unless you plan to mount a DOS formatted hard drive partition at boot time, you can safely comment this out. It will be automatically loaded the first time you mount a DOS partition, as described above. Also, the excellent emulators/mtools software allows you to access DOS floppies without having to mount and unmount them (and does not require MSDOSFS at all).
options CD9660 # ISO 9660 Filesystem
The ISO 9660 file system for CDROMs. Comment it out if you do not have a CDROM drive or only mount data CDs occasionally (since it will be dynamically loaded the first time you mount a data CD). Audio CDs do not need this file system.
options PROCFS # Process filesystem(requires PSEUDOFS)
The process file system. This is a “pretend” file system mounted on /proc which allows programs like ps(1) to give you more information on what processes are running. Use of PROCFS is not required under most circumstances, as most debugging and monitoring tools have been adapted to run without PROCFS: installs will not mount this file system by default.
options PSEUDOFS # Pseudo-filesystem framework
6.X kernels making use of PROCFS must also include support for PSEUDOFS.
options GEOM_GPT # GUID Partition Tables.
This option brings the ability to have a large number of partitions on a single disk.
options COMPAT_43 # Compatible with BSD 4.3 [KEEP THIS!]
Compatibility with 4.3BSD. Leave this in; some programs will act strangely if you comment this out.
options COMPAT_FREEBSD4 # Compatible with FreeBSD4
This option is required on FreeBSD 5.X i386 and Alpha systems to support applications compiled on older versions of FreeBSD that use older system call interfaces. It is recommended that this option be used on all i386 and Alpha systems that may run older applications; platforms that gained support only in 5.X, such as ia64 and Sparc64, do not require this option.
options COMPAT_FREEBSD5 # 與 FreeBSD5 相容
此行是 FreeBSD 6.X 及更新的版本若需支援 FreeBSD 5.X 系統呼叫才需要設定。
options SCSI_DELAY=5000 # Delay (in ms) before probing SCSI
This causes the kernel to pause for 5 seconds before probing each SCSI device in your system. If you only have IDE hard drives, you can ignore this, otherwise you can try to lower this number, to speed up booting. Of course, if you do this and FreeBSD has trouble recognizing your SCSI devices, you will have to raise it again.
options KTRACE # ktrace(1) support
This enables kernel process tracing, which is useful in debugging.
options SYSVSHM # SYSV-style shared memory
This option provides for System V shared memory. The most common use of this is the XSHM extension in X, which many graphics-intensive programs will automatically take advantage of for extra speed. If you use X, you will definitely want to include this.
options SYSVMSG # SYSV-style message queues
Support for System V messages. This option only adds a few hundred bytes to the kernel.
options SYSVSEM # SYSV-style semaphores
Support for System V semaphores. Less commonly used but only adds a few hundred bytes to the kernel.
注: The
-p
option of the ipcs(1) command will list any processes using each of these System V facilities.
options _KPOSIX_PRIORITY_SCHEDULING # POSIX P1003_1B real-time extensions
Real-time extensions added in the 1993 POSIX®. Certain applications in the Ports Collection use these (such as StarOffice).
options KBD_INSTALL_CDEV # install a CDEV entry in /dev
This option is required to allow the creation of keyboard device nodes in /dev.
options ADAPTIVE_GIANT # Giant mutex is adaptive.
Giant is the name of a mutual exclusion mechanism (a sleep mutex) that protects a large set of kernel resources. Today, this is an unacceptable performance bottleneck which is actively being replaced with locks that protect individual resources. The ADAPTIVE_GIANT option causes Giant to be included in the set of mutexes adaptively spun on. That is, when a thread wants to lock the Giant mutex, but it is already locked by a thread on another CPU, the first thread will keep running and wait for the lock to be released. Normally, the thread would instead go back to sleep and wait for its next chance to run. If you are not sure, leave this in.
注: Note that on FreeBSD 8.0-CURRENT and later versions, all mutexes are adaptive by default, unless explicitly set to non-adaptive by compiling with the NO_ADAPTIVE_MUTEXES option. As a result, Giant is adaptive by default now, and the ADAPTIVE_GIANT option has been removed from the kernel configuration.
device apic # I/O APIC
The apic device enables the use of the I/O APIC for interrupt delivery. The apic device can be used in both UP and SMP kernels, but is required for SMP kernels. Add options SMP to include support for multiple processors.
注: apic 只限 i386 架構才有,其他架構則不必加上這行。
device eisa
Include this if you have an EISA motherboard. This enables auto-detection and configuration support for all devices on the EISA bus.
device pci
Include this if you have a PCI motherboard. This enables auto-detection of PCI cards and gatewaying from the PCI to ISA bus.
# Floppy drives device fdc
This is the floppy drive controller.
# ATA and ATAPI devices device ata
This driver supports all ATA and ATAPI devices. You only need one device ata line for the kernel to detect all PCI ATA/ATAPI devices on modern machines.
device atadisk # ATA disk drives
This is needed along with device ata for ATA disk drives.
device ataraid # ATA RAID drives
This is needed along with device ata for ATA RAID drives.
device atapicd # ATAPI CDROM drives
This is needed along with device ata for ATAPI CDROM drives.
device atapifd # ATAPI floppy drives
This is needed along with device ata for ATAPI floppy drives.
device atapist # ATAPI tape drives
This is needed along with device ata for ATAPI tape drives.
options ATA_STATIC_ID # Static device numbering
This makes the controller number static; without this, the device numbers are dynamically allocated.
# SCSI Controllers device ahb # EISA AHA1742 family device ahc # AHA2940 and onboard AIC7xxx devices options AHC_REG_PRETTY_PRINT # Print register bitfields in debug # output. Adds ~128k to driver. device ahd # AHA39320/29320 and onboard AIC79xx devices options AHD_REG_PRETTY_PRINT # Print register bitfields in debug # output. Adds ~215k to driver. device amd # AMD 53C974 (Teckram DC-390(T)) device isp # Qlogic family device ispfw # Firmware for QLogic HBAs- normally a module device mpt # LSI-Logic MPT-Fusion #device ncr # NCR/Symbios Logic device sym # NCR/Symbios Logic (newer chipsets + those of `ncr') device trm # Tekram DC395U/UW/F DC315U adapters device adv # Advansys SCSI adapters device adw # Advansys wide SCSI adapters device aha # Adaptec 154x SCSI adapters device aic # Adaptec 15[012]x SCSI adapters, AIC-6[23]60. device bt # Buslogic/Mylex MultiMaster SCSI adapters device ncv # NCR 53C500 device nsp # Workbit Ninja SCSI-3 device stg # TMC 18C30/18C50
SCSI controllers. Comment out any you do not have in your system. If you have an IDE only system, you can remove these altogether. The *_REG_PRETTY_PRINT lines are debugging options for their respective drivers.
# SCSI peripherals device scbus # SCSI bus (required for SCSI) device ch # SCSI media changers device da # Direct Access (disks) device sa # Sequential Access (tape etc) device cd # CD device pass # Passthrough device (direct SCSI access) device ses # SCSI Environmental Services (and SAF-TE)
SCSI peripherals. Again, comment out any you do not have, or if you have only IDE hardware, you can remove them completely.
注: The USB umass(4) driver and a few other drivers use the SCSI subsystem even though they are not real SCSI devices. Therefore make sure not to remove SCSI support, if any such drivers are included in the kernel configuration.
# RAID controllers interfaced to the SCSI subsystem device amr # AMI MegaRAID device arcmsr # Areca SATA II RAID device asr # DPT SmartRAID V, VI and Adaptec SCSI RAID device ciss # Compaq Smart RAID 5* device dpt # DPT Smartcache III, IV - See NOTES for options device hptmv # Highpoint RocketRAID 182x device rr232x # Highpoint RocketRAID 232x device iir # Intel Integrated RAID device ips # IBM (Adaptec) ServeRAID device mly # Mylex AcceleRAID/eXtremeRAID device twa # 3ware 9000 series PATA/SATA RAID # RAID controllers device aac # Adaptec FSA RAID device aacp # SCSI passthrough for aac (requires CAM) device ida # Compaq Smart RAID device mfi # LSI MegaRAID SAS device mlx # Mylex DAC960 family device pst # Promise Supertrak SX6000 device twe # 3ware ATA RAID
Supported RAID controllers. If you do not have any of these, you can comment them out or remove them.
# atkbdc0 controls both the keyboard and the PS/2 mouse device atkbdc # AT keyboard controller
The keyboard controller (atkbdc) provides I/O services for the AT keyboard and PS/2 style pointing devices. This controller is required by the keyboard driver (atkbd) and the PS/2 pointing device driver (psm).
device atkbd # AT keyboard
The atkbd driver, together with atkbdc controller, provides access to the AT 84 keyboard or the AT enhanced keyboard which is connected to the AT keyboard controller.
device psm # PS/2 mouse
Use this device if your mouse plugs into the PS/2 mouse port.
device kbdmux # keyboard multiplexer
多重鍵盤的支援。 若不打算同時接多組鍵盤的話, 那麼若要移除該行也沒關係。
device vga # VGA video card driver
The video card driver.
device splash # Splash screen and screen saver support
Splash screen at start up! Screen savers require this too.
# syscons is the default console driver, resembling an SCO console device sc
sc is the default console driver and resembles a SCO console. Since most full-screen programs access the console through a terminal database library like termcap, it should not matter whether you use this or vt, the VT220 compatible console driver. When you log in, set your TERM variable to scoansi if full-screen programs have trouble running under this console.
# Enable this for the pcvt (VT220 compatible) console driver #device vt #options XSERVER # support for X server on a vt console #options FAT_CURSOR # start with block cursor
This is a VT220-compatible console driver, backward compatible to VT100/102. It works well on some laptops which have hardware incompatibilities with sc. Also set your TERM variable to vt100 or vt220 when you log in. This driver might also prove useful when connecting to a large number of different machines over the network, where termcap or terminfo entries for the sc device are often not available —— vt100 should be available on virtually any platform.
device agp
Include this if you have an AGP card in the system. This will enable support for AGP, and AGP GART for boards which have these features.
# Power management support (see NOTES for more options) #device apm
Advanced Power Management support. Useful for laptops, although in FreeBSD 5.X and above this is disabled in GENERIC by default.
# Add suspend/resume support for the i8254. device pmtimer
Timer device driver for power management events, such as APM and ACPI.
# PCCARD (PCMCIA) support # PCMCIA and cardbus bridge support device cbb # cardbus (yenta) bridge device pccard # PC Card (16-bit) bus device cardbus # CardBus (32-bit) bus
PCMCIA support. You want this if you are using a laptop.
# Serial (COM) ports device sio # 8250, 16[45]50 based serial ports
These are the serial ports referred to as COM ports in the MS-DOS/Windows world.
注: If you have an internal modem on COM4 and a serial port at COM2, you will have to change the IRQ of the modem to 2 (for obscure technical reasons, IRQ2 = IRQ 9) in order to access it from FreeBSD. If you have a multiport serial card, check the manual page for sio(4) for more information on the proper values to add to your /boot/device.hints. Some video cards (notably those based on S3 chips) use IO addresses in the form of 0x*2e8, and since many cheap serial cards do not fully decode the 16-bit IO address space, they clash with these cards making the COM4 port practically unavailable.
Each serial port is required to have a unique IRQ (unless you are using one of the multiport cards where shared interrupts are supported), so the default IRQs for COM3 and COM4 cannot be used.
# Parallel port device ppc
This is the ISA-bus parallel port interface.
device ppbus # Parallel port bus (required)
Provides support for the parallel port bus.
device lpt # Printer
Support for parallel port printers.
注: All three of the above are required to enable parallel printer support.
device plip # TCP/IP over parallel
This is the driver for the parallel network interface.
device ppi # Parallel port interface device
The general-purpose I/O (“geek port”) + IEEE1284 I/O.
#device vpo # Requires scbus and da
This is for an Iomega Zip drive. It requires scbus and da support. Best performance is achieved with ports in EPP 1.9 mode.
#device puc
Uncomment this device if you have a “dumb” serial or parallel PCI card that is supported by the puc(4) glue driver.
# PCI Ethernet NICs. device de # DEC/Intel DC21x4x (“Tulip”) device em # Intel PRO/1000 adapter Gigabit Ethernet Card device ixgb # Intel PRO/10GbE Ethernet Card device txp # 3Com 3cR990 (“Typhoon”) device vx # 3Com 3c590, 3c595 (“Vortex”)
Various PCI network card drivers. Comment out or remove any of these not present in your system.
# PCI Ethernet NICs that use the common MII bus controller code. # NOTE: Be sure to keep the 'device miibus' line in order to use these NICs! device miibus # MII bus support
MII bus support is required for some PCI 10/100 Ethernet NICs, namely those which use MII-compliant transceivers or implement transceiver control interfaces that operate like an MII. Adding device miibus to the kernel config pulls in support for the generic miibus API and all of the PHY drivers, including a generic one for PHYs that are not specifically handled by an individual driver.
device bce # Broadcom BCM5706/BCM5708 Gigabit Ethernet device bfe # Broadcom BCM440x 10/100 Ethernet device bge # Broadcom BCM570xx Gigabit Ethernet device dc # DEC/Intel 21143 and various workalikes device fxp # Intel EtherExpress PRO/100B (82557, 82558) device lge # Level 1 LXT1001 gigabit ethernet device msk # Marvell/SysKonnect Yukon II Gigabit Ethernet device nge # NatSemi DP83820 gigabit ethernet device nve # nVidia nForce MCP on-board Ethernet Networking device pcn # AMD Am79C97x PCI 10/100 (precedence over 'lnc') device re # RealTek 8139C+/8169/8169S/8110S device rl # RealTek 8129/8139 device sf # Adaptec AIC-6915 (“Starfire”) device sis # Silicon Integrated Systems SiS 900/SiS 7016 device sk # SysKonnect SK-984x & SK-982x gigabit Ethernet device ste # Sundance ST201 (D-Link DFE-550TX) device stge # Sundance/Tamarack TC9021 gigabit Ethernet device ti # Alteon Networks Tigon I/II gigabit Ethernet device tl # Texas Instruments ThunderLAN device tx # SMC EtherPower II (83c170 “EPIC”) device vge # VIA VT612x gigabit ethernet device vr # VIA Rhine, Rhine II device wb # Winbond W89C840F device xl # 3Com 3c90x (“Boomerang”, “Cyclone”)
Drivers that use the MII bus controller code.
# ISA Ethernet NICs. pccard NICs included. device cs # Crystal Semiconductor CS89x0 NIC # 'device ed' requires 'device miibus' device ed # NE[12]000, SMC Ultra, 3c503, DS8390 cards device ex # Intel EtherExpress Pro/10 and Pro/10+ device ep # Etherlink III based cards device fe # Fujitsu MB8696x based cards device ie # EtherExpress 8/16, 3C507, StarLAN 10 etc. device lnc # NE2100, NE32-VL Lance Ethernet cards device sn # SMC's 9000 series of Ethernet chips device xe # Xircom pccard Ethernet # ISA devices that use the old ISA shims #device le
ISA Ethernet drivers. See /usr/src/sys/i386/conf/NOTES for details of which cards are supported by which driver.
# Wireless NIC cards device wlan # 802.11 support
對 802.11 標準的支援。 若要無線上網,則需加上這行。
device wlan_wep # 802.11 WEP support device wlan_ccmp # 802.11 CCMP support device wlan_tkip # 802.11 TKIP support
對 802.11 加密設備的支援。 若要安全加密以及 802.11i 安全協定, 則需加上這行。
device an # Aironet 4500/4800 802.11 wireless NICs. device ath # Atheros pci/cardbus NIC's device ath_hal # Atheros HAL (Hardware Access Layer) device ath_rate_sample # SampleRate tx rate control for ath device an # Aironet 4500/4800 802.11 wireless NICs. device awi # BayStack 660 and others device ral # Ralink Technology RT2500 wireless NICs. device wi # WaveLAN/Intersil/Symbol 802.11 wireless NICs. #device wl # Older non 802.11 Wavelan wireless NIC.
Support for various wireless cards.
# Pseudo devices device loop # Network loopback
This is the generic loopback device for TCP/IP. If you telnet or FTP to localhost (a.k.a. 127.0.0.1) it will come back at you through this device. This is mandatory.
device random # Entropy device
Cryptographically secure random number generator.
device ether # Ethernet support
ether is only needed if you have an Ethernet card. It includes generic Ethernet protocol code.
device sl # Kernel SLIP
sl is for SLIP support. This has been almost entirely supplanted by PPP, which is easier to set up, better suited for modem-to-modem connection, and more powerful.
device ppp # Kernel PPP
This is for kernel PPP support for dial-up connections. There is also a version of PPP implemented as a userland application that uses tun and offers more flexibility and features such as demand dialing.
device tun # Packet tunnel.
This is used by the userland PPP software. See the PPP section of this book for more information.
device pty # Pseudo-ttys (telnet etc)
This is a “pseudo-terminal” or simulated login port. It is used by incoming telnet and rlogin sessions, xterm, and some other applications such as Emacs.
device md # Memory “disks”
Memory disk pseudo-devices.
device gif # IPv6 and IPv4 tunneling
This implements IPv6 over IPv4 tunneling, IPv4 over IPv6 tunneling, IPv4 over IPv4 tunneling, and IPv6 over IPv6 tunneling. The gif device is “auto-cloning”, and will create device nodes as needed.
device faith # IPv6-to-IPv4 relaying (translation)
This pseudo-device captures packets that are sent to it and diverts them to the IPv4/IPv6 translation daemon.
# The `bpf' device enables the Berkeley Packet Filter. # Be aware of the administrative consequences of enabling this! # Note that 'bpf' is required for DHCP. device bpf # Berkeley packet filter
This is the Berkeley Packet Filter. This pseudo-device allows network interfaces to be placed in promiscuous mode, capturing every packet on a broadcast network (e.g., an Ethernet). These packets can be captured to disk and or examined with the tcpdump(1) program.
注: The bpf(4) device is also used by dhclient(8) to obtain the IP address of the default router (gateway) and so on. If you use DHCP, leave this uncommented.
# USB support device uhci # UHCI PCI->USB interface device ohci # OHCI PCI->USB interface device ehci # EHCI PCI->USB interface (USB 2.0) device usb # USB Bus (required) #device udbp # USB Double Bulk Pipe devices device ugen # Generic device uhid # “Human Interface Devices” device ukbd # Keyboard device ulpt # Printer device umass # Disks/Mass storage - Requires scbus and da device ums # Mouse device ural # Ralink Technology RT2500USB wireless NICs device urio # Diamond Rio 500 MP3 player device uscanner # Scanners # USB Ethernet, requires mii device aue # ADMtek USB Ethernet device axe # ASIX Electronics USB Ethernet device cdce # Generic USB over Ethernet device cue # CATC USB Ethernet device kue # Kawasaki LSI USB Ethernet device rue # RealTek RTL8150 USB Ethernet
Support for various USB devices.
# FireWire support device firewire # FireWire bus code device sbp # SCSI over FireWire (Requires scbus and da) device fwe # Ethernet over FireWire (non-standard!)
Support for various Firewire devices.
For more information and additional devices supported by FreeBSD, see /usr/src/sys/i386/conf/NOTES.
Large memory configuration machines require access to more than the 4 gigabyte limit on User+Kernel Virtual Address (KVA) space. Due to this limitation, Intel added support for 36-bit physical address space access in the Pentium Pro and later line of CPUs.
The Physical Address Extension (PAE)
capability of the Intel Pentium Pro and later CPUs allows memory configurations of
up to 64 gigabytes. FreeBSD provides support for this capability via the
PAE
kernel configuration option, available in all
current release versions of FreeBSD. Due to the limitations of the Intel memory
architecture, no distinction is made for memory above or below 4 gigabytes. Memory
allocated above 4 gigabytes is simply added to the pool of available
memory.
To enable PAE support in the kernel, simply add the following line to your kernel configuration file:
options PAE
注: The PAE support in FreeBSD is only available for Intel IA-32 processors. It should also be noted, that the PAE support in FreeBSD has not received wide testing, and should be considered beta quality compared to other stable features of FreeBSD.
PAE support in FreeBSD has a few limitations:
A process is not able to access more than 4 gigabytes of VM space.
KLD modules cannot be loaded into a PAE enabled kernel, due to the differences in the build framework of a module and the kernel.
Device drivers that do not use the bus_dma(9) interface will cause data corruption in a PAE enabled kernel and are not recommended for use. For this reason, a PAE kernel configuration file is provided in FreeBSD which excludes all drivers not known to work in a PAE enabled kernel.
Some system tunables determine memory resource usage by the amount of available
physical memory. Such tunables can unnecessarily over-allocate due to the
large memory nature of a PAE system.
One such example is the kern.maxvnodes
sysctl, which
controls the maximum number of vnodes allowed in the kernel. It is advised to
adjust this and other such tunables to a reasonable value.
It might be necessary to increase the kernel virtual address (KVA) space or to reduce the amount of specific
kernel resource that is heavily used (see above) in order to avoid KVA exhaustion. The KVA_PAGES
kernel option can be used for increasing the
KVA space.
For performance and stability concerns, it is advised to consult the tuning(7) manual page. The pae(4) manual page contains up-to-date information on FreeBSD's PAE support.
There are five categories of trouble that can occur when building a custom kernel. They are:
If the config(8) command fails when you give it your kernel description, you have probably made a simple error somewhere. Fortunately, config(8) will print the line number that it had trouble with, so that you can quickly locate the line containing the error. For example, if you see:
config: line 17: syntax error
Make sure the keyword is typed correctly by comparing it to the GENERIC kernel or another reference.
If the make command fails, it usually signals an error in your kernel description which is not severe enough for config(8) to catch. Again, look over your configuration, and if you still cannot resolve the problem, send mail to the FreeBSD general questions 郵遞論壇 with your kernel configuration, and it should be diagnosed quickly.
If your new kernel does not boot, or fails to recognize your devices, do not panic! Fortunately, FreeBSD has an excellent mechanism for recovering from incompatible kernels. Simply choose the kernel you want to boot from at the FreeBSD boot loader. You can access this when the system boot menu appears. Select the “Escape to a loader prompt” option, number six. At the prompt, type unload kernel and then type boot /boot/kernel.old/kernel, or the filename of any other kernel that will boot properly. When reconfiguring a kernel, it is always a good idea to keep a kernel that is known to work on hand.
After booting with a good kernel you can check over your configuration file and try to build it again. One helpful resource is the /var/log/messages file which records, among other things, all of the kernel messages from every successful boot. Also, the dmesg(8) command will print the kernel messages from the current boot.
注: If you are having trouble building a kernel, make sure to keep a GENERIC, or some other kernel that is known to work on hand as a different name that will not get erased on the next build. You cannot rely on kernel.old because when installing a new kernel, kernel.old is overwritten with the last installed kernel which may be non-functional. Also, as soon as possible, move the working kernel to the proper /boot/kernel location or commands such as ps(1) may not work properly. To do this, simply rename the directory containing the good kernel:
# mv /boot/kernel /boot/kernel.bad # mv /boot/kernel.good /boot/kernel
If you have installed a different version of the kernel from the one that the system utilities have been built with, for example, a -CURRENT kernel on a -RELEASE, many system-status commands like ps(1) and vmstat(8) will not work any more. You should recompile and install a world built with the same version of the source tree as your kernel. This is one reason it is not normally a good idea to use a different version of the kernel from the rest of the operating system.
FreeBSD 可以和各式各樣的印表機搭配列印, 從最老的撞針式印表機到最新的雷射印表機都沒問題, 讓您的應用程式可以產生出高品質的文件列印輸出。
也可以把 FreeBSD 設定成一台網路列印伺服器;這時候的 FreeBSD 能接收其他電腦送來的列印工作,包括其他 FreeBSD 的電腦、Windows 的電腦以及 Mac OS 的電腦。 FreeBSD 會確保同時只有一件文件正在列印,而且可以統計哪個使用者及機器印得最多, 還有就是印出接下來是誰的文件這類的“標題”頁等。
讀完這章,您將了解:
如何設定 FreeBSD 的列印多工緩衝處理器。
如何安裝列印過濾器以分別處理特殊的列印工作, 包括把收到的文件轉換成您的印表機看得懂的列印格式等。
了解如何在您列印時順便印出頁首或標題。
如何利用別台電腦上的印表機列印。
如何利用直接接在網路上的印表機列印。
如何控制印表機的權限,包括限制列印工作的檔案大小, 以及不允許特定使用者列印等。
如何記下印表機的統計資料,以及各帳號的印表機使用量。
如何解決列印時遇到的問題。
在開始閱讀這章之前,您需要︰
要有設定、編譯 kernel 的基礎概念 (µÚ 8 章)。
要在 FreeBSD 上使用印表機,您需要設定好 Berkeley 行列式印表機列印緩衝系統,又稱為 LPD 列印緩衝系統,或者就叫他 LPD 吧。 這是 FreeBSD 標準的印表機控制系統,本章會介紹並教您如何設定 LPD。
如果您已經對 LPD 或是其他列印緩衝系統很熟悉了, 您可以直接跳到基本設定。
LPD 控制著主機上印表機的一切。 它負責這些工作:
控制本機及網路印表機的使用。
讓使用者可以列印文件,送出的文件稱為工作。
為每台印表機準備一個佇列, 避免多個使用者同時使用同一台印表機。
列印 header pages (又稱為 banner or burst pages),方便使用者在出紙閘中找到自已列印的文件。
把接在串列埠上的印表機的通訊參數設定好。
利用網路傳送列印工作給別台主機上的 LPD。
執行特別的過濾程式將列印工作格式化以配合不同的列印語言或印表機。
統計印表機的使用情況。
藉由設定檔 (/etc/printcap) 以及過濾程式的幫助, 您可以讓大多數的印表機配合 LPD 達成上述全部或部份的功能。
如果您的系統是個人使用, 不需要控制存取權限、列印標題頁或者統計使用情況等功能時, 您可能會覺得很奇怪為什麼還需要去管這個多工緩衝處理器。 當然要直接控制印表機可行的, 不過無論如何您還是需要多工緩衝處理器,因為:
LPD 可以在背景 (background) 列印,您不需要在那邊等文件送到印表機。
LPD 可以很輕鬆地用過濾器增加日期 / 時間於頁首或是把特別的檔案格式 (像是 TeX DVI 檔) 轉換成印表機看得懂的的格式,您不需要手動去做這些步驟。
許多免費或商業軟體提供的列印功能通常都是和多工緩衝處理器溝通。 透過設定緩衝系統,支援您現有或是即將要安裝的其他軟體將變得更容易。
要用印表機搭配 LPD 多工緩衝系統,您需要有印表機這個硬體以及 LPD 這套軟體。 本手冊提供了兩階段的設定說明:
閱讀 簡易印表機設定 來學習如何連接印表機、讓印表機和 LPD 溝通以及列印純文字文件。
閱讀 進階印表機設定 來學習如何列印各種特殊格式文件、列印首頁、網路列印、 控制印表機權限以及統計使用狀況等。
本章節會告訴您如何設定印表機設備和 LPD 軟體以使用印表機, 基本教學內容:
如果您要把印表機設定接收網路列印資料而不是本機端的話,請參考 印表機及網路資料傳輸介面。
這個章節雖然叫做“簡易印表機設定”, 實際上還是有點複雜的。 最困難的部份是讓你的印表機和電腦上的 LPD 緩衝器能夠正常運作。 一旦印表機可以正常工作之後, 像是印首頁或是做列印統計這些進階的功能就不難做到了。
本章節討論各種連接印表機到 PC 的方式。 這裡會提到不同種類的連接埠和連接線, 以及為了讓 FreeBSD 能和印表機溝通您可能會需要開啟的核心參數等。
如果您已經把印表機接上電腦, 而且在其他作業系統上有成功列印過的話,可以直接跳至 軟體設定。
市售個人電腦印表機一般來說不出這三種界面:
序列 (Serial) 界面,又稱為 RS-232 或 COM 埠, 用您電腦上的序列埠傳送資料到印表機。 序列界面廣泛的為電腦業界所採用, 所以排線容易取得,要設定連線並不困難。 然而序列介面有時候會需要使用較特別的排線, 這時候就有可能需要設定一些較為複雜的通訊參數了。 大部份 PC 序列埠的傳輸速度最高只到 115200 bps, 因此想要用序列埠來列印大圖是不切實際的。
並列 (Parallel) 界面利用電腦的並列埠將資料送到印表機。 並列埠比 RS-232 序列埠還快,也是一種電腦業界常用的界面。 這種界面的排線非常容易取得,但是較難用手工打造。 通常來說並列界面並沒有什麼通訊參數需要指定, 所以設定起來超級容易。
並列埠界面有時候也會被稱為 “Centronics” 界面,這是印表機的接頭的名稱。
USB 界面,也就是通用序列匯流排,傳輸速率比並列界面或是 RS-232 序列界面都來得快,而且 USB 排線單純又便宜。 對列印工作而言,USB 比 RS-232 序列埠或是並列埠都來得好,但是在 UNIX 系統上的支援度較差。 購買同時具有 USB 及並列埠兩種界面的印表機可以避免掉這種問題。
一般而言,並列界面只能提供單向傳輸 (電腦至印表機),而要用 USB 才能提供雙向。 然而在 FreeBSD 下,使用較新的並列埠 (EPP 和 ECP) 以及印表機,再配合使用 IEEE-1284 相容排線也可以做到雙向溝通。
電腦和印表機之間藉由並列埠行進雙向溝通的方式有兩種。 第一種是使用特製的、能和特定印表機溝通的 FreeBSD 印表機驅動程式。 這種方式在噴墨印表機上很常見,用來回報墨水存量以及其他狀態資訊等。 第二種方法是用 PostScript,如果印表機有支援的話。
PostScript jobs are actually programs sent to the printer; they need not produce paper at all and may return results directly to the computer. PostScript also uses two-way communication to tell the computer about problems, such as errors in the PostScript program or paper jams. Your users may be appreciative of such information. Furthermore, the best way to do effective accounting with a PostScript printer requires two-way communication: you ask the printer for its page count (how many pages it has printed in its lifetime), then send the user's job, then ask again for its page count. Subtract the two values and you know how much paper to charge to the user.
To hook up a printer using a parallel interface, connect the Centronics cable between the printer and the computer. The instructions that came with the printer, the computer, or both should give you complete guidance.
Remember which parallel port you used on the computer. The first parallel port is ppc0 to FreeBSD; the second is ppc1, and so on. The printer device name uses the same scheme: /dev/lpt0 for the printer on the first parallel ports etc.
To hook up a printer using a serial interface, connect the proper serial cable between the printer and the computer. The instructions that came with the printer, the computer, or both should give you complete guidance.
If you are unsure what the “proper serial cable” is, you may wish to try one of the following alternatives:
A modem cable connects each pin of the connector on one end of the cable straight through to its corresponding pin of the connector on the other end. This type of cable is also known as a “DTE-to-DCE” cable.
A null-modem cable connects some pins straight through, swaps others (send data to receive data, for example), and shorts some internally in each connector hood. This type of cable is also known as a “DTE-to-DTE” cable.
A serial printer cable, required for some unusual printers, is like the null-modem cable, but sends some signals to their counterparts instead of being internally shorted.
You should also set up the communications parameters for the printer, usually through front-panel controls or DIP switches on the printer. Choose the highest bps (bits per second, sometimes baud rate) that both your computer and the printer can support. Choose 7 or 8 data bits; none, even, or odd parity; and 1 or 2 stop bits. Also choose a flow control protocol: either none, or XON/XOFF (also known as “in-band” or “software”) flow control. Remember these settings for the software configuration that follows.
This section describes the software setup necessary to print with the LPD spooling system in FreeBSD.
Here is an outline of the steps involved:
Configure your kernel, if necessary, for the port you are using for the printer; section Kernel Configuration tells you what you need to do.
Set the communications mode for the parallel port, if you are using a parallel port; section Setting the Communication Mode for the Parallel Port gives details.
Test if the operating system can send data to the printer. Section Checking Printer Communications gives some suggestions on how to do this.
Set up LPD for the printer by modifying the file /etc/printcap. You will find out how to do this later in this chapter.
The operating system kernel is compiled to work with a specific set of devices. The serial or parallel interface for your printer is a part of that set. Therefore, it might be necessary to add support for an additional serial or parallel port if your kernel is not already configured for one.
To find out if the kernel you are currently using supports a serial interface, type:
# grep sioN /var/run/dmesg.boot
Where N is the number of the serial port, starting from zero. If you see output similar to the following:
sio2 at port 0x3e8-0x3ef irq 5 on isa sio2: type 16550A
then the kernel supports the port.
To find out if the kernel supports a parallel interface, type:
# grep ppcN /var/run/dmesg.boot
Where N is the number of the parallel port, starting from zero. If you see output similar to the following:
ppc0: <Parallel port> at port 0x378-0x37f irq 7 on isa0 ppc0: SMC-like chipset (ECP/EPP/PS2/NIBBLE) in COMPATIBLE mode ppc0: FIFO with 16/16/8 bytes threshold
then the kernel supports the port.
You might have to reconfigure your kernel in order for the operating system to recognize and use the parallel or serial port you are using for the printer.
To add support for a serial port, see the section on kernel configuration. To add support for a parallel port, see that section and the section that follows.
When you are using the parallel interface, you can choose whether FreeBSD should use interrupt-driven or polled communication with the printer. The generic printer device driver (lpt(4)) on FreeBSD uses the ppbus(4) system, which controls the port chipset with the ppc(4) driver.
The interrupt-driven method is the default with the GENERIC kernel. With this method, the operating system uses an IRQ line to determine when the printer is ready for data.
The polled method directs the operating system to repeatedly ask the printer if it is ready for more data. When it responds ready, the kernel sends more data.
The interrupt-driven method is usually somewhat faster but uses up a precious IRQ line. Some newer HP printers are claimed not to work correctly in interrupt mode, apparently due to some (not yet exactly understood) timing problem. These printers need polled mode. You should use whichever one works. Some printers will work in both modes, but are painfully slow in interrupt mode.
You can set the communications mode in two ways: by configuring the kernel or by using the lptcontrol(8) program.
To set the communications mode by configuring the kernel:
Edit your kernel configuration file. Look for an ppc0 entry. If you are setting up the second parallel port, use ppc1 instead. Use ppc2 for the third port, and so on.
If you want interrupt-driven mode, edit the following line:
hint.ppc.0.irq="N"
in the /boot/device.hints file and replace N with the right IRQ number. The kernel configuration file must also contain the ppc(4) driver:
device ppc
If you want polled mode, remove in your /boot/device.hints file, the following line:
hint.ppc.0.irq="N"
In some cases, this is not enough to put the port in polled mode under FreeBSD. Most of time it comes from acpi(4) driver, this latter is able to probe and attach devices, and therefore, control the access mode to the printer port. You should check your acpi(4) configuration to correct this problem.
Save the file. Then configure, build, and install the kernel, then reboot. See kernel configuration for more details.
To set the communications mode with lptcontrol(8):
Type:
# lptcontrol -i -d /dev/lptN
to set interrupt-driven mode for lptN.
Type:
# lptcontrol -p -d /dev/lptN
to set polled-mode for lptN.
You could put these commands in your /etc/rc.local file to set the mode each time your system boots. See lptcontrol(8) for more information.
Before proceeding to configure the spooling system, you should make sure the operating system can successfully send data to your printer. It is a lot easier to debug printer communication and the spooling system separately.
To test the printer, we will send some text to it. For printers that can immediately print characters sent to them, the program lptest(1) is perfect: it generates all 96 printable ASCII characters in 96 lines.
For a PostScript (or other language-based) printer, we will need a more sophisticated test. A small PostScript program, such as the following, will suffice:
%!PS 100 100 moveto 300 300 lineto stroke 310 310 moveto /Helvetica findfont 12 scalefont setfont (Is this thing working?) show showpage
The above PostScript code can be placed into a file and used as shown in the examples appearing in the following sections.
注: When this document refers to a printer language, it is assuming a language like PostScript, and not Hewlett Packard's PCL. Although PCL has great functionality, you can intermingle plain text with its escape sequences. PostScript cannot directly print plain text, and that is the kind of printer language for which we must make special accommodations.
This section tells you how to check if FreeBSD can communicate with a printer connected to a parallel port.
To test a printer on a parallel port:
Become root with su(1).
Send data to the printer.
If the printer can print plain text, then use lptest(1). Type:
# lptest > /dev/lptN
Where N is the number of the parallel port, starting from zero.
If the printer understands PostScript or other printer language, then send a small program to the printer. Type:
# cat > /dev/lptN
Then, line by line, type the program carefully as you cannot edit a line once you have pressed RETURN or ENTER. When you have finished entering the program, press CONTROL+D, or whatever your end of file key is.
Alternatively, you can put the program in a file and type:
# cat file > /dev/lptN
Where file is the name of the file containing the program you want to send to the printer.
You should see something print. Do not worry if the text does not look right; we will fix such things later.
This section tells you how to check if FreeBSD can communicate with a printer on a serial port.
To test a printer on a serial port:
Become root with su(1).
Edit the file /etc/remote. Add the following entry:
printer:dv=/dev/port:br#bps-rate:pa=parity
Where port is the device entry for the serial port (ttyd0, ttyd1, etc.), bps-rate is the bits-per-second rate at which the printer communicates, and parity is the parity required by the printer (either even, odd, none, or zero).
Here is a sample entry for a printer connected via a serial line to the third serial port at 19200 bps with no parity:
printer:dv=/dev/ttyd2:br#19200:pa=none
Connect to the printer with tip(1). Type:
# tip printer
If this step does not work, edit the file /etc/remote again and try using /dev/cuaaN instead of /dev/ttydN.
Send data to the printer.
If the printer can print plain text, then use lptest(1). Type:
% $lptest
If the printer understands PostScript or other printer language, then send a small program to the printer. Type the program, line by line, very carefully as backspacing or other editing keys may be significant to the printer. You may also need to type a special end-of-file key for the printer so it knows it received the whole program. For PostScript printers, press CONTROL+D.
Alternatively, you can put the program in a file and type:
% >file
Where file is the name of the file containing the program. After tip(1) sends the file, press any required end-of-file key.
You should see something print. Do not worry if the text does not look right; we will fix that later.
At this point, your printer should be hooked up, your kernel configured to communicate with it (if necessary), and you have been able to send some simple data to the printer. Now, we are ready to configure LPD to control access to your printer.
You configure LPD by editing the file /etc/printcap. The LPD spooling system reads this file each time the spooler is used, so updates to the file take immediate effect.
The format of the printcap(5) file is straightforward. Use your favorite text editor to make changes to /etc/printcap. The format is identical to other capability files like /usr/share/misc/termcap and /etc/remote. For complete information about the format, see the cgetent(3).
The simple spooler configuration consists of the following steps:
Pick a name (and a few convenient aliases) for the printer, and put them in the /etc/printcap file; see the Naming the Printer section for more information on naming.
Turn off header pages (which are on by default) by inserting the sh capability; see the Suppressing Header Pages section for more information.
Make a spooling directory, and specify its location with the sd capability; see the Making the Spooling Directory section for more information.
Set the /dev entry to use for the printer, and note it in /etc/printcap with the lp capability; see the Identifying the Printer Device for more information. Also, if the printer is on a serial port, set up the communication parameters with the ms# capability which is discussed in the Configuring Spooler Communications Parameters section.
Install a plain text input filter; see the Installing the Text Filter section for details.
Test the setup by printing something with the lpr(1) command. More details are available in the Trying It Out and Troubleshooting sections.
注: Language-based printers, such as PostScript printers, cannot directly print plain text. The simple setup outlined above and described in the following sections assumes that if you are installing such a printer you will print only files that the printer can understand.
Users often expect that they can print plain text to any of the printers installed on your system. Programs that interface to LPD to do their printing usually make the same assumption. If you are installing such a printer and want to be able to print jobs in the printer language and print plain text jobs, you are strongly urged to add an additional step to the simple setup outlined above: install an automatic plain-text-to-PostScript (or other printer language) conversion program. The section entitled Accommodating Plain Text Jobs on PostScript Printers tells how to do this.
The first (easy) step is to pick a name for your printer. It really does not matter whether you choose functional or whimsical names since you can also provide a number of aliases for the printer.
At least one of the printers specified in the /etc/printcap should have the alias lp. This is the default printer's name. If users do not have the PRINTER environment variable nor specify a printer name on the command line of any of the LPD commands, then lp will be the default printer they get to use.
Also, it is common practice to make the last alias for a printer be a full description of the printer, including make and model.
Once you have picked a name and some common aliases, put them in the /etc/printcap file. The name of the printer should start in the leftmost column. Separate each alias with a vertical bar and put a colon after the last alias.
In the following example, we start with a skeletal /etc/printcap that defines two printers (a Diablo 630 line printer and a Panasonic KX-P4455 PostScript laser printer):
# # /etc/printcap for host rose # rattan|line|diablo|lp|Diablo 630 Line Printer: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:
In this example, the first printer is named rattan and has as aliases line, diablo, lp, and Diablo 630 Line Printer. Since it has the alias lp, it is also the default printer. The second is named bamboo, and has as aliases ps, PS, S, panasonic, and Panasonic KX-P4455 PostScript v51.4.
The LPD spooling system will by default print a header page for each job. The header page contains the user name who requested the job, the host from which the job came, and the name of the job, in nice large letters. Unfortunately, all this extra text gets in the way of debugging the simple printer setup, so we will suppress header pages.
To suppress header pages, add the sh capability to the entry for the printer in /etc/printcap. Here is an example /etc/printcap with sh added:
# # /etc/printcap for host rose - no header pages anywhere # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:
Note how we used the correct format: the first line starts in the leftmost column, and subsequent lines are indented. Every line in an entry except the last ends in a backslash character.
The next step in the simple spooler setup is to make a spooling directory, a directory where print jobs reside until they are printed, and where a number of other spooler support files live.
Because of the variable nature of spooling directories, it is customary to put these directories under /var/spool. It is not necessary to backup the contents of spooling directories, either. Recreating them is as simple as running mkdir(1).
It is also customary to make the directory with a name that is identical to the name of the printer, as shown below:
# mkdir /var/spool/printer-name
However, if you have a lot of printers on your network, you might want to put the spooling directories under a single directory that you reserve just for printing with LPD. We will do this for our two example printers rattan and bamboo:
# mkdir /var/spool/lpd # mkdir /var/spool/lpd/rattan # mkdir /var/spool/lpd/bamboo
注: If you are concerned about the privacy of jobs that users print, you might want to protect the spooling directory so it is not publicly accessible. Spooling directories should be owned and be readable, writable, and searchable by user daemon and group daemon, and no one else. We will do this for our example printers:
# chown daemon:daemon /var/spool/lpd/rattan # chown daemon:daemon /var/spool/lpd/bamboo # chmod 770 /var/spool/lpd/rattan # chmod 770 /var/spool/lpd/bamboo
Finally, you need to tell LPD about these directories using the /etc/printcap file. You specify the pathname of the spooling directory with the sd capability:
# # /etc/printcap for host rose - added spooling directories # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:
Note that the name of the printer starts in the first column but all other entries describing the printer should be indented and each line end escaped with a backslash.
If you do not specify a spooling directory with sd, the spooling system will use /var/spool/lpd as a default.
In the Entries for the Ports section, we identified which entry in the /dev directory FreeBSD will use to communicate with the printer. Now, we tell LPD that information. When the spooling system has a job to print, it will open the specified device on behalf of the filter program (which is responsible for passing data to the printer).
List the /dev entry pathname in the /etc/printcap file using the lp capability.
In our running example, let us assume that rattan is on the first parallel port, and bamboo is on a sixth serial port; here are the additions to /etc/printcap:
# # /etc/printcap for host rose - identified what devices to use # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:\ :lp=/dev/ttyd5:
If you do not specify the lp capability for a printer in your /etc/printcap file, LPD uses /dev/lp as a default. /dev/lp currently does not exist in FreeBSD.
If the printer you are installing is connected to a parallel port, skip to the section entitled, Installing the Text Filter. Otherwise, be sure to follow the instructions in the next section.
For printers on serial ports, LPD can set up the bps rate, parity, and other serial communication parameters on behalf of the filter program that sends data to the printer. This is advantageous since:
It lets you try different communication parameters by simply editing the /etc/printcap file; you do not have to recompile the filter program.
It enables the spooling system to use the same filter program for multiple printers which may have different serial communication settings.
The following /etc/printcap capabilities control serial communication parameters of the device listed in the lp capability:
Sets the communications speed of the device to bps-rate, where bps-rate can be 50, 75, 110, 134, 150, 200, 300, 600, 1200, 1800, 2400, 4800, 9600, 19200, 38400, 57600, or 115200 bits-per-second.
Sets the options for the terminal device after opening the device. stty(1) explains the available options.
When LPD opens the device specified by the lp capability, it sets the characteristics of the device to those specified with the ms# capability. Of particular interest will be the parenb, parodd, cs5, cs6, cs7, cs8, cstopb, crtscts, and ixon modes, which are explained in the stty(1) manual page.
Let us add to our example printer on the sixth serial port. We will set the bps rate to 38400. For the mode, we will set no parity with -parenb, 8-bit characters with cs8, no modem control with clocal and hardware flow control with crtscts:
bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:
We are now ready to tell LPD what text filter to use to send jobs to the printer. A text filter, also known as an input filter, is a program that LPD runs when it has a job to print. When LPD runs the text filter for a printer, it sets the filter's standard input to the job to print, and its standard output to the printer device specified with the lp capability. The filter is expected to read the job from standard input, perform any necessary translation for the printer, and write the results to standard output, which will get printed. For more information on the text filter, see the Filters section.
For our simple printer setup, the text filter can be a small shell script that just executes /bin/cat to send the job to the printer. FreeBSD comes with another filter called lpf that handles backspacing and underlining for printers that might not deal with such character streams well. And, of course, you can use any other filter program you want. The filter lpf is described in detail in section entitled lpf: a Text Filter.
First, let us make the shell script /usr/local/libexec/if-simple be a simple text filter. Put the following text into that file with your favorite text editor:
#!/bin/sh # # if-simple - Simple text input filter for lpd # Installed in /usr/local/libexec/if-simple # # Simply copies stdin to stdout. Ignores all filter arguments. /bin/cat && exit 0 exit 2
Make the file executable:
# chmod 555 /usr/local/libexec/if-simple
And then tell LPD to use it by specifying it with the if capability in /etc/printcap. We will add it to the two printers we have so far in the example /etc/printcap:
# # /etc/printcap for host rose - added text filter # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:\ :if=/usr/local/libexec/if-simple:
注: A copy of the if-simple script can be found in the /usr/share/examples/printing directory.
lpd(8) is run from /etc/rc, controlled by the lpd_enable variable. This variable defaults to NO. If you have not done so already, add the line:
lpd_enable="YES"
to /etc/rc.conf, and then either restart your machine, or just run lpd(8).
# lpd
You have reached the end of the simple LPD setup. Unfortunately, congratulations are not quite yet in order, since we still have to test the setup and correct any problems. To test the setup, try printing something. To print with the LPD system, you use the command lpr(1), which submits a job for printing.
You can combine lpr(1) with the lptest(1) program, introduced in section Checking Printer Communications to generate some test text.
To test the simple LPD setup:
Type:
# lptest 20 5 | lpr -Pprinter-name
Where printer-name is a the name of a
printer (or an alias) specified in /etc/printcap. To test
the default printer, type lpr(1) without any
-P
argument. Again, if you are testing a printer that
expects PostScript, send a PostScript program in that language instead of using lptest(1). You can do
so by putting the program in a file and typing lpr file.
For a PostScript printer, you should get the results of the program. If you are using lptest(1), then your results should look like the following:
!"#$%&'()*+,-./01234 "#$%&'()*+,-./012345 #$%&'()*+,-./0123456 $%&'()*+,-./01234567 %&'()*+,-./012345678
To further test the printer, try downloading larger programs (for language-based printers) or running lptest(1) with different arguments. For example, lptest 80 60 will produce 60 lines of 80 characters each.
If the printer did not work, see the Troubleshooting section.
This section describes filters for printing specially formatted files, header pages, printing across networks, and restricting and accounting for printer usage.
Although LPD handles network protocols, queuing, access control, and other aspects of printing, most of the real work happens in the filters. Filters are programs that communicate with the printer and handle its device dependencies and special requirements. In the simple printer setup, we installed a plain text filter——an extremely simple one that should work with most printers (section Installing the Text Filter).
However, in order to take advantage of format conversion, printer accounting, specific printer quirks, and so on, you should understand how filters work. It will ultimately be the filter's responsibility to handle these aspects. And the bad news is that most of the time you have to provide filters yourself. The good news is that many are generally available; when they are not, they are usually easy to write.
Also, FreeBSD comes with one, /usr/libexec/lpr/lpf, that works with many printers that can print plain text. (It handles backspacing and tabs in the file, and does accounting, but that is about all it does.) There are also several filters and filter components in the FreeBSD Ports Collection.
Here is what you will find in this section:
Section How Filters Work, tries to give an overview of a filter's role in the printing process. You should read this section to get an understanding of what is happening “under the hood” when LPD uses filters. This knowledge could help you anticipate and debug problems you might encounter as you install more and more filters on each of your printers.
LPD expects every printer to be able to print plain text by default. This presents a problem for PostScript (or other language-based printers) which cannot directly print plain text. Section Accommodating Plain Text Jobs on PostScript Printers tells you what you should do to overcome this problem. You should read this section if you have a PostScript printer.
PostScript is a popular output format for many programs. Some people even write PostScript code directly. Unfortunately, PostScript printers are expensive. Section Simulating PostScript on Non PostScript Printers tells how you can further modify a printer's text filter to accept and print PostScript data on a non PostScript printer. You should read this section if you do not have a PostScript printer.
Section Conversion Filters tells about a way you can automate the conversion of specific file formats, such as graphic or typesetting data, into formats your printer can understand. After reading this section, you should be able to set up your printers such that users can type lpr -t to print troff data, or lpr -d to print TeX DVI data, or lpr -v to print raster image data, and so forth. I recommend reading this section.
Section Output Filters tells all about a not often used feature of LPD: output filters. Unless you are printing header pages (see Header Pages), you can probably skip that section altogether.
Section lpf: a Text Filter describes lpf, a fairly complete if simple text filter for line printers (and laser printers that act like line printers) that comes with FreeBSD. If you need a quick way to get printer accounting working for plain text, or if you have a printer which emits smoke when it sees backspace characters, you should definitely consider lpf.
注: A copy of the various scripts described below can be found in the /usr/share/examples/printing directory.
As mentioned before, a filter is an executable program started by LPD to handle the device-dependent part of communicating with the printer.
When LPD wants to print a file in a job, it starts a filter program. It sets the filter's standard input to the file to print, its standard output to the printer, and its standard error to the error logging file (specified in the lf capability in /etc/printcap, or /dev/console by default).
Which filter LPD starts and the filter's arguments depend on what is listed in the /etc/printcap file and what arguments the user specified for the job on the lpr(1) command line. For example, if the user typed lpr -t, LPD would start the troff filter, listed in the tf capability for the destination printer. If the user wanted to print plain text, it would start the if filter (this is mostly true: see Output Filters for details).
There are three kinds of filters you can specify in /etc/printcap:
The text filter, confusingly called the input filter in LPD documentation, handles regular text printing. Think of it as the default filter. LPD expects every printer to be able to print plain text by default, and it is the text filter's job to make sure backspaces, tabs, or other special characters do not confuse the printer. If you are in an environment where you have to account for printer usage, the text filter must also account for pages printed, usually by counting the number of lines printed and comparing that to the number of lines per page the printer supports. The text filter is started with the following argument list:
filter-name [-c] -wwidth -llength -iindent -n login -h host acct-file
where-c
appears if the job is submitted with lpr -l
is the value from the pw (page width) capability specified in /etc/printcap, default 132
is the value from the pl (page length) capability, default 66
is the amount of the indentation from lpr -i, default 0
is the account name of the user printing the file
is the host name from which the job was submitted
is the name of the accounting file from the af capability.
A conversion filter converts a specific file format into one the printer can render onto paper. For example, ditroff typesetting data cannot be directly printed, but you can install a conversion filter for ditroff files to convert the ditroff data into a form the printer can digest and print. Section Conversion Filters tells all about them. Conversion filters also need to do accounting, if you need printer accounting. Conversion filters are started with the following arguments:
filter-name -xpixel-width -ypixel-height -n login -h host acct-file
where pixel-width is the value from the px capability (default 0) and pixel-height is the value from the py capability (default 0).The output filter is used only if there is no text filter, or if header pages are enabled. In my experience, output filters are rarely used. Section Output Filters describe them. There are only two arguments to an output filter:
filter-name -wwidth -llength
which are identical to the text filters-w
and -l
arguments.Filters should also exit with the following exit status:
If the filter printed the file successfully.
If the filter failed to print the file but wants LPD to try to print the file again. LPD will restart a filter if it exits with this status.
If the filter failed to print the file and does not want LPD to try again. LPD will throw out the file.
The text filter that comes with the FreeBSD release, /usr/libexec/lpr/lpf, takes advantage of the page width and length arguments to determine when to send a form feed and how to account for printer usage. It uses the login, host, and accounting file arguments to make the accounting entries.
If you are shopping for filters, see if they are LPD-compatible. If they are, they must support the argument lists described above. If you plan on writing filters for general use, then have them support the same argument lists and exit codes.
If you are the only user of your computer and PostScript (or other language-based) printer, and you promise to never send plain text to your printer and to never use features of various programs that will want to send plain text to your printer, then you do not need to worry about this section at all.
But, if you would like to send both PostScript and plain text jobs to the printer, then you are urged to augment your printer setup. To do so, we have the text filter detect if the arriving job is plain text or PostScript. All PostScript jobs must start with %! (for other printer languages, see your printer documentation). If those are the first two characters in the job, we have PostScript, and can pass the rest of the job directly. If those are not the first two characters in the file, then the filter will convert the text into PostScript and print the result.
How do we do this?
If you have got a serial printer, a great way to do it is to install lprps. lprps is a PostScript printer filter which performs two-way communication with the printer. It updates the printer's status file with verbose information from the printer, so users and administrators can see exactly what the state of the printer is (such as “toner low” or “paper jam”). But more importantly, it includes a program called psif which detects whether the incoming job is plain text and calls textps (another program that comes with lprps) to convert it to PostScript. It then uses lprps to send the job to the printer.
lprps is part of the FreeBSD Ports Collection (see The Ports Collection). You can fetch, build and install it yourself, of course. After installing lprps, just specify the pathname to the psif program that is part of lprps. If you installed lprps from the Ports Collection, use the following in the serial PostScript printer's entry in /etc/printcap:
:if=/usr/local/libexec/psif:
You should also specify the rw capability; that tells LPD to open the printer in read-write mode.
If you have a parallel PostScript printer (and therefore cannot use two-way communication with the printer, which lprps needs), you can use the following shell script as the text filter:
#!/bin/sh # # psif - Print PostScript or plain text on a PostScript printer # Script version; NOT the version that comes with lprps # Installed in /usr/local/libexec/psif # IFS="" read -r first_line first_two_chars=`expr "$first_line" : '\(..\)'` if [ "$first_two_chars" = "%!" ]; then # # PostScript job, print it. # echo "$first_line" && cat && printf "\004" && exit 0 exit 2 else # # Plain text, convert it, then print it. # ( echo "$first_line"; cat ) | /usr/local/bin/textps && printf "\004" && exit 0 exit 2 fi
In the above script, textps is a program we installed separately to convert plain text to PostScript. You can use any text-to-PostScript program you wish. The FreeBSD Ports Collection (see The Ports Collection) includes a full featured text-to-PostScript program called a2ps that you might want to investigate.
PostScript is the de facto standard for high quality typesetting and printing. PostScript is, however, an expensive standard. Thankfully, Aladdin Enterprises has a free PostScript work-alike called Ghostscript that runs with FreeBSD. Ghostscript can read most PostScript files and can render their pages onto a variety of devices, including many brands of non-PostScript printers. By installing Ghostscript and using a special text filter for your printer, you can make your non PostScript printer act like a real PostScript printer.
Ghostscript is in the FreeBSD Ports Collection, if you would like to install it from there. You can fetch, build, and install it quite easily yourself, as well.
To simulate PostScript, we have the text filter detect if it is printing a PostScript file. If it is not, then the filter will pass the file directly to the printer; otherwise, it will use Ghostscript to first convert the file into a format the printer will understand.
Here is an example: the following script is a text filter for Hewlett Packard DeskJet
500 printers. For other printers, substitute the -sDEVICE
argument to the gs (Ghostscript) command. (Type gs -h to get a list of devices the current installation of
Ghostscript supports.)
#!/bin/sh # # ifhp - Print Ghostscript-simulated PostScript on a DeskJet 500 # Installed in /usr/local/libexec/ifhp # # Treat LF as CR+LF (to avoid the "staircase effect" on HP/PCL # printers): # printf "\033&k2G" || exit 2 # # Read first two characters of the file # IFS="" read -r first_line first_two_chars=`expr "$first_line" : '\(..\)'` if [ "$first_two_chars" = "%!" ]; then # # It is PostScript; use Ghostscript to scan-convert and print it. # /usr/local/bin/gs -dSAFER -dNOPAUSE -q -sDEVICE=djet500 \ -sOutputFile=- - && exit 0 else # # Plain text or HP/PCL, so just print it directly; print a form feed # at the end to eject the last page. # echo "$first_line" && cat && printf "\033&l0H" && exit 0 fi exit 2
Finally, you need to notify LPD of the filter via the if capability:
:if=/usr/local/libexec/ifhp:
That is it. You can type lpr plain.text and lpr whatever.ps and both should print successfully.
After completing the simple setup described in Simple Printer Setup, the first thing you will probably want to do is install conversion filters for your favorite file formats (besides plain ASCII text).
Conversion filters make printing various kinds of files easy. As an example, suppose we do a lot of work with the TeX typesetting system, and we have a PostScript printer. Every time we generate a DVI file from TeX, we cannot print it directly until we convert the DVI file into PostScript. The command sequence goes like this:
% dvips seaweed-analysis.dvi % lpr seaweed-analysis.ps
By installing a conversion filter for DVI files, we can skip the hand conversion step each time by having LPD do it for us. Now, each time we get a DVI file, we are just one step away from printing it:
% lpr -d seaweed-analysis.dvi
We got LPD to do the DVI file conversion for us by
specifying the -d
option. Section Formatting and Conversion Options lists the
conversion options.
For each of the conversion options you want a printer to support, install a conversion filter and specify its pathname in /etc/printcap. A conversion filter is like the text filter for the simple printer setup (see section Installing the Text Filter) except that instead of printing plain text, the filter converts the file into a format the printer can understand.
You should install the conversion filters you expect to use. If you print a lot of DVI data, then a DVI conversion filter is in order. If you have got plenty of troff to print out, then you probably want a troff filter.
The following table summarizes the filters that LPD works with, their capability entries for the /etc/printcap file, and how to invoke them with the lpr command:
File type | /etc/printcap capability | lpr option |
---|---|---|
cifplot | cf | -c |
DVI | df | -d |
plot | gf | -g |
ditroff | nf | -n |
FORTRAN text | rf | -f |
troff | tf | -f |
raster | vf | -v |
plain text | if | none, -p , or -l |
In our example, using lpr -d means the printer needs a df capability in its entry in /etc/printcap.
Despite what others might contend, formats like FORTRAN text and plot are probably obsolete. At your site, you can give new meanings to these or any of the formatting options just by installing custom filters. For example, suppose you would like to directly print Printerleaf files (files from the Interleaf desktop publishing program), but will never print plot files. You could install a Printerleaf conversion filter under the gf capability and then educate your users that lpr -g mean “print Printerleaf files.”
Since conversion filters are programs you install outside of the base FreeBSD installation, they should probably go under /usr/local. The directory /usr/local/libexec is a popular location, since they are specialized programs that only LPD will run; regular users should not ever need to run them.
To enable a conversion filter, specify its pathname under the appropriate capability for the destination printer in /etc/printcap.
In our example, we will add the DVI conversion filter to the entry for the printer named bamboo. Here is the example /etc/printcap file again, with the new df capability for the printer bamboo.
# # /etc/printcap for host rose - added df filter for bamboo # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:rw:\ :if=/usr/local/libexec/psif:\ :df=/usr/local/libexec/psdf:
The DVI filter is a shell script named /usr/local/libexec/psdf. Here is that script:
#!/bin/sh # # psdf - DVI to PostScript printer filter # Installed in /usr/local/libexec/psdf # # Invoked by lpd when user runs lpr -d # exec /usr/local/bin/dvips -f | /usr/local/libexec/lprps "$@"
This script runs dvips in filter mode (the -f
argument) on standard input, which is the job to print. It then
starts the PostScript printer filter lprps (see section Accommodating Plain Text Jobs on PostScript Printers) with the arguments LPD passed to this script. lprps will
use those arguments to account for the pages printed.
Since there is no fixed set of steps to install conversion filters, let me instead provide more examples. Use these as guidance to making your own filters. Use them directly, if appropriate.
This example script is a raster (well, GIF file, actually) conversion filter for a Hewlett Packard LaserJet III-Si printer:
#!/bin/sh # # hpvf - Convert GIF files into HP/PCL, then print # Installed in /usr/local/libexec/hpvf PATH=/usr/X11R6/bin:$PATH; export PATH giftopnm | ppmtopgm | pgmtopbm | pbmtolj -resolution 300 \ && exit 0 \ || exit 2
It works by converting the GIF file into a portable anymap, converting that into a portable graymap, converting that into a portable bitmap, and converting that into LaserJet/PCL-compatible data.
Here is the /etc/printcap file with an entry for a printer using the above filter:
# # /etc/printcap for host orchid # teak|hp|laserjet|Hewlett Packard LaserJet 3Si:\ :lp=/dev/lpt0:sh:sd=/var/spool/lpd/teak:mx#0:\ :if=/usr/local/libexec/hpif:\ :vf=/usr/local/libexec/hpvf:
The following script is a conversion filter for troff data from the groff typesetting system for the PostScript printer named bamboo:
#!/bin/sh # # pstf - Convert groff's troff data into PS, then print. # Installed in /usr/local/libexec/pstf # exec grops | /usr/local/libexec/lprps "$@"
The above script makes use of lprps again to handle the communication with the printer. If the printer were on a parallel port, we would use this script instead:
#!/bin/sh # # pstf - Convert groff's troff data into PS, then print. # Installed in /usr/local/libexec/pstf # exec grops
That is it. Here is the entry we need to add to /etc/printcap to enable the filter:
:tf=/usr/local/libexec/pstf:
Here is an example that might make old hands at FORTRAN blush. It is a FORTRAN-text filter for any printer that can directly print plain text. We will install it for the printer teak:
#!/bin/sh # # hprf - FORTRAN text filter for LaserJet 3si: # Installed in /usr/local/libexec/hprf # printf "\033&k2G" && fpr && printf "\033&l0H" && exit 0 exit 2
And we will add this line to the /etc/printcap for the printer teak to enable this filter:
:rf=/usr/local/libexec/hprf:
Here is one final, somewhat complex example. We will add a DVI filter to the LaserJet printer teak introduced earlier. First, the easy part: updating /etc/printcap with the location of the DVI filter:
:df=/usr/local/libexec/hpdf:
Now, for the hard part: making the filter. For that, we need a DVI-to-LaserJet/PCL conversion program. The FreeBSD Ports Collection (see The Ports Collection) has one: dvi2xx is the name of the package. Installing this package gives us the program we need, dvilj2p, which converts DVI into LaserJet IIp, LaserJet III, and LaserJet 2000 compatible codes.
dvilj2p makes the filter hpdf quite complex since dvilj2p cannot read from standard input. It wants to work with a filename. What is worse, the filename has to end in .dvi so using /dev/fd/0 for standard input is problematic. We can get around that problem by linking (symbolically) a temporary file name (one that ends in .dvi) to /dev/fd/0, thereby forcing dvilj2p to read from standard input.
The only other fly in the ointment is the fact that we cannot use /tmp for the temporary link. Symbolic links are owned by user and group bin. The filter runs as user daemon. And the /tmp directory has the sticky bit set. The filter can create the link, but it will not be able clean up when done and remove it since the link will belong to a different user.
Instead, the filter will make the symbolic link in the current working directory, which is the spooling directory (specified by the sd capability in /etc/printcap). This is a perfect place for filters to do their work, especially since there is (sometimes) more free disk space in the spooling directory than under /tmp.
Here, finally, is the filter:
#!/bin/sh # # hpdf - Print DVI data on HP/PCL printer # Installed in /usr/local/libexec/hpdf PATH=/usr/local/bin:$PATH; export PATH # # Define a function to clean up our temporary files. These exist # in the current directory, which will be the spooling directory # for the printer. # cleanup() { rm -f hpdf$$.dvi } # # Define a function to handle fatal errors: print the given message # and exit 2. Exiting with 2 tells LPD to do not try to reprint the # job. # fatal() { echo "$@" 1>&2 cleanup exit 2 } # # If user removes the job, LPD will send SIGINT, so trap SIGINT # (and a few other signals) to clean up after ourselves. # trap cleanup 1 2 15 # # Make sure we are not colliding with any existing files. # cleanup # # Link the DVI input file to standard input (the file to print). # ln -s /dev/fd/0 hpdf$$.dvi || fatal "Cannot symlink /dev/fd/0" # # Make LF = CR+LF # printf "\033&k2G" || fatal "Cannot initialize printer" # # Convert and print. Return value from dvilj2p does not seem to be # reliable, so we ignore it. # dvilj2p -M1 -q -e- dfhp$$.dvi # # Clean up and exit # cleanup exit 0
All these conversion filters accomplish a lot for your printing environment, but at the cost forcing the user to specify (on the lpr(1) command line) which one to use. If your users are not particularly computer literate, having to specify a filter option will become annoying. What is worse, though, is that an incorrectly specified filter option may run a filter on the wrong type of file and cause your printer to spew out hundreds of sheets of paper.
Rather than install conversion filters at all, you might want to try having the text filter (since it is the default filter) detect the type of file it has been asked to print and then automatically run the right conversion filter. Tools such as file can be of help here. Of course, it will be hard to determine the differences between some file types——and, of course, you can still provide conversion filters just for them.
The FreeBSD Ports Collection has a text filter that performs automatic conversion called apsfilter. It can detect plain text, PostScript, and DVI files, run the proper conversions, and print.
The LPD spooling system supports one other type of filter that we have not yet explored: an output filter. An output filter is intended for printing plain text only, like the text filter, but with many simplifications. If you are using an output filter but no text filter, then:
LPD starts an output filter once for the entire job instead of once for each file in the job.
LPD does not make any provision to identify the start or the end of files within the job for the output filter.
LPD does not pass the user's login or host to the filter, so it is not intended to do accounting. In fact, it gets only two arguments:
filter-name -wwidth -llength
Where width is from the pw capability and length is from the pl capability for the printer in question.
Do not be seduced by an output filter's simplicity. If you would like each file in a job to start on a different page an output filter will not work. Use a text filter (also known as an input filter); see section Installing the Text Filter. Furthermore, an output filter is actually more complex in that it has to examine the byte stream being sent to it for special flag characters and must send signals to itself on behalf of LPD.
However, an output filter is necessary if you want header pages and need to send escape sequences or other initialization strings to be able to print the header page. (But it is also futile if you want to charge header pages to the requesting user's account, since LPD does not give any user or host information to the output filter.)
On a single printer, LPD allows both an output filter and text or other filters. In such cases, LPD will start the output filter to print the header page (see section Header Pages) only. LPD then expects the output filter to stop itself by sending two bytes to the filter: ASCII 031 followed by ASCII 001. When an output filter sees these two bytes (031, 001), it should stop by sending SIGSTOP to itself. When LPD's done running other filters, it will restart the output filter by sending SIGCONT to it.
If there is an output filter but no text filter and LPD is working on a plain text job, LPD uses the output filter to do the job. As stated before, the output filter will print each file of the job in sequence with no intervening form feeds or other paper advancement, and this is probably not what you want. In almost all cases, you need a text filter.
The program lpf, which we introduced earlier as a text filter, can also run as an output filter. If you need a quick-and-dirty output filter but do not want to write the byte detection and signal sending code, try lpf. You can also wrap lpf in a shell script to handle any initialization codes the printer might require.
The program /usr/libexec/lpr/lpf that comes with FreeBSD binary distribution is a text filter (input filter) that can indent output (job submitted with lpr -i), allow literal characters to pass (job submitted with lpr -l), adjust the printing position for backspaces and tabs in the job, and account for pages printed. It can also act like an output filter.
lpf is suitable for many printing environments. And although it has no capability to send initialization sequences to a printer, it is easy to write a shell script to do the needed initialization and then execute lpf.
In order for lpf to do page accounting correctly, it needs correct values filled in for the pw and pl capabilities in the /etc/printcap file. It uses these values to determine how much text can fit on a page and how many pages were in a user's job. For more information on printer accounting, see Accounting for Printer Usage.
If you have lots of users, all of them using various printers, then you probably want to consider header pages as a necessary evil.
Header pages, also known as banner or burst pages identify to whom jobs belong after they are printed. They are usually printed in large, bold letters, perhaps with decorative borders, so that in a stack of printouts they stand out from the real documents that comprise users' jobs. They enable users to locate their jobs quickly. The obvious drawback to a header page is that it is yet one more sheet that has to be printed for every job, their ephemeral usefulness lasting not more than a few minutes, ultimately finding themselves in a recycling bin or rubbish heap. (Note that header pages go with each job, not each file in a job, so the paper waste might not be that bad.)
The LPD system can provide header pages automatically for your printouts if your printer can directly print plain text. If you have a PostScript printer, you will need an external program to generate the header page; see Header Pages on PostScript Printers.
In the Simple Printer Setup section, we turned off header pages by specifying sh (meaning “suppress header”) in the /etc/printcap file. To enable header pages for a printer, just remove the sh capability.
Sounds too easy, right?
You are right. You might have to provide an output filter to send initialization strings to the printer. Here is an example output filter for Hewlett Packard PCL-compatible printers:
#!/bin/sh # # hpof - Output filter for Hewlett Packard PCL-compatible printers # Installed in /usr/local/libexec/hpof printf "\033&k2G" || exit 2 exec /usr/libexec/lpr/lpf
Specify the path to the output filter in the of capability. See the Output Filters section for more information.
Here is an example /etc/printcap file for the printer teak that we introduced earlier; we enabled header pages and added the above output filter:
# # /etc/printcap for host orchid # teak|hp|laserjet|Hewlett Packard LaserJet 3Si:\ :lp=/dev/lpt0:sd=/var/spool/lpd/teak:mx#0:\ :if=/usr/local/libexec/hpif:\ :vf=/usr/local/libexec/hpvf:\ :of=/usr/local/libexec/hpof:
Now, when users print jobs to teak, they get a header page with each job. If users want to spend time searching for their printouts, they can suppress header pages by submitting the job with lpr -h; see the Header Page Options section for more lpr(1) options.
注: LPD prints a form feed character after the header page. If your printer uses a different character or sequence of characters to eject a page, specify them with the ff capability in /etc/printcap.
By enabling header pages, LPD will produce a long header, a full page of large letters identifying the user, host, and job. Here is an example (kelly printed the job named outline from host rose):
k ll ll k l l k l l k k eeee l l y y k k e e l l y y k k eeeeee l l y y kk k e l l y y k k e e l l y yy k k eeee lll lll yyy y y y y yyyy ll t l i t l oooo u u ttttt l ii n nnn eeee o o u u t l i nn n e e o o u u t l i n n eeeeee o o u u t l i n n e o o u uu t t l i n n e e oooo uuu u tt lll iii n n eeee r rrr oooo ssss eeee rr r o o s s e e r o o ss eeeeee r o o ss e r o o s s e e r oooo ssss eeee Job: outline Date: Sun Sep 17 11:04:58 1995
LPD appends a form feed after this text so the job starts on a new page (unless you have sf (suppress form feeds) in the destination printer's entry in /etc/printcap).
If you prefer, LPD can make a short header; specify sb (short banner) in the /etc/printcap file. The header page will look like this:
rose:kelly Job: outline Date: Sun Sep 17 11:07:51 1995
Also by default, LPD prints the header page first, then the job. To reverse that, specify hl (header last) in /etc/printcap.
Using LPD's built-in header pages enforces a particular paradigm when it comes to printer accounting: header pages must be free of charge.
Why?
Because the output filter is the only external program that will have control when the header page is printed that could do accounting, and it is not provided with any user or host information or an accounting file, so it has no idea whom to charge for printer use. It is also not enough to just “add one page” to the text filter or any of the conversion filters (which do have user and host information) since users can suppress header pages with lpr -h. They could still be charged for header pages they did not print. Basically, lpr -h will be the preferred option of environmentally-minded users, but you cannot offer any incentive to use it.
It is still not enough to have
each of the filters generate their own header pages (thereby being able to charge for
them). If users wanted the option of suppressing the header pages with lpr -h, they will still get them and be charged for them since LPD does not pass any knowledge of the -h
option to any of the filters.
So, what are your options?
You can:
Accept LPD's paradigm and make header pages free.
Install an alternative to LPD, such as LPRng. Section Alternatives to the Standard Spooler tells more about other spooling software you can substitute for LPD.
Write a smart output filter. Normally, an output filter is not meant to do anything more than initialize a printer or do some simple character conversion. It is suited for header pages and plain text jobs (when there is no text (input) filter). But, if there is a text filter for the plain text jobs, then LPD will start the output filter only for the header pages. And the output filter can parse the header page text that LPD generates to determine what user and host to charge for the header page. The only other problem with this method is that the output filter still does not know what accounting file to use (it is not passed the name of the file from the af capability), but if you have a well-known accounting file, you can hard-code that into the output filter. To facilitate the parsing step, use the sh (short header) capability in /etc/printcap. Then again, all that might be too much trouble, and users will certainly appreciate the more generous system administrator who makes header pages free.
As described above, LPD can generate a plain text header page suitable for many printers. Of course, PostScript cannot directly print plain text, so the header page feature of LPD is useless——or mostly so.
One obvious way to get header pages is to have every conversion filter and the text filter generate the header page. The filters should use the user and host arguments to generate a suitable header page. The drawback of this method is that users will always get a header page, even if they submit jobs with lpr -h.
Let us explore this method. The following script takes three arguments (user login name, host name, and job name) and makes a simple PostScript header page:
#!/bin/sh # # make-ps-header - make a PostScript header page on stdout # Installed in /usr/local/libexec/make-ps-header # # # These are PostScript units (72 to the inch). Modify for A4 or # whatever size paper you are using: # page_width=612 page_height=792 border=72 # # Check arguments # if [ $# -ne 3 ]; then echo "Usage: `basename $0` <user> <host> <job>" 1>&2 exit 1 fi # # Save these, mostly for readability in the PostScript, below. # user=$1 host=$2 job=$3 date=`date` # # Send the PostScript code to stdout. # exec cat <<EOF %!PS % % Make sure we do not interfere with user's job that will follow % save % % Make a thick, unpleasant border around the edge of the paper. % $border $border moveto $page_width $border 2 mul sub 0 rlineto 0 $page_height $border 2 mul sub rlineto currentscreen 3 -1 roll pop 100 3 1 roll setscreen $border 2 mul $page_width sub 0 rlineto closepath 0.8 setgray 10 setlinewidth stroke 0 setgray % % Display user's login name, nice and large and prominent % /Helvetica-Bold findfont 64 scalefont setfont $page_width ($user) stringwidth pop sub 2 div $page_height 200 sub moveto ($user) show % % Now show the boring particulars % /Helvetica findfont 14 scalefont setfont /y 200 def [ (Job:) (Host:) (Date:) ] { 200 y moveto show /y y 18 sub def } forall /Helvetica-Bold findfont 14 scalefont setfont /y 200 def [ ($job) ($host) ($date) ] { 270 y moveto show /y y 18 sub def } forall % % That is it % restore showpage EOF
Now, each of the conversion filters and the text filter can call this script to first generate the header page, and then print the user's job. Here is the DVI conversion filter from earlier in this document, modified to make a header page:
#!/bin/sh # # psdf - DVI to PostScript printer filter # Installed in /usr/local/libexec/psdf # # Invoked by lpd when user runs lpr -d # orig_args="$@" fail() { echo "$@" 1>&2 exit 2 } while getopts "x:y:n:h:" option; do case $option in x|y) ;; # Ignore n) login=$OPTARG ;; h) host=$OPTARG ;; *) echo "LPD started `basename $0` wrong." 1>&2 exit 2 ;; esac done [ "$login" ] || fail "No login name" [ "$host" ] || fail "No host name" ( /usr/local/libexec/make-ps-header $login $host "DVI File" /usr/local/bin/dvips -f ) | eval /usr/local/libexec/lprps $orig_args
Notice how the filter has to parse the argument list in order to determine the user and host name. The parsing for the other conversion filters is identical. The text filter takes a slightly different set of arguments, though (see section How Filters Work).
As we have mentioned before, the above scheme, though fairly simple, disables the
“suppress header page” option (the -h
option) to lpr. If users wanted to save a tree (or a few pennies, if you charge
for header pages), they would not be able to do so, since every filter's going to print a
header page with every job.
To allow users to shut off header pages on a per-job basis, you will need to use the trick introduced in section Accounting for Header Pages: write an output filter that parses the LPD-generated header page and produces a PostScript version. If the user submits the job with lpr -h, then LPD will not generate a header page, and neither will your output filter. Otherwise, your output filter will read the text from LPD and send the appropriate header page PostScript code to the printer.
If you have a PostScript printer on a serial line, you can make use of lprps, which comes with an output filter, psof, which does the above. Note that psof does not charge for header pages.
FreeBSD supports networked printing: sending jobs to remote printers. Networked printing generally refers to two different things:
Accessing a printer attached to a remote host. You install a printer that has a conventional serial or parallel interface on one host. Then, you set up LPD to enable access to the printer from other hosts on the network. Section Printers Installed on Remote Hosts tells how to do this.
Accessing a printer attached directly to a network. The printer has a network interface in addition (or in place of) a more conventional serial or parallel interface. Such a printer might work as follows:
It might understand the LPD protocol and can even queue jobs from remote hosts. In this case, it acts just like a regular host running LPD. Follow the same procedure in section Printers Installed on Remote Hosts to set up such a printer.
It might support a data stream network connection. In this case, you “attach” the printer to one host on the network by making that host responsible for spooling jobs and sending them to the printer. Section Printers with Networked Data Stream Interfaces gives some suggestions on installing such printers.
The LPD spooling system has built-in support for sending jobs to other hosts also running LPD (or are compatible with LPD). This feature enables you to install a printer on one host and make it accessible from other hosts. It also works with printers that have network interfaces that understand the LPD protocol.
To enable this kind of remote printing, first install a printer on one host, the printer host, using the simple printer setup described in the Simple Printer Setup section. Do any advanced setup in Advanced Printer Setup that you need. Make sure to test the printer and see if it works with the features of LPD you have enabled. Also ensure that the local host has authorization to use the LPD service in the remote host (see Restricting Jobs from Remote Printers).
If you are using a printer with a network interface that is compatible with LPD, then the printer host in the discussion below is the printer itself, and the printer name is the name you configured for the printer. See the documentation that accompanied your printer and/or printer-network interface.
提示: If you are using a Hewlett Packard Laserjet then the printer name text will automatically perform the LF to CRLF conversion for you, so you will not require the hpif script.
Then, on the other hosts you want to have access to the printer, make an entry in their /etc/printcap files with the following:
Name the entry anything you want. For simplicity, though, you probably want to use the same name and aliases as on the printer host.
Leave the lp capability blank, explicitly (:lp=:).
Make a spooling directory and specify its location in the sd capability. LPD will store jobs here before they get sent to the printer host.
Place the name of the printer host in the rm capability.
Place the printer name on the printer host in the rp capability.
That is it. You do not need to list conversion filters, page dimensions, or anything else in the /etc/printcap file.
Here is an example. The host rose has two printers, bamboo and rattan. We will enable users on the host orchid to print to those printers. Here is the /etc/printcap file for orchid (back from section Enabling Header Pages). It already had the entry for the printer teak; we have added entries for the two printers on the host rose:
# # /etc/printcap for host orchid - added (remote) printers on rose # # # teak is local; it is connected directly to orchid: # teak|hp|laserjet|Hewlett Packard LaserJet 3Si:\ :lp=/dev/lpt0:sd=/var/spool/lpd/teak:mx#0:\ :if=/usr/local/libexec/ifhp:\ :vf=/usr/local/libexec/vfhp:\ :of=/usr/local/libexec/ofhp: # # rattan is connected to rose; send jobs for rattan to rose: # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :lp=:rm=rose:rp=rattan:sd=/var/spool/lpd/rattan: # # bamboo is connected to rose as well: # bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :lp=:rm=rose:rp=bamboo:sd=/var/spool/lpd/bamboo:
Then, we just need to make spooling directories on orchid:
# mkdir -p /var/spool/lpd/rattan /var/spool/lpd/bamboo # chmod 770 /var/spool/lpd/rattan /var/spool/lpd/bamboo # chown daemon:daemon /var/spool/lpd/rattan /var/spool/lpd/bamboo
Now, users on orchid can print to rattan and bamboo. If, for example, a user on orchid typed
% lpr -P bamboo -d sushi-review.dvithe LPD system on orchid would copy the job to the spooling directory /var/spool/lpd/bamboo and note that it was a DVI job. As soon as the host rose has room in its bamboo spooling directory, the two LPDs would transfer the file to rose. The file would wait in rose's queue until it was finally printed. It would be converted from DVI to PostScript (since bamboo is a PostScript printer) on rose.
Often, when you buy a network interface card for a printer, you can get two versions: one which emulates a spooler (the more expensive version), or one which just lets you send data to it as if you were using a serial or parallel port (the cheaper version). This section tells how to use the cheaper version. For the more expensive one, see the previous section Printers Installed on Remote Hosts.
The format of the /etc/printcap file lets you specify what serial or parallel interface to use, and (if you are using a serial interface), what baud rate, whether to use flow control, delays for tabs, conversion of newlines, and more. But there is no way to specify a connection to a printer that is listening on a TCP/IP or other network port.
To send data to a networked printer, you need to develop a communications program that can be called by the text and conversion filters. Here is one such example: the script netprint takes all data on standard input and sends it to a network-attached printer. We specify the hostname of the printer as the first argument and the port number to which to connect as the second argument to netprint. Note that this supports one-way communication only (FreeBSD to printer); many network printers support two-way communication, and you might want to take advantage of that (to get printer status, perform accounting, etc.).
#!/usr/bin/perl # # netprint - Text filter for printer attached to network # Installed in /usr/local/libexec/netprint # $#ARGV eq 1 || die "Usage: $0 <printer-hostname> <port-number>"; $printer_host = $ARGV[0]; $printer_port = $ARGV[1]; require 'sys/socket.ph'; ($ignore, $ignore, $protocol) = getprotobyname('tcp'); ($ignore, $ignore, $ignore, $ignore, $address) = gethostbyname($printer_host); $sockaddr = pack('S n a4 x8', &AF_INET, $printer_port, $address); socket(PRINTER, &PF_INET, &SOCK_STREAM, $protocol) || die "Can't create TCP/IP stream socket: $!"; connect(PRINTER, $sockaddr) || die "Can't contact $printer_host: $!"; while (<STDIN>) { print PRINTER; } exit 0;
We can then use this script in various filters. Suppose we had a Diablo 750-N line printer connected to the network. The printer accepts data to print on port number 5100. The host name of the printer is scrivener. Here is the text filter for the printer:
#!/bin/sh # # diablo-if-net - Text filter for Diablo printer `scrivener' listening # on port 5100. Installed in /usr/local/libexec/diablo-if-net # exec /usr/libexec/lpr/lpf "$@" | /usr/local/libexec/netprint scrivener 5100
This section gives information on restricting printer usage. The LPD system lets you control who can access a printer, both locally or remotely, whether they can print multiple copies, how large their jobs can be, and how large the printer queues can get.
The LPD system makes it easy for users to print multiple copies of a file. Users can print jobs with lpr -#5 (for example) and get five copies of each file in the job. Whether this is a good thing is up to you.
If you feel multiple copies cause unnecessary wear and tear on your printers, you can
disable the -#
option to lpr(1) by adding the
sc capability to the /etc/printcap
file. When users submit jobs with the -#
option, they will
see:
lpr: multiple copies are not allowed
Note that if you have set up access to a printer remotely (see section Printers Installed on Remote Hosts), you need the sc capability on the remote /etc/printcap files as well, or else users will still be able to submit multiple-copy jobs by using another host.
Here is an example. This is the /etc/printcap file for the host rose. The printer rattan is quite hearty, so we will allow multiple copies, but the laser printer bamboo is a bit more delicate, so we will disable multiple copies by adding the sc capability:
# # /etc/printcap for host rose - restrict multiple copies on bamboo # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:sc:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:rw:\ :if=/usr/local/libexec/psif:\ :df=/usr/local/libexec/psdf:
Now, we also need to add the sc capability on the host orchid's /etc/printcap (and while we are at it, let us disable multiple copies for the printer teak):
# # /etc/printcap for host orchid - no multiple copies for local # printer teak or remote printer bamboo teak|hp|laserjet|Hewlett Packard LaserJet 3Si:\ :lp=/dev/lpt0:sd=/var/spool/lpd/teak:mx#0:sc:\ :if=/usr/local/libexec/ifhp:\ :vf=/usr/local/libexec/vfhp:\ :of=/usr/local/libexec/ofhp: rattan|line|diablo|lp|Diablo 630 Line Printer:\ :lp=:rm=rose:rp=rattan:sd=/var/spool/lpd/rattan: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :lp=:rm=rose:rp=bamboo:sd=/var/spool/lpd/bamboo:sc:
By using the sc capability, we prevent the use of lpr -#, but that still does not prevent users from running lpr(1) multiple times, or from submitting the same file multiple times in one job like this:
% lpr forsale.sign forsale.sign forsale.sign forsale.sign forsale.sign
There are many ways to prevent this abuse (including ignoring it) which you are free to explore.
You can control who can print to what printers by using the UNIX group mechanism and the rg capability in /etc/printcap. Just place the users you want to have access to a printer in a certain group, and then name that group in the rg capability.
Users outside the group (including root) will be greeted with “lpr: Not a member of the restricted group” if they try to print to the controlled printer.
As with the sc (suppress multiple copies) capability, you need to specify rg on remote hosts that also have access to your printers, if you feel it is appropriate (see section Printers Installed on Remote Hosts).
For example, we will let anyone access the printer rattan, but only those in group artists can use bamboo. Here is the familiar /etc/printcap for host rose:
# # /etc/printcap for host rose - restricted group for bamboo # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple: bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:sc:rg=artists:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:rw:\ :if=/usr/local/libexec/psif:\ :df=/usr/local/libexec/psdf:
Let us leave the other example /etc/printcap file (for the host orchid) alone. Of course, anyone on orchid can print to bamboo. It might be the case that we only allow certain logins on orchid anyway, and want them to have access to the printer. Or not.
注: There can be only one restricted group per printer.
If you have many users accessing the printers, you probably need to put an upper limit on the sizes of the files users can submit to print. After all, there is only so much free space on the filesystem that houses the spooling directories, and you also need to make sure there is room for the jobs of other users.
LPD enables you to limit the maximum byte size a file in a job can be with the mx capability. The units are in BUFSIZ blocks, which are 1024 bytes. If you put a zero for this capability, there will be no limit on file size; however, if no mx capability is specified, then a default limit of 1000 blocks will be used.
注: The limit applies to files in a job, and not the total job size.
LPD will not refuse a file that is larger than the limit you place on a printer. Instead, it will queue as much of the file up to the limit, which will then get printed. The rest will be discarded. Whether this is correct behavior is up for debate.
Let us add limits to our example printers rattan and bamboo. Since those artists' PostScript files tend to be large, we will limit them to five megabytes. We will put no limit on the plain text line printer:
# # /etc/printcap for host rose # # # No limit on job size: # rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:mx#0:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple: # # Limit of five megabytes: # bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:sc:rg=artists:mx#5000:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:rw:\ :if=/usr/local/libexec/psif:\ :df=/usr/local/libexec/psdf:
Again, the limits apply to the local users only. If you have set up access to your printers remotely, remote users will not get those limits. You will need to specify the mx capability in the remote /etc/printcap files as well. See section Printers Installed on Remote Hosts for more information on remote printing.
There is another specialized way to limit job sizes from remote printers; see section Restricting Jobs from Remote Printers.
The LPD spooling system provides several ways to restrict print jobs submitted from remote hosts:
You can control from which remote hosts a local LPD accepts requests with the files /etc/hosts.equiv and /etc/hosts.lpd. LPD checks to see if an incoming request is from a host listed in either one of these files. If not, LPD refuses the request.
The format of these files is simple: one host name per line. Note that the file /etc/hosts.equiv is also used by the ruserok(3) protocol, and affects programs like rsh(1) and rcp(1), so be careful.
For example, here is the /etc/hosts.lpd file on the host rose:
orchid violet madrigal.fishbaum.de
This means rose will accept requests from the hosts orchid, violet, and madrigal.fishbaum.de. If any other host tries to access rose's LPD, the job will be refused.
You can control how much free space there needs to remain on the filesystem where a spooling directory resides. Make a file called minfree in the spooling directory for the local printer. Insert in that file a number representing how many disk blocks (512 bytes) of free space there has to be for a remote job to be accepted.
This lets you insure that remote users will not fill your filesystem. You can also use it to give a certain priority to local users: they will be able to queue jobs long after the free disk space has fallen below the amount specified in the minfree file.
For example, let us add a minfree file for the printer bamboo. We examine /etc/printcap to find the spooling directory for this printer; here is bamboo's entry:
bamboo|ps|PS|S|panasonic|Panasonic KX-P4455 PostScript v51.4:\ :sh:sd=/var/spool/lpd/bamboo:sc:rg=artists:mx#5000:\ :lp=/dev/ttyd5:ms#-parenb cs8 clocal crtscts:rw:mx#5000:\ :if=/usr/local/libexec/psif:\ :df=/usr/local/libexec/psdf:
The spooling directory is given in the sd capability. We will make three megabytes (which is 6144 disk blocks) the amount of free disk space that must exist on the filesystem for LPD to accept remote jobs:
# echo 6144 > /var/spool/lpd/bamboo/minfree
You can control which remote users can print to local printers by specifying the rs capability in /etc/printcap. When rs appears in the entry for a locally-attached printer, LPD will accept jobs from remote hosts if the user submitting the job also has an account of the same login name on the local host. Otherwise, LPD refuses the job.
This capability is particularly useful in an environment where there are (for example) different departments sharing a network, and some users transcend departmental boundaries. By giving them accounts on your systems, they can use your printers from their own departmental systems. If you would rather allow them to use only your printers and not your computer resources, you can give them “token” accounts, with no home directory and a useless shell like /usr/bin/false.
So, you need to charge for printouts. And why not? Paper and ink cost money. And then there are maintenance costs——printers are loaded with moving parts and tend to break down. You have examined your printers, usage patterns, and maintenance fees and have come up with a per-page (or per-foot, per-meter, or per-whatever) cost. Now, how do you actually start accounting for printouts?
Well, the bad news is the LPD spooling system does not provide much help in this department. Accounting is highly dependent on the kind of printer in use, the formats being printed, and your requirements in charging for printer usage.
To implement accounting, you have to modify a printer's text filter (to charge for plain text jobs) and the conversion filters (to charge for other file formats), to count pages or query the printer for pages printed. You cannot get away with using the simple output filter, since it cannot do accounting. See section Filters.
Generally, there are two ways to do accounting:
Periodic accounting is the more common way, possibly because it is easier. Whenever someone prints a job, the filter logs the user, host, and number of pages to an accounting file. Every month, semester, year, or whatever time period you prefer, you collect the accounting files for the various printers, tally up the pages printed by users, and charge for usage. Then you truncate all the logging files, starting with a clean slate for the next period.
Timely accounting is less common, probably because it is more difficult. This method has the filters charge users for printouts as soon as they use the printers. Like disk quotas, the accounting is immediate. You can prevent users from printing when their account goes in the red, and might provide a way for users to check and adjust their “print quotas.” But this method requires some database code to track users and their quotas.
The LPD spooling system supports both methods easily: since you have to provide the filters (well, most of the time), you also have to provide the accounting code. But there is a bright side: you have enormous flexibility in your accounting methods. For example, you choose whether to use periodic or timely accounting. You choose what information to log: user names, host names, job types, pages printed, square footage of paper used, how long the job took to print, and so forth. And you do so by modifying the filters to save this information.
FreeBSD comes with two programs that can get you set up with simple periodic accounting right away. They are the text filter lpf, described in section lpf: a Text Filter, and pac(8), a program to gather and total entries from printer accounting files.
As mentioned in the section on filters (Filters), LPD starts the text and the conversion filters with the name of the accounting file to use on the filter command line. The filters can use this argument to know where to write an accounting file entry. The name of this file comes from the af capability in /etc/printcap, and if not specified as an absolute path, is relative to the spooling directory.
LPD starts lpf with page width and length arguments (from the pw and pl capabilities). lpf uses these arguments to determine how much paper will be used. After sending the file to the printer, it then writes an accounting entry in the accounting file. The entries look like this:
2.00 rose:andy 3.00 rose:kelly 3.00 orchid:mary 5.00 orchid:mary 2.00 orchid:zhang
You should use a separate accounting file for each printer, as lpf has no file locking logic built into it, and two lpfs might corrupt each other's entries if they were to write to the same file at the same time. An easy way to insure a separate accounting file for each printer is to use af=acct in /etc/printcap. Then, each accounting file will be in the spooling directory for a printer, in a file named acct.
When you are ready to charge users for printouts, run the pac(8) program. Just change to the spooling directory for the printer you want to collect on and type pac. You will get a dollar-centric summary like the following:
Login pages/feet runs price orchid:kelly 5.00 1 $ 0.10 orchid:mary 31.00 3 $ 0.62 orchid:zhang 9.00 1 $ 0.18 rose:andy 2.00 1 $ 0.04 rose:kelly 177.00 104 $ 3.54 rose:mary 87.00 32 $ 1.74 rose:root 26.00 12 $ 0.52 total 337.00 154 $ 6.74
These are the arguments pac(8) expects:
-Pprinter
Which printer to summarize. This option works only if there is an absolute path in the af capability in /etc/printcap.
-c
Sort the output by cost instead of alphabetically by user name.
-m
Ignore host name in the accounting files. With this option, user smith on host alpha is the same user smith on host gamma. Without, they are different users.
-pprice
Compute charges with price dollars per page or per foot instead of the price from the pc capability in /etc/printcap, or two cents (the default). You can specify price as a floating point number.
-r
Reverse the sort order.
-s
Make an accounting summary file and truncate the accounting file.
Print accounting information for the given user names only.
In the default summary that pac(8) produces, you see the number of pages printed by each user from various hosts. If, at your site, host does not matter (because users can use any host), run pac -m, to produce the following summary:
Login pages/feet runs price andy 2.00 1 $ 0.04 kelly 182.00 105 $ 3.64 mary 118.00 35 $ 2.36 root 26.00 12 $ 0.52 zhang 9.00 1 $ 0.18 total 337.00 154 $ 6.74
To compute the dollar amount due, pac(8) uses the pc capability in the /etc/printcap file
(default of 200, or 2 cents per page). Specify, in hundredths of cents, the price per
page or per foot you want to charge for printouts in this capability. You can override
this value when you run pac(8) with the -p
option. The units for the -p
option
are in dollars, though, not hundredths of cents. For example,
# pac -p1.50makes each page cost one dollar and fifty cents. You can really rake in the profits by using this option.
Finally, running pac -s will save the summary information in a summary accounting file, which is named the same as the printer's accounting file, but with _sum appended to the name. It then truncates the accounting file. When you run pac(8) again, it rereads the summary file to get starting totals, then adds information from the regular accounting file.
In order to perform even remotely accurate accounting, you need to be able to determine how much paper a job uses. This is the essential problem of printer accounting.
For plain text jobs, the problem is not that hard to solve: you count how many lines are in a job and compare it to how many lines per page your printer supports. Do not forget to take into account backspaces in the file which overprint lines, or long logical lines that wrap onto one or more additional physical lines.
The text filter lpf (introduced in lpf: a Text Filter) takes into account these things when it does accounting. If you are writing a text filter which needs to do accounting, you might want to examine lpf's source code.
How do you handle other file formats, though?
Well, for DVI-to-LaserJet or DVI-to-PostScript conversion, you can have your filter parse the diagnostic output of dvilj or dvips and look to see how many pages were converted. You might be able to do similar things with other file formats and conversion programs.
But these methods suffer from the fact that the printer may not actually print all those pages. For example, it could jam, run out of toner, or explode——and the user would still get charged.
So, what can you do?
There is only one sure way to do accurate accounting. Get a printer that can tell you how much paper it uses, and attach it via a serial line or a network connection. Nearly all PostScript printers support this notion. Other makes and models do as well (networked Imagen laser printers, for example). Modify the filters for these printers to get the page usage after they print each job and have them log accounting information based on that value only. There is no line counting nor error-prone file examination required.
Of course, you can always be generous and make all printouts free.
This section tells you how to use printers you have set up with FreeBSD. Here is an overview of the user-level commands:
There is also an administrative command, lpc(8), described in the section Administering Printers, used to control printers and their queues.
All three of the commands lpr(1), lprm(1), and lpq(1) accept an
option -P printer-name
to specify on which printer/queue to
operate, as listed in the /etc/printcap file. This enables you
to submit, remove, and check on jobs for various printers. If you do not use the -P
option, then these commands use the printer specified in the PRINTER environment variable. Finally, if you do not have a PRINTER environment variable, these commands default to the printer
named lp.
Hereafter, the terminology default printer means the printer named in the PRINTER environment variable, or the printer named lp when there is no PRINTER environment variable.
To print files, type:
% lpr filename ...
This prints each of the listed files to the default printer. If you list no files, lpr(1) reads data to print from standard input. For example, this command prints some important system files:
% lpr /etc/host.conf /etc/hosts.equiv
To select a specific printer, type:
% lpr -P printer-name filename ...
This example prints a long listing of the current directory to the printer named rattan:
% ls -l | lpr -P rattan
Because no files were listed for the lpr(1) command, lpr read the data to print from standard input, which was the output of the ls -l command.
The lpr(1) command can also accept a wide variety of options to control formatting, apply file conversions, generate multiple copies, and so forth. For more information, see the section Printing Options.
When you print with lpr(1), the data you wish to print is put together in a package called a “print job”, which is sent to the LPD spooling system. Each printer has a queue of jobs, and your job waits in that queue along with other jobs from yourself and from other users. The printer prints those jobs in a first-come, first-served order.
To display the queue for the default printer, type lpq(1). For a
specific printer, use the -P
option. For example, the
command
% lpq -P bambooshows the queue for the printer named bamboo. Here is an example of the output of the lpq command:
bamboo is ready and printing Rank Owner Job Files Total Size active kelly 9 /etc/host.conf, /etc/hosts.equiv 88 bytes 2nd kelly 10 (standard input) 1635 bytes 3rd mary 11 ... 78519 bytes
This shows three jobs in the queue for bamboo. The first job, submitted by user kelly, got assigned “job number” 9. Every job for a printer gets a unique job number. Most of the time you can ignore the job number, but you will need it if you want to cancel the job; see section Removing Jobs for details.
Job number nine consists of two files; multiple files given on the lpr(1) command line are treated as part of a single job. It is the currently active job (note the word active under the “Rank” column), which means the printer should be currently printing that job. The second job consists of data passed as the standard input to the lpr(1) command. The third job came from user mary; it is a much larger job. The pathname of the file she is trying to print is too long to fit, so the lpq(1) command just shows three dots.
The very first line of the output from lpq(1) is also useful: it tells what the printer is currently doing (or at least what LPD thinks the printer is doing).
The lpq(1) command also
support a -l
option to generate a detailed long listing.
Here is an example of lpq -l:
waiting for bamboo to become ready (offline ?) kelly: 1st [job 009rose] /etc/host.conf 73 bytes /etc/hosts.equiv 15 bytes kelly: 2nd [job 010rose] (standard input) 1635 bytes mary: 3rd [job 011rose] /home/orchid/mary/research/venus/alpha-regio/mapping 78519 bytes
If you change your mind about printing a job, you can remove the job from the queue with the lprm(1) command. Often, you can even use lprm(1) to remove an active job, but some or all of the job might still get printed.
To remove a job from the default printer, first use lpq(1) to find the job number. Then type:
% lprm job-number
To remove the job from a specific printer, add the -P
option. The following command removes job number 10 from the queue for the printer
bamboo:
% lprm -P bamboo 10
The lprm(1) command has a few shortcuts:
Removes all jobs (for the default printer) belonging to you.
Removes all jobs (for the default printer) belonging to user. The superuser can remove other users' jobs; you can remove only your own jobs.
With no job number, user name, or -
appearing on the
command line, lprm(1) removes the
currently active job on the default printer, if it belongs to you. The superuser
can remove any active job.
Just use the -P
option with the above shortcuts to
operate on a specific printer instead of the default. For example, the following
command removes all jobs for the current user in the queue for the printer named rattan:
% lprm -P rattan -
注: If you are working in a networked environment, lprm(1) will let you remove jobs only from the host from which the jobs were submitted, even if the same printer is available from other hosts. The following command sequence demonstrates this:
% lpr -P rattan myfile % rlogin orchid % lpq -P rattan Rank Owner Job Files Total Size active seeyan 12 ... 49123 bytes 2nd kelly 13 myfile 12 bytes % lprm -P rattan 13 rose: Permission denied % logout % lprm -P rattan 13 dfA013rose dequeued cfA013rose dequeued
The lpr(1) command supports a number of options that control formatting text, converting graphic and other file formats, producing multiple copies, handling of the job, and more. This section describes the options.
The following lpr(1) options control formatting of the files in the job. Use these options if the job does not contain plain text or if you want plain text formatted through the pr(1) utility.
For example, the following command prints a DVI file (from the TeX typesetting system) named fish-report.dvi to the printer named bamboo:
% lpr -P bamboo -d fish-report.dvi
These options apply to every file in the job, so you cannot mix (say) DVI and ditroff files together in a job. Instead, submit the files as separate jobs, using a different conversion option for each job.
注: All of these options except
-p
and-T
require conversion filters installed for the destination printer. For example, the-d
option requires the DVI conversion filter. Section Conversion Filters gives details.
-c
Print cifplot files.
-d
Print DVI files.
-f
Print FORTRAN text files.
-g
Print plot data.
-i number
Indent the output by number columns; if you omit number, indent by 8 columns. This option works only with certain conversion filters.
注: Do not put any space between the
-i
and the number.
-l
Print literal text data, including control characters.
-n
Print ditroff (device independent troff) data.
Format plain text with pr(1) before printing. See pr(1) for more information.
-T title
Use title on the pr(1) header instead
of the file name. This option has effect only when used with the -p
option.
-t
Print troff data.
-v
Print raster data.
Here is an example: this command prints a nicely formatted version of the ls(1) manual page on the default printer:
% zcat /usr/share/man/man1/ls.1.gz | troff -t -man | lpr -t
The zcat(1) command
uncompresses the source of the ls(1) manual page and
passes it to the troff(1)
command, which formats that source and makes GNU troff output and passes it to lpr(1), which submits
the job to the LPD spooler. Because we used the
-t
option to lpr(1), the spooler
will convert the GNU troff output into a format the default printer can
understand when it prints the job.
The following options to lpr(1) tell LPD to handle the job specially:
Produce a number of copies of each file in the job instead of just one copy. An administrator may disable this option to reduce printer wear-and-tear and encourage photocopier usage. See section Restricting Multiple Copies.
This example prints three copies of parser.c followed by three copies of parser.h to the default printer:
% lpr -#3 parser.c parser.h
Send mail after completing the print job. With this option, the LPD system will send mail to your account when it finishes handling your job. In its message, it will tell you if the job completed successfully or if there was an error, and (often) what the error was.
Do not copy the files to the spooling directory, but make symbolic links to them instead.
If you are printing a large job, you probably want to use this option. It saves space in the spooling directory (your job might overflow the free space on the filesystem where the spooling directory resides). It saves time as well since LPD will not have to copy each and every byte of your job to the spooling directory.
There is a drawback, though: since LPD will refer to the original files directly, you cannot modify or remove them until they have been printed.
注: If you are printing to a remote printer, LPD will eventually have to copy files from the local host to the remote host, so the
-s
option will save space only on the local spooling directory, not the remote. It is still useful, though.
Remove the files in the job after copying them to the spooling directory, or
after printing them with the -s
option. Be careful
with this option!
These options to lpr(1) adjust the text that normally appears on a job's header page. If header pages are suppressed for the destination printer, these options have no effect. See section Header Pages for information about setting up header pages.
Replace the hostname on the header page with text. The hostname is normally the name of the host from which the job was submitted.
Replace the job name on the header page with text. The job name is normally the name of the first file of the job, or stdin if you are printing standard input.
Do not print any header page.
注: At some sites, this option may have no effect due to the way header pages are generated. See Header Pages for details.
As an administrator for your printers, you have had to install, set up, and test them. Using the lpc(8) command, you can interact with your printers in yet more ways. With lpc(8), you can
Start and stop the printers
Enable and disable their queues
Rearrange the order of the jobs in each queue.
First, a note about terminology: if a printer is stopped, it will not print anything in its queue. Users can still submit jobs, which will wait in the queue until the printer is started or the queue is cleared.
If a queue is disabled, no user (except root) can submit jobs for the printer. An enabled queue allows jobs to be submitted. A printer can be started for a disabled queue, in which case it will continue to print jobs in the queue until the queue is empty.
In general, you have to have root privileges to use the lpc(8) command. Ordinary users can use the lpc(8) command to get printer status and to restart a hung printer only.
Here is a summary of the lpc(8) commands. Most of the commands take a printer-name argument to tell on which printer to operate. You can use all for the printer-name to mean all printers listed in /etc/printcap.
Cancel the current job and stop the printer. Users can still submit jobs if the queue is enabled.
Remove old files from the printer's spooling directory. Occasionally, the files that make up a job are not properly removed by LPD, particularly if there have been errors during printing or a lot of administrative activity. This command finds files that do not belong in the spooling directory and removes them.
Disable queuing of new jobs. If the printer is running, it will continue to print any jobs remaining in the queue. The superuser (root) can always submit jobs, even to a disabled queue.
This command is useful while you are testing a new printer or filter installation: disable the queue and submit jobs as root. Other users will not be able to submit jobs until you complete your testing and re-enable the queue with the enable command.
Take a printer down. Equivalent to disable followed by stop. The message appears as the printer's status whenever a user checks the printer's queue with lpq(1) or status with lpc status.
Enable the queue for a printer. Users can submit jobs but the printer will not print anything until it is started.
Print help on the command command-name. With no command-name, print a summary of the commands available.
Start the printer. Ordinary users can use this command if some extraordinary circumstance hangs LPD, but they cannot start a printer stopped with either the stop or down commands. The restart command is equivalent to abort followed by start.
Start the printer. The printer will print jobs in its queue.
Stop the printer. The printer will finish the current job and will not print anything else in its queue. Even though the printer is stopped, users can still submit jobs to an enabled queue.
Rearrange the queue for printer-name by placing the jobs with the listed job numbers or the jobs belonging to username at the top of the queue. For this command, you cannot use all as the printer-name.
Bring a printer up; the opposite of the down command. Equivalent to start followed by enable.
lpc(8) accepts the above commands on the command line. If you do not enter any commands, lpc(8) enters an interactive mode, where you can enter commands until you type exit, quit, or end-of-file.
If you have been reading straight through this manual, by now you have learned just about everything there is to know about the LPD spooling system that comes with FreeBSD. You can probably appreciate many of its shortcomings, which naturally leads to the question: “What other spooling systems are out there (and work with FreeBSD)?”
LPRng, which purportedly means “LPR: the Next Generation” is a complete rewrite of PLP. Patrick Powell and Justin Mason (the principal maintainer of PLP) collaborated to make LPRng. The main site for LPRng is http://www.lprng.org/.
CUPS, the Common UNIX Printing System, provides a portable printing layer for UNIX-based operating systems. It has been developed by Easy Software Products to promote a standard printing solution for all UNIX vendors and users.
CUPS uses the Internet Printing Protocol (IPP) as the basis for managing print jobs and queues. The Line Printer Daemon (LPD), Server Message Block (SMB), and AppSocket (a.k.a. JetDirect) protocols are also supported with reduced functionality. CUPS adds network printer browsing and PostScript Printer Description (PPD) based printing options to support real-world printing under UNIX.
The main site for CUPS is http://www.cups.org/.
After performing the simple test with lptest(1), you might have gotten one of the following results instead of the correct printout:
The printer printed the above, but it sat for awhile and did nothing. In fact, you might have needed to press a PRINT REMAINING or FORM FEED button on the printer to get any results to appear.
If this is the case, the printer was probably waiting to see if there was any more data for your job before it printed anything. To fix this problem, you can have the text filter send a FORM FEED character (or whatever is necessary) to the printer. This is usually sufficient to have the printer immediately print any text remaining in its internal buffer. It is also useful to make sure each print job ends on a full sheet, so the next job does not start somewhere on the middle of the last page of the previous job.
The following replacement for the shell script /usr/local/libexec/if-simple prints a form feed after it sends the job to the printer:
#!/bin/sh # # if-simple - Simple text input filter for lpd # Installed in /usr/local/libexec/if-simple # # Simply copies stdin to stdout. Ignores all filter arguments. # Writes a form feed character (\f) after printing job. /bin/cat && printf "\f" && exit 0 exit 2
You got the following on paper:
!"#$%&'()*+,-./01234 "#$%&'()*+,-./012345 #$%&'()*+,-./0123456
You have become another victim of the staircase effect, caused by conflicting interpretations of what characters should indicate a new line. UNIX style operating systems use a single character: ASCII code 10, the line feed (LF). MS-DOS, OS/2®, and others uses a pair of characters, ASCII code 10 and ASCII code 13 (the carriage return or CR). Many printers use the MS-DOS convention for representing new-lines.
When you print with FreeBSD, your text used just the line feed character. The printer, upon seeing a line feed character, advanced the paper one line, but maintained the same horizontal position on the page for the next character to print. That is what the carriage return is for: to move the location of the next character to print to the left edge of the paper.
Here is what FreeBSD wants your printer to do:
Here are some ways to achieve this:
Use the printer's configuration switches or control panel to alter its interpretation of these characters. Check your printer's manual to find out how to do this.
注: If you boot your system into other operating systems besides FreeBSD, you may have to reconfigure the printer to use a an interpretation for CR and LF characters that those other operating systems use. You might prefer one of the other solutions, below.
Have FreeBSD's serial line driver automatically convert LF to CR+LF. Of course, this works with printers on serial ports only. To enable this feature, use the ms# capability and set the onlcr mode in the /etc/printcap file for the printer.
Send an escape code to the printer to have it temporarily treat LF characters differently. Consult your printer's manual for escape codes that your printer might support. When you find the proper escape code, modify the text filter to send the code first, then send the print job.
Here is an example text filter for printers that understand the Hewlett-Packard PCL escape codes. This filter makes the printer treat LF characters as a LF and CR; then it sends the job; then it sends a form feed to eject the last page of the job. It should work with nearly all Hewlett Packard printers.
#!/bin/sh # # hpif - Simple text input filter for lpd for HP-PCL based printers # Installed in /usr/local/libexec/hpif # # Simply copies stdin to stdout. Ignores all filter arguments. # Tells printer to treat LF as CR+LF. Ejects the page when done. printf "\033&k2G" && cat && printf "\033&l0H" && exit 0 exit 2
Here is an example /etc/printcap from a host called orchid. It has a single printer attached to its first parallel port, a Hewlett Packard LaserJet 3Si named teak. It is using the above script as its text filter:
# # /etc/printcap for host orchid # teak|hp|laserjet|Hewlett Packard LaserJet 3Si:\ :lp=/dev/lpt0:sh:sd=/var/spool/lpd/teak:mx#0:\ :if=/usr/local/libexec/hpif:
The printer never advanced a line. All of the lines of text were printed on top of each other on one line.
This problem is the “opposite” of the staircase effect, described above, and is much rarer. Somewhere, the LF characters that FreeBSD uses to end a line are being treated as CR characters to return the print location to the left edge of the paper, but not also down a line.
Use the printer's configuration switches or control panel to enforce the following interpretation of LF and CR characters:
While printing, the printer did not print a few characters in each line. The problem might have gotten worse as the printer ran, losing more and more characters.
The problem is that the printer cannot keep up with the speed at which the computer sends data over a serial line (this problem should not occur with printers on parallel ports). There are two ways to overcome the problem:
If the printer supports XON/XOFF flow control, have FreeBSD use it by specifying the ixon mode in the ms# capability.
If the printer supports carrier flow control, specify the crtscts mode in the ms# capability. Make sure the cable connecting the printer to the computer is correctly wired for carrier flow control.
The printer printed what appeared to be random garbage, but not the desired text.
This is usually another symptom of incorrect communications parameters with a serial printer. Double-check the bps rate in the br capability, and the parity setting in the ms# capability; make sure the printer is using the same settings as specified in the /etc/printcap file.
If nothing happened, the problem is probably within FreeBSD and not the hardware. Add the log file (lf) capability to the entry for the printer you are debugging in the /etc/printcap file. For example, here is the entry for rattan, with the lf capability:
rattan|line|diablo|lp|Diablo 630 Line Printer:\ :sh:sd=/var/spool/lpd/rattan:\ :lp=/dev/lpt0:\ :if=/usr/local/libexec/if-simple:\ :lf=/var/log/rattan.log
Then, try printing again. Check the log file (in our example, /var/log/rattan.log) to see any error messages that might appear. Based on the messages you see, try to correct the problem.
If you do not specify a lf capability, LPD uses /dev/console as a default.
FreeBSD 有提供其他幾種 UNIX like 作業系統的 binary 相容性,其中包括了 Linux。 你可能會納悶:為什麼 FreeBSD 需要能夠執行 Linux 專用執行檔(binary)呢?答案很簡單, 許多公司、開發者只會 Linux 開發程式,因為這是目前資訊界 “最熱門” 的玩意。 這逼得許多 FreeBSD 使用者不得不去勸說這些人是否提供可直接在 FreeBSD 上執行的版本。 但問題是,大多數公司並不瞭解會有多少人會用 FreeBSD 版,因此他們仍只開發 Linux 版。 那麼 FreeBSD 使用者該怎麼辦呢?答案就是用 FreeBSD 所提供的 Linux binary 相容。
簡單來講,這種相容性可讓 FreeBSD 使用者直接執行約 90% 的 Linux 程式,而不必做任何修改。 這些包括了: StarOffice、 Netscape 的 Linux 版、 Adobe Acrobat、 RealPlayer、 VMware™、 Oracle、 WordPerfect®、Doom、 Quake 等等。此外,也有人回報說在某些情況下, 這些在 FreeBSD 上執行的 Linux 程式,甚至比原本在 Linux 執行得更好。
然而呢,還是有些只限 Linux 特定的作業系統功能,在 FreeBSD 上並未支援。 如果 Linux 程式過於濫用只有 i386 架構上才能用的功能,比如:虛擬 8086 模式, 則可能無法在 FreeBSD 運作正常。
讀完這章,您將了解:
如何啟用 Linux 相容模式。
如何安裝額外的 Linux share libraries。
如何在 FreeBSD 上安裝 Linux 程式。
FreeBSD 上的 Linux 相容模式的實作細節。
在閱讀這章之前,您應當了解:
知道如何透過 port 機制來安裝軟體(µÚ 4 章)。
預設並不會打開 Linux 相容模式,最簡單的啟用方式,就是載入 linux KLD object (“Kernel LoaDable object”)。 載入方式,請切為 root 權限,然後打下列指令:
# kldload linux
若要每次開機都啟用的話,請把下列內容加到 /etc/rc.conf 檔:
linux_enable="YES"
另外可以用 kldstat(8) 指令,來確認有哪些 KLD 有載入:
% kldstat Id Refs Address Size Name 1 2 0xc0100000 16bdb8 kernel 7 1 0xc24db000 d000 linux.ko
If for some reason you do not want to or cannot load the KLD, then you may statically link Linux binary compatibility into the kernel by adding options COMPAT_LINUX to your kernel configuration file. Then install your new kernel as described in µÚ 8 章.
This can be done one of two ways, either by using the linux_base port, or by installing them manually.
This is by far the easiest method to use when installing the runtime libraries. It is just like installing any other port from the Ports Collection. Simply do the following:
# cd /usr/ports/emulators/linux_base-fc4 # make install distclean
You should now have working Linux binary compatibility. Some programs may complain about incorrect minor versions of the system libraries. In general, however, this does not seem to be a problem.
注: There may be multiple versions of the emulators/linux_base port available, corresponding to different versions of various Linux distributions. You should install the port most closely resembling the requirements of the Linux applications you would like to install.
If you do not have the “ports” collection installed, you can install the libraries by hand instead. You will need the Linux shared libraries that the program depends on and the runtime linker. Also, you will need to create a “shadow root” directory, /compat/linux, for Linux libraries on your FreeBSD system. Any shared libraries opened by Linux programs run under FreeBSD will look in this tree first. So, if a Linux program loads, for example, /lib/libc.so, FreeBSD will first try to open /compat/linux/lib/libc.so, and if that does not exist, it will then try /lib/libc.so. Shared libraries should be installed in the shadow tree /compat/linux/lib rather than the paths that the Linux ld.so reports.
Generally, you will need to look for the shared libraries that Linux binaries depend on only the first few times that you install a Linux program on your FreeBSD system. After a while, you will have a sufficient set of Linux shared libraries on your system to be able to run newly imported Linux binaries without any extra work.
What if you install the linux_base port and your application still complains about missing shared libraries? How do you know which shared libraries Linux binaries need, and where to get them? Basically, there are 2 possibilities (when following these instructions you will need to be root on your FreeBSD system).
If you have access to a Linux system, see what shared libraries the application needs, and copy them to your FreeBSD system. Look at the following example:
Let us assume you used FTP to get the Linux binary of Doom, and put it on a Linux system you have access to. You then can check which shared libraries it needs by running ldd linuxdoom, like so:
% ldd linuxdoom libXt.so.3 (DLL Jump 3.1) => /usr/X11/lib/libXt.so.3.1.0 libX11.so.3 (DLL Jump 3.1) => /usr/X11/lib/libX11.so.3.1.0 libc.so.4 (DLL Jump 4.5pl26) => /lib/libc.so.4.6.29
You would need to get all the files from the last column, and put them under /compat/linux, with the names in the first column as symbolic links pointing to them. This means you eventually have these files on your FreeBSD system:
/compat/linux/usr/X11/lib/libXt.so.3.1.0 /compat/linux/usr/X11/lib/libXt.so.3 -> libXt.so.3.1.0 /compat/linux/usr/X11/lib/libX11.so.3.1.0 /compat/linux/usr/X11/lib/libX11.so.3 -> libX11.so.3.1.0 /compat/linux/lib/libc.so.4.6.29 /compat/linux/lib/libc.so.4 -> libc.so.4.6.29
注: Note that if you already have a Linux shared library with a matching major revision number to the first column of the ldd output, you will not need to copy the file named in the last column to your system, the one you already have should work. It is advisable to copy the shared library anyway if it is a newer version, though. You can remove the old one, as long as you make the symbolic link point to the new one. So, if you have these libraries on your system:
/compat/linux/lib/libc.so.4.6.27 /compat/linux/lib/libc.so.4 -> libc.so.4.6.27and you find a new binary that claims to require a later version according to the output of ldd:
libc.so.4 (DLL Jump 4.5pl26) -> libc.so.4.6.29If it is only one or two versions out of date in the in the trailing digit then do not worry about copying /lib/libc.so.4.6.29 too, because the program should work fine with the slightly older version. However, if you like, you can decide to replace the libc.so anyway, and that should leave you with:
/compat/linux/lib/libc.so.4.6.29 /compat/linux/lib/libc.so.4 -> libc.so.4.6.29
注: The symbolic link mechanism is only needed for Linux binaries. The FreeBSD runtime linker takes care of looking for matching major revision numbers itself and you do not need to worry about it.
ELF binaries sometimes require an extra step of “branding”. If you attempt to run an unbranded ELF binary, you will get an error message like the following:
% ./my-linux-elf-binary ELF binary type not known Abort
To help the FreeBSD kernel distinguish between a FreeBSD ELF binary from a Linux binary, use the brandelf(1) utility.
% brandelf -t Linux my-linux-elf-binary
The GNU toolchain now places the appropriate branding information into ELF binaries automatically, so this step should become increasingly unnecessary in the future.
If DNS does not work or you get this message:
resolv+: "bind" is an invalid keyword resolv+: "hosts" is an invalid keyword
You will need to configure a /compat/linux/etc/host.conf file containing:
order hosts, bind multi on
The order here specifies that /etc/hosts is searched first and DNS is searched second. When /compat/linux/etc/host.conf is not installed, Linux applications find FreeBSD's /etc/host.conf and complain about the incompatible FreeBSD syntax. You should remove bind if you have not configured a name server using the /etc/resolv.conf file.
This document describes the process of installing the Linux version of Mathematica 5.X onto a FreeBSD system.
The Linux version of Mathematica or Mathematica for Students can be ordered directly from Wolfram at http://www.wolfram.com/.
First, you have to tell FreeBSD that Mathematica's Linux binaries use the Linux ABI. The easiest way to do so is to set the default ELF brand to Linux for all unbranded binaries with the command:
# sysctl kern.fallback_elf_brand=3
This will make FreeBSD assume that unbranded ELF binaries use the Linux ABI and so you should be able to run the installer straight from the CDROM.
Now, copy the file MathInstaller to your hard drive:
# mount /cdrom # cp /cdrom/Unix/Installers/Linux/MathInstaller /localdir/
and in this file, replace /bin/sh in the first line by /compat/linux/bin/sh. This makes sure that the installer is executed by the Linux version of sh(1). Next, replace all occurrences of Linux) by FreeBSD) with a text editor or the script below in the next section. This tells the Mathematica installer, who calls uname -s to determine the operating system, to treat FreeBSD as a Linux-like operating system. Invoking MathInstaller will now install Mathematica.
The shell scripts that Mathematica created during installation have to be modified before you can use them. If you chose /usr/local/bin as the directory to place the Mathematica executables in, you will find symlinks in this directory to files called math, mathematica, Mathematica, and MathKernel. In each of these, replace Linux) by FreeBSD) with a text editor or the following shell script:
#!/bin/sh cd /usr/local/bin for i in math mathematica Mathematica MathKernel do sed 's/Linux)/FreeBSD)/g' $i > $i.tmp sed 's/\/bin\/sh/\/compat\/linux\/bin\/sh/g' $i.tmp > $i rm $i.tmp chmod a+x $i done
When you start Mathematica for the first time, you will be asked for a password. If you have not yet obtained a password from Wolfram, run the program mathinfo in the installation directory to obtain your “machine ID”. This machine ID is based solely on the MAC address of your first Ethernet card, so you cannot run your copy of Mathematica on different machines.
When you register with Wolfram, either by email, phone or fax, you will give them the “machine ID” and they will respond with a corresponding password consisting of groups of numbers.
Mathematica uses some special fonts to display characters not present in any of the standard font sets (integrals, sums, Greek letters, etc.). The X protocol requires these fonts to be install locally. This means you will have to copy these fonts from the CDROM or from a host with Mathematica installed to your local machine. These fonts are normally stored in /cdrom/Unix/Files/SystemFiles/Fonts on the CDROM, or /usr/local/mathematica/SystemFiles/Fonts on your hard drive. The actual fonts are in the subdirectories Type1 and X. There are several ways to use them, as described below.
The first way is to copy them into one of the existing font directories in /usr/X11R6/lib/X11/fonts. This will require editing the fonts.dir file, adding the font names to it, and changing the number of fonts on the first line. Alternatively, you should also just be able to run mkfontdir(1) in the directory you have copied them to.
The second way to do this is to copy the directories to /usr/X11R6/lib/X11/fonts:
# cd /usr/X11R6/lib/X11/fonts # mkdir X # mkdir MathType1 # cd /cdrom/Unix/Files/SystemFiles/Fonts # cp X/* /usr/X11R6/lib/X11/fonts/X # cp Type1/* /usr/X11R6/lib/X11/fonts/MathType1 # cd /usr/X11R6/lib/X11/fonts/X # mkfontdir # cd ../MathType1 # mkfontdir
Now add the new font directories to your font path:
# xset fp+ /usr/X11R6/lib/X11/fonts/X # xset fp+ /usr/X11R6/lib/X11/fonts/MathType1 # xset fp rehash
If you are using the Xorg server, you can have these font directories loaded automatically by adding them to your xorg.conf file.
注: For XFree86 servers, the configuration file is XF86Config.
If you do not already have a directory called /usr/X11R6/lib/X11/fonts/Type1, you can change the name of the MathType1 directory in the example above to Type1.
Maple™ is a commercial mathematics program similar to Mathematica. You must purchase this software from http://www.maplesoft.com/ and then register there for a license file. To install this software on FreeBSD, please follow these simple steps.
Execute the INSTALL shell script from the product distribution. Choose the “RedHat” option when prompted by the installation program. A typical installation directory might be /usr/local/maple.
If you have not done so, order a license for Maple from Maple Waterloo Software (http://register.maplesoft.com/) and copy it to /usr/local/maple/license/license.dat.
Install the FLEXlm license manager by running the INSTALL_LIC install shell script that comes with Maple. Specify the primary hostname for your machine for the license server.
Patch the /usr/local/maple/bin/maple.system.type file with the following:
----- snip ------------------ *** maple.system.type.orig Sun Jul 8 16:35:33 2001 --- maple.system.type Sun Jul 8 16:35:51 2001 *************** *** 72,77 **** --- 72,78 ---- # the IBM RS/6000 AIX case MAPLE_BIN="bin.IBM_RISC_UNIX" ;; + "FreeBSD"|\ "Linux") # the Linux/x86 case # We have two Linux implementations, one for Red Hat and ----- snip end of patch -----
Please note that after the "FreeBSD"|\ no other whitespace should be present.
This patch instructs Maple to recognize “FreeBSD” as a type of Linux system. The bin/maple shell script calls the bin/maple.system.type shell script which in turn calls uname -a to find out the operating system name. Depending on the OS name it will find out which binaries to use.
Start the license server.
The following script, installed as /usr/local/etc/rc.d/lmgrd.sh is a convenient way to start up lmgrd:
----- snip ------------ #! /bin/sh PATH=/usr/local/sbin:/usr/local/bin:/sbin:/bin:/usr/sbin:/usr/bin:/usr/X11R6/bin PATH=${PATH}:/usr/local/maple/bin:/usr/local/maple/FLEXlm/UNIX/LINUX export PATH LICENSE_FILE=/usr/local/maple/license/license.dat LOG=/var/log/lmgrd.log case "$1" in start) lmgrd -c ${LICENSE_FILE} 2>> ${LOG} 1>&2 echo -n " lmgrd" ;; stop) lmgrd -c ${LICENSE_FILE} -x lmdown 2>> ${LOG} 1>&2 ;; *) echo "Usage: `basename $0` {start|stop}" 1>&2 exit 64 ;; esac exit 0 ----- snip ------------
Test-start Maple:
% cd /usr/local/maple/bin % ./xmaple
You should be up and running. Make sure to write Maplesoft to let them know you would like a native FreeBSD version!
The FLEXlm license manager can be a difficult tool to work with. Additional documentation on the subject can be found at http://www.globetrotter.com/.
lmgrd is known to be very picky about the license file and to core dump if there are any problems. A correct license file should look like this:
# ======================================================= # License File for UNIX Installations ("Pointer File") # ======================================================= SERVER chillig ANY #USE_SERVER VENDOR maplelmg FEATURE Maple maplelmg 2000.0831 permanent 1 XXXXXXXXXXXX \ PLATFORMS=i86_r ISSUER="Waterloo Maple Inc." \ ISSUED=11-may-2000 NOTICE=" Technische Universitat Wien" \ SN=XXXXXXXXX
注: Serial number and key 'X''ed out. chillig is a hostname.
Editing the license file works as long as you do not touch the “FEATURE” line (which is protected by the license key).
This document describes the process of installing the Linux version of MATLAB® version 6.5 onto a FreeBSD system. It works quite well, with the exception of the Java Virtual Machine™ (see µÚ 10.5.3 節).
The Linux version of MATLAB can be ordered directly from The MathWorks at http://www.mathworks.com. Make sure you also get the license file or instructions how to create it. While you are there, let them know you would like a native FreeBSD version of their software.
To install MATLAB, do the following:
Insert the installation CD and mount it. Become root, as recommended by the installation script. To start the installation script type:
# /compat/linux/bin/sh /cdrom/install
提示: The installer is graphical. If you get errors about not being able to open a display, type setenv HOME ~USER, where USER is the user you did a su(1) as.
When asked for the MATLAB root directory, type: /compat/linux/usr/local/matlab.
提示: For easier typing on the rest of the installation process, type this at your shell prompt: set MATLAB=/compat/linux/usr/local/matlab
Edit the license file as instructed when obtaining the MATLAB license.
提示: You can prepare this file in advance using your favorite editor, and copy it to $MATLAB/license.dat before the installer asks you to edit it.
Complete the installation process.
At this point your MATLAB installation is complete. The following steps apply “glue” to connect it to your FreeBSD system.
Create symlinks for the license manager scripts:
# ln -s $MATLAB/etc/lmboot /usr/local/etc/lmboot_TMW # ln -s $MATLAB/etc/lmdown /usr/local/etc/lmdown_TMW
Create a startup file at /usr/local/etc/rc.d/flexlm.sh. The example below is a modified version of the distributed $MATLAB/etc/rc.lm.glnx86. The changes are file locations, and startup of the license manager under Linux emulation.
#!/bin/sh case "$1" in start) if [ -f /usr/local/etc/lmboot_TMW ]; then /compat/linux/bin/sh /usr/local/etc/lmboot_TMW -u username && echo 'MATLAB_lmgrd' fi ;; stop) if [ -f /usr/local/etc/lmdown_TMW ]; then /compat/linux/bin/sh /usr/local/etc/lmdown_TMW > /dev/null 2>&1 fi ;; *) echo "Usage: $0 {start|stop}" exit 1 ;; esac exit 0
重要: The file must be made executable:
# chmod +x /usr/local/etc/rc.d/flexlm.shYou must also replace username above with the name of a valid user on your system (and not root).
Start the license manager with the command:
# /usr/local/etc/rc.d/flexlm.sh start
Change the Java Runtime Environment (JRE) link to one working under FreeBSD:
# cd $MATLAB/sys/java/jre/glnx86/ # unlink jre; ln -s ./jre1.1.8 ./jre
Place the following startup script in /usr/local/bin/matlab:
#!/bin/sh /compat/linux/bin/sh /compat/linux/usr/local/matlab/bin/matlab "$@"
Then type the command chmod +x /usr/local/bin/matlab.
提示: Depending on your version of emulators/linux_base, you may run into errors when running this script. To avoid that, edit the file /compat/linux/usr/local/matlab/bin/matlab, and change the line that says:
if [ `expr "$lscmd" : '.*->.*'` -ne 0 ]; then(in version 13.0.1 it is on line 410) to this line:
if test -L $newbase; then
The following is needed to solve a problem with MATLAB not exiting correctly.
Create a file $MATLAB/toolbox/local/finish.m, and in it put the single line:
! $MATLAB/bin/finish.sh
注: The $MATLAB is literal.
提示: In the same directory, you will find the files finishsav.m and finishdlg.m, which let you save your workspace before quitting. If you use either of them, insert the line above immediately after the save command.
Create a file $MATLAB/bin/finish.sh, which will contain the following:
#!/usr/compat/linux/bin/sh (sleep 5; killall -1 matlab_helper) & exit 0
Make the file executable:
# chmod +x $MATLAB/bin/finish.sh
This document describes the process of installing Oracle 8.0.5 and Oracle 8.0.5.1 Enterprise Edition for Linux onto a FreeBSD machine.
Make sure you have both emulators/linux_base and devel/linux_devtools from the Ports Collection installed. If you run into difficulties with these ports, you may have to use the packages or older versions available in the Ports Collection.
If you want to run the intelligent agent, you will also need to install the Red Hat Tcl package: tcl-8.0.3-20.i386.rpm. The general command for installing packages with the official RPM port (archivers/rpm) is:
# rpm -i --ignoreos --root /compat/linux --dbpath /var/lib/rpm package
Installation of the package should not generate any errors.
Before you can install Oracle, you need to set up a proper environment. This document only describes what to do specially to run Oracle for Linux on FreeBSD, not what has been described in the Oracle installation guide.
As described in the Oracle installation guide, you need to set the maximum size of shared memory. Do not use SHMMAX under FreeBSD. SHMMAX is merely calculated out of SHMMAXPGS and PGSIZE. Therefore define SHMMAXPGS. All other options can be used as described in the guide. For example:
options SHMMAXPGS=10000 options SHMMNI=100 options SHMSEG=10 options SEMMNS=200 options SEMMNI=70 options SEMMSL=61
Set these options to suit your intended use of Oracle.
Also, make sure you have the following options in your kernel configuration file:
options SYSVSHM #SysV shared memory options SYSVSEM #SysV semaphores options SYSVMSG #SysV interprocess communication
Create an oracle account just as you would create any other account. The oracle account is special only that you need to give it a Linux shell. Add /compat/linux/bin/bash to /etc/shells and set the shell for the oracle account to /compat/linux/bin/bash.
Besides the normal Oracle variables, such as ORACLE_HOME and ORACLE_SID you must set the following environment variables:
Variable | Value |
---|---|
LD_LIBRARY_PATH | $ORACLE_HOME/lib |
CLASSPATH | $ORACLE_HOME/jdbc/lib/classes111.zip |
PATH | /compat/linux/bin /compat/linux/sbin /compat/linux/usr/bin /compat/linux/usr/sbin /bin /sbin /usr/bin /usr/sbin /usr/local/bin $ORACLE_HOME/bin |
It is advised to set all the environment variables in .profile. A complete example is:
ORACLE_BASE=/oracle; export ORACLE_BASE ORACLE_HOME=/oracle; export ORACLE_HOME LD_LIBRARY_PATH=$ORACLE_HOME/lib export LD_LIBRARY_PATH ORACLE_SID=ORCL; export ORACLE_SID ORACLE_TERM=386x; export ORACLE_TERM CLASSPATH=$ORACLE_HOME/jdbc/lib/classes111.zip export CLASSPATH PATH=/compat/linux/bin:/compat/linux/sbin:/compat/linux/usr/bin PATH=$PATH:/compat/linux/usr/sbin:/bin:/sbin:/usr/bin:/usr/sbin PATH=$PATH:/usr/local/bin:$ORACLE_HOME/bin export PATH
Due to a slight inconsistency in the Linux emulator, you need to create a directory named .oracle in /var/tmp before you start the installer. Let it be owned by the oracle user. You should be able to install Oracle without any problems. If you have problems, check your Oracle distribution and/or configuration first! After you have installed Oracle, apply the patches described in the next two subsections.
A frequent problem is that the TCP protocol adapter is not installed right. As a consequence, you cannot start any TCP listeners. The following actions help solve this problem:
# cd $ORACLE_HOME/network/lib # make -f ins_network.mk ntcontab.o # cd $ORACLE_HOME/lib # ar r libnetwork.a ntcontab.o # cd $ORACLE_HOME/network/lib # make -f ins_network.mk install
Do not forget to run root.sh again!
When installing Oracle, some actions, which need to be performed as root, are recorded in a shell script called root.sh. This script is written in the orainst directory. Apply the following patch to root.sh, to have it use to proper location of chown or alternatively run the script under a Linux native shell.
*** orainst/root.sh.orig Tue Oct 6 21:57:33 1998 --- orainst/root.sh Mon Dec 28 15:58:53 1998 *************** *** 31,37 **** # This is the default value for CHOWN # It will redefined later in this script for those ports # which have it conditionally defined in ss_install.h ! CHOWN=/bin/chown # # Define variables to be used in this script --- 31,37 ---- # This is the default value for CHOWN # It will redefined later in this script for those ports # which have it conditionally defined in ss_install.h ! CHOWN=/usr/sbin/chown # # Define variables to be used in this script
When you do not install Oracle from CD, you can patch the source for root.sh. It is called rthd.sh and is located in the orainst directory in the source tree.
The script genclntsh is used to create a single shared client library. It is used when building the demos. Apply the following patch to comment out the definition of PATH:
*** bin/genclntsh.orig Wed Sep 30 07:37:19 1998 --- bin/genclntsh Tue Dec 22 15:36:49 1998 *************** *** 32,38 **** # # Explicit path to ensure that we're using the correct commands #PATH=/usr/bin:/usr/ccs/bin export PATH ! PATH=/usr/local/bin:/bin:/usr/bin:/usr/X11R6/bin export PATH # # each product MUST provide a $PRODUCT/admin/shrept.lst --- 32,38 ---- # # Explicit path to ensure that we're using the correct commands #PATH=/usr/bin:/usr/ccs/bin export PATH ! #PATH=/usr/local/bin:/bin:/usr/bin:/usr/X11R6/bin export PATH # # each product MUST provide a $PRODUCT/admin/shrept.lst
When you have followed the instructions, you should be able to run Oracle as if it was run on Linux itself.
Installations of SAP Systems using FreeBSD will not be supported by the SAP support team —— they only offer support for certified platforms.
This document describes a possible way of installing a SAP R/3 System with Oracle Database for Linux onto a FreeBSD machine, including the installation of FreeBSD and Oracle. Two different configurations will be described:
SAP R/3 4.6B (IDES) with Oracle 8.0.5 on FreeBSD 4.3-STABLE
SAP R/3 4.6C with Oracle 8.1.7 on FreeBSD 4.5-STABLE
Even though this document tries to describe all important steps in a greater detail, it is not intended as a replacement for the Oracle and SAP R/3 installation guides.
Please see the documentation that comes with the SAP R/3 Linux edition for SAP and Oracle specific questions, as well as resources from Oracle and SAP OSS.
The following CD-ROMs have been used for SAP installations:
Name | Number | Description |
---|---|---|
KERNEL | 51009113 | SAP Kernel Oracle / Installation / AIX, Linux, Solaris |
RDBMS | 51007558 | Oracle / RDBMS 8.0.5.X / Linux |
EXPORT1 | 51010208 | IDES / DB-Export / Disc 1 of 6 |
EXPORT2 | 51010209 | IDES / DB-Export / Disc 2 of 6 |
EXPORT3 | 51010210 | IDES / DB-Export / Disc 3 of 6 |
EXPORT4 | 51010211 | IDES / DB-Export / Disc 4 of 6 |
EXPORT5 | 51010212 | IDES / DB-Export / Disc 5 of 6 |
EXPORT6 | 51010213 | IDES / DB-Export / Disc 6 of 6 |
Additionally, we used the Oracle 8 Server (Pre-production version 8.0.5 for Linux, Kernel Version 2.0.33) CD which is not really necessary, and FreeBSD 4.3-STABLE (it was only a few days past 4.3 RELEASE).
Name | Number | Description |
---|---|---|
KERNEL | 51014004 | SAP Kernel Oracle / SAP Kernel Version 4.6D / DEC, Linux |
RDBMS | 51012930 | Oracle 8.1.7/ RDBMS / Linux |
EXPORT1 | 51013953 | Release 4.6C SR2 / Export / Disc 1 of 4 |
EXPORT1 | 51013953 | Release 4.6C SR2 / Export / Disc 2 of 4 |
EXPORT1 | 51013953 | Release 4.6C SR2 / Export / Disc 3 of 4 |
EXPORT1 | 51013953 | Release 4.6C SR2 / Export / Disc 4 of 4 |
LANG1 | 51013954 | Release 4.6C SR2 / Language / DE, EN, FR / Disc 1 of 3 |
Depending on the languages you would like to install, additional language CDs might be necessary. Here we are just using DE and EN, so the first language CD is the only one needed. As a little note, the numbers for all four EXPORT CDs are identical. All three language CDs also have the same number (this is different from the 4.6B IDES release CD numbering). At the time of writing this installation is running on FreeBSD 4.5-STABLE (20.03.2002).
The following notes should be read before installing SAP R/3 and proved to be useful during installation:
Number | Title |
---|---|
0171356 | SAP Software on Linux: Essential Comments |
0201147 | INST: 4.6C R/3 Inst. on UNIX - Oracle |
0373203 | Update / Migration Oracle 8.0.5 --> 8.0.6/8.1.6 LINUX |
0072984 | Release of Digital UNIX 4.0B for Oracle |
0130581 | R3SETUP step DIPGNTAB terminates |
0144978 | Your system has not been installed correctly |
0162266 | Questions and tips for R3SETUP on Windows NT / W2K |
Number | Title |
---|---|
0015023 | Initializing table TCPDB (RSXP0004) (EBCDIC) |
0045619 | R/3 with several languages or typefaces |
0171356 | SAP Software on Linux: Essential Comments |
0195603 | RedHat 6.1 Enterprise version: Known problems |
0212876 | The new archiving tool SAPCAR |
0300900 | Linux: Released DELL Hardware |
0377187 | RedHat 6.2: important remarks |
0387074 | INST: R/3 4.6C SR2 Installation on UNIX |
0387077 | INST: R/3 4.6C SR2 Inst. on UNIX - Oracle |
0387078 | SAP Software on UNIX: OS Dependencies 4.6C SR2 |
The following equipment is sufficient for the installation of a SAP R/3 System. For production use, a more exact sizing is of course needed:
Component | 4.6B | 4.6C |
---|---|---|
Processor | 2 x 800MHz Pentium III | 2 x 800MHz Pentium III |
Memory | 1GB ECC | 2GB ECC |
Hard Disk Space | 50-60GB (IDES) | 50-60GB (IDES) |
For use in production, Xeon Processors with large cache, high-speed disk access (SCSI, RAID hardware controller), USV and ECC-RAM is recommended. The large amount of hard disk space is due to the preconfigured IDES System, which creates 27 GB of database files during installation. This space is also sufficient for initial production systems and application data.
The following off-the-shelf hardware was used: a dual processor board with 2 800 MHz Pentium III processors, Adaptec® 29160 Ultra160 SCSI adapter (for accessing a 40/80 GB DLT tape drive and CDROM), Mylex® AcceleRAID™ (2 channels, firmware 6.00-1-00 with 32 MB RAM). To the Mylex RAID controller are attached two 17 GB hard disks (mirrored) and four 36 GB hard disks (RAID level 5).
For this installation a Dell™ PowerEdge™ 2500 was used: a dual processor board with two 1000 MHz Pentium III processors (256 kB Cache), 2 GB PC133 ECC SDRAM, PERC/3 DC PCI RAID Controller with 128 MB, and an EIDE DVD-ROM drive. To the RAID controller are attached two 18 GB hard disks (mirrored) and four 36 GB hard disks (RAID level 5).
First you have to install FreeBSD. There are several ways to do this, for more information read the µÚ 2.13 節.
To keep it simple, the same disk layout both for the SAP R/3 46B and SAP R/3 46C SR2 installation was used. Only the device names changed, as the installations were on different hardware (/dev/da and /dev/amr respectively, so if using an AMI MegaRAID®, one will see /dev/amr0s1a instead of /dev/da0s1a):
File system | Size (1k-blocks) | Size (GB) | Mounted on |
---|---|---|---|
/dev/da0s1a | 1.016.303 | 1 | / |
/dev/da0s1b | 6 | swap | |
/dev/da0s1e | 2.032.623 | 2 | /var |
/dev/da0s1f | 8.205.339 | 8 | /usr |
/dev/da1s1e | 45.734.361 | 45 | /compat/linux/oracle |
/dev/da1s1f | 2.032.623 | 2 | /compat/linux/sapmnt |
/dev/da1s1g | 2.032.623 | 2 | /compat/linux/usr/sap |
Configure and initialize the two logical drives with the Mylex or PERC/3 RAID software beforehand. The software can be started during the BIOS boot phase.
Please note that this disk layout differs slightly from the SAP recommendations, as SAP suggests mounting the Oracle subdirectories (and some others) separately —— we decided to just create them as real subdirectories for simplicity.
Download the latest -STABLE sources. Rebuild world and your custom kernel after configuring your kernel configuration file. Here you should also include the kernel parameters which are required for both SAP R/3 and Oracle.
First the linux_base port needs to be installed (as root):
# cd /usr/ports/emulators/linux_base # make install distclean
The Linux development environment is needed, if you want to install Oracle on FreeBSD according to the µÚ 10.6 節:
# cd /usr/ports/devel/linux_devtools # make install distclean
The Linux development environment has only been installed for the SAP R/3 46B IDES installation. It is not needed, if the Oracle DB is not relinked on the FreeBSD system. This is the case if you are using the Oracle tarball from a Linux system.
To start the R3SETUP program, PAM support is needed. During the first SAP Installation on FreeBSD 4.3-STABLE we tried to install PAM with all the required packages and finally forced the installation of the PAM package, which worked. For SAP R/3 4.6C SR2 we directly forced the installation of the PAM RPM, which also works, so it seems the dependent packages are not needed:
# rpm -i --ignoreos --nodeps --root /compat/linux --dbpath /var/lib/rpm \ pam-0.68-7.i386.rpm
For Oracle 8.0.5 to run the intelligent agent, we also had to install the RedHat Tcl package tcl-8.0.5-30.i386.rpm (otherwise the relinking during Oracle installation will not work). There are some other issues regarding relinking of Oracle, but that is a Oracle Linux issue, not FreeBSD specific.
It might also be a good idea to add linprocfs to /etc/fstab, for more information, see the linprocfs(5) manual page. Another parameter to set is kern.fallback_elf_brand=3 which is done in the file /etc/sysctl.conf.
For a simple installation, it is sufficient to create the following file systems:
mount point | size in GB |
---|---|
/compat/linux/oracle | 45 GB |
/compat/linux/sapmnt | 2 GB |
/compat/linux/usr/sap | 2 GB |
It is also necessary to created some links. Otherwise the SAP Installer will complain, as it is checking the created links:
# ln -s /compat/linux/oracle /oracle # ln -s /compat/linux/sapmnt /sapmnt # ln -s /compat/linux/usr/sap /usr/sap
Possible error message during installation (here with System PRD and the SAP R/3 4.6C SR2 installation):
INFO 2002-03-19 16:45:36 R3LINKS_IND_IND SyLinkCreate:200 Checking existence of symbolic link /usr/sap/PRD/SYS/exe/dbg to /sapmnt/PRD/exe. Creating if it does not exist... WARNING 2002-03-19 16:45:36 R3LINKS_IND_IND SyLinkCreate:400 Link /usr/sap/PRD/SYS/exe/dbg exists but it points to file /compat/linux/sapmnt/PRD/exe instead of /sapmnt/PRD/exe. The program cannot go on as long as this link exists at this location. Move the link to another location. ERROR 2002-03-19 16:45:36 R3LINKS_IND_IND Ins_SetupLinks:0 can not setup link '/usr/sap/PRD/SYS/exe/dbg' with content '/sapmnt/PRD/exe'
SAP R/3 needs two users and three groups. The user names depend on the SAP system ID (SID) which consists of three letters. Some of these SIDs are reserved by SAP (for example SAP and NIX. For a complete list please see the SAP documentation). For the IDES installation we used IDS, for the 4.6C SR2 installation PRD, as that system is intended for production use. We have therefore the following groups (group IDs might differ, these are just the values we used with our installation):
group ID | group name | description |
---|---|---|
100 | dba | Data Base Administrator |
101 | sapsys | SAP System |
102 | oper | Data Base Operator |
For a default Oracle installation, only group dba is used. As oper group, one also uses group dba (see Oracle and SAP documentation for further information).
We also need the following users:
user ID | user name | generic name | group | additional groups | description |
---|---|---|---|---|---|
1000 | idsadm/prdadm | sidadm | sapsys | oper | SAP Administrator |
1002 | oraids/oraprd | orasid | dba | oper | Oracle Administrator |
Adding the users with adduser(8) requires the following (please note shell and home directory) entries for “SAP Administrator”:
Name: sidadm Password: ****** Fullname: SAP Administrator SID Uid: 1000 Gid: 101 (sapsys) Class: Groups: sapsys dba HOME: /home/sidadm Shell: bash (/compat/linux/bin/bash)
and for “Oracle Administrator”:
Name: orasid Password: ****** Fullname: Oracle Administrator SID Uid: 1002 Gid: 100 (dba) Class: Groups: dba HOME: /oracle/sid Shell: bash (/compat/linux/bin/bash)
This should also include group oper in case you are using both groups dba and oper.
These directories are usually created as separate file systems. This depends entirely on your requirements. We choose to create them as simple directories, as they are all located on the same RAID 5 anyway:
First we will set owners and rights of some directories (as user root):
# chmod 775 /oracle # chmod 777 /sapmnt # chown root:dba /oracle # chown sidadm:sapsys /compat/linux/usr/sap # chmod 775 /compat/linux/usr/sap
Second we will create directories as user orasid. These will all be subdirectories of /oracle/SID:
# su - orasid # cd /oracle/SID # mkdir mirrlogA mirrlogB origlogA origlogB # mkdir sapdata1 sapdata2 sapdata3 sapdata4 sapdata5 sapdata6 # mkdir saparch sapreorg # exit
For the Oracle 8.1.7 installation some additional directories are needed:
# su - orasid # cd /oracle # mkdir 805_32 # mkdir client stage # mkdir client/80x_32 # mkdir stage/817_32 # cd /oracle/SID # mkdir 817_32
注: The directory client/80x_32 is used with exactly this name. Do not replace the x with some number or anything.
In the third step we create directories as user sidadm:
# su - sidadm # cd /usr/sap # mkdir SID # mkdir trans # exit
SAP R/3 requires some entries in file /etc/services, which will not be set correctly during installation under FreeBSD. Please add the following entries (you need at least those entries corresponding to the instance number —— in this case, 00. It will do no harm adding all entries from 00 to 99 for dp, gw, sp and ms). If you are going to use a SAProuter or need to access SAP OSS, you also need 99, as port 3299 is usually used for the SAProuter process on the target system:
sapdp00 3200/tcp # SAP Dispatcher. 3200 + Instance-Number sapgw00 3300/tcp # SAP Gateway. 3300 + Instance-Number sapsp00 3400/tcp # 3400 + Instance-Number sapms00 3500/tcp # 3500 + Instance-Number sapmsSID 3600/tcp # SAP Message Server. 3600 + Instance-Number sapgw00s 4800/tcp # SAP Secure Gateway 4800 + Instance-Number
SAP requires at least two locales that are not part of the default RedHat installation. SAP offers the required RPMs as download from their FTP server (which is only accessible if you are a customer with OSS access). See note 0171356 for a list of RPMs you need.
It is also possible to just create appropriate links (for example from de_DE and en_US ), but we would not recommend this for a production system (so far it worked with the IDES system without any problems, though). The following locales are needed:
de_DE.ISO-8859-1 en_US.ISO-8859-1
Create the links like this:
# cd /compat/linux/usr/share/locale # ln -s de_DE de_DE.ISO-8859-1 # ln -s en_US en_US.ISO-8859-1
If they are not present, there will be some problems during the installation. If these are then subsequently ignored (by setting the STATUS of the offending steps to OK in file CENTRDB.R3S), it will be impossible to log onto the SAP system without some additional effort.
SAP R/3 systems need a lot of resources. We therefore added the following parameters to the kernel configuration file:
# Set these for memory pigs (SAP and Oracle): options MAXDSIZ="(1024*1024*1024)" options DFLDSIZ="(1024*1024*1024)" # System V options needed. options SYSVSHM #SYSV-style shared memory options SHMMAXPGS=262144 #max amount of shared mem. pages #options SHMMAXPGS=393216 #use this for the 46C inst.parameters options SHMMNI=256 #max number of shared memory ident if. options SHMSEG=100 #max shared mem.segs per process options SYSVMSG #SYSV-style message queues options MSGSEG=32767 #max num. of mes.segments in system options MSGSSZ=32 #size of msg-seg. MUST be power of 2 options MSGMNB=65535 #max char. per message queue options MSGTQL=2046 #max amount of msgs in system options SYSVSEM #SYSV-style semaphores options SEMMNU=256 #number of semaphore UNDO structures options SEMMNS=1024 #number of semaphores in system options SEMMNI=520 #number of semaphore identifiers options SEMUME=100 #number of UNDO keys
The minimum values are specified in the documentation that comes from SAP. As there is no description for Linux, see the HP-UX section (32-bit) for further information. As the system for the 4.6C SR2 installation has more main memory, the shared segments can be larger both for SAP and Oracle, therefore choose a larger number of shared memory pages.
注: With the default installation of FreeBSD on i386, leave MAXDSIZ and DFLDSIZ at 1 GB maximum. Otherwise, strange errors like “ORA-27102: out of memory” and “Linux Error: 12: Cannot allocate memory” might happen.
There are many CDROMs to mount and unmount during the installation. Assuming you have enough CDROM drives, you can just mount them all. We decided to copy the CDROMs contents to corresponding directories:
/oracle/SID/sapreorg/cd-name
where cd-name was one of KERNEL, RDBMS, EXPORT1, EXPORT2, EXPORT3, EXPORT4, EXPORT5 and EXPORT6 for the
4.6B/IDES installation, and KERNEL, RDBMS, DISK1, DISK2, DISK3, DISK4 and LANG for the 4.6C SR2
installation. All the filenames on the mounted CDs should be in capital letters,
otherwise use the -g
option for mounting. So use the
following commands:
# mount_cd9660 -g /dev/cd0a /mnt # cp -R /mnt/* /oracle/SID/sapreorg/cd-name # umount /mnt
First you have to prepare an install directory:
# cd /oracle/SID/sapreorg # mkdir install # cd install
Then the installation script is started, which will copy nearly all the relevant files into the install directory:
# /oracle/SID/sapreorg/KERNEL/UNIX/INSTTOOL.SH
The IDES installation (4.6B) comes with a fully customized SAP R/3 demonstration system, so there are six instead of just three EXPORT CDs. At this point the installation template CENTRDB.R3S is for installing a standard central instance (R/3 and database), not the IDES central instance, so one needs to copy the corresponding CENTRDB.R3S from the EXPORT1 directory, otherwise R3SETUP will only ask for three EXPORT CDs.
The newer SAP 4.6C SR2 release comes with four EXPORT CDs. The parameter file that controls the installation steps is CENTRAL.R3S. Contrary to earlier releases there are no separate installation templates for a central instance with or without database. SAP is using a separate template for database installation. To restart the installation later it is however sufficient to restart with the original file.
During and after installation, SAP requires hostname to return the computer name only, not the fully qualified domain name. So either set the hostname accordingly, or set an alias with alias hostname='hostname -s' for both orasid and sidadm (and for root at least during installation steps performed as root). It is also possible to adjust the installed .profile and .login files of both users that are installed during SAP installation.
Make sure LD_LIBRARY_PATH is set correctly:
# export LD_LIBRARY_PATH=/oracle/IDS/lib:/sapmnt/IDS/exe:/oracle/805_32/lib
Start R3SETUP as root from installation directory:
# cd /oracle/IDS/sapreorg/install # ./R3SETUP -f CENTRDB.R3S
The script then asks some questions (defaults in brackets, followed by actual input):
Question | Default | Input |
---|---|---|
Enter SAP System ID | [C11] | IDSEnter |
Enter SAP Instance Number | [00] | Enter |
Enter SAPMOUNT Directory | [/sapmnt] | Enter |
Enter name of SAP central host | [troubadix.domain.de] | Enter |
Enter name of SAP db host | [troubadix] | Enter |
Select character set | [1] (WE8DEC) | Enter |
Enter Oracle server version (1) Oracle 8.0.5, (2) Oracle 8.0.6, (3) Oracle 8.1.5, (4) Oracle 8.1.6 | 1Enter | |
Extract Oracle Client archive | [1] (Yes, extract) | Enter |
Enter path to KERNEL CD | [/sapcd] | /oracle/IDS/sapreorg/KERNEL |
Enter path to RDBMS CD | [/sapcd] | /oracle/IDS/sapreorg/RDBMS |
Enter path to EXPORT1 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT1 |
Directory to copy EXPORT1 CD | [/oracle/IDS/sapreorg/CD4_DIR] | Enter |
Enter path to EXPORT2 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT2 |
Directory to copy EXPORT2 CD | [/oracle/IDS/sapreorg/CD5_DIR] | Enter |
Enter path to EXPORT3 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT3 |
Directory to copy EXPORT3 CD | [/oracle/IDS/sapreorg/CD6_DIR] | Enter |
Enter path to EXPORT4 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT4 |
Directory to copy EXPORT4 CD | [/oracle/IDS/sapreorg/CD7_DIR] | Enter |
Enter path to EXPORT5 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT5 |
Directory to copy EXPORT5 CD | [/oracle/IDS/sapreorg/CD8_DIR] | Enter |
Enter path to EXPORT6 CD | [/sapcd] | /oracle/IDS/sapreorg/EXPORT6 |
Directory to copy EXPORT6 CD | [/oracle/IDS/sapreorg/CD9_DIR] | Enter |
Enter amount of RAM for SAP + DB | 850Enter (in Megabytes) | |
Service Entry Message Server | [3600] | Enter |
Enter Group-ID of sapsys | [101] | Enter |
Enter Group-ID of oper | [102] | Enter |
Enter Group-ID of dba | [100] | Enter |
Enter User-ID of sidadm | [1000] | Enter |
Enter User-ID of orasid | [1002] | Enter |
Number of parallel procs | [2] | Enter |
If you had not copied the CDs to the different locations, then the SAP installer cannot find the CD needed (identified by the LABEL.ASC file on the CD) and would then ask you to insert and mount the CD and confirm or enter the mount path.
The CENTRDB.R3S might not be error free. In our case, it requested EXPORT4 CD again but indicated the correct key (6_LOCATION, then 7_LOCATION etc.), so one can just continue with entering the correct values.
Apart from some problems mentioned below, everything should go straight through up to the point where the Oracle database software needs to be installed.
Make sure LD_LIBRARY_PATH is set correctly. This is a different value from the 4.6B installation with Oracle 8.0.5:
# export LD_LIBRARY_PATH=/sapmnt/PRD/exe:/oracle/PRD/817_32/lib
Start R3SETUP as user root from installation directory:
# cd /oracle/PRD/sapreorg/install # ./R3SETUP -f CENTRAL.R3S
The script then asks some questions (defaults in brackets, followed by actual input):
Question | Default | Input |
---|---|---|
Enter SAP System ID | [C11] | PRDEnter |
Enter SAP Instance Number | [00] | Enter |
Enter SAPMOUNT Directory | [/sapmnt] | Enter |
Enter name of SAP central host | [majestix] | Enter |
Enter Database System ID | [PRD] | PRDEnter |
Enter name of SAP db host | [majestix] | Enter |
Select character set | [1] (WE8DEC) | Enter |
Enter Oracle server version (2) Oracle 8.1.7 | 2Enter | |
Extract Oracle Client archive | [1] (Yes, extract) | Enter |
Enter path to KERNEL CD | [/sapcd] | /oracle/PRD/sapreorg/KERNEL |
Enter amount of RAM for SAP + DB | 2044 | 1800Enter (in Megabytes) |
Service Entry Message Server | [3600] | Enter |
Enter Group-ID of sapsys | [100] | Enter |
Enter Group-ID of oper | [101] | Enter |
Enter Group-ID of dba | [102] | Enter |
Enter User-ID of oraprd | [1002] | Enter |
Enter User-ID of prdadm | [1000] | Enter |
LDAP support | 3Enter (no support) | |
Installation step completed | [1] (continue) | Enter |
Choose installation service | [1] (DB inst,file) | Enter |
So far, creation of users gives an error during installation in phases OSUSERDBSID_IND_ORA (for creating user orasid) and OSUSERSIDADM_IND_ORA (creating user sidadm).
Apart from some problems mentioned below, everything should go straight through up to the point where the Oracle database software needs to be installed.
Please see the corresponding SAP Notes and Oracle Readmes regarding Linux and Oracle DB for possible problems. Most if not all problems stem from incompatible libraries.
For more information on installing Oracle, refer to the Installing Oracle chapter.
If Oracle 8.0.5 is to be used, some additional libraries are needed for successfully relinking, as Oracle 8.0.5 was linked with an old glibc (RedHat 6.0), but RedHat 6.1 already uses a new glibc. So you have to install the following additional packages to ensure that linking will work:
compat-libs-5.2-2.i386.rpm
compat-glibc-5.2-2.0.7.2.i386.rpm
compat-egcs-5.2-1.0.3a.1.i386.rpm
compat-egcs-c++-5.2-1.0.3a.1.i386.rpm
compat-binutils-5.2-2.9.1.0.23.1.i386.rpm
See the corresponding SAP Notes or Oracle Readmes for further information. If this is no option (at the time of installation we did not have enough time to check this), one could use the original binaries, or use the relinked binaries from an original RedHat system.
For compiling the intelligent agent, the RedHat Tcl package must be installed. If you cannot get tcl-8.0.3-20.i386.rpm, a newer one like tcl-8.0.5-30.i386.rpm for RedHat 6.1 should also do.
Apart from relinking, the installation is straightforward:
# su - oraids # export TERM=xterm # export ORACLE_TERM=xterm # export ORACLE_HOME=/oracle/IDS # cd $ORACLE_HOME/orainst_sap # ./orainst
Confirm all screens with Enter until the software is installed, except that one has to deselect the Oracle On-Line Text Viewer, as this is not currently available for Linux. Oracle then wants to relink with i386-glibc20-linux-gcc instead of the available gcc, egcs or i386-redhat-linux-gcc .
Due to time constrains we decided to use the binaries from an Oracle 8.0.5 PreProduction release, after the first attempt at getting the version from the RDBMS CD working, failed, and finding and accessing the correct RPMs was a nightmare at that time.
This installation is quite easy. Mount the CD, start the installer. It will then ask for the location of the Oracle home directory, and copy all binaries there. We did not delete the remains of our previous RDBMS installation tries, though.
Afterwards, Oracle Database could be started with no problems.
Take the tarball oracle81732.tgz you produced from the installation directory on a Linux system and untar it to /oracle/SID/817_32/.
First check the environment settings of users idsamd (sidadm) and oraids (orasid). They should now both have the files .profile, .login and .cshrc which are all using hostname. In case the system's hostname is the fully qualified name, you need to change hostname to hostname -s within all three files.
Afterwards, R3SETUP can either be restarted or continued (depending on whether exit was chosen or not). R3SETUP then creates the tablespaces and loads the data (for 46B IDES, from EXPORT1 to EXPORT6, for 46C from DISK1 to DISK4) with R3load into the database.
When the database load is finished (might take a few hours), some passwords are requested. For test installations, one can use the well known default passwords (use different ones if security is an issue!):
Question | Input |
---|---|
Enter Password for sapr3 | sapEnter |
Confirum Password for sapr3 | sapEnter |
Enter Password for sys | change_on_installEnter |
Confirm Password for sys | change_on_installEnter |
Enter Password for system | managerEnter |
Confirm Password for system | managerEnter |
At this point We had a few problems with dipgntab during the 4.6B installation.
Start the Oracle Listener as user orasid as follows:
% umask 0; lsnrctl start
Otherwise you might get the error ORA-12546 as the sockets will not have the correct permissions. See SAP Note 072984.
If you plan to import non-Latin-1 languages into the SAP system, you have to update the Multi National Language Support tables. This is described in the SAP OSS Notes 15023 and 45619. Otherwise, you can skip this question during SAP installation.
注: If you do not need MNLS, it is still necessary to check the table TCPDB and initializing it if this has not been done. See SAP note 0015023 and 0045619 for further information.
You have to request your SAP R/3 License Key. This is needed, as the temporary license that was installed during installation is only valid for four weeks. First get the hardware key. Log on as user idsadm and call saplicense:
# /sapmnt/IDS/exe/saplicense -get
Calling saplicense without parameters gives a list of options. Upon receiving the license key, it can be installed using:
# /sapmnt/IDS/exe/saplicense -install
You are then required to enter the following values:
SAP SYSTEM ID = SID, 3 chars CUSTOMER KEY = hardware key, 11 chars INSTALLATION NO = installation, 10 digits EXPIRATION DATE = yyyymmdd, usually "99991231" LICENSE KEY = license key, 24 chars
Create a user within client 000 (for some tasks required to be done within client 000, but with a user different from users sap* and ddic). As a user name, We usually choose wartung (or service in English). Profiles required are sap_new and sap_all. For additional safety the passwords of default users within all clients should be changed (this includes users sap* and ddic).
Within client 000, user different from ddic and sap*, do at least the following:
Task | Transaction |
---|---|
Configure Transport System, e.g. as Stand-Alone Transport Domain Entity | STMS |
Create / Edit Profile for System | RZ10 |
Maintain Operation Modes and Instances | RZ04 |
These and all the other post-installation steps are thoroughly described in SAP installation guides.
The file /oracle/IDS/dbs/initIDS.sap contains the SAP backup profile. Here the size of the tape to be used, type of compression and so on need to be defined. To get this running with sapdba / brbackup, we changed the following values:
compress = hardware archive_function = copy_delete_save cpio_flags = "-ov --format=newc --block-size=128 --quiet" cpio_in_flags = "-iuv --block-size=128 --quiet" tape_size = 38000M tape_address = /dev/nsa0 tape_address_rew = /dev/sa0
Explanations:
compress
: The tape we use is a HP DLT1 which does
hardware compression.
archive_function
: This defines the default behavior for
saving Oracle archive logs: new logfiles are saved to
tape, already saved logfiles are saved again and are then deleted. This prevents lots of
trouble if you need to recover the database, and one of the archive-tapes has gone
bad.
cpio_flags
: Default is to use -B
which sets block size to 5120 Bytes. For DLT Tapes, HP
recommends at least 32 K block size, so we used --block-size=128
for 64 K. --format=newc
is needed because we have inode numbers greater than
65535. The last option --quiet
is needed as otherwise
brbackup complains as soon as cpio
outputs the numbers of blocks saved.
cpio_in_flags
: Flags needed for loading data back from
tape. Format is recognized automatically.
tape_size
: This usually gives the raw storage capability
of the tape. For security reason (we use hardware compression), the value is slightly
lower than the actual value.
tape_address
: The non-rewindable device to be used with
cpio.
tape_address_rew
: The rewindable device to be used with
cpio.
The following SAP parameters should be tuned after installation (examples for IDES 46B, 1 GB memory):
Name | Value |
---|---|
ztta/roll_extension | 250000000 |
abap/heap_area_dia | 300000000 |
abap/heap_area_nondia | 400000000 |
em/initial_size_MB | 256 |
em/blocksize_kB | 1024 |
ipc/shm_psize_40 | 70000000 |
SAP Note 0013026:
SAP Note 0157246:
注: With the above parameters, on a system with 1 gigabyte of memory, one may find memory consumption similar to:
Mem: 547M Active, 305M Inact, 109M Wired, 40M Cache, 112M Buf, 3492K Free
R3SETUP stops if it encounters an error. If you have looked at the corresponding logfiles and fixed the error, you have to start R3SETUP again, usually selecting REPEAT as option for the last step R3SETUP complained about.
To restart R3SETUP, just start it with the corresponding R3S file:
# ./R3SETUP -f CENTRDB.R3S
for 4.6B, or with
# ./R3SETUP -f CENTRAL.R3S
for 4.6C, no matter whether the error occurred with CENTRAL.R3S or DATABASE.R3S.
注: At some stages, R3SETUP assumes that both database and SAP processes are up and running (as those were steps it already completed). Should errors occur and for example the database could not be started, you have to start both database and SAP by hand after you fixed the errors and before starting R3SETUP again.
Do not forget to also start the Oracle listener again (as orasid with umask 0; lsnrctl start) if it was also stopped (for example due to a necessary reboot of the system).
If R3SETUP complains at this stage, edit the template file R3SETUP used at that time (CENTRDB.R3S (4.6B) or either CENTRAL.R3S or DATABASE.R3S (4.6C)). Locate [OSUSERSIDADM_IND_ORA] or search for the only STATUS=ERROR entry and edit the following values:
HOME=/home/sidadm (was empty) STATUS=OK (had status ERROR)
Then you can restart R3SETUP again.
Possibly R3SETUP also complains at this stage. The error here is similar to the one in phase OSUSERSIDADM_IND_ORA. Just edit the template file R3SETUP used at that time (CENTRDB.R3S (4.6B) or either CENTRAL.R3S or DATABASE.R3S (4.6C)). Locate [OSUSERDBSID_IND_ORA] or search for the only STATUS=ERROR entry and edit the following value in that section:
STATUS=OK
Then restart R3SETUP.
You have not deselected Oracle On-Line Text Viewer before starting the installation. This is marked for installation even though this option is currently not available for Linux. Deselect this product inside the Oracle installation menu and restart installation.
If this error is encountered, the correct locale is missing. SAP Note 0171356 lists the necessary RPMs that need be installed (e.g. saplocales-1.0-3, saposcheck-1.0-1 for RedHat 6.1). In case you ignored all the related errors and set the corresponding STATUS from ERROR to OK (in CENTRDB.R3S) every time R3SETUP complained and just restarted R3SETUP, the SAP system will not be properly configured and you will then not be able to connect to the system with a SAPgui, even though the system can be started. Trying to connect with the old Linux SAPgui gave the following messages:
Sat May 5 14:23:14 2001 *** ERROR => no valid userarea given [trgmsgo. 0401] Sat May 5 14:23:22 2001 *** ERROR => ERROR NR 24 occured [trgmsgi. 0410] *** ERROR => Error when generating text environment. [trgmsgi. 0435] *** ERROR => function failed [trgmsgi. 0447] *** ERROR => no socket operation allowed [trxio.c 3363] Speicherzugriffsfehler
This behavior is due to SAP R/3 being unable to correctly assign a locale and also not being properly configured itself (missing entries in some database tables). To be able to connect to SAP, add the following entries to file DEFAULT.PFL (see Note 0043288):
abap/set_etct_env_at_new_mode = 0 install/collate/active = 0 rscp/TCP0B = TCP0B
Restart the SAP system. Now you can connect to the system, even though country-specific language settings might not work as expected. After correcting country settings (and providing the correct locales), these entries can be removed from DEFAULT.PFL and the SAP system can be restarted.
This error only happened with Oracle 8.1.7 on FreeBSD. The reason was that the Oracle database could not initialize itself properly and crashed, leaving semaphores and shared memory on the system. The next try to start the database then returned ORA-00001.
Find them with ipcs -a and remove them with ipcrm.
This error happened with Oracle 8.1.7. This error is reported if the database is started with the usual startsap script (for example startsap_majestix_00) as user prdadm.
A possible workaround is to start the database as user oraprd instead with svrmgrl:
% svrmgrl SVRMGR> connect internal; SVRMGR> startup; SVRMGR> exit
Start the Oracle listener as user oraids with the following commands:
# umask 0; lsnrctl start
Otherwise you might get ORA-12546 as the sockets will not have the correct permissions. See SAP Note 0072984.
This error happened whilst trying to use values for MAXDSIZ and DFLDSIZ greater than 1 GB (1024x1024x1024). Additionally, we got “Linux Error 12: Cannot allocate memory”.
In general, see SAP Note 0130581 (R3SETUP step DIPGNTAB terminates). During the IDES-specific installation, for some reason the installation process was not using the proper SAP system name “IDS”, but the empty string "" instead. This leads to some minor problems with accessing directories, as the paths are generated dynamically using SID (in this case IDS). So instead of accessing:
/usr/sap/IDS/SYS/... /usr/sap/IDS/DVMGS00
the following paths were used:
/usr/sap//SYS/... /usr/sap/D00
To continue with the installation, we created a link and an additional directory:
# pwd /compat/linux/usr/sap # ls -l total 4 drwxr-xr-x 3 idsadm sapsys 512 May 5 11:20 D00 drwxr-x--x 5 idsadm sapsys 512 May 5 11:35 IDS lrwxr-xr-x 1 root sapsys 7 May 5 11:35 SYS -> IDS/SYS drwxrwxr-x 2 idsadm sapsys 512 May 5 13:00 tmp drwxrwxr-x 11 idsadm sapsys 512 May 4 14:20 trans
We also found SAP Notes (0029227 and 0008401) describing this behavior. We did not encounter any of these problems with the SAP 4.6C installation.
During installation of SAP 4.6C, this error was just the result of another error happening earlier during installation. In this case, you have to look through the corresponding logfiles and correct the real problem.
If after looking through the logfiles this error is indeed the correct one (check the SAP Notes), you can set STATUS of the offending step from ERROR to OK (file CENTRDB.R3S) and restart R3SETUP. After installation, you have to execute the report RSWBOINS from transaction SE38. See SAP Note 0162266 for additional information about phase RFCRSWBOINI and RFCRADDBDIF.
Here the same restrictions apply: make sure by looking through the logfiles, that this error is not caused by some previous problems.
If you can confirm that SAP Note 0162266 applies, just set STATUS of the offending step from ERROR to OK (file CENTRDB.R3S) and restart R3SETUP. After installation, you have to execute the report RADDBDIF from transaction SE38.
This error occurred during start of SAP processes disp+work. If starting SAP with the startsap script, subprocesses are then started which detach and do the dirty work of starting all other SAP processes. As a result, the script itself will not notice if something goes wrong.
To check whether the SAP processes did start properly, have a look at the process status with ps ax | grep SID, which will give you a list of all Oracle and SAP processes. If it looks like some processes are missing or if you cannot connect to the SAP system, look at the corresponding logfiles which can be found at /usr/sap/SID/DVEBMGSnr/work/. The files to look at are dev_ms and dev_disp.
Signal 31 happens here if the amount of shared memory used by Oracle and SAP exceed the one defined within the kernel configuration file and could be resolved by using a larger value:
# larger value for 46C production systems: options SHMMAXPGS=393216 # smaller value sufficient for 46B: #options SHMMAXPGS=262144
There are some problems with the program saposcol (version 4.6D). The SAP system is using saposcol to collect data about the system performance. This program is not needed to use the SAP system, so this problem can be considered a minor one. The older versions (4.6B) does work, but does not collect all the data (many calls will just return 0, for example for CPU usage).
If you are curious as to how the Linux binary compatibility works, this is the section
you want to read. Most of what follows is based heavily on an email written to FreeBSD chat
郵遞論壇 by Terry Lambert <tlambert@primenet.com>
(Message ID:
<199906020108.SAA07001@usr09.primenet.com>).
FreeBSD has an abstraction called an “execution class loader”. This is a wedge into the execve(2) system call.
What happens is that FreeBSD has a list of loaders, instead of a single loader with a fallback to the #! loader for running any shell interpreters or shell scripts.
Historically, the only loader on the UNIX platform examined the magic number (generally the first 4 or 8 bytes of the file) to see if it was a binary known to the system, and if so, invoked the binary loader.
If it was not the binary type for the system, the execve(2) call returned a failure, and the shell attempted to start executing it as shell commands.
The assumption was a default of “whatever the current shell is”.
Later, a hack was made for sh(1) to examine the first two characters, and if they were :\n, then it invoked the csh(1) shell instead (we believe SCO first made this hack).
What FreeBSD does now is go through a list of loaders, with a generic #! loader that knows about interpreters as the characters which follow to the next whitespace next to last, followed by a fallback to /bin/sh.
For the Linux ABI support, FreeBSD sees the magic number as an ELF binary (it makes no distinction between FreeBSD, Solaris, Linux, or any other OS which has an ELF image type, at this point).
The ELF loader looks for a specialized brand, which is a comment section in the ELF image, and which is not present on SVR4/Solaris ELF binaries.
For Linux binaries to function, they must be branded as type Linux from brandelf(1):
# brandelf -t Linux file
When this is done, the ELF loader will see the Linux brand on the file.
When the ELF loader sees the Linux brand, the loader replaces a pointer in the proc structure. All system calls are indexed through this pointer (in a traditional UNIX system, this would be the sysent[] structure array, containing the system calls). In addition, the process is flagged for special handling of the trap vector for the signal trampoline code, and several other (minor) fix-ups that are handled by the Linux kernel module.
The Linux system call vector contains, among other things, a list of sysent[] entries whose addresses reside in the kernel module.
When a system call is called by the Linux binary, the trap code dereferences the system call function pointer off the proc structure, and gets the Linux, not the FreeBSD, system call entry points.
In addition, the Linux mode dynamically reroots lookups; this is, in effect, what the union
option to file system mounts (not the unionfs file system type!)
does. First, an attempt is made to lookup the file in the /compat/linux/original-path
directory, then only if that
fails, the lookup is done in the /original-path directory. This makes sure that
binaries that require other binaries can run (e.g., the Linux toolchain can all run
under Linux ABI support). It also means that the Linux binaries can load and
execute FreeBSD binaries, if there are no corresponding Linux binaries present, and
that you could place a uname(1) command
in the /compat/linux directory tree to ensure that the
Linux binaries could not tell they were not running on Linux.
In effect, there is a Linux kernel in the FreeBSD kernel; the various underlying functions that implement all of the services provided by the kernel are identical to both the FreeBSD system call table entries, and the Linux system call table entries: file system operations, virtual memory operations, signal delivery, System V IPC, etc… The only difference is that FreeBSD binaries get the FreeBSD glue functions, and Linux binaries get the Linux glue functions (most older OS's only had their own glue functions: addresses of functions in a static global sysent[] structure array, instead of addresses of functions dereferenced off a dynamically initialized pointer in the proc structure of the process making the call).
Which one is the native FreeBSD ABI? It does not matter. Basically the only difference is that (currently; this could easily be changed in a future release, and probably will be after this) the FreeBSD glue functions are statically linked into the kernel, and the Linux glue functions can be statically linked, or they can be accessed via a kernel module.
Yeah, but is this really emulation? No. It is an ABI implementation, not an emulation. There is no emulator (or simulator, to cut off the next question) involved.
So why is it sometimes called “Linux emulation”? To make it hard to sell FreeBSD! Really, it is because the historical implementation was done at a time when there was really no word other than that to describe what was going on; saying that FreeBSD ran Linux binaries was not true, if you did not compile the code in or load a module, and there needed to be a word to describe what was being loaded——hence “the Linux emulator”.
FreeBSD 使用手冊剩下的這些章節涵蓋了全方位的 FreeBSD 系統管理。 每個章節的開頭會先描述在該您讀完該章節後您會學到什麼,也會詳述在您在看這些資料時應該要有的一些背景知識。
這些章節是讓您在需要查資料的時候翻閱用的。 您不需要依照特定的順序來讀,也不需要將這些章節全部過讀之後才開始用 FreeBSD。
在 FreeBSD 使用過程中,相當重要的環節之一就是系統設定部分。 正確的系統設定,可以讓你減輕日後升級的頭痛壓力。 本章著重於介紹 FreeBSD 的相關重要設定上,包括一些可以調整 FreeBSD 效能的參數設定。
讀完這章,您將了解:
如何有效運用檔案系統以及 swap 分割區。
rc.conf 的設定與 /usr/local/etc/rc.d 的啟動架構。
如何設定、測試網路卡。
如何設定 virtual hosts。
如何設定 /etc 內的各種設定檔。
如何以 sysctl 來調整 FreeBSD 的系統效能。
如何調整硬碟效能,以及更改 kernel 限制。
在開始閱讀這章之前,您需要︰
用 bsdlabel(8) 或 sysinstall(8) 來規劃檔案系統時,請記住: 硬碟在傳輸資料方面,(由於結構為碟片因素)外圈會比內圈來得快些。 因此,建議把較小、常會存取的分割區儘量放外圈,而較大的分割區像是 /usr 則應放在較內圈。 建議建立分割區的順序,以像是:root, swap, /var, /usr 這樣順序來建立會較妥。
/var 的大小要視機器的用途而定。 /var 是用來放 信箱、log 紀錄檔以及印表機佇列(spools)。 信箱以及記錄檔的成長幅度可能無法預估, 因為這些成長幅度乃是取決於多少用戶、要放多久等管理原則而定。 通常這些使用者並沒有用到 1 GB 以上,但請切記:至少要保留一定空間給 /var/tmp 以便存放 packages。
而 /usr 分割區主要是用來放系統運作時所需的檔案、工具程式等,例如: ports(7) collection(建議安裝)跟 source tree(optional)。 在安裝 FreeBSD 時,這兩者都是可選擇裝與不裝的。 不過,這個分割區建議至少要有 2 GB 空間以上才夠用。
規劃分割區大小時,記得多保留些成長空間。 否則若某個分割區滿了,但另一個分割區卻還剩很多空間,就會相當困窘。
注: 有些人可能會發現 sysinstall(8) 的 Auto-defaults(自動預設值) 所做的分割區大小, 有時候會把 /var 以及 / 分割區設太小了。 我們建議是:請依使用情況以及需求,來手動調整相關分割區大小。
根據經驗法則,通常 swap 分割區應該設為系統記憶體(RAM)大小的兩倍即可。 舉例來說:若機器有 128 MB RAM 的話,那麼 swap 則應該設為 256 MB。 記憶體較少的機器,可以透過增加更多 swap 空間來提昇效能。 我們建議 swap 空間不要設低於 256 MB,而且該考慮增加記憶體才是良策。 當 swap 最少為記憶體的兩倍大時,kernel 的 VM paging 演算法會把效能調整到最佳狀態。 但若是機器記憶體很大,但 swap 卻劃分太少的話,會導致 VM page 掃瞄的效率過低, 此外日後若增加更多記憶體時,也會導致一些異常狀況發生。
在較大型的機器內,通常會有多顆 SCSI 磁碟(或多顆 IDE 磁碟接在不同 IDE 匯流排上), 建議在每顆磁碟上都建立 swap(最多到四顆)。 而這些 swap 應該都大約一樣大小, Kernel 可接受任意大小的 swap,但內部資料結構則是最大塊 swap 的 4 倍。 若有保持 swap 為同樣大小的話,則可讓 kernel 最佳化運用各磁碟之中的 swap 空間。 即使不太常會用到,分配大的 swap 也都還可接受, 因為它可在強制重開機之前讓你更容易從當掉的程式中恢復正常。
有些人覺得把硬碟就直接劃分一個大分割區就好了, 但是事實上有些原因會證明為何這是個爛點子, 首先,每個分割區都有不同的運作特性,把它們分開的話可以讓檔案系統來調整。 比如: / 以及 /usr 分割區大多只是讀取而已, 比較少在寫入。 而讀寫都很頻繁的則是 /var 及 /var/tmp。
By properly partitioning a system, fragmentation introduced in the smaller write heavy partitions will not bleed over into the mostly-read partitions. Keeping the write-loaded partitions closer to the disk's edge, will increase I/O performance in the partitions where it occurs the most. Now while I/O performance in the larger partitions may be needed, shifting them more toward the edge of the disk will not lead to a significant performance improvement over moving /var to the edge. Finally, there are safety concerns. A smaller, neater root partition which is mostly read-only has a greater chance of surviving a bad crash.
The principal location for system configuration information is within /etc/rc.conf. This file contains a wide range of configuration information, principally used at system startup to configure the system. Its name directly implies this; it is configuration information for the rc* files.
An administrator should make entries in the rc.conf file to override the default settings from /etc/defaults/rc.conf. The defaults file should not be copied verbatim to /etc - it contains default values, not examples. All system-specific changes should be made in the rc.conf file itself.
A number of strategies may be applied in clustered applications to separate site-wide configuration from system-specific configuration in order to keep administration overhead down. The recommended approach is to place site-wide configuration into another file, such as /etc/rc.conf.site, and then include this file into /etc/rc.conf, which will contain only system-specific information.
As rc.conf is read by sh(1) it is trivial to achieve this. For example:
rc.conf:
. /etc/rc.conf.site hostname="node15.example.com" network_interfaces="fxp0 lo0" ifconfig_fxp0="inet 10.1.1.1"
rc.conf.site:
defaultrouter="10.1.1.254" saver="daemon" blanktime="100"
The rc.conf.site file can then be distributed to every system using rsync or a similar program, while the rc.conf file remains unique.
Upgrading the system using sysinstall(8) or make world will not overwrite the rc.conf file, so system configuration information will not be lost.
原則上,安裝的軟體都會有其自有的設定檔,也會有自己的格式及語法。 因此,將其與系統分開獨立是件非常重要的事情。如此一來,套件管理工具將可以 很輕易的找出這些設定檔並管理這些設定檔。
原則上,設定檔會被放置在 /usr/local/etc。 若某軟體的設定檔為數眾多,那將會其下建立一個目錄以供放置
通常,當一個 port 或 package 被安裝的同時,一些基本的設定範例 也會一併被安裝至此。這些範例通常會被用 .default 做為副檔名。 若安裝時沒有自行撰寫的軟體設定檔,那麼將會複製一份 .default 設定 做為預設設定檔
舉個例子,我們來看看 /usr/local/etc/apache:
-rw-r--r-- 1 root wheel 2184 May 20 1998 access.conf -rw-r--r-- 1 root wheel 2184 May 20 1998 access.conf.default -rw-r--r-- 1 root wheel 9555 May 20 1998 httpd.conf -rw-r--r-- 1 root wheel 9555 May 20 1998 httpd.conf.default -rw-r--r-- 1 root wheel 12205 May 20 1998 magic -rw-r--r-- 1 root wheel 12205 May 20 1998 magic.default -rw-r--r-- 1 root wheel 2700 May 20 1998 mime.types -rw-r--r-- 1 root wheel 2700 May 20 1998 mime.types.default -rw-r--r-- 1 root wheel 7980 May 20 1998 srm.conf -rw-r--r-- 1 root wheel 7933 May 20 1998 srm.conf.default
srm.conf 的檔案被修改過了,爾後 Apache 的更新 將不會對這個已修改過的設定檔做任何變動。
Many users choose to install third party software on FreeBSD from the Ports Collection. In many of these situations it may be necessary to configure the software in a manner which will allow it to be started upon system initialization. Services, such as mail/postfix or www/apache13 are just two of the many software packages which may be started during system initialization. This section explains the procedures available for starting third party software.
In FreeBSD, most included services, such as cron(8), are started through the system start up scripts. These scripts may differ depending on FreeBSD or vendor version; however, the most important aspect to consider is that their start up configuration can be handled through simple startup scripts.
Before the advent of rc.d, applications would drop a simple start up script into the /usr/local/etc/rc.d directory which would be read by the system initialization scripts. These scripts would then be executed during the latter stages of system start up.
While many individuals have spent hours trying to merge the old configuration style into the new system, the fact remains that some third party utilities still require a script simply dropped into the aforementioned directory. The subtle differences in the scripts depend whether or not rc.d is being used. Prior to FreeBSD 5.1 the old configuration style is used and in almost all cases a new style script would do just fine.
While every script must meet some minimal requirements, most of the time these requirements are FreeBSD version agnostic. Each script must have a .sh extension appended to the end and every script must be executable by the system. The latter may be achieved by using the chmod command and setting the unique permissions of 755. There should also be, at minimal, an option to start the application and an option to stop the application.
The simplest start up script would probably look a little bit like this one:
#!/bin/sh echo -n ' utility' case "$1" in start) /usr/local/bin/utility ;; stop) kill -9 `cat /var/run/utility.pid` ;; *) echo "Usage: `basename $0` {start|stop}" >&2 exit 64 ;; esac exit 0
This script provides for a stop and start option for the application hereto referred simply as utility.
Could be started manually with:
# /usr/local/etc/rc.d/utility.sh start
While not all third party software requires the line in rc.conf, almost every day a new port will be modified to accept this configuration. Check the final output of the installation for more information on a specific application. Some third party software will provide start up scripts which permit the application to be used with rc.d; although, this will be discussed in the next section.
Now that FreeBSD includes rc.d, configuration of application startup has become easier, and more featureful. Using the key words discussed in the rc.d section, applications may now be set to start after certain other services for example DNS; may permit extra flags to be passed through rc.conf in place of hard coded flags in the start up script, etc. A basic script may look similar to the following:
#!/bin/sh # # PROVIDE: utility # REQUIRE: DAEMON # KEYWORD: shutdown . /etc/rc.subr name=utility rcvar=utility_pidfile command="/usr/local/sbin/utility" load_rc_config $name # # DO NOT CHANGE THESE DEFAULT VALUES HERE # SET THEM IN THE /etc/rc.conf FILE # utility_enable=${utility_enable-"NO"} pidfile=${utility_pidfile-"/var/run/utility.pid"} run_rc_command "$1"
This script will ensure that the provided utility will be started after the daemon service. It also provides a method for setting and tracking the PID, or process ID file.
This application could then have the following line placed in /etc/rc.conf:
utility_enable="YES"
This new method also allows for easier manipulation of the command line arguments, inclusion of the default functions provided in /etc/rc.subr, compatibility with the rcorder(8) utility and provides for easier configuration via the rc.conf file.
Other services, such as POP3 server daemons, IMAP, etc. could be started using the inetd(8). This involves installing the service utility from the Ports Collection with a configuration line appended to the /etc/inetd.conf file, or uncommenting one of the current configuration lines. Working with inetd and its configuration is described in depth in the inetd section.
In some cases, it may be more plausible to use the cron(8) daemon to start system services. This approach has a number of advantages because cron runs these processes as the crontab's file owner. This allows regular users to start and maintain some applications.
The cron utility provides a unique feature, @reboot, which may be used in place of the time specification. This will cause the job to be run when cron(8) is started, normally during system initialization.
FreeBSD 最好用的工具之一就是 cron(8)。 cron 會在背景下運作,並不斷檢查 /etc/crontab 檔以及 /var/cron/tabs 目錄,來搜尋是否有新 crontab 檔案。 這些 crontab 檔會存放一些排程工作的設定,來給 cron 執行。
cron 程式,可同時採用兩種不同類型的設定檔:系統本身的 crontab 及使用者本身的 crontab。而兩種格式唯一差別在於第六欄的不同;In the system crontab, the sixth field is the name of a user for the command to run as. This gives the system crontab the ability to run commands as any user. In a user crontab, the sixth field is the command to run, and all commands run as the user who created the crontab; this is an important security feature.
注: User crontabs allow individual users to schedule tasks without the need for root privileges. Commands in a user's crontab run with the permissions of the user who owns the crontab.
The root user can have a user crontab just like any other user. This one is different from /etc/crontab (the system crontab). Because of the system crontab, there is usually no need to create a user crontab for root.
Let us take a look at the /etc/crontab file (the system crontab):
# /etc/crontab - root's crontab for FreeBSD # # $FreeBSD: src/etc/crontab,v 1.32 2002/11/22 16:13:39 tom Exp $ # # SHELL=/bin/sh PATH=/etc:/bin:/sbin:/usr/bin:/usr/sbin HOME=/var/log # # #minute hour mday month wday who command # # */5 * * * * root /usr/libexec/atrun
Commands can have any number of flags passed to them; however, commands which extend to multiple lines need to be broken with the backslash “\” continuation character.
This is the basic set up for every crontab file, although there is one thing different about this one. Field number six, where we specified the username, only exists in the system /etc/crontab file. This field should be omitted for individual user crontab files.
重要: You must not use the procedure described here to edit/install the system crontab. Simply use your favorite editor: the cron utility will notice that the file has changed and immediately begin using the updated version. See this FAQ entry for more information.
To install a freshly written user crontab, first use your favorite editor to create a file in the proper format, and then use the crontab utility. The most common usage is:
% crontab crontab-file
In this example, crontab-file is the filename of a crontab that was previously created.
There is also an option to list installed crontab
files: just pass the -l
option to crontab and look over the output.
For users who wish to begin their own crontab file from scratch, without the use of a template, the crontab -e option is available. This will invoke the selected editor with an empty file. When the file is saved, it will be automatically installed by the crontab command.
If you later want to remove your user crontab
completely, use crontab with the -r
option.
從 2002 年起,FreeBSD 整合了 NetBSD 的 rc.d
機制來作為系統服務啟動機制。 可以到 /etc/rc.d
目錄下去看,很多檔案都是基本服務,可以用 start
, stop
及 restart
作為使用時的選項。
舉個例子,可以用下列指令來重新啟動 sshd(8):
# /etc/rc.d/sshd restart
其他服務也是類似作法。當然, 服務通常只要在 rc.conf(5) 內有指定的話,都會在開機時就自動啟動。舉例來說,若要開機時啟動 NAT(Network Address Translation) daemon 的話,只要在 /etc/rc.conf 內加上下列這行即可:
natd_enable="YES"
若原本寫的是 natd_enable="NO"
那麼只要把 NO
改為 YES
就好了。rc scripts
會在下次重開機時,自動載入相關(有相依)的服務,以下我們會講到這部分。
Since the rc.d system is primarily intended to start/stop
services at system startup/shutdown time, the standard start
,
stop
and restart
options will
only perform their action if the appropriate /etc/rc.conf
variables are set. For instance the above sshd restart command
will only work if sshd_enable
is set to YES
in /etc/rc.conf. To start
, stop
or restart
a service regardless of the settings in /etc/rc.conf, the commands should be prefixed with “force”. For
instance to restart sshd regardless of the current /etc/rc.conf setting, execute the following command:
# /etc/rc.d/sshd forcerestart
It is easy to check if a service is enabled in /etc/rc.conf
by running the appropriate rc.d script with the option rcvar
. Thus, an administrator can check that sshd is in fact enabled in /etc/rc.conf by
running:
# /etc/rc.d/sshd rcvar # sshd $sshd_enable=YES
注: The second line (# sshd) is the output from the sshd command, not a root console.
若要檢查服務是否有在運作,可以用 status
選項來查詢。比如:若要確認 sshd
是否真的有啟動的話,那麼打:
# /etc/rc.d/sshd status sshd is running as pid 433.
In some cases it is also possible to reload
a service.
This will attempt to send a signal to an individual service, forcing the service to
reload its configuration files. In most cases this means sending the service a SIGHUP signal. Support for this feature is not included for every
service.
The rc.d system is not only used for network services, it also contributes to most of the system initialization. For instance, consider the bgfsck file. When this script is executed, it will print out the following message:
Starting background file system checks in 60 seconds.
Therefore this file is used for background file system checks, which are done only during system initialization.
Many system services depend on other services to function properly. For example, NIS and other RPC-based services may fail to start until after the rpcbind (portmapper) service has started. To resolve this issue, information about dependencies and other meta-data is included in the comments at the top of each startup script. The rcorder(8) program is then used to parse these comments during system initialization to determine the order in which system services should be invoked to satisfy the dependencies. The following words may be included at the top of each startup file:
PROVIDE: Specifies the services this file provides.
REQUIRE: Lists services which are required for this service. This file will run after the specified services.
BEFORE: Lists services which depend on this service. This file will run before the specified services.
By using this method, an administrator can easily control system services without the hassle of “runlevels” like some other UNIX operating systems.
Additional information about the rc.d system can be found in the rc(8) and rc.subr(8) manual pages.
Nowadays we can not think about a computer without thinking about a network connection. Adding and configuring a network card is a common task for any FreeBSD administrator.
Before you begin, you should know the model of the card you have, the chip it uses, and whether it is a PCI or ISA card. FreeBSD supports a wide variety of both PCI and ISA cards. Check the Hardware Compatibility List for your release to see if your card is supported.
Once you are sure your card is supported, you need to determine the proper driver for the card. /usr/src/sys/conf/NOTES and /usr/src/sys/arch/conf/NOTES will give you the list of network interface drivers with some information about the supported chipsets/cards. If you have doubts about which driver is the correct one, read the manual page of the driver. The manual page will give you more information about the supported hardware and even the possible problems that could occur.
If you own a common card, most of the time you will not have to look very hard for a driver. Drivers for common network cards are present in the GENERIC kernel, so your card should show up during boot, like so:
dc0: <82c169 PNIC 10/100BaseTX> port 0xa000-0xa0ff mem 0xd3800000-0xd38 000ff irq 15 at device 11.0 on pci0 dc0: Ethernet address: 00:a0:cc:da:da:da miibus0: <MII bus> on dc0 ukphy0: <Generic IEEE 802.3u media interface> on miibus0 ukphy0: 10baseT, 10baseT-FDX, 100baseTX, 100baseTX-FDX, auto dc1: <82c169 PNIC 10/100BaseTX> port 0x9800-0x98ff mem 0xd3000000-0xd30 000ff irq 11 at device 12.0 on pci0 dc1: Ethernet address: 00:a0:cc:da:da:db miibus1: <MII bus> on dc1 ukphy1: <Generic IEEE 802.3u media interface> on miibus1 ukphy1: 10baseT, 10baseT-FDX, 100baseTX, 100baseTX-FDX, auto
In this example, we see that two cards using the dc(4) driver are present on the system.
If the driver for your NIC is not present in GENERIC, you will need to load the proper driver to use your NIC. This may be accomplished in one of two ways:
The easiest way is to simply load a kernel module for your network card with kldload(8), or automatically at boot time by adding the appropriate line to the file /boot/loader.conf. Not all NIC drivers are available as modules; notable examples of devices for which modules do not exist are ISA cards.
Alternatively, you may statically compile the support for your card into your kernel. Check /usr/src/sys/conf/NOTES, /usr/src/sys/arch/conf/NOTES and the manual page of the driver to know what to add in your kernel configuration file. For more information about recompiling your kernel, please see µÚ 8 章. If your card was detected at boot by your kernel (GENERIC) you do not have to build a new kernel.
Unfortunately, there are still many vendors that do not provide schematics for their drivers to the open source community because they regard such information as trade secrets. Consequently, the developers of FreeBSD and other operating systems are left two choices: develop the drivers by a long and pain-staking process of reverse engineering or using the existing driver binaries available for the Microsoft Windows platforms. Most developers, including those involved with FreeBSD, have taken the latter approach.
Thanks to the contributions of Bill Paul (wpaul), as of FreeBSD 5.3-RELEASE there is “native” support for the Network Driver Interface Specification (NDIS). The FreeBSD NDISulator (otherwise known as Project Evil) takes a Windows driver binary and basically tricks it into thinking it is running on Windows. Because the ndis(4) driver is using a Windows binary, it is only usable on i386 and amd64 systems.
注: The ndis(4) driver is designed to support mainly PCI, CardBus and PCMCIA devices, USB devices are not yet supported.
In order to use the NDISulator, you need three things:
Kernel sources
Windows XP driver binary (.SYS extension)
Windows XP driver configuration file (.INF extension)
Locate the files for your specific card. Generally, they can be found on the included CDs or at the vendors' websites. In the following examples, we will use W32DRIVER.SYS and W32DRIVER.INF.
注: You can not use a Windows/i386 driver with FreeBSD/amd64, you must get a Windows/amd64 driver to make it work properly.
The next step is to compile the driver binary into a loadable kernel module. To accomplish this, as root, use ndisgen(8):
# ndisgen /path/to/W32DRIVER.INF /path/to/W32DRIVER.SYS
The ndisgen(8) utility is interactive and will prompt for any extra information it requires; it will produce a kernel module in the current directory which can be loaded as follows:
# kldload ./W32DRIVER.ko
In addition to the generated kernel module, you must load the ndis.ko and if_ndis.ko modules. This should be automatically done when you load any module that depends on ndis(4). If you want to load them manually, use the following commands:
# kldload ndis # kldload if_ndis
The first command loads the NDIS miniport driver wrapper, the second loads the actual network interface.
Now, check dmesg(8) to see if there were any errors loading. If all went well, you should get output resembling the following:
ndis0: <Wireless-G PCI Adapter> mem 0xf4100000-0xf4101fff irq 3 at device 8.0 on pci1 ndis0: NDIS API version: 5.0 ndis0: Ethernet address: 0a:b1:2c:d3:4e:f5 ndis0: 11b rates: 1Mbps 2Mbps 5.5Mbps 11Mbps ndis0: 11g rates: 6Mbps 9Mbps 12Mbps 18Mbps 36Mbps 48Mbps 54Mbps
From here you can treat the ndis0 device like any other network interface (e.g., dc0).
You can configure the system to load the NDIS modules at boot time in the same way as with any other module. First, copy the generated module, W32DRIVER.ko, to the /boot/modules directory. Then, add the following line to /boot/loader.conf:
W32DRIVER_load="YES"
Once the right driver is loaded for the network card, the card needs to be configured. As with many other things, the network card may have been configured at installation time by sysinstall.
To display the configuration for the network interfaces on your system, enter the following command:
% ifconfig dc0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 192.168.1.3 netmask 0xffffff00 broadcast 192.168.1.255 ether 00:a0:cc:da:da:da media: Ethernet autoselect (100baseTX <full-duplex>) status: active dc1: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 10.0.0.1 netmask 0xffffff00 broadcast 10.0.0.255 ether 00:a0:cc:da:da:db media: Ethernet 10baseT/UTP status: no carrier lp0: flags=8810<POINTOPOINT,SIMPLEX,MULTICAST> mtu 1500 lo0: flags=8049<UP,LOOPBACK,RUNNING,MULTICAST> mtu 16384 inet 127.0.0.1 netmask 0xff000000 tun0: flags=8010<POINTOPOINT,MULTICAST> mtu 1500
注: Old versions of FreeBSD may require the
-a
option following ifconfig(8), for more details about the correct syntax of ifconfig(8), please refer to the manual page. Note also that entries concerning IPv6 (inet6 etc.) were omitted in this example.
In this example, the following devices were displayed:
dc0: The first Ethernet interface
dc1: The second Ethernet interface
lp0: The parallel port interface
lo0: The loopback device
tun0: The tunnel device used by ppp
FreeBSD uses the driver name followed by the order in which one the card is detected at the kernel boot to name the network card. For example sis2 would be the third network card on the system using the sis(4) driver.
In this example, the dc0 device is up and running. The key indicators are:
UP means that the card is configured and ready.
The card has an Internet (inet) address (in this case 192.168.1.3).
It has a valid subnet mask (netmask; 0xffffff00 is the same as 255.255.255.0).
It has a valid broadcast address (in this case, 192.168.1.255).
The MAC address of the card (ether) is 00:a0:cc:da:da:da
The physical media selection is on autoselection mode (media: Ethernet autoselect (100baseTX <full-duplex>)). We see that dc1 was configured to run with 10baseT/UTP media. For more information on available media types for a driver, please refer to its manual page.
The status of the link (status) is active, i.e. the carrier is detected. For dc1, we see status: no carrier. This is normal when an Ethernet cable is not plugged into the card.
If the ifconfig(8) output had shown something similar to:
dc0: flags=8843<BROADCAST,SIMPLEX,MULTICAST> mtu 1500 ether 00:a0:cc:da:da:da
it would indicate the card has not been configured.
To configure your card, you need root privileges. The network card configuration can be done from the command line with ifconfig(8) but you would have to do it after each reboot of the system. The file /etc/rc.conf is where to add the network card's configuration.
Open /etc/rc.conf in your favorite editor. You need to add a line for each network card present on the system, for example in our case, we added these lines:
ifconfig_dc0="inet 192.168.1.3 netmask 255.255.255.0" ifconfig_dc1="inet 10.0.0.1 netmask 255.255.255.0 media 10baseT/UTP"
You have to replace dc0, dc1, and so on, with the correct device for your cards, and the addresses with the proper ones. You should read the card driver and ifconfig(8) manual pages for more details about the allowed options and also rc.conf(5) manual page for more information on the syntax of /etc/rc.conf.
If you configured the network during installation, some lines about the network card(s) may be already present. Double check /etc/rc.conf before adding any lines.
You will also have to edit the file /etc/hosts to add the names and the IP addresses of various machines of the LAN, if they are not already there. For more information please refer to hosts(5) and to /usr/share/examples/etc/hosts.
Once you have made the necessary changes in /etc/rc.conf, you should reboot your system. This will allow the change(s) to the interface(s) to be applied, and verify that the system restarts without any configuration errors.
Once the system has been rebooted, you should test the network interfaces.
To verify that an Ethernet card is configured correctly, you have to try two things. First, ping the interface itself, and then ping another machine on the LAN.
First test the local interface:
% ping -c5 192.168.1.3 PING 192.168.1.3 (192.168.1.3): 56 data bytes 64 bytes from 192.168.1.3: icmp_seq=0 ttl=64 time=0.082 ms 64 bytes from 192.168.1.3: icmp_seq=1 ttl=64 time=0.074 ms 64 bytes from 192.168.1.3: icmp_seq=2 ttl=64 time=0.076 ms 64 bytes from 192.168.1.3: icmp_seq=3 ttl=64 time=0.108 ms 64 bytes from 192.168.1.3: icmp_seq=4 ttl=64 time=0.076 ms --- 192.168.1.3 ping statistics --- 5 packets transmitted, 5 packets received, 0% packet loss round-trip min/avg/max/stddev = 0.074/0.083/0.108/0.013 ms
Now we have to ping another machine on the LAN:
% ping -c5 192.168.1.2 PING 192.168.1.2 (192.168.1.2): 56 data bytes 64 bytes from 192.168.1.2: icmp_seq=0 ttl=64 time=0.726 ms 64 bytes from 192.168.1.2: icmp_seq=1 ttl=64 time=0.766 ms 64 bytes from 192.168.1.2: icmp_seq=2 ttl=64 time=0.700 ms 64 bytes from 192.168.1.2: icmp_seq=3 ttl=64 time=0.747 ms 64 bytes from 192.168.1.2: icmp_seq=4 ttl=64 time=0.704 ms --- 192.168.1.2 ping statistics --- 5 packets transmitted, 5 packets received, 0% packet loss round-trip min/avg/max/stddev = 0.700/0.729/0.766/0.025 ms
You could also use the machine name instead of 192.168.1.2 if you have set up the /etc/hosts file.
Troubleshooting hardware and software configurations is always a pain, and a pain which can be alleviated by checking the simple things first. Is your network cable plugged in? Have you properly configured the network services? Did you configure the firewall correctly? Is the card you are using supported by FreeBSD? Always check the hardware notes before sending off a bug report. Update your version of FreeBSD to the latest STABLE version. Check the mailing list archives, or perhaps search the Internet.
If the card works, yet performance is poor, it would be worthwhile to read over the tuning(7) manual page. You can also check the network configuration as incorrect network settings can cause slow connections.
Some users experience one or two “device timeout” messages, which is normal for some cards. If they continue, or are bothersome, you may wish to be sure the device is not conflicting with another device. Double check the cable connections. Perhaps you may just need to get another card.
At times, users see a few “watchdog timeout” errors. The first thing to do here is to check your network cable. Many cards require a PCI slot which supports Bus Mastering. On some old motherboards, only one PCI slot allows it (usually slot 0). Check the network card and the motherboard documentation to determine if that may be the problem.
“No route to host” messages occur if the system is unable to route a packet to the destination host. This can happen if no default route is specified, or if a cable is unplugged. Check the output of netstat -rn and make sure there is a valid route to the host you are trying to reach. If there is not, read on to µÚ 29 章.
“ping: sendto: Permission denied” error messages are often caused by a misconfigured firewall. If ipfw is enabled in the kernel but no rules have been defined, then the default policy is to deny all traffic, even ping requests! Read on to µÚ 28 章 for more information.
Sometimes performance of the card is poor, or below average. In these cases it is best to set the media selection mode from autoselect to the correct media selection. While this usually works for most hardware, it may not resolve this issue for everyone. Again, check all the network settings, and read over the tuning(7) manual page.
A very common use of FreeBSD is virtual site hosting, where one server appears to the network as many servers. This is achieved by assigning multiple network addresses to a single interface.
A given network interface has one “real” address, and may have any number of “alias” addresses. These aliases are normally added by placing alias entries in /etc/rc.conf.
An alias entry for the interface fxp0 looks like:
ifconfig_fxp0_alias0="inet xxx.xxx.xxx.xxx netmask xxx.xxx.xxx.xxx"
Note that alias entries must start with alias0 and proceed upwards in order, (for example, _alias1, _alias2, and so on). The configuration process will stop at the first missing number.
The calculation of alias netmasks is important, but fortunately quite simple. For a given interface, there must be one address which correctly represents the network's netmask. Any other addresses which fall within this network must have a netmask of all 1s (expressed as either 255.255.255.255 or 0xffffffff).
For example, consider the case where the fxp0 interface is connected to two networks, the 10.1.1.0 network with a netmask of 255.255.255.0 and the 202.0.75.16 network with a netmask of 255.255.255.240. We want the system to appear at 10.1.1.1 through 10.1.1.5 and at 202.0.75.17 through 202.0.75.20. As noted above, only the first address in a given network range (in this case, 10.0.1.1 and 202.0.75.17) should have a real netmask; all the rest (10.1.1.2 through 10.1.1.5 and 202.0.75.18 through 202.0.75.20) must be configured with a netmask of 255.255.255.255.
The following /etc/rc.conf entries configure the adapter correctly for this arrangement:
ifconfig_fxp0="inet 10.1.1.1 netmask 255.255.255.0" ifconfig_fxp0_alias0="inet 10.1.1.2 netmask 255.255.255.255" ifconfig_fxp0_alias1="inet 10.1.1.3 netmask 255.255.255.255" ifconfig_fxp0_alias2="inet 10.1.1.4 netmask 255.255.255.255" ifconfig_fxp0_alias3="inet 10.1.1.5 netmask 255.255.255.255" ifconfig_fxp0_alias4="inet 202.0.75.17 netmask 255.255.255.240" ifconfig_fxp0_alias5="inet 202.0.75.18 netmask 255.255.255.255" ifconfig_fxp0_alias6="inet 202.0.75.19 netmask 255.255.255.255" ifconfig_fxp0_alias7="inet 202.0.75.20 netmask 255.255.255.255"
There are a number of directories in which configuration information is kept. These include:
/etc | Generic system configuration information; data here is system-specific. |
/etc/defaults | Default versions of system configuration files. |
/etc/mail | Extra sendmail(8) configuration, other MTA configuration files. |
/etc/ppp | Configuration for both user- and kernel-ppp programs. |
/etc/namedb | Default location for named(8) data. Normally named.conf and zone files are stored here. |
/usr/local/etc | Configuration files for installed applications. May contain per-application subdirectories. |
/usr/local/etc/rc.d | Start/stop scripts for installed applications. |
/var/db | Automatically generated system-specific database files, such as the package database, the locate database, and so on |
/etc/resolv.conf dictates how FreeBSD's resolver accesses the Internet Domain Name System (DNS).
The most common entries to resolv.conf are:
nameserver | The IP address of a name server the resolver should query. The servers are queried in the order listed with a maximum of three. |
search | Search list for hostname lookup. This is normally determined by the domain of the local hostname. |
domain | The local domain name. |
A typical resolv.conf:
search example.com nameserver 147.11.1.11 nameserver 147.11.100.30
注: Only one of the search and domain options should be used.
If you are using DHCP, dhclient(8) usually rewrites resolv.conf with information received from the DHCP server.
/etc/hosts is a simple text database reminiscent of the old Internet. It works in conjunction with DNS and NIS providing name to IP address mappings. Local computers connected via a LAN can be placed in here for simplistic naming purposes instead of setting up a named(8) server. Additionally, /etc/hosts can be used to provide a local record of Internet names, reducing the need to query externally for commonly accessed names.
# $FreeBSD$ # # Host Database # This file should contain the addresses and aliases # for local hosts that share this file. # In the presence of the domain name service or NIS, this file may # not be consulted at all; see /etc/nsswitch.conf for the resolution order. # # ::1 localhost localhost.my.domain myname.my.domain 127.0.0.1 localhost localhost.my.domain myname.my.domain # # Imaginary network. #10.0.0.2 myname.my.domain myname #10.0.0.3 myfriend.my.domain myfriend # # According to RFC 1918, you can use the following IP networks for # private nets which will never be connected to the Internet: # # 10.0.0.0 - 10.255.255.255 # 172.16.0.0 - 172.31.255.255 # 192.168.0.0 - 192.168.255.255 # # In case you want to be able to connect to the Internet, you need # real official assigned numbers. PLEASE PLEASE PLEASE do not try # to invent your own network numbers but instead get one from your # network provider (if any) or from the Internet Registry (ftp to # rs.internic.net, directory `/templates'). #
/etc/hosts takes on the simple format of:
[Internet address] [official hostname] [alias1] [alias2] ...
For example:
10.0.0.1 myRealHostname.example.com myRealHostname foobar1 foobar2
Consult hosts(5) for more information.
syslog.conf is the configuration file for the syslogd(8) program. It indicates which types of syslog messages are logged to particular log files.
# $FreeBSD$ # # Spaces ARE valid field separators in this file. However, # other *nix-like systems still insist on using tabs as field # separators. If you are sharing this file between systems, you # may want to use only tabs as field separators here. # Consult the syslog.conf(5) manual page. *.err;kern.debug;auth.notice;mail.crit /dev/console *.notice;kern.debug;lpr.info;mail.crit;news.err /var/log/messages security.* /var/log/security mail.info /var/log/maillog lpr.info /var/log/lpd-errs cron.* /var/log/cron *.err root *.notice;news.err root *.alert root *.emerg * # uncomment this to log all writes to /dev/console to /var/log/console.log #console.info /var/log/console.log # uncomment this to enable logging of all log messages to /var/log/all.log #*.* /var/log/all.log # uncomment this to enable logging to a remote log host named loghost #*.* @loghost # uncomment these if you're running inn # news.crit /var/log/news/news.crit # news.err /var/log/news/news.err # news.notice /var/log/news/news.notice !startslip *.* /var/log/slip.log !ppp *.* /var/log/ppp.log
Consult the syslog.conf(5) manual page for more information.
newsyslog.conf is the configuration file for newsyslog(8), a program that is normally scheduled to run by cron(8). newsyslog(8) determines when log files require archiving or rearranging. logfile is moved to logfile.0, logfile.0 is moved to logfile.1, and so on. Alternatively, the log files may be archived in gzip(1) format causing them to be named: logfile.0.gz, logfile.1.gz, and so on.
newsyslog.conf indicates which log files are to be managed, how many are to be kept, and when they are to be touched. Log files can be rearranged and/or archived when they have either reached a certain size, or at a certain periodic time/date.
# configuration file for newsyslog # $FreeBSD$ # # filename [owner:group] mode count size when [ZB] [/pid_file] [sig_num] /var/log/cron 600 3 100 * Z /var/log/amd.log 644 7 100 * Z /var/log/kerberos.log 644 7 100 * Z /var/log/lpd-errs 644 7 100 * Z /var/log/maillog 644 7 * @T00 Z /var/log/sendmail.st 644 10 * 168 B /var/log/messages 644 5 100 * Z /var/log/all.log 600 7 * @T00 Z /var/log/slip.log 600 3 100 * Z /var/log/ppp.log 600 3 100 * Z /var/log/security 600 10 100 * Z /var/log/wtmp 644 3 * @01T05 B /var/log/daily.log 640 7 * @T00 Z /var/log/weekly.log 640 5 1 $W6D0 Z /var/log/monthly.log 640 12 * $M1D0 Z /var/log/console.log 640 5 100 * Z
Consult the newsyslog(8) manual page for more information.
sysctl.conf looks much like rc.conf. Values are set in a variable=value form. The specified values are set after the system goes into multi-user mode. Not all variables are settable in this mode.
A sample sysctl.conf turning off logging of fatal signal exits and letting Linux programs know they are really running under FreeBSD:
kern.logsigexit=0 # Do not log fatal signal exits (e.g. sig 11) compat.linux.osname=FreeBSD compat.linux.osrelease=4.3-STABLE
sysctl(8) is an interface that allows you to make changes to a running FreeBSD system. This includes many advanced options of the TCP/IP stack and virtual memory system that can dramatically improve performance for an experienced system administrator. Over five hundred system variables can be read and set using sysctl(8).
At its core, sysctl(8) serves two functions: to read and to modify system settings.
To view all readable variables:
% sysctl -a
To read a particular variable, for example, kern.maxproc
:
% sysctl kern.maxproc kern.maxproc: 1044
To set a particular variable, use the intuitive variable=value syntax:
# sysctl kern.maxfiles=5000 kern.maxfiles: 2088 -> 5000
Settings of sysctl variables are usually either strings, numbers, or booleans (a boolean being 1 for yes or a 0 for no).
If you want to set automatically some variables each time the machine boots, add them to the /etc/sysctl.conf file. For more information see the sysctl.conf(5) manual page and the µÚ 11.10.4 節.
In some cases it may be desirable to modify read-only sysctl(8) values. While this is sometimes unavoidable, it can only be done on (re)boot.
For instance on some laptop models the cardbus(4) device will not probe memory ranges, and fail with errors which look similar to:
cbb0: Could not map register memory device_probe_and_attach: cbb0 attach returned 12
Cases like the one above usually require the modification of some default sysctl(8) settings which are set read only. To overcome these situations a user can put sysctl(8) “OIDs” in their local /boot/loader.conf. Default settings are located in the /boot/defaults/loader.conf file.
Fixing the problem mentioned above would require a user to set hw.pci.allow_unsupported_io_range=1
in the aforementioned file. Now
cardbus(4) will work
properly.
vfs.vmiodirenable
The vfs.vmiodirenable
sysctl variable may be set to
either 0 (off) or 1 (on); it is 1 by default. This variable controls how
directories are cached by the system. Most directories are small, using just a
single fragment (typically 1 K) in the file system and less (typically
512 bytes) in the buffer cache. With this variable turned off (to 0), the
buffer cache will only cache a fixed number of directories even if you have a
huge amount of memory. When turned on (to 1), this sysctl allows the buffer cache
to use the VM Page Cache to cache the directories, making all the memory available
for caching directories. However, the minimum in-core memory used to cache a
directory is the physical page size (typically 4 K) rather than 512
bytes. We recommend keeping this option on if you are running any services
which manipulate large numbers of files. Such services can include web caches,
large mail systems, and news systems. Keeping this option on will generally not
reduce performance even with the wasted memory but you should experiment to
find out.
vfs.write_behind
The vfs.write_behind
sysctl variable defaults to
1 (on). This tells the file system to issue media writes
as full clusters are collected, which typically occurs when writing large
sequential files. The idea is to avoid saturating the buffer cache with dirty
buffers when it would not benefit I/O performance. However, this may stall
processes and under certain circumstances you may wish to turn it off.
vfs.hirunningspace
The vfs.hirunningspace
sysctl variable determines
how much outstanding write I/O may be queued to disk controllers system-wide at any
given instance. The default is usually sufficient but on machines with lots of
disks you may want to bump it up to four or five megabytes. Note that setting too high a value
(exceeding the buffer cache's write threshold) can lead to extremely bad clustering
performance. Do not set this value arbitrarily high! Higher write values may
add latency to reads occurring at the same time.
There are various other buffer-cache and VM page cache related sysctls. We do not recommend modifying these values, the VM system does an extremely good job of automatically tuning itself.
vm.swap_idle_enabled
The vm.swap_idle_enabled
sysctl variable is useful
in large multi-user systems where you have lots of users entering and leaving the
system and lots of idle processes. Such systems tend to generate a great deal of
continuous pressure on free memory reserves. Turning this feature on and tweaking
the swapout hysteresis (in idle seconds) via vm.swap_idle_threshold1
and vm.swap_idle_threshold2
allows you to depress the priority
of memory pages associated with idle processes more quickly then the normal pageout
algorithm. This gives a helping hand to the pageout daemon. Do not turn this option
on unless you need it, because the tradeoff you are making is essentially
pre-page memory sooner rather than later; thus eating more swap and disk bandwidth.
In a small system this option will have a determinable effect but in a large system
that is already doing moderate paging this option allows the VM system to stage
whole processes into and out of memory easily.
hw.ata.wc
FreeBSD 4.3 flirted with turning off IDE write caching. This reduced write
bandwidth to IDE disks but was considered necessary due to serious data consistency
issues introduced by hard drive vendors. The problem is that IDE drives lie
about when a write completes. With IDE write caching turned on, IDE hard drives not
only write data to disk out of order, but will sometimes delay writing some
blocks indefinitely when under heavy disk loads. A crash or power failure may cause
serious file system corruption. FreeBSD's default was changed to be safe.
Unfortunately, the result was such a huge performance loss that we changed
write caching back to on by default after the release. You should check the default
on your system by observing the hw.ata.wc
sysctl
variable. If IDE write caching is turned off, you can turn it back on by setting
the kernel variable back to 1. This must be done from the boot loader at boot
time. Attempting to do it after the kernel boots will have no effect.
For more information, please see ata(4).
kern.cam.scsi_delay
)The SCSI_DELAY kernel config may be used to reduce
system boot times. The defaults are fairly high and can be responsible for 15 seconds of delay in the boot process. Reducing it to 5 seconds usually works (especially with modern drives). Newer
versions of FreeBSD (5.0 and higher) should use the kern.cam.scsi_delay
boot time tunable. The tunable, and
kernel config option accept values in terms of milliseconds and not seconds.
The tunefs(8) program can be used to fine-tune a file system. This program has many different options, but for now we are only concerned with toggling Soft Updates on and off, which is done by:
# tunefs -n enable /filesystem # tunefs -n disable /filesystem
A filesystem cannot be modified with tunefs(8) while it is mounted. A good time to enable Soft Updates is before any partitions have been mounted, in single-user mode.
Soft Updates drastically improves meta-data performance, mainly file creation and deletion, through the use of a memory cache. We recommend to use Soft Updates on all of your file systems. There are two downsides to Soft Updates that you should be aware of: First, Soft Updates guarantees filesystem consistency in the case of a crash but could very easily be several seconds (even a minute!) behind updating the physical disk. If your system crashes you may lose more work than otherwise. Secondly, Soft Updates delays the freeing of filesystem blocks. If you have a filesystem (such as the root filesystem) which is almost full, performing a major update, such as make installworld, can cause the filesystem to run out of space and the update to fail.
There are two traditional approaches to writing a file systems meta-data back to disk. (Meta-data updates are updates to non-content data like inodes or directories.)
Historically, the default behavior was to write out meta-data updates synchronously. If a directory had been changed, the system waited until the change was actually written to disk. The file data buffers (file contents) were passed through the buffer cache and backed up to disk later on asynchronously. The advantage of this implementation is that it operates safely. If there is a failure during an update, the meta-data are always in a consistent state. A file is either created completely or not at all. If the data blocks of a file did not find their way out of the buffer cache onto the disk by the time of the crash, fsck(8) is able to recognize this and repair the filesystem by setting the file length to 0. Additionally, the implementation is clear and simple. The disadvantage is that meta-data changes are slow. An rm -r, for instance, touches all the files in a directory sequentially, but each directory change (deletion of a file) will be written synchronously to the disk. This includes updates to the directory itself, to the inode table, and possibly to indirect blocks allocated by the file. Similar considerations apply for unrolling large hierarchies (tar -x).
The second case is asynchronous meta-data updates. This is the default for Linux/ext2fs and mount -o async for *BSD ufs. All meta-data updates are simply being passed through the buffer cache too, that is, they will be intermixed with the updates of the file content data. The advantage of this implementation is there is no need to wait until each meta-data update has been written to disk, so all operations which cause huge amounts of meta-data updates work much faster than in the synchronous case. Also, the implementation is still clear and simple, so there is a low risk for bugs creeping into the code. The disadvantage is that there is no guarantee at all for a consistent state of the filesystem. If there is a failure during an operation that updated large amounts of meta-data (like a power failure, or someone pressing the reset button), the filesystem will be left in an unpredictable state. There is no opportunity to examine the state of the filesystem when the system comes up again; the data blocks of a file could already have been written to the disk while the updates of the inode table or the associated directory were not. It is actually impossible to implement a fsck which is able to clean up the resulting chaos (because the necessary information is not available on the disk). If the filesystem has been damaged beyond repair, the only choice is to use newfs(8) on it and restore it from backup.
The usual solution for this problem was to implement dirty region logging, which is also referred to as journaling, although that term is not used consistently and is occasionally applied to other forms of transaction logging as well. Meta-data updates are still written synchronously, but only into a small region of the disk. Later on they will be moved to their proper location. Because the logging area is a small, contiguous region on the disk, there are no long distances for the disk heads to move, even during heavy operations, so these operations are quicker than synchronous updates. Additionally the complexity of the implementation is fairly limited, so the risk of bugs being present is low. A disadvantage is that all meta-data are written twice (once into the logging region and once to the proper location) so for normal work, a performance “pessimization” might result. On the other hand, in case of a crash, all pending meta-data operations can be quickly either rolled-back or completed from the logging area after the system comes up again, resulting in a fast filesystem startup.
Kirk McKusick, the developer of Berkeley FFS, solved this problem with Soft Updates: all pending meta-data updates are kept in memory and written out to disk in a sorted sequence (“ordered meta-data updates”). This has the effect that, in case of heavy meta-data operations, later updates to an item “catch” the earlier ones if the earlier ones are still in memory and have not already been written to disk. So all operations on, say, a directory are generally performed in memory before the update is written to disk (the data blocks are sorted according to their position so that they will not be on the disk ahead of their meta-data). If the system crashes, this causes an implicit “log rewind”: all operations which did not find their way to the disk appear as if they had never happened. A consistent filesystem state is maintained that appears to be the one of 30 to 60 seconds earlier. The algorithm used guarantees that all resources in use are marked as such in their appropriate bitmaps: blocks and inodes. After a crash, the only resource allocation error that occurs is that resources are marked as “used” which are actually “free”. fsck(8) recognizes this situation, and frees the resources that are no longer used. It is safe to ignore the dirty state of the filesystem after a crash by forcibly mounting it with mount -f. In order to free resources that may be unused, fsck(8) needs to be run at a later time. This is the idea behind the background fsck: at system startup time, only a snapshot of the filesystem is recorded. The fsck can be run later on. All file systems can then be mounted “dirty”, so the system startup proceeds in multiuser mode. Then, background fscks will be scheduled for all file systems where this is required, to free resources that may be unused. (File systems that do not use Soft Updates still need the usual foreground fsck though.)
The advantage is that meta-data operations are nearly as fast as asynchronous updates (i.e. faster than with logging, which has to write the meta-data twice). The disadvantages are the complexity of the code (implying a higher risk for bugs in an area that is highly sensitive regarding loss of user data), and a higher memory consumption. Additionally there are some idiosyncrasies one has to get used to. After a crash, the state of the filesystem appears to be somewhat “older”. In situations where the standard synchronous approach would have caused some zero-length files to remain after the fsck, these files do not exist at all with a Soft Updates filesystem because neither the meta-data nor the file contents have ever been written to disk. Disk space is not released until the updates have been written to disk, which may take place some time after running rm. This may cause problems when installing large amounts of data on a filesystem that does not have enough free space to hold all the files twice.
kern.maxfiles
kern.maxfiles
can be raised or lowered based upon
your system requirements. This variable indicates the maximum number of file
descriptors on your system. When the file descriptor table is full, “file: table is full” will show up repeatedly in the system
message buffer, which can be viewed with the dmesg
command.
Each open file, socket, or fifo uses one file descriptor. A large-scale production server may easily require many thousands of file descriptors, depending on the kind and number of services running concurrently.
In older FreeBSD releases, kern.maxfile
's default
value is derived from the maxusers
option in your
dictated by the maxusers
option in your kernel configuration
file. kern.maxfiles
grows proportionally to the value of
maxusers
. When compiling a custom kernel, it is a good idea
to set this kernel configuration option according to the uses of your system. From this
number, the kernel is given most of its pre-defined limits. Even though a production
machine may not actually have 256 users connected at once, the resources needed may be
similar to a high-scale web server.
As of FreeBSD 4.5, kern.maxusers
is automatically
sized at boot based on the amount of memory available in the system, and may be
determined at run-time by inspecting the value of the read-only kern.maxusers
sysctl. Some sites will require larger or
smaller values of kern.maxusers
and may set it as a
loader tunable; values of 64, 128, and 256 are not uncommon. We do not recommend
going above 256 unless you need a huge number of file descriptors; many of
the tunable values set to their defaults by kern.maxusers
may be individually overridden at boot-time or
run-time in /boot/loader.conf (see the loader.conf(5) man
page or the /boot/defaults/loader.conf file for some
hints) or as described elsewhere in this document. Systems older than
FreeBSD 4.4 must set this value via the kernel config(8) option
maxusers
instead.
The system will auto-tune maxusers for you if you explicitly set it to 0[8]. When setting this option, you will want to set maxusers to at least 4, especially if you are using the X Window System or compiling software. The reason is that the most important table set by maxusers is the maximum number of processes, which is set to 20 + 16 * maxusers, so if you set maxusers to 1, then you can only have 36 simultaneous processes, including the 18 or so that the system starts up at boot time and the 15 or so you will probably create when you start the X Window System. Even a simple task like reading a manual page will start up nine processes to filter, decompress, and view it. Setting maxusers to 64 will allow you to have up to 1044 simultaneous processes, which should be enough for nearly all uses. If, however, you see the dreaded proc table full error when trying to start another program, or are running a server with a large number of simultaneous users (like ftp.FreeBSD.org), you can always increase the number and rebuild.
注: maxusers does not limit the number of users which can log into your machine. It simply sets various table sizes to reasonable values considering the maximum number of users you will likely have on your system and how many processes each of them will be running. One keyword which does limit the number of simultaneous remote logins and X terminal windows is pseudo-device pty 16. With FreeBSD 5.X, you do not have to worry about this number since the pty(4) driver is “auto-cloning”; you simply use the line device pty in your configuration file.
kern.ipc.somaxconn
The kern.ipc.somaxconn
sysctl variable limits the
size of the listen queue for accepting new TCP connections. The default value of
128 is typically too low for robust handling of new
connections in a heavily loaded web server environment. For such environments, it
is recommended to increase this value to 1024 or
higher. The service daemon may itself limit the listen queue size (e.g. sendmail(8), or Apache) but will often have a directive in its
configuration file to adjust the queue size. Large listen queues also do a better
job of avoiding Denial of Service (DoS) attacks.
The NMBCLUSTERS kernel configuration option dictates the
amount of network Mbufs available to the system. A heavily-trafficked server with a
low number of Mbufs will hinder FreeBSD's ability. Each cluster represents
approximately 2 K of memory, so a value of 1024 represents 2 megabytes of
kernel memory reserved for network buffers. A simple calculation can be done to
figure out how many are needed. If you have a web server which maxes out at 1000
simultaneous connections, and each connection eats a 16 K receive and
16 K send buffer, you need approximately 32 MB worth of network buffers to
cover the web server. A good rule of thumb is to multiply by 2, so
2x32 MB / 2 KB = 64 MB / 2 kB =
32768. We recommend values between 4096 and 32768 for machines with greater amounts
of memory. Under no circumstances should you specify an arbitrarily high value
for this parameter as it could lead to a boot time crash. The -m
option to netstat(1) may be used
to observe network cluster use.
kern.ipc.nmbclusters
loader tunable should be used to
tune this at boot time. Only older versions of FreeBSD will require you to use the NMBCLUSTERS kernel config(8) option.
For busy servers that make extensive use of the sendfile(2) system
call, it may be necessary to increase the number of sendfile(2) buffers
via the NSFBUFS kernel configuration option or by
setting its value in /boot/loader.conf (see loader(8) for
details). A common indicator that this parameter needs to be adjusted is when
processes are seen in the sfbufa state. The sysctl
variable kern.ipc.nsfbufs
is a read-only glimpse
at the kernel configured variable. This parameter nominally scales with kern.maxusers
, however it may be necessary to tune
accordingly.
重要: Even though a socket has been marked as non-blocking, calling sendfile(2) on the non-blocking socket may result in the sendfile(2) call blocking until enough struct sf_buf's are made available.
net.inet.ip.portrange.*
The net.inet.ip.portrange.*
sysctl variables
control the port number ranges automatically bound to TCP and UDP sockets. There
are three ranges: a low range, a default range, and a high range. Most network
programs use the default range which is controlled by the net.inet.ip.portrange.first
and net.inet.ip.portrange.last
, which default to 1024 and 5000,
respectively. Bound port ranges are used for outgoing connections, and it is
possible to run the system out of ports under certain circumstances. This most
commonly occurs when you are running a heavily loaded web proxy. The port range
is not an issue when running servers which handle mainly incoming
connections, such as a normal web server, or has a limited number of outgoing
connections, such as a mail relay. For situations where you may run yourself out of
ports, it is recommended to increase net.inet.ip.portrange.last
modestly. A value of 10000, 20000 or 30000 may be reasonable. You should also consider firewall
effects when changing the port range. Some firewalls may block large ranges of
ports (usually low-numbered ports) and expect systems to use higher ranges of ports
for outgoing connections —— for this reason it is not recommended that
net.inet.ip.portrange.first
be lowered.
The TCP Bandwidth Delay Product Limiting is similar to TCP/Vegas in NetBSD. It
can be enabled by setting net.inet.tcp.inflight.enable
sysctl variable to 1. The system will attempt to
calculate the bandwidth delay product for each connection and limit the amount of
data queued to the network to just the amount required to maintain optimum
throughput.
This feature is useful if you are serving data over modems, Gigabit Ethernet, or
even high speed WAN links (or any other link with a high bandwidth delay product),
especially if you are also using window scaling or have configured a large send
window. If you enable this option, you should also be sure to set net.inet.tcp.inflight.debug
to 0
(disable debugging), and for production use setting net.inet.tcp.inflight.min
to at least 6144 may be beneficial. However, note that setting high
minimums may effectively disable bandwidth limiting depending on the link. The
limiting feature reduces the amount of data built up in intermediate route and
switch packet queues as well as reduces the amount of data built up in the local
host's interface queue. With fewer packets queued up, interactive
connections, especially over slow modems, will also be able to operate with lower
Round Trip Times. However,
note that this feature only effects data transmission (uploading / server side). It
has no effect on data reception (downloading).
Adjusting net.inet.tcp.inflight.stab
is not recommended. This parameter defaults
to 20, representing 2 maximal packets added to the bandwidth delay product
window calculation. The additional window is required to stabilize the algorithm
and improve responsiveness to changing conditions, but it can also result in higher
ping times over slow links (though still much lower than you would get without the
inflight algorithm). In such cases, you may wish to try reducing this
parameter to 15, 10, or 5; and may also have to reduce net.inet.tcp.inflight.min
(for example, to 3500) to get the
desired effect. Reducing these parameters should be done as a last resort only.
kern.maxvnodes
A vnode is the internal representation of a file or directory. So increasing the number of vnodes available to the operating system cuts down on disk I/O. Normally this is handled by the operating system and does not need to be changed. In some cases where disk I/O is a bottleneck and the system is running out of vnodes, this setting will need to be increased. The amount of inactive and free RAM will need to be taken into account.
To see the current number of vnodes in use:
# sysctl vfs.numvnodes vfs.numvnodes: 91349
To see the maximum vnodes:
# sysctl kern.maxvnodes kern.maxvnodes: 100000
If the current vnode usage is near the maximum, increasing kern.maxvnodes
by a value of 1,000 is probably a good idea. Keep
an eye on the number of vfs.numvnodes
. If it climbs up to
the maximum again, kern.maxvnodes
will need to be increased
further. A shift in your memory usage as reported by top(1) should be
visible. More memory should be active.
No matter how well you plan, sometimes a system does not run as you expect. If you find you need more swap space, it is simple enough to add. You have three ways to increase swap space: adding a new hard drive, enabling swap over NFS, and creating a swap file on an existing partition.
For information on how to encrypt swap space, what options for this task exist and why it should be done, please refer to µÚ 18.17 節 of the Handbook.
The best way to add swap, of course, is to use this as an excuse to add another hard drive. You can always use another hard drive, after all. If you can do this, go reread the discussion of swap space in µÚ 11.2 節 of the Handbook for some suggestions on how to best arrange your swap.
Swapping over NFS is only recommended if you do not have a local hard disk to swap to; NFS swapping will be limited by the available network bandwidth and puts an additional burden on the NFS server.
You can create a file of a specified size to use as a swap file. In our example here we will use a 64MB file called /usr/swap0. You can use any name you want, of course.
範例 11-1. Creating a Swapfile on FreeBSD
Be certain that your kernel configuration includes the memory disk driver (md(4)). It is default in GENERIC kernel.
device md # Memory "disks"
Create a swapfile (/usr/swap0):
# dd if=/dev/zero of=/usr/swap0 bs=1024k count=64
Set proper permissions on (/usr/swap0):
# chmod 0600 /usr/swap0
Enable the swap file in /etc/rc.conf:
swapfile="/usr/swap0" # Set to name of swapfile if aux swapfile desired.
Reboot the machine or to enable the swap file immediately, type:
# mdconfig -a -t vnode -f /usr/swap0 -u 0 && swapon /dev/md0
It is very important to utilize hardware resources in an efficient manner. Before ACPI was introduced, it was very difficult and inflexible for operating systems to manage the power usage and thermal properties of a system. The hardware was controlled by some sort of BIOS embedded interface, such as Plug and Play BIOS (PNPBIOS), or Advanced Power Management (APM) and so on. Power and Resource Management is one of the key components of a modern operating system. For example, you may want an operating system to monitor system limits (and possibly alert you) in case your system temperature increased unexpectedly.
In this section of the FreeBSD Handbook, we will provide comprehensive information about ACPI. References will be provided for further reading at the end.
Advanced Configuration and Power Interface (ACPI) is a standard written by an alliance of vendors to provide a standard interface for hardware resources and power management (hence the name). It is a key element in Operating System-directed configuration and Power Management, i.e.: it provides more control and flexibility to the operating system (OS). Modern systems “stretched” the limits of the current Plug and Play interfaces prior to the introduction of ACPI. ACPI is the direct successor to APM (Advanced Power Management).
The Advanced Power Management (APM) facility controls the power usage of a system based on its activity. The APM BIOS is supplied by the (system) vendor and it is specific to the hardware platform. An APM driver in the OS mediates access to the APM Software Interface, which allows management of power levels.
There are four major problems in APM. Firstly, power management is done by the (vendor-specific) BIOS, and the OS does not have any knowledge of it. One example of this, is when the user sets idle-time values for a hard drive in the APM BIOS, that when exceeded, it (BIOS) would spin down the hard drive, without the consent of the OS. Secondly, the APM logic is embedded in the BIOS, and it operates outside the scope of the OS. This means users can only fix problems in their APM BIOS by flashing a new one into the ROM; which is a very dangerous procedure with the potential to leave the system in an unrecoverable state if it fails. Thirdly, APM is a vendor-specific technology, which means that there is a lot of parity (duplication of efforts) and bugs found in one vendor's BIOS, may not be solved in others. Last but not the least, the APM BIOS did not have enough room to implement a sophisticated power policy, or one that can adapt very well to the purpose of the machine.
Plug and Play BIOS (PNPBIOS) was unreliable in many situations. PNPBIOS is 16-bit technology, so the OS has to use 16-bit emulation in order to “interface” with PNPBIOS methods.
The FreeBSD APM driver is documented in the apm(4) manual page.
The acpi.ko driver is loaded by default at start up by the loader(8) and should not be compiled into the kernel. The reasoning behind this is that modules are easier to work with, say if switching to another acpi.ko without doing a kernel rebuild. This has the advantage of making testing easier. Another reason is that starting ACPI after a system has been brought up is not too useful, and in some cases can be fatal. In doubt, just disable ACPI all together. This driver should not and can not be unloaded because the system bus uses it for various hardware interactions. ACPI can be disabled with the acpiconf(8) utility. In fact most of the interaction with ACPI can be done via acpiconf(8). Basically this means, if anything about ACPI is in the dmesg(8) output, then most likely it is already running.
注: ACPI and APM cannot coexist and should be used separately. The last one to load will terminate if the driver notices the other running.
In the simplest form, ACPI can be used to
put the system into a sleep mode with
acpiconf(8), the
-s
flag, and a 1-5 option. Most
users will only need 1. Option 5
will do a soft-off which is the same action as:
# halt -p
The other options are available. Check out the acpiconf(8) manual page for more information.
ACPI is a fundamentally new way of discovering devices, managing power usage, and providing standardized access to various hardware previously managed by the BIOS. Progress is being made toward ACPI working on all systems, but bugs in some motherboards' ACPI Machine Language (AML) bytecode, incompleteness in FreeBSD's kernel subsystems, and bugs in the Intel ACPI-CA interpreter continue to appear.
This document is intended to help you assist the FreeBSD ACPI maintainers in identifying the root cause of problems you observe and debugging and developing a solution. Thanks for reading this and we hope we can solve your system's problems.
注: Before submitting a problem, be sure you are running the latest BIOS version and, if available, embedded controller firmware version.
For those of you that want to submit a problem right away, please send the following information to freebsd-acpi@FreeBSD.org:
Description of the buggy behavior, including system type and model and anything that causes the bug to appear. Also, please note as accurately as possible when the bug began occurring if it is new for you.
The dmesg(8) output after boot -v, including any error messages generated by you exercising the bug.
The dmesg(8) output from boot -v with ACPI disabled, if disabling it helps fix the problem.
Output from sysctl hw.acpi. This is also a good way of figuring out what features your system offers.
URL where your ACPI Source Language (ASL) can be found. Do not send the ASL directly to the list as it can be very large. Generate a copy of your ASL by running this command:
# acpidump -t -d > name-system.asl
(Substitute your login name for name and manufacturer/model for system. Example: njl-FooCo6000.asl)
Most of the developers watch the FreeBSD-CURRENT 郵遞論壇 but please submit problems to freebsd-acpi to be sure it is seen. Please be patient, all of us have full-time jobs elsewhere. If your bug is not immediately apparent, we will probably ask you to submit a PR via send-pr(1). When entering a PR, please include the same information as requested above. This will help us track the problem and resolve it. Do not send a PR without emailing freebsd-acpi first as we use PRs as reminders of existing problems, not a reporting mechanism. It is likely that your problem has been reported by someone before.
ACPI is present in all modern computers that conform to the ia32 (x86), ia64 (Itanium), and amd64 (AMD) architectures. The full standard has many features including CPU performance management, power planes control, thermal zones, various battery systems, embedded controllers, and bus enumeration. Most systems implement less than the full standard. For instance, a desktop system usually only implements the bus enumeration parts while a laptop might have cooling and battery management support as well. Laptops also have suspend and resume, with their own associated complexity.
An ACPI-compliant system has various components. The BIOS and chipset vendors provide various fixed tables (e.g., FADT) in memory that specify things like the APIC map (used for SMP), config registers, and simple configuration values. Additionally, a table of bytecode (the Differentiated System Description Table DSDT) is provided that specifies a tree-like name space of devices and methods.
The ACPI driver must parse the fixed tables, implement an interpreter for the bytecode, and modify device drivers and the kernel to accept information from the ACPI subsystem. For FreeBSD, Intel has provided an interpreter (ACPI-CA) that is shared with Linux and NetBSD. The path to the ACPI-CA source code is src/sys/contrib/dev/acpica. The glue code that allows ACPI-CA to work on FreeBSD is in src/sys/dev/acpica/Osd. Finally, drivers that implement various ACPI devices are found in src/sys/dev/acpica.
For ACPI to work correctly, all the parts have to work correctly. Here are some common problems, in order of frequency of appearance, and some possible workarounds or fixes.
In some cases, resuming from a suspend operation will cause the mouse to fail. A known work around is to add hint.psm.0.flags="0x3000" to the /boot/loader.conf file. If this does not work then please consider sending a bug report as described above.
ACPI has three suspend to RAM (STR) states, S1-S3, and one suspend to disk state (STD), called S4. S5 is “soft off” and is the normal state your system is in when plugged in but not powered up. S4 can actually be implemented two separate ways. S4BIOS is a BIOS-assisted suspend to disk. S4OS is implemented entirely by the operating system.
Start by checking sysctl hw.acpi for the suspend-related items. Here are the results for a Thinkpad:
hw.acpi.supported_sleep_state: S3 S4 S5 hw.acpi.s4bios: 0
This means that we can use acpiconf -s to test S3, S4OS, and S5. If s4bios
was one (1), we would have
S4BIOS
support instead of S4 OS.
When testing suspend/resume, start with S1, if supported. This state is most likely to work since it does not require much driver support. No one has implemented S2 but if you have it, it is similar to S1. The next thing to try is S3. This is the deepest STR state and requires a lot of driver support to properly reinitialize your hardware. If you have problems resuming, feel free to email the freebsd-acpi list but do not expect the problem to be resolved since there are a lot of drivers/hardware that need more testing and work.
To help isolate the problem, remove as many drivers from your kernel as
possible. If it works, you can narrow down which driver is the problem by loading
drivers until it fails again. Typically binary drivers like nvidia.ko, X11 display drivers, and USB will have the most problems while Ethernet interfaces
usually work fine. If you can properly load/unload the drivers, you can automate
this by putting the appropriate commands in /etc/rc.suspend and /etc/rc.resume.
There is a commented-out example for unloading and loading a driver. Try
setting hw.acpi.reset_video
to zero (0) if your display is messed up after resume. Try setting
longer or shorter values for hw.acpi.sleep_delay
to see
if that helps.
Another thing to try is load a recent Linux distribution with ACPI support and test their suspend/resume support on the same hardware. If it works on Linux, it is likely a FreeBSD driver problem and narrowing down which driver causes the problems will help us fix the problem. Note that the ACPI maintainers do not usually maintain other drivers (e.g sound, ATA, etc.) so any work done on tracking down a driver problem should probably eventually be posted to the freebsd-current list and mailed to the driver maintainer. If you are feeling adventurous, go ahead and start putting some debugging printf(3)s in a problematic driver to track down where in its resume function it hangs.
Finally, try disabling ACPI and enabling APM instead. If suspend/resume works with APM, you may be better off sticking with APM, especially on older hardware (pre-2000). It took vendors a while to get ACPI support correct and older hardware is more likely to have BIOS problems with ACPI.
Most system hangs are a result of lost interrupts or an interrupt storm. Chipsets have a lot of problems based on how the BIOS configures interrupts before boot, correctness of the APIC (MADT) table, and routing of the System Control Interrupt (SCI).
Interrupt storms can be distinguished from lost interrupts by checking the output of vmstat -i and looking at the line that has acpi0. If the counter is increasing at more than a couple per second, you have an interrupt storm. If the system appears hung, try breaking to DDB (CTRL+ALT+ESC on console) and type show interrupts.
Your best hope when dealing with interrupt problems is to try disabling APIC support with hint.apic.0.disabled="1" in loader.conf.
Panics are relatively rare for ACPI and are the top priority to be fixed. The first step is to isolate the steps to reproduce the panic (if possible) and get a backtrace. Follow the advice for enabling options DDB and setting up a serial console (see µÚ 24.6.5.3 節) or setting up a dump(8) partition. You can get a backtrace in DDB with tr. If you have to handwrite the backtrace, be sure to at least get the lowest five (5) and top five (5) lines in the trace.
Then, try to isolate the problem by booting with ACPI disabled. If that works, you can isolate the ACPI subsystem by using various values of debug.acpi.disable
. See the acpi(4) manual page
for some examples.
First, try setting hw.acpi.disable_on_poweroff="0" in loader.conf(5). This keeps ACPI from disabling various events during the shutdown process. Some systems need this value set to 1 (the default) for the same reason. This usually fixes the problem of a system powering up spontaneously after a suspend or poweroff.
If you have other problems with ACPI (working with a docking station, devices not detected, etc.), please email a description to the mailing list as well; however, some of these issues may be related to unfinished parts of the ACPI subsystem so they might take a while to be implemented. Please be patient and prepared to test patches we may send you.
The most common problem is the BIOS vendors providing incorrect (or outright buggy!) bytecode. This is usually manifested by kernel console messages like this:
ACPI-1287: *** Error: Method execution failed [\\_SB_.PCI0.LPC0.FIGD._STA] \\ (Node 0xc3f6d160), AE_NOT_FOUND
Often, you can resolve these problems by updating your BIOS to the latest revision. Most console messages are harmless
but if you have other problems like battery status not working, they are a good
place to start looking for problems in the AML. The bytecode, known as AML, is compiled from a source language called ASL. The AML is found in the table known as the DSDT. To get a copy of your ASL, use acpidump(8). You
should use both the -t
(show contents of the fixed
tables) and -d
(disassemble AML to ASL) options.
See the Submitting Debugging Information
section for an example syntax.
The simplest first check you can do is to recompile your ASL to check for errors. Warnings can usually be ignored but errors are bugs that will usually prevent ACPI from working correctly. To recompile your ASL, issue the following command:
# iasl your.asl
In the long run, our goal is for almost everyone to have ACPI work without any user intervention. At this point, however, we are still developing workarounds for common mistakes made by the BIOS vendors. The Microsoft interpreter (acpi.sys and acpiec.sys) does not strictly check for adherence to the standard, and thus many BIOS vendors who only test ACPI under Windows never fix their ASL. We hope to continue to identify and document exactly what non-standard behavior is allowed by Microsoft's interpreter and replicate it so FreeBSD can work without forcing users to fix the ASL. As a workaround and to help us identify behavior, you can fix the ASL manually. If this works for you, please send a diff(1) of the old and new ASL so we can possibly work around the buggy behavior in ACPI-CA and thus make your fix unnecessary.
Here is a list of common error messages, their cause, and how to fix them:
Some AML assumes the world consists of various Windows versions. You can tell FreeBSD to claim it is any OS to see if this fixes problems you may have. An easy way to override this is to set hw.acpi.osname="Windows 2001" in /boot/loader.conf or other similar strings you find in the ASL.
Some methods do not explicitly return a value as the standard requires. While
ACPI-CA does not handle this, FreeBSD
has a workaround that allows it to return the value implicitly. You can also add
explicit Return statements where required if you know what value should be
returned. To force iasl to compile the ASL, use the -f
flag.
After you customize your.asl, you will want to compile it, run:
# iasl your.asl
You can add the -f
flag to force creation of the
AML, even if there are errors during
compilation. Remember that some errors (e.g., missing Return statements) are
automatically worked around by the interpreter.
DSDT.aml is the default output filename for iasl. You can load this instead of your BIOS's buggy copy (which is still present in flash memory) by editing /boot/loader.conf as follows:
acpi_dsdt_load="YES" acpi_dsdt_name="/boot/DSDT.aml"
Be sure to copy your DSDT.aml to the /boot directory.
The ACPI driver has a very flexible debugging facility. It allows you to specify a set of subsystems as well as the level of verbosity. The subsystems you wish to debug are specified as “layers” and are broken down into ACPI-CA components (ACPI_ALL_COMPONENTS) and ACPI hardware support (ACPI_ALL_DRIVERS). The verbosity of debugging output is specified as the “level” and ranges from ACPI_LV_ERROR (just report errors) to ACPI_LV_VERBOSE (everything). The “level” is a bitmask so multiple options can be set at once, separated by spaces. In practice, you will want to use a serial console to log the output if it is so long it flushes the console message buffer. A full list of the individual layers and levels is found in the acpi(4) manual page.
Debugging output is not enabled by default. To enable it, add options ACPI_DEBUG to your kernel configuration file if ACPI is compiled into the kernel. You can add ACPI_DEBUG=1 to your /etc/make.conf to enable it globally. If it is a module, you can recompile just your acpi.ko module as follows:
# cd /sys/modules/acpi/acpi && make clean && make ACPI_DEBUG=1
Install acpi.ko in /boot/kernel and add your desired level and layer to loader.conf. This example enables debug messages for all ACPI-CA components and all ACPI hardware drivers (CPU, LID, etc.) It will only output error messages, the least verbose level.
debug.acpi.layer="ACPI_ALL_COMPONENTS ACPI_ALL_DRIVERS" debug.acpi.level="ACPI_LV_ERROR"
If the information you want is triggered by a specific event (say, a suspend and then resume), you can leave out changes to loader.conf and instead use sysctl to specify the layer and level after booting and preparing your system for the specific event. The sysctls are named the same as the tunables in loader.conf.
More information about ACPI may be found in the following locations:
The ACPI Mailing List Archives http://lists.freebsd.org/pipermail/freebsd-acpi/
The old ACPI Mailing List Archives http://home.jp.FreeBSD.org/mail-list/acpi-jp/
The ACPI 2.0 Specification http://acpi.info/spec.htm
FreeBSD Manual pages: acpi(4), acpi_thermal(4), acpidump(8), iasl(8), acpidb(8)
DSDT debugging resource. (Uses Compaq as an example but generally useful.)
The process of starting a computer and loading the operating system is referred to as “the bootstrap process”, or simply “booting”. FreeBSD's boot process provides a great deal of flexibility in customizing what happens when you start the system, allowing you to select from different operating systems installed on the same computer, or even different versions of the same operating system or installed kernel.
This chapter details the configuration options you can set and how to customize the FreeBSD boot process. This includes everything that happens until the FreeBSD kernel has started, probed for devices, and started init(8). If you are not quite sure when this happens, it occurs when the text color changes from bright white to grey.
讀完這章,您將了解:
What the components of the FreeBSD bootstrap system are, and how they interact.
The options you can give to the components in the FreeBSD bootstrap to control the boot process.
device.hints(5) 的基本概念。
x86 Only: This chapter only describes the boot process for FreeBSD running on Intel x86 systems.
Turning on a computer and starting the operating system poses an interesting dilemma. By definition, the computer does not know how to do anything until the operating system is started. This includes running programs from the disk. So if the computer can not run a program from the disk without the operating system, and the operating system programs are on the disk, how is the operating system started?
This problem parallels one in the book The Adventures of Baron Munchausen. A character had fallen part way down a manhole, and pulled himself out by grabbing his bootstraps, and lifting. In the early days of computing the term bootstrap was applied to the mechanism used to load the operating system, which has become shortened to “booting”.
On x86 hardware the Basic Input/Output System (BIOS) is responsible for loading the operating system. To do this, the BIOS looks on the hard disk for the Master Boot Record (MBR), which must be located on a specific place on the disk. The BIOS has enough knowledge to load and run the MBR, and assumes that the MBR can then carry out the rest of the tasks involved in loading the operating system, possibly with the help of the BIOS.
The code within the MBR is usually referred to as a boot manager, especially when it interacts with the user. In this case the boot manager usually has more code in the first track of the disk or within some OS's file system. (A boot manager is sometimes also called a boot loader, but FreeBSD uses that term for a later stage of booting.) Popular boot managers include boot0 (a.k.a. Boot Easy, the standard FreeBSD boot manager), Grub, GAG, and LILO. (Only boot0 fits within the MBR.)
If you have only one operating system installed on your disks then a standard PC MBR will suffice. This MBR searches for the first bootable (a.k.a. active) slice on the disk, and then runs the code on that slice to load the remainder of the operating system. The MBR installed by fdisk(8), by default, is such an MBR. It is based on /boot/mbr.
If you have installed multiple operating systems on your disks then you can install a different boot manager, one that can display a list of different operating systems, and allows you to choose the one to boot from. Two of these are discussed in the next subsection.
The remainder of the FreeBSD bootstrap system is divided into three stages. The first stage is run by the MBR, which knows just enough to get the computer into a specific state and run the second stage. The second stage can do a little bit more, before running the third stage. The third stage finishes the task of loading the operating system. The work is split into these three stages because the PC standards put limits on the size of the programs that can be run at stages one and two. Chaining the tasks together allows FreeBSD to provide a more flexible loader.
The kernel is then started and it begins to probe for devices and initialize them for use. Once the kernel boot process is finished, the kernel passes control to the user process init(8), which then makes sure the disks are in a usable state. init(8) then starts the user-level resource configuration which mounts file systems, sets up network cards to communicate on the network, and generally starts all the processes that usually are run on a FreeBSD system at startup.
The code in the MBR or boot manager is sometimes referred to as stage zero of the boot process. This subsection discusses two of the boot managers previously mentioned: boot0 and LILO.
The boot0 Boot Manager: The MBR installed by FreeBSD's installer or boot0cfg(8), by default, is based on /boot/boot0. (The boot0 program is very simple, since the program in the MBR can only be 446 bytes long because of the slice table and 0x55AA identifier at the end of the MBR.) If you have installed boot0 and multiple operating systems on your hard disks, then you will see a display similar to this one at boot time:
Other operating systems, in particular Windows, have been known to overwrite an existing MBR with their own. If this happens to you, or you want to replace your existing MBR with the FreeBSD MBR then use the following command:
# fdisk -B -b /boot/boot0 device
where device is the device that you boot from, such as ad0 for the first IDE disk, ad2 for the first IDE disk on a second IDE controller, da0 for the first SCSI disk, and so on. Or, if you want a custom configuration of the MBR, use boot0cfg(8).
The LILO Boot Manager: To install this boot manager so it will also boot FreeBSD, first start Linux and add the following to your existing /etc/lilo.conf configuration file:
other=/dev/hdXY table=/dev/hdX loader=/boot/chain.b label=FreeBSD
In the above, specify FreeBSD's primary partition and drive using Linux
specifiers, replacing X with the Linux drive
letter and Y with the Linux primary partition
number. If you are using a SCSI drive, you
will need to change /dev/hd to read something
similar to /dev/sd. The loader=/boot/chain.b
line can be omitted if you have both
operating systems on the same drive. Now run /sbin/lilo -v to commit your new changes to the system;
this should be verified by checking its screen messages.
Conceptually the first and second stages are part of the same program, on the same area of the disk. Because of space constraints they have been split into two, but you would always install them together. They are copied from the combined file /boot/boot by the installer or disklabel (see below).
They are located outside file systems, in the first track of the boot slice, starting with the first sector. This is where boot0, or any other boot manager, expects to find a program to run which will continue the boot process. The number of sectors used is easily determined from the size of /boot/boot.
boot1 is very simple, since it can only be 512 bytes in size, and knows just enough about the FreeBSD disklabel, which stores information about the slice, to find and execute boot2.
boot2 is slightly more sophisticated, and understands the FreeBSD file system enough to find files on it, and can provide a simple interface to choose the kernel or loader to run.
Since the loader is much more sophisticated, and provides a nice easy-to-use boot configuration, boot2 usually runs it, but previously it was tasked to run the kernel directly.
If you ever need to replace the installed boot1 and boot2 use disklabel(8):
# disklabel -B diskslice
where diskslice is the disk and slice you boot from, such as ad0s1 for the first slice on the first IDE disk.
Dangerously Dedicated ModeIf you use just the disk name, such as ad0, in the disklabel(8) command you will create a dangerously dedicated disk, without slices. This is almost certainly not what you want to do, so make sure you double check the disklabel(8) command before you press Return.
The loader is the final stage of the three-stage bootstrap, and is located on the file system, usually as /boot/loader.
The loader is intended as a user-friendly method for configuration, using an easy-to-use built-in command set, backed up by a more powerful interpreter, with a more complex command set.
During initialization, the loader will probe for a console and for disks, and figure out what disk it is booting from. It will set variables accordingly, and an interpreter is started where user commands can be passed from a script or interactively.
The loader will then read /boot/loader.rc, which by default reads in /boot/defaults/loader.conf which sets reasonable defaults for variables and reads /boot/loader.conf for local changes to those variables. loader.rc then acts on these variables, loading whichever modules and kernel are selected.
Finally, by default, the loader issues a 10 second wait for key presses, and boots the kernel if it is not interrupted. If interrupted, the user is presented with a prompt which understands the easy-to-use command set, where the user may adjust variables, unload all modules, load modules, and then finally boot or reboot.
These are the most commonly used loader commands. For a complete discussion of all available commands, please see loader(8).
Proceeds to boot the kernel if not interrupted within the time span given, in seconds. It displays a countdown, and the default time span is 10 seconds.
Immediately proceeds to boot the kernel, with the given options, if any, and with the kernel name given, if it is.
Goes through the same automatic configuration of modules based on variables as what happens at boot. This only makes sense if you use unload first, and change some variables, most commonly kernel.
Shows help messages read from /boot/loader.help. If the topic given is index, then the list of available topics is given.
Processes the file with the given filename. The file is read in, and interpreted line by line. An error immediately stops the include command.
-t
type] filenameLoads the kernel, kernel module, or file of the type given, with the filename given. Any arguments after filename are passed to the file.
-l
] [path]Displays a listing of files in the given path, or the root directory, if the
path is not specified. If -l
is specified, file sizes
will be shown too.
-v
]Lists all of the devices from which it may be possible to load modules. If -v
is specified, more details are printed.
-v
]Displays loaded modules. If -v
is specified, more
details are shown.
Displays the files specified, with a pause at each LINES
displayed.
Immediately reboots the system.
Sets the loader's environment variables.
Removes all loaded modules.
Here are some practical examples of loader usage:
To simply boot your usual kernel, but in single-user mode:
boot -s
To unload your usual kernel and modules, and then load just your old (or another) kernel:
unload load kernel.old
You can use kernel.GENERIC to refer to the generic kernel that comes on the install disk, or kernel.old to refer to your previously installed kernel (when you have upgraded or configured your own kernel, for example).
注: Use the following to load your usual modules with another kernel:
unload set kernel="kernel.old" boot-conf
To load a kernel configuration script (an automated script which does the things you would normally do in the kernel boot-time configurator):
load -t userconfig_script /boot/kernel.conf
Once the kernel is loaded by either loader (as usual) or boot2 (bypassing the loader), it examines its boot flags, if any, and adjusts its behavior as necessary.
Here are the more common boot flags:
-a
during kernel initialization, ask for the device to mount as the root file system.
-C
boot from CDROM.
-c
run UserConfig, the boot-time kernel configurator
-s
boot into single-user mode
-v
be more verbose during kernel startup
注: There are other boot flags, read boot(8) for more information on them.
注: This is a FreeBSD 5.0 and later feature which does not exist in earlier versions.
During initial system startup, the boot loader(8) will read the device.hints(5) file. This file stores kernel boot information known as variables, sometimes referred to as “device hints”. These “device hints” are used by device drivers for device configuration.
Device hints may also be specified at the Stage 3 boot loader prompt. Variables can be added using set, removed with unset, and viewed with the show commands. Variables set in the /boot/device.hints file can be overridden here also. Device hints entered at the boot loader are not permanent and will be forgotten on the next reboot.
Once the system is booted, the kenv(1) command can be used to dump all of the variables.
The syntax for the /boot/device.hints file is one variable per line, using the standard hash “#” as comment markers. Lines are constructed as follows:
hint.driver.unit.keyword="value"
The syntax for the Stage 3 boot loader is:
set hint.driver.unit.keyword=value
driver is the device driver name, unit is the device driver unit number, and keyword is the hint keyword. The keyword may consist of the following options:
at: specifies the bus which the device is attached to.
port: specifies the start address of the I/O to be used.
irq: specifies the interrupt request number to be used.
drq: specifies the DMA channel number.
maddr: specifies the physical memory address occupied by the device.
flags: sets various flag bits for the device.
disabled: if set to 1 the device is disabled.
Device drivers may accept (or require) more hints not listed here, viewing their manual page is recommended. For more information, consult the device.hints(5), kenv(1), loader.conf(5), and loader(8) manual pages.
Once the kernel has finished booting, it passes control to the user process init(8), which is located at /sbin/init, or the program path specified in the init_path variable in loader.
The automatic reboot sequence makes sure that the file systems available on the system are consistent. If they are not, and fsck(8) cannot fix the inconsistencies, init(8) drops the system into single-user mode for the system administrator to take care of the problems directly.
This mode can be reached through the automatic reboot
sequence, or by the user booting with the -s
option
or setting the boot_single variable in loader.
It can also be reached by calling shutdown(8) without
the reboot (-r
) or halt (-h
)
options, from multi-user mode.
If the system console is set to insecure in /etc/ttys, then the system prompts for the root password before initiating single-user mode.
範例 12-3. An Insecure Console in /etc/ttys
# name getty type status comments # # If console is marked "insecure", then init will ask for the root password # when going to single-user mode. console none unknown off insecure
注: An insecure console means that you consider your physical security to the console to be insecure, and want to make sure only someone who knows the root password may use single-user mode, and it does not mean that you want to run your console insecurely. Thus, if you want security, choose insecure, not secure.
If init(8) finds your file systems to be in order, or once the user has finished in single-user mode, the system enters multi-user mode, in which it starts the resource configuration of the system.
The resource configuration system reads in configuration defaults from /etc/defaults/rc.conf, and system-specific details from /etc/rc.conf, and then proceeds to mount the system file systems mentioned in /etc/fstab, start up networking services, start up miscellaneous system daemons, and finally runs the startup scripts of locally installed packages.
The rc(8) manual page is a good reference to the resource configuration system, as is examining the scripts themselves.
Upon controlled shutdown, via shutdown(8), init(8) will attempt to run the script /etc/rc.shutdown, and then proceed to send all processes the TERM signal, and subsequently the KILL signal to any that do not terminate timely.
To power down a FreeBSD machine on architectures and systems that support power management, simply use the command shutdown -p now to turn the power off immediately. To just reboot a FreeBSD system, just use shutdown -r now. You need to be root or a member of operator group to run shutdown(8). The halt(8) and reboot(8) commands can also be used, please refer to their manual pages and to shutdown(8)'s one for more information.
FreeBSD 允許多個使用者同時使用電腦。 當然, 這並不是很多人同時坐在同一台電腦前 [9],而是其他使用者可以透過網路來使用同一台電腦以完成他們的工作。 要使用系統的話,那麼每個人都得有一個帳號。
讀完這章,您將了解:
在 FreeBSD 系統上不同帳號之間的區別。
如何增加帳號。
如何刪除帳號。
如何更改帳號的基本資料,像是帳號全名,或是使用的 shell 種類。
如何針對帳號、群組來設限,比如:允許存取記憶體或 CPU 資源多寡等。
如何運用群組,來更容易地管理帳號。
在開始閱讀這章之前,您需要:
瞭解 UNIX 及 FreeBSD (µÚ 3 章)的基礎概念。
系統的所有存取是經由帳號來進行,而所有的程式 process 是由使用者來進行,所以使用者及帳號的管理,乃是 FreeBSD 系統上不可或缺的重點。
所有於 FreeBSD 系統中的帳號皆包含下列相關資訊用來辨識身份。
使用者名稱要輸入在 login: 提示出現後。 使用者名稱必須是獨一無二, 不能有重複的使用者名稱。 至於如何建立有效使用者名稱的規則,請參閱 passwd(5) 說明, 通常使用者名稱是以八個以內的小寫字母所組成。
每個帳號都可擁有一組密碼。 密碼也可以不設, 如此就不需密碼即可登入系統,但通常這並非妙策, 每個帳號都應設定一組密碼。
UID 是系統用來辨識使用者的數字,通常範圍是從 0 到 65535 [10]。 FreeBSD 內部是使用 UID 來辨識使用者 —— FreeBSD 在執行任何指定使用者的指令之前,都會先把使用者名稱轉換為 UID。 也就是說,比如可以有數個不同的使用者名稱, 但是都使用同一個 UID,對 FreeBSD 來說,這些帳號都只代表同一使用者。 不過,實際上需要這樣做的可能性不大。
GID 是系統用來辨識使用者所屬群組的數字,通常範圍是從 0 到 65535[10] 。 用群組來控制資源存取,可有效減少一些設定檔的大小。 此外,使用者還可以同時屬於多個不同的群組。
登入分類是群組的延伸機制, 提供了不同的使用者更彈性的。
FreeBSD 預設並不要求使用者週期性的更改密碼。您可以強制某些或 全部的使用者在指定的期間過後必須更改密碼。
FreeBSD 的帳號沒有預設的期限,如果您已知道帳號的使用期限, 例如,學校中提供學生使用的帳號,可在建立帳號時指定帳號的期限。 當帳號過期後會無法登入系統,但該帳號的目錄及檔案則會保留。
FreeBSD 的帳號使用使用者名稱用來辨識,但使用者名稱並不一定代表 真實使用者的姓名。為帳號所需的相關資訊。
家目錄為使用者登入系統時的所在目錄的完整路徑。 通常會將所有使用者的家目錄放置於 /home/使用者名稱 或 /usr/home/使用者名稱。 使用者可以將其個人的資料放置於其家目錄之中,並可以在此目錄底下 建立新的目錄
Shell 提供預設的環境讓使用者與系統互動。 Shell 擁有數種不同的種類, 可供進階使用者依使用習慣選擇。
帳號主要分為下列三類: 系統管理者帳號, 系統帳號,及 使用者帳號。 系統管理者帳號的帳號 通常為 root,擁有最大的權限來管理系統。 系統帳號用來執行伺服器服務。最後,使用者帳號供真正的使用者使用, 可登入、讀信等等。
The superuser account, usually called root, comes preconfigured to facilitate system administration, and should not be used for day-to-day tasks like sending and receiving mail, general exploration of the system, or programming.
This is because the superuser, unlike normal user accounts, can operate without limits, and misuse of the superuser account may result in spectacular disasters. User accounts are unable to destroy the system by mistake, so it is generally best to use normal user accounts whenever possible, unless you especially need the extra privilege.
You should always double and triple-check commands you issue as the superuser, since an extra space or missing character can mean irreparable data loss.
So, the first thing you should do after reading this chapter is to create an unprivileged user account for yourself for general usage if you have not already. This applies equally whether you are running a multi-user or single-user machine. Later in this chapter, we discuss how to create additional accounts, and how to change between the normal user and superuser.
System users are those used to run services such as DNS, mail, web servers, and so forth. The reason for this is security; if all services ran as the superuser, they could act without restriction.
Examples of system users are daemon, operator, bind (for the Domain Name Service), news, and www.
nobody is the generic unprivileged system user. However, it is important to keep in mind that the more services that use nobody, the more files and processes that user will become associated with, and hence the more privileged that user becomes.
User accounts are the primary means of access for real people to the system, and these accounts insulate the user and the environment, preventing the users from damaging the system or other users, and allowing users to customize their environment without affecting others.
Every person accessing your system should have a unique user account. This allows you to find out who is doing what, prevent people from clobbering each others' settings or reading each others' mail, and so forth.
Each user can set up their own environment to accommodate their use of the system, by using alternate shells, editors, key bindings, and language.
在 UNIX 的環境之中提供了各式不同的指令管理使用者帳號, 以下為較常使用的指令摘要及更詳細的使用範例。
指令 | 摘要 |
---|---|
adduser(8) | 新增使用者。 |
rmuser(8) | 移除使用者。 |
chpass(1) | 更改使用者資料。 |
passwd(1) | 更改使用者密碼。 |
pw(8) | 修改使用者的各種資料。 |
adduser(8) 是一支新增使用者的簡單程式。 它會建立資料於系統的 passwd 與 group 檔案之中。 同時也會建立使用者的家目錄,從 /usr/share/skel 複製預設的組態檔(“dotfiles”), 並可以選擇性的郵件通知新使用者歡迎訊息。
範例 13-1. 在 FreeBSD 內新增使用者
# adduser Username: jru Full name: J. Random User Uid (Leave empty for default): Login group [jru]: Login group is jru. Invite jru into other groups? []: wheel Login class [default]: Shell (sh csh tcsh zsh nologin) [sh]: zsh Home directory [/home/jru]: Use password-based authentication? [yes]: Use an empty password? (yes/no) [no]: Use a random password? (yes/no) [no]: Enter password: Enter password again: Lock out the account after creation? [no]: Username : jru Password : **** Full Name : J. Random User Uid : 1001 Class : Groups : jru wheel Home : /home/jru Shell : /usr/local/bin/zsh Locked : no OK? (yes/no): yes adduser: INFO: Successfully added (jru) to the user database. Add another user? (yes/no): no Goodbye! #
注: 您輸入的密碼並不會回應到螢幕,所以不會以星號顯示 。 請確定您所輸入的密碼無誤。
您可以使用 rmuser(8) 來將使用者從系統之中完全移除 rmuser(8) 會執行以下動作:
移除該使用者的 crontab(1) 資料 (如果存在)。
移除所有屬於該使用者的 at(1) 工作。
中止所有該使用者擁有的程序。
移除系統本機密碼檔中該使用者的資料。
移除該使用者的家目錄 (如果為該使用者所有)。
移除 /var/mail 中屬於該使用者的郵件。
移除暫存空間 (如: /tmp) 中所有屬於該使用者的檔案。
最後,在 /etc/group 檔內移除該使用者帳號。
注: 若該群組已無成員,或者是群組名稱與該使用者名稱相同時, 則群組將會被移除; 此操作會與 adduser(8) 所建立的帳號群組相對應。
rmuser(8) 無法移除系統管理者帳號帳號, 因為這即代表嚴重的破壞行為。
為了確認您的操作,預設採互動模式。
範例 13-2. rmuser 帳號移除
# rmuser jru Matching password entry: jru:*:1001:1001::0:0:J. Random User:/home/jru:/usr/local/bin/zsh Is this the entry you wish to remove? y Remove user's home directory (/home/jru)? y Updating password file, updating databases, done. Updating group file: trusted (removing group jru -- personal group is empty) done. Removing user's incoming mail file /var/mail/jru: done. Removing files belonging to jru from /tmp: done. Removing files belonging to jru from /var/tmp: done. Removing files belonging to jru from /var/tmp/vi.recover: done. #
chpass(1) 可更改使用者資料如: 密碼、Shell及個人資訊。
僅系統管理者即系統管理者帳號可利用 chpass(1) 更改其他使用者的資訊及密碼
除了指定使用者名稱,當不加參數時,chpass(1) 會將使用者資訊顯示於編輯器當中。 並於使用者離開編輯器時更新使用者資訊。
注: 若您並非系統管理者帳號,在離開編輯器前會詢問您的密碼。
範例 13-3. 系統管理者帳號 chpass
#Changing user database information for jru. Login: jru Password: * Uid [#]: 1001 Gid [# or name]: 1001 Change [month day year]: Expire [month day year]: Class: Home directory: /home/jru Shell: /usr/local/bin/zsh Full Name: J. Random User Office Location: Office Phone: Home Phone: Other information:
一般使用者僅可更改自己的少部份資訊。
passwd(1) 是更改密碼常用的方式,除了超級管理者可更改其他使用者的密碼外 使用者僅能更改自己的密碼。
注: 為了避免意外或未經同意的修改,在更新密碼前需輸入原密碼。
範例 13-5. 更改您的密碼
% passwd Changing local password for jru. Old password: New password: Retype new password: passwd: updating the database... passwd: done
範例 13-6. 以系統管理者帳號去更改其他使用者的密碼
# passwd jru Changing local password for jru. New password: Retype new password: passwd: updating the database... passwd: done
注: chpass(1)、 yppasswd(1) 即為 passwd(1),皆支援 NIS。
pw(8) 用來建立、移除、修改及查詢使用者及群組。 其功能即為系統使用者及群組檔案的前端。pw(8) 擁有大量的指令參數 較適合使用於 shell script 中,對新手來說會此指令較其他指令複雜許多。
若您擁有許多使用者,接下會想到該如何限制使用的資源。 FreeBSD 提供管理者許多方法來限制系統的資源給每個人使用。 這些限制分為兩個部份: 磁碟限額,以及其他資源限制。
磁碟限額可以限制使用者的磁碟用量, 它提供了一種方法可以快速的檢查並計算用量 而不需每次重新計算, 關於磁碟限額將於 µÚ 18.15 節 會討論。
其他資源限制包含了 CPU、記憶體、以及其他每個使用者可使用 的資源做限制,這些限制可使用 Login class 來定義並於在本章討論。
Login class 定義於 /etc/login.conf。 明確語意不會在本節說明 但詳細的描述會在 login.conf(5) 文件中。 每使用者預設被 分配到一個 Login class 中 (預設為 default), 而每個 Login class 都有其資源的限制(Login capabilitiy)。 Login capabilitiy 以 名稱=值 成對, 名稱 代表資源的種類,而 值 為任意的字串,為對應名稱的參數。 設定 Login class 及 Login capability 相當簡單,並同樣在 login.conf(5) 中詳細說明。
注: 系統不會直接讀取 /etc/login.conf 的組態 而是讀取提供查詢較快的 /etc/login.conf.db 資料庫檔。 要從 /etc/login.conf 產生 /etc/login.conf.db 需要執行以下指令:
# cap_mkdb /etc/login.conf
資源限制於一般的 Login capability 有兩點不同。 第一,每種限制分為軟性限制及硬性限制。 軟性限制可由使用者或應用程式調整,但不能高於硬性限制。 後者限制可被使用者降低,但無法再提高。 第二,多數資源限制是針對每個使用者的個別行程限制,而不是使用者的所有行程。 注意,這些差異是由指定的限制程式托管,並非實作於 Login capability 的架構 (例如,這些不是 真正 登入容量的特例)。
另外,為了避免麻煩,以下為幾個常用的資源限制 (剩下及其他的 Login capability 可在 login.conf(5) 中找到說明)。
The limit on the size of a core file generated by a program is, for obvious reasons, subordinate to other limits on disk usage (e.g., filesize, or disk quotas). Nevertheless, it is often used as a less-severe method of controlling disk space consumption: since users do not generate core files themselves, and often do not delete them, setting this may save them from running out of disk space should a large program (e.g., emacs) crash.
This is the maximum amount of CPU time a user's process may consume. Offending processes will be killed by the kernel.
注: This is a limit on CPU time consumed, not percentage of the CPU as displayed in some fields by top(1) and ps(1). A limit on the latter is, at the time of this writing, not possible, and would be rather useless: a compiler——probably a legitimate task——can easily use almost 100% of a CPU for some time.
This is the maximum size of a file the user may possess. Unlike disk quotas, this limit is enforced on individual files, not the set of all files a user owns.
This is the maximum number of processes a user may be running. This includes
foreground and background processes alike. For obvious reasons, this may not be
larger than the system limit specified by the kern.maxproc
sysctl(8). Also note
that setting this too small may hinder a user's productivity: it is often
useful to be logged in multiple times or execute pipelines. Some tasks, such as
compiling a large program, also spawn multiple processes (e.g., make(1), cc(1), and other
intermediate preprocessors).
This is the maximum amount a memory a process may have requested to be locked into main memory (e.g., see mlock(2)). Some system-critical programs, such as amd(8), lock into main memory such that in the event of being swapped out, they do not contribute to a system's trashing in time of trouble.
This is the maximum amount of memory a process may consume at any given time. It includes both core memory and swap usage. This is not a catch-all limit for restricting memory consumption, but it is a good start.
This is the maximum amount of files a process may have open. In FreeBSD, files
are also used to represent sockets and IPC channels; thus, be careful not to set
this too low. The system-wide limit for this is defined by the kern.maxfiles
sysctl(8).
This is the limit on the amount of network memory, and thus mbufs, a user may consume. This originated as a response to an old DoS attack by creating a lot of sockets, but can be generally used to limit network communications.
This is the maximum size a process' stack may grow to. This alone is not sufficient to limit the amount of memory a program may use; consequently, it should be used in conjunction with other limits.
There are a few other things to remember when setting resource limits. Following are some general tips, suggestions, and miscellaneous comments.
Processes started at system startup by /etc/rc are assigned to the daemon login class.
Although the /etc/login.conf that comes with the system is a good source of reasonable values for most limits, only you, the administrator, can know what is appropriate for your system. Setting a limit too high may open your system up to abuse, while setting it too low may put a strain on productivity.
Users of the X Window System (X11) should probably be granted more resources than other users. X11 by itself takes a lot of resources, but it also encourages users to run more programs simultaneously.
Remember that many limits apply to individual processes, not the user as a whole. For
example, setting openfiles
to 50 means that each
process the user runs may open up to 50 files. Thus, the gross amount of files a user may
open is the value of openfiles multiplied by the value of maxproc. This also applies to memory consumption.
For further information on resource limits and login classes and capabilities in general, please consult the relevant manual pages: cap_mkdb(1), getrlimit(2), login.conf(5).
A group is simply a list of users. Groups are identified by their group name and GID (Group ID). In FreeBSD (and most other UNIX like systems), the two factors the kernel uses to decide whether a process is allowed to do something is its user ID and list of groups it belongs to. Unlike a user ID, a process has a list of groups associated with it. You may hear some things refer to the “group ID” of a user or process; most of the time, this just means the first group in the list.
The group name to group ID map is in /etc/group. This is a plain text file with four colon-delimited fields. The first field is the group name, the second is the encrypted password, the third the group ID, and the fourth the comma-delimited list of members. It can safely be edited by hand (assuming, of course, that you do not make any syntax errors!). For a more complete description of the syntax, see the group(5) manual page.
If you do not want to edit /etc/group manually, you can use the pw(8) command to add and edit groups. For example, to add a group called teamtwo and then confirm that it exists you can use:
The number 1100 above is the group ID of the group teamtwo. Right now, teamtwo has no members, and is thus rather useless. Let's change that by inviting jru to the teamtwo group.
範例 13-8. Adding Somebody to a Group Using pw(8)
# pw groupmod teamtwo -M jru # pw groupshow teamtwo teamtwo:*:1100:jru
The argument to the -M
option is a comma-delimited list of
users who are members of the group. From the preceding sections, we know that the
password file also contains a group for each user. The latter (the user) is automatically
added to the group list by the system; the user will not show up as a member when using
the groupshow
command to pw(8), but will show
up when the information is queried via id(1) or similar tool.
In other words, pw(8) only manipulates
the /etc/group file; it will never attempt to read additionally
data from /etc/passwd.
範例 13-9. Using id(1) to Determine Group Membership
% id jru uid=1001(jru) gid=1001(jru) groups=1001(jru), 1100(teamtwo)
As you can see, jru is a member of the groups jru and teamtwo.
For more information about pw(8), see its manual page, and for more information on the format of /etc/group, consult the group(5) manual page.
這一章將對系統安全的基本概念進行介紹,除此之外,還將介紹一些好的習慣,以及 FreeBSD 下的一些更深入的話題。這章的許多內容對於一般的系統和 Internet 安全也適用。如今,Internet 已經不再像以前那樣是個人人都願意與您作好鄰居的『友善場所』。 必須讓系統更安全,才能去保護您的資料、智慧財產、寶貴時間以及其他很多東西, 而不至於被入侵者或心存惡意的人所竊取。
FreeBSD 提供了一系列工具和相關機制,來確保系統和網路的完整、安全。
讀完這章,您將了解︰
FreeBSD 系統的基本安全概念。
FreeBSD 中許多可用的加密機制,例如 DES 及 MD5。
如何建立一次性(one-time)密碼驗證機制。
如何設定 TCP Wrappers 以便與 inetd 配合使用。
如何在 FreeBSD 5.0. 之前的版本上設定 KerberosIV。
如何在 FreeBSD 5.0 (含之後版本)上設定 Kerberos5。
如何設定 IPsec 以及在 FreeBSD/Windows 上建立 VPN 網路。
如何設定、運用 OpenSSH,以及 FreeBSD 的 SSH 實作方式(implementation)
了解檔案系統的 ACLs 機制為何,以及如何運用。
如何使用 Portaudit 工具來檢驗(audit) 從 Ports Collection 安裝的軟體安全性。
如何善用 FreeBSD 安全公告(Security Advisories),並採取相應措施。
瞭解 Process Accounting 機制及如何在 FreeBSD 上啟動。
在開始閱讀這章之前,您需要︰
瞭解 FreeBSD 及 Internet 的基本概念。
本書中其他章節,也有介紹安全方面的其他話題。例如: 在 µÚ 16 章 有談到 Mandatory Access Control, Internet Firewalls 則在 µÚ 28 章。
安全,對系統管理者而言,是至始至終最基本的要求。由於所有的 BSD UNIX multi-user 系統都提供了與生俱來的基本安全,所以建立、維護額外的安全機制,以確保使用者的『可靠』, 可能也就是系統管理員最需要慎思的艱巨任務了。機器的安全性取決於您所建立的安全措施, 而許多安全方面的考量,則會與人們使用電腦時的便利相矛盾。一般來說, UNIX 系統可同時執行許多數目的程式 process ,並且其中許多 process 也同時以 Server 端來運作。 ── 這意味著,外部實體機器能夠與它們互相連接,並產生互動。現在的一般桌機, 已經能夠達到以前小型主機甚至大型主機的性能,而隨著這些電腦的網路連接和在更大範圍內互相連接 ,安全也成為了一個日益嚴峻的課題。
安全最好的方式,是能夠透過像『洋蔥』那樣的層層防護模式。 簡單講,應該儘可能的建立多層次安全防護,並小心地監視各類針對系統的入侵疑點。 You do not want to overbuild your security or you will interfere with the detection side, and detection is one of the single most important aspects of any security mechanism. For example, it makes little sense to set the schg flag (see chflags(1)) on every system binary because while this may temporarily protect the binaries, it prevents an attacker who has broken in from making an easily detectable change that may result in your security mechanisms not detecting the attacker at all.
System security also pertains to dealing with various forms of attack, including attacks that attempt to crash, or otherwise make a system unusable, but do not attempt to compromise the root account (“break root”). Security concerns can be split up into several categories:
服務阻斷攻擊(DoS)
竊取其他使用者的帳號。
透過各式 Server 上所提供的 Service 來竊取 root 帳號。
透過使用者帳號竊取 root 帳號。
開後門。
A denial of service attack is an action that deprives the machine of needed resources. Typically, DoS attacks are brute-force mechanisms that attempt to crash or otherwise make a machine unusable by overwhelming its servers or network stack. Some DoS attacks try to take advantage of bugs in the networking stack to crash a machine with a single packet. The latter can only be fixed by applying a bug fix to the kernel. Attacks on servers can often be fixed by properly specifying options to limit the load the servers incur on the system under adverse conditions. Brute-force network attacks are harder to deal with. A spoofed-packet attack, for example, is nearly impossible to stop, short of cutting your system off from the Internet. It may not be able to take your machine down, but it can saturate your Internet connection.
A user account compromise is even more common than a DoS attack. Many sysadmins still run standard telnetd, rlogind, rshd, and ftpd servers on their machines. These servers, by default, do not operate over encrypted connections. The result is that if you have any moderate-sized user base, one or more of your users logging into your system from a remote location (which is the most common and convenient way to login to a system) will have his or her password sniffed. The attentive system admin will analyze his remote access logs looking for suspicious source addresses even for successful logins.
One must always assume that once an attacker has access to a user account, the attacker can break root. However, the reality is that in a well secured and maintained system, access to a user account does not necessarily give the attacker access to root. The distinction is important because without access to root the attacker cannot generally hide his tracks and may, at best, be able to do nothing more than mess with the user's files, or crash the machine. User account compromises are very common because users tend not to take the precautions that sysadmins take.
System administrators must keep in mind that there are potentially many ways to break root on a machine. The attacker may know the root password, the attacker may find a bug in a root-run server and be able to break root over a network connection to that server, or the attacker may know of a bug in a suid-root program that allows the attacker to break root once he has broken into a user's account. If an attacker has found a way to break root on a machine, the attacker may not have a need to install a backdoor. Many of the root holes found and closed to date involve a considerable amount of work by the attacker to cleanup after himself, so most attackers install backdoors. A backdoor provides the attacker with a way to easily regain root access to the system, but it also gives the smart system administrator a convenient way to detect the intrusion. Making it impossible for an attacker to install a backdoor may actually be detrimental to your security, because it will not close off the hole the attacker found to break in the first place.
Security remedies should always be implemented with a multi-layered “onion peel” approach and can be categorized as follows:
Securing root and staff accounts.
Securing root–run servers and suid/sgid binaries.
Securing user accounts.
Securing the password file.
Securing the kernel core, raw devices, and file systems.
Quick detection of inappropriate changes made to the system.
Paranoia.
The next section of this chapter will cover the above bullet items in greater depth.
Command vs. Protocol: Throughout this document, we will use bold text to refer to an application, and a monospaced font to refer to specific commands. Protocols will use a normal font. This typographical distinction is useful for instances such as ssh, since it is a protocol as well as command.
The sections that follow will cover the methods of securing your FreeBSD system that were mentioned in the last section of this chapter.
First off, do not bother securing staff accounts if you have not secured the root account. Most systems have a password assigned to the root account. The first thing you do is assume that the password is always compromised. This does not mean that you should remove the password. The password is almost always necessary for console access to the machine. What it does mean is that you should not make it possible to use the password outside of the console or possibly even with the su(1) command. For example, make sure that your ptys are specified as being insecure in the /etc/ttys file so that direct root logins via telnet or rlogin are disallowed. If using other login services such as sshd, make sure that direct root logins are disabled there as well. You can do this by editing your /etc/ssh/sshd_config file, and making sure that PermitRootLogin is set to NO. Consider every access method —— services such as FTP often fall through the cracks. Direct root logins should only be allowed via the system console.
Of course, as a sysadmin you have to be able to get to root, so we open up a few holes. But we make sure these holes require additional password verification to operate. One way to make root accessible is to add appropriate staff accounts to the wheel group (in /etc/group). The staff members placed in the wheel group are allowed to su to root. You should never give staff members native wheel access by putting them in the wheel group in their password entry. Staff accounts should be placed in a staff group, and then added to the wheel group via the /etc/group file. Only those staff members who actually need to have root access should be placed in the wheel group. It is also possible, when using an authentication method such as Kerberos, to use Kerberos' .k5login file in the root account to allow a ksu(1) to root without having to place anyone at all in the wheel group. This may be the better solution since the wheel mechanism still allows an intruder to break root if the intruder has gotten hold of your password file and can break into a staff account. While having the wheel mechanism is better than having nothing at all, it is not necessarily the safest option.
An indirect way to secure staff accounts, and ultimately root access is to use an alternative login access method and do what is known as “starring” out the encrypted password for the staff accounts. Using the vipw(8) command, one can replace each instance of an encrypted password with a single “*” character. This command will update the /etc/master.passwd file and user/password database to disable password-authenticated logins.
A staff account entry such as:
foobar:R9DT/Fa1/LV9U:1000:1000::0:0:Foo Bar:/home/foobar:/usr/local/bin/tcsh
Should be changed to this:
foobar:*:1000:1000::0:0:Foo Bar:/home/foobar:/usr/local/bin/tcsh
This change will prevent normal logins from occurring, since the encrypted password will never match “*”. With this done, staff members must use another mechanism to authenticate themselves such as kerberos(1) or ssh(1) using a public/private key pair. When using something like Kerberos, one generally must secure the machines which run the Kerberos servers and your desktop workstation. When using a public/private key pair with ssh, one must generally secure the machine used to login from (typically one's workstation). An additional layer of protection can be added to the key pair by password protecting the key pair when creating it with ssh-keygen(1). Being able to “star” out the passwords for staff accounts also guarantees that staff members can only login through secure access methods that you have set up. This forces all staff members to use secure, encrypted connections for all of their sessions, which closes an important hole used by many intruders: sniffing the network from an unrelated, less secure machine.
The more indirect security mechanisms also assume that you are logging in from a more restrictive server to a less restrictive server. For example, if your main box is running all sorts of servers, your workstation should not be running any. In order for your workstation to be reasonably secure you should run as few servers as possible, up to and including no servers at all, and you should run a password-protected screen blanker. Of course, given physical access to a workstation an attacker can break any sort of security you put on it. This is definitely a problem that you should consider, but you should also consider the fact that the vast majority of break-ins occur remotely, over a network, from people who do not have physical access to your workstation or servers.
Using something like Kerberos also gives you the ability to disable or change the password for a staff account in one place, and have it immediately affect all the machines on which the staff member may have an account. If a staff member's account gets compromised, the ability to instantly change his password on all machines should not be underrated. With discrete passwords, changing a password on N machines can be a mess. You can also impose re-passwording restrictions with Kerberos: not only can a Kerberos ticket be made to timeout after a while, but the Kerberos system can require that the user choose a new password after a certain period of time (say, once a month).
The prudent sysadmin only runs the servers he needs to, no more, no less. Be aware that third party servers are often the most bug-prone. For example, running an old version of imapd or popper is like giving a universal root ticket out to the entire world. Never run a server that you have not checked out carefully. Many servers do not need to be run as root. For example, the ntalk, comsat, and finger daemons can be run in special user sandboxes. A sandbox is not perfect, unless you go through a large amount of trouble, but the onion approach to security still stands: If someone is able to break in through a server running in a sandbox, they still have to break out of the sandbox. The more layers the attacker must break through, the lower the likelihood of his success. Root holes have historically been found in virtually every server ever run as root, including basic system servers. If you are running a machine through which people only login via sshd and never login via telnetd or rshd or rlogind, then turn off those services!
FreeBSD now defaults to running ntalkd, comsat, and finger in a sandbox. Another program which may be a candidate for running in a sandbox is named(8). /etc/defaults/rc.conf includes the arguments necessary to run named in a sandbox in a commented-out form. Depending on whether you are installing a new system or upgrading an existing system, the special user accounts used by these sandboxes may not be installed. The prudent sysadmin would research and implement sandboxes for servers whenever possible.
There are a number of other servers that typically do not run in sandboxes: sendmail, popper, imapd, ftpd, and others. There are alternatives to some of these, but installing them may require more work than you are willing to perform (the convenience factor strikes again). You may have to run these servers as root and rely on other mechanisms to detect break-ins that might occur through them.
The other big potential root holes in a system are the suid-root and sgid binaries installed on the system. Most of these binaries, such as rlogin, reside in /bin, /sbin, /usr/bin, or /usr/sbin. While nothing is 100% safe, the system-default suid and sgid binaries can be considered reasonably safe. Still, root holes are occasionally found in these binaries. A root hole was found in Xlib in 1998 that made xterm (which is typically suid) vulnerable. It is better to be safe than sorry and the prudent sysadmin will restrict suid binaries, that only staff should run, to a special group that only staff can access, and get rid of (chmod 000) any suid binaries that nobody uses. A server with no display generally does not need an xterm binary. Sgid binaries can be almost as dangerous. If an intruder can break an sgid-kmem binary, the intruder might be able to read /dev/kmem and thus read the encrypted password file, potentially compromising any passworded account. Alternatively an intruder who breaks group kmem can monitor keystrokes sent through ptys, including ptys used by users who login through secure methods. An intruder that breaks the tty group can write to almost any user's tty. If a user is running a terminal program or emulator with a keyboard-simulation feature, the intruder can potentially generate a data stream that causes the user's terminal to echo a command, which is then run as that user.
User accounts are usually the most difficult to secure. While you can impose Draconian access restrictions on your staff and “star” out their passwords, you may not be able to do so with any general user accounts you might have. If you do have sufficient control, then you may win out and be able to secure the user accounts properly. If not, you simply have to be more vigilant in your monitoring of those accounts. Use of ssh and Kerberos for user accounts is more problematic, due to the extra administration and technical support required, but still a very good solution compared to a crypted password file.
The only sure fire way is to * out as many passwords as you can and use ssh or Kerberos for access to those accounts. Even though the encrypted password file (/etc/spwd.db) can only be read by root, it may be possible for an intruder to obtain read access to that file even if the attacker cannot obtain root-write access.
Your security scripts should always check for and report changes to the password file (see the Checking file integrity section below).
If an attacker breaks root he can do just about anything, but there are certain conveniences. For example, most modern kernels have a packet sniffing device driver built in. Under FreeBSD it is called the bpf device. An intruder will commonly attempt to run a packet sniffer on a compromised machine. You do not need to give the intruder the capability and most systems do not have the need for the bpf device compiled in.
But even if you turn off the bpf device, you still
have /dev/mem and /dev/kmem
to worry about. For that matter, the intruder can still write to raw disk
devices. Also, there is another kernel feature called the module loader, kldload(8). An
enterprising intruder can use a KLD module to install his own bpf device, or other sniffing device, on a running
kernel. To avoid these problems you have to run the kernel at a higher secure level,
at least securelevel 1. The securelevel can be set with a sysctl on the kern.securelevel
variable. Once you have set the securelevel to 1, write access to raw devices will
be denied and special chflags flags, such as schg, will be enforced. You must also ensure that the schg flag is set on critical startup binaries, directories, and
script files —— everything that gets run up to the point where the securelevel is
set. This might be overdoing it, and upgrading the system is much more difficult
when you operate at a higher secure level. You may compromise and run the
system at a higher secure level but not set the schg
flag for every system file and directory under the sun. Another possibility is to
simply mount / and /usr
read-only. It should be noted that being too Draconian in what you attempt to
protect may prevent the all-important detection of an intrusion.
When it comes right down to it, you can only protect your core system configuration and control files so much before the convenience factor rears its ugly head. For example, using chflags to set the schg bit on most of the files in / and /usr is probably counterproductive, because while it may protect the files, it also closes a detection window. The last layer of your security onion is perhaps the most important —— detection. The rest of your security is pretty much useless (or, worse, presents you with a false sense of safety) if you cannot detect potential incursions. Half the job of the onion is to slow down the attacker, rather than stop him, in order to give the detection side of the equation a chance to catch him in the act.
The best way to detect an incursion is to look for modified, missing, or unexpected files. The best way to look for modified files is from another (often centralized) limited-access system. Writing your security scripts on the extra-secure limited-access system makes them mostly invisible to potential attackers, and this is important. In order to take maximum advantage you generally have to give the limited-access box significant access to the other machines in the business, usually either by doing a read-only NFS export of the other machines to the limited-access box, or by setting up ssh key-pairs to allow the limited-access box to ssh to the other machines. Except for its network traffic, NFS is the least visible method —— allowing you to monitor the file systems on each client box virtually undetected. If your limited-access server is connected to the client boxes through a switch, the NFS method is often the better choice. If your limited-access server is connected to the client boxes through a hub, or through several layers of routing, the NFS method may be too insecure (network-wise) and using ssh may be the better choice even with the audit-trail tracks that ssh lays.
Once you give a limited-access box, at least read access to the client systems it is supposed to monitor, you must write scripts to do the actual monitoring. Given an NFS mount, you can write scripts out of simple system utilities such as find(1) and md5(1). It is best to physically md5 the client-box files at least once a day, and to test control files such as those found in /etc and /usr/local/etc even more often. When mismatches are found, relative to the base md5 information the limited-access machine knows is valid, it should scream at a sysadmin to go check it out. A good security script will also check for inappropriate suid binaries and for new or deleted files on system partitions such as / and /usr.
When using ssh rather than NFS, writing the security script is much more difficult. You essentially have to scp the scripts to the client box in order to run them, making them visible, and for safety you also need to scp the binaries (such as find) that those scripts use. The ssh client on the client box may already be compromised. All in all, using ssh may be necessary when running over insecure links, but it is also a lot harder to deal with.
A good security script will also check for changes to user and staff members access configuration files: .rhosts, .shosts, .ssh/authorized_keys and so forth… files that might fall outside the purview of the MD5 check.
If you have a huge amount of user disk space, it may take too long to run through every file on those partitions. In this case, setting mount flags to disallow suid binaries and devices on those partitions is a good idea. The nodev and nosuid options (see mount(8)) are what you want to look into. You should probably scan them anyway, at least once a week, since the object of this layer is to detect a break-in whether or not the break-in is effective.
Process accounting (see accton(8)) is a relatively low-overhead feature of the operating system which might help as a post-break-in evaluation mechanism. It is especially useful in tracking down how an intruder has actually broken into a system, assuming the file is still intact after the break-in occurs.
Finally, security scripts should process the log files, and the logs themselves should be generated in as secure a manner as possible —— remote syslog can be very useful. An intruder tries to cover his tracks, and log files are critical to the sysadmin trying to track down the time and method of the initial break-in. One way to keep a permanent record of the log files is to run the system console to a serial port and collect the information on a continuing basis through a secure machine monitoring the consoles.
A little paranoia never hurts. As a rule, a sysadmin can add any number of security features, as long as they do not affect convenience, and can add security features that do affect convenience with some added thought. Even more importantly, a security administrator should mix it up a bit —— if you use recommendations such as those given by this document verbatim, you give away your methodologies to the prospective attacker who also has access to this document.
這一節將介紹服務阻斷攻擊。 DoS 攻擊通常是以封包的方式進行攻擊, 儘管幾乎沒有任何辦法來阻止大量的偽造封包耗盡網路資源, 但通常可以透過一些方式來降低這類攻擊的損害,使它們無法擊垮伺服器。
Limiting server forks.
Limiting springboard attacks (ICMP response 攻擊,ping broadcast等等)
Kernel Route Cache.
A common DoS attack is against a forking server that attempts to cause the server
to eat processes, file descriptors, and memory, until the machine dies. inetd (see inetd(8)) has several
options to limit this sort of attack. It should be noted that while it is
possible to prevent a machine from going down, it is not generally possible to
prevent a service from being disrupted by the attack. Read the inetd manual page carefully and pay specific attention
to the -c
, -C
, and -R
options. Note that spoofed-IP attacks will circumvent the
-C
option to inetd, so
typically a combination of options must be used. Some standalone servers have
self-fork-limitation parameters.
Sendmail has its -OMaxDaemonChildren
option, which tends to work much better
than trying to use sendmail's load limiting options due to the load lag. You should
specify a MaxDaemonChildren parameter, when you start
sendmail, high enough to handle your expected load,
but not so high that the computer cannot handle that number of sendmails without falling on its face. It is also prudent to
run sendmail in queued mode (-ODeliveryMode=queued
) and
to run the daemon (sendmail -bd) separate from the
queue-runs (sendmail -q15m). If you still want real-time
delivery you can run the queue at a much lower interval, such as -q1m
, but be sure to specify a reasonable MaxDaemonChildren option for that sendmail to prevent cascade failures.
Syslogd can be attacked directly and it is strongly
recommended that you use the -s
option whenever
possible, and the -a
option otherwise.
You should also be fairly careful with connect-back services such as TCP Wrapper's reverse-identd, which can be attacked directly. You generally do not want to use the reverse-ident feature of TCP Wrapper for this reason.
It is a very good idea to protect internal services from external access by
firewalling them off at your border routers. The idea here is to prevent saturation
attacks from outside your LAN, not so much to protect internal services from
network-based root compromise. Always configure an
exclusive firewall, i.e., “firewall everything except ports A, B, C, D, and M-Z”. This way you can
firewall off all of your low ports except for certain specific services such as
named (if you are primary for a zone), ntalkd, sendmail, and other
Internet-accessible services. If you try to configure the firewall the other way
—— as an inclusive or permissive firewall, there is a good chance that you
will forget to “close” a couple of services, or that you will add a new internal
service and forget to update the firewall. You can still open up the high-numbered
port range on the firewall, to allow permissive-like operation, without
compromising your low ports. Also take note that FreeBSD allows you to control the
range of port numbers used for dynamic binding, via the various net.inet.ip.portrange
sysctl's (sysctl -a | fgrep portrange), which can also ease the
complexity of your firewall's configuration. For example, you might use a normal
first/last range of 4000 to 5000, and a hiport range of 49152 to 65535, then
block off everything under 4000 in your firewall (except for certain specific
Internet-accessible ports, of course).
Another common DoS attack is called a springboard attack —— to attack a server
in a manner that causes the server to generate responses which overloads the server,
the local network, or some other machine. The most common attack of this nature
is the ICMP ping broadcast attack.
The attacker spoofs ping packets sent to your LAN's broadcast address with the
source IP address set to the actual machine they wish to attack. If your border
routers are not configured to stomp on ping's to broadcast addresses, your LAN winds
up generating sufficient responses to the spoofed source address to saturate
the victim, especially when the attacker uses the same trick on several dozen
broadcast addresses over several dozen different networks at once. Broadcast attacks
of over a hundred and twenty megabits have been measured. A second common
springboard attack is against the ICMP error reporting system. By constructing
packets that generate ICMP error responses, an attacker can saturate a server's
incoming network and cause the server to saturate its outgoing network with ICMP
responses. This type of attack can also crash the server by running it out of
mbuf's, especially if the server cannot drain the ICMP responses it generates
fast enough. FreeBSD 4.X kernels have a kernel compile option called ICMP_BANDLIM
which limits the effectiveness of these
sorts of attacks. Later kernels use the sysctl
variable net.inet.icmp.icmplim. The last major class
of springboard attacks is related to certain internal inetd services such as the udp echo service. An attacker
simply spoofs a UDP packet with the source address being server A's echo port, and
the destination address being server B's echo port, where server A and B are both
on your LAN. The two servers then bounce this one packet back and forth between
each other. The attacker can overload both servers and their LANs simply by
injecting a few packets in this manner. Similar problems exist with the internal
chargen port. A competent sysadmin will turn off all
of these inetd-internal test services.
Spoofed packet attacks may also be used to overload the kernel route cache. Refer
to the net.inet.ip.rtexpire
, rtminexpire
, and rtmaxcache
sysctl parameters. A spoofed packet attack that uses a random
source IP will cause the kernel to generate a temporary cached route in the route
table, viewable with netstat -rna | fgrep W3. These routes
typically timeout in 1600 seconds or so. If the kernel detects that the cached
route table has gotten too big it will dynamically reduce the rtexpire
but will never decrease it to less than rtminexpire
. There are two problems:
The kernel does not react quickly enough when a lightly loaded server is suddenly attacked.
The rtminexpire
is not low enough for the kernel to
survive a sustained attack.
If your servers are connected to the Internet via a T3 or better, it may be prudent to
manually override both rtexpire
and rtminexpire
via sysctl(8). Never set
either parameter to zero (unless you want to crash the machine). Setting both
parameters to 2 seconds should be sufficient to protect the route table from
attack.
There are a few issues with both Kerberos and ssh that need to be addressed if
you intend to use them. Kerberos V is an excellent authentication protocol, but
there are bugs in the kerberized telnet and rlogin applications that make them unsuitable for dealing
with binary streams. Also, by default Kerberos does not encrypt a session unless you
use the -x
option. ssh
encrypts everything by default.
ssh works quite well in every respect except that it forwards encryption keys by default. What this means is that if you have a secure workstation holding keys that give you access to the rest of the system, and you ssh to an insecure machine, your keys are usable. The actual keys themselves are not exposed, but ssh installs a forwarding port for the duration of your login, and if an attacker has broken root on the insecure machine he can utilize that port to use your keys to gain access to any other machine that your keys unlock.
We recommend that you use ssh in combination with Kerberos whenever possible for staff logins. ssh can be compiled with Kerberos support. This reduces your reliance on potentially exposed ssh keys while at the same time protecting passwords via Kerberos. ssh keys should only be used for automated tasks from secure machines (something that Kerberos is unsuited to do). We also recommend that you either turn off key-forwarding in the ssh configuration, or that you make use of the from=IP/DOMAIN option that ssh allows in its authorized_keys file to make the key only usable to entities logging in from specific machines.
Every user on a UNIX system has a password associated with their account. It seems obvious that these passwords need to be known only to the user and the actual operating system. In order to keep these passwords secret, they are encrypted with what is known as a “one-way hash”, that is, they can only be easily encrypted but not decrypted. In other words, what we told you a moment ago was obvious is not even true: the operating system itself does not really know the password. It only knows the encrypted form of the password. The only way to get the “plain-text” password is by a brute force search of the space of possible passwords.
Unfortunately the only secure way to encrypt passwords when UNIX came into being was based on DES, the Data Encryption Standard. This was not such a problem for users resident in the US, but since the source code for DES could not be exported outside the US, FreeBSD had to find a way to both comply with US law and retain compatibility with all the other UNIX variants that still used DES.
The solution was to divide up the encryption libraries so that US users could install the DES libraries and use DES but international users still had an encryption method that could be exported abroad. This is how FreeBSD came to use MD5 as its default encryption method. MD5 is believed to be more secure than DES, so installing DES is offered primarily for compatibility reasons.
Before FreeBSD 4.4 libcrypt.a was a symbolic link pointing to the library which was used for encryption. FreeBSD 4.4 changed libcrypt.a to provide a configurable password authentication hash library. Currently the library supports DES, MD5 and Blowfish hash functions. By default FreeBSD uses MD5 to encrypt passwords.
It is pretty easy to identify which encryption method FreeBSD is set up to use. Examining the encrypted passwords in the /etc/master.passwd file is one way. Passwords encrypted with the MD5 hash are longer than those encrypted with the DES hash and also begin with the characters $1$. Passwords starting with $2a$ are encrypted with the Blowfish hash function. DES password strings do not have any particular identifying characteristics, but they are shorter than MD5 passwords, and are coded in a 64-character alphabet which does not include the $ character, so a relatively short string which does not begin with a dollar sign is very likely a DES password.
The password format used for new passwords is controlled by the passwd_format login capability in /etc/login.conf, which takes values of des, md5 or blf. See the login.conf(5) manual page for more information about login capabilities.
S/Key is a one-time password scheme based on a one-way hash function. FreeBSD uses the MD4 hash for compatibility but other systems have used MD5 and DES-MAC. S/Key has been part of the FreeBSD base system since version 1.1.5 and is also used on a growing number of other operating systems. S/Key is a registered trademark of Bell Communications Research, Inc.
From version 5.0 of FreeBSD, S/Key has been replaced with the functionally equivalent OPIE (One-time Passwords In Everything). OPIE uses the MD5 hash by default.
There are three different sorts of passwords which we will discuss below. The first is your usual UNIX style or Kerberos password; we will call this a “UNIX password”. The second sort is the one-time password which is generated by the S/Key key program or the OPIE opiekey(1) program and accepted by the keyinit or opiepasswd(1) programs and the login prompt; we will call this a “one-time password”. The final sort of password is the secret password which you give to the key/opiekey programs (and sometimes the keyinit/opiepasswd programs) which it uses to generate one-time passwords; we will call it a “secret password” or just unqualified “password”.
The secret password does not have anything to do with your UNIX password; they can be the same but this is not recommended. S/Key and OPIE secret passwords are not limited to 8 characters like old UNIX passwords[11], they can be as long as you like. Passwords of six or seven word long phrases are fairly common. For the most part, the S/Key or OPIE system operates completely independently of the UNIX password system.
Besides the password, there are two other pieces of data that are important to S/Key and OPIE. One is what is known as the “seed” or “key”, consisting of two letters and five digits. The other is what is called the “iteration count”, a number between 1 and 100. S/Key creates the one-time password by concatenating the seed and the secret password, then applying the MD4/MD5 hash as many times as specified by the iteration count and turning the result into six short English words. These six English words are your one-time password. The authentication system (primarily PAM) keeps track of the last one-time password used, and the user is authenticated if the hash of the user-provided password is equal to the previous password. Because a one-way hash is used it is impossible to generate future one-time passwords if a successfully used password is captured; the iteration count is decremented after each successful login to keep the user and the login program in sync. When the iteration count gets down to 1, S/Key and OPIE must be reinitialized.
There are three programs involved in each system which we will discuss below. The key and opiekey programs accept an iteration count, a seed, and a secret password, and generate a one-time password or a consecutive list of one-time passwords. The keyinit and opiepasswd programs are used to initialize S/Key and OPIE respectively, and to change passwords, iteration counts, or seeds; they take either a secret passphrase, or an iteration count, seed, and one-time password. The keyinfo and opieinfo programs examine the relevant credentials files (/etc/skeykeys or /etc/opiekeys) and print out the invoking user's current iteration count and seed.
There are four different sorts of operations we will cover. The first is using keyinit or opiepasswd over a secure connection to set up one-time-passwords for the first time, or to change your password or seed. The second operation is using keyinit or opiepasswd over an insecure connection, in conjunction with key or opiekey over a secure connection, to do the same. The third is using key/opiekey to log in over an insecure connection. The fourth is using key or opiekey to generate a number of keys which can be written down or printed out to carry with you when going to some location without secure connections to anywhere.
To initialize S/Key for the first time, change your password, or change your seed while logged in over a secure connection (e.g. on the console of a machine or via ssh), use the keyinit command without any parameters while logged in as yourself:
% keyinit Adding unfurl: Reminder - Only use this method if you are directly connected. If you are using telnet or rlogin exit with no password and use keyinit -s. Enter secret password: Again secret password: ID unfurl s/key is 99 to17757 DEFY CLUB PRO NASH LACE SOFT
For OPIE, opiepasswd is used instead:
% opiepasswd -c [grimreaper] ~ $ opiepasswd -f -c Adding unfurl: Only use this method from the console; NEVER from remote. If you are using telnet, xterm, or a dial-in, type ^C now or exit with no password. Then run opiepasswd without the -c parameter. Using MD5 to compute responses. Enter new secret pass phrase: Again new secret pass phrase: ID unfurl OTP key is 499 to4268 MOS MALL GOAT ARM AVID COED
At the Enter new secret pass phrase: or Enter secret password: prompts, you should enter a password or phrase. Remember, this is not the password that you will use to login with, this is used to generate your one-time login keys. The “ID” line gives the parameters of your particular instance: your login name, the iteration count, and seed. When logging in the system will remember these parameters and present them back to you so you do not have to remember them. The last line gives the particular one-time password which corresponds to those parameters and your secret password; if you were to re-login immediately, this one-time password is the one you would use.
To initialize or change your secret password over an insecure connection, you will need to already have a secure connection to some place where you can run key or opiekey; this might be in the form of a desk accessory on a Macintosh, or a shell prompt on a machine you trust. You will also need to make up an iteration count (100 is probably a good value), and you may make up your own seed or use a randomly-generated one. Over on the insecure connection (to the machine you are initializing), use the keyinit -s command:
% keyinit -s Updating unfurl: Old key: to17758 Reminder you need the 6 English words from the key command. Enter sequence count from 1 to 9999: 100 Enter new key [default to17759]: s/key 100 to 17759 s/key access password: s/key access password:CURE MIKE BANE HIM RACY GORE
For OPIE, you need to use opiepasswd:
% opiepasswd Updating unfurl: You need the response from an OTP generator. Old secret pass phrase: otp-md5 498 to4268 ext Response: GAME GAG WELT OUT DOWN CHAT New secret pass phrase: otp-md5 499 to4269 Response: LINE PAP MILK NELL BUOY TROY ID mark OTP key is 499 gr4269 LINE PAP MILK NELL BUOY TROY
To accept the default seed (which the keyinit program confusingly calls a key), press Return. Then before entering an access password, move over to your secure connection or S/Key desk accessory, and give it the same parameters:
% key 100 to17759 Reminder - Do not use this program while logged in via telnet or rlogin. Enter secret password: <secret password> CURE MIKE BANE HIM RACY GORE
Or for OPIE:
% opiekey 498 to4268 Using the MD5 algorithm to compute response. Reminder: Don't use opiekey from telnet or dial-in sessions. Enter secret pass phrase: GAME GAG WELT OUT DOWN CHAT
Now switch back over to the insecure connection, and copy the one-time password generated over to the relevant program.
Once you have initialized S/Key or OPIE, when you login you will be presented with a prompt like this:
% telnet example.com Trying 10.0.0.1... Connected to example.com Escape character is '^]'. FreeBSD/i386 (example.com) (ttypa) login: <username> s/key 97 fw13894 Password:
Or for OPIE:
% telnet example.com Trying 10.0.0.1... Connected to example.com Escape character is '^]'. FreeBSD/i386 (example.com) (ttypa) login: <username> otp-md5 498 gr4269 ext Password:
As a side note, the S/Key and OPIE prompts have a useful feature (not shown here): if you press Return at the password prompt, the prompter will turn echo on, so you can see what you are typing. This can be extremely useful if you are attempting to type in a password by hand, such as from a printout.
At this point you need to generate your one-time password to answer this login prompt. This must be done on a trusted system that you can run key or opiekey on. (There are versions of these for DOS, Windows and Mac OS as well.) They need both the iteration count and the seed as command line options. You can cut-and-paste these right from the login prompt on the machine that you are logging in to.
On the trusted system:
% key 97 fw13894 Reminder - Do not use this program while logged in via telnet or rlogin. Enter secret password: WELD LIP ACTS ENDS ME HAAG
For OPIE:
% opiekey 498 to4268 Using the MD5 algorithm to compute response. Reminder: Don't use opiekey from telnet or dial-in sessions. Enter secret pass phrase: GAME GAG WELT OUT DOWN CHAT
Now that you have your one-time password you can continue logging in:
login: <username> s/key 97 fw13894 Password: <return to enable echo> s/key 97 fw13894 Password [echo on]: WELD LIP ACTS ENDS ME HAAG Last login: Tue Mar 21 11:56:41 from 10.0.0.2 ...
Sometimes you have to go places where you do not have access to a trusted machine or secure connection. In this case, it is possible to use the key and opiekey commands to generate a number of one-time passwords beforehand to be printed out and taken with you. For example:
% key -n 5 30 zz99999 Reminder - Do not use this program while logged in via telnet or rlogin. Enter secret password: <secret password> 26: SODA RUDE LEA LIND BUDD SILT 27: JILT SPY DUTY GLOW COWL ROT 28: THEM OW COLA RUNT BONG SCOT 29: COT MASH BARR BRIM NAN FLAG 30: CAN KNEE CAST NAME FOLK BILK
Or for OPIE:
% opiekey -n 5 30 zz99999 Using the MD5 algorithm to compute response. Reminder: Don't use opiekey from telnet or dial-in sessions. Enter secret pass phrase: <secret password> 26: JOAN BORE FOSS DES NAY QUIT 27: LATE BIAS SLAY FOLK MUCH TRIG 28: SALT TIN ANTI LOON NEAL USE 29: RIO ODIN GO BYE FURY TIC 30: GREW JIVE SAN GIRD BOIL PHI
The -n 5
requests five keys in sequence, the 30
specifies what the last iteration number should be. Note
that these are printed out in reverse order of eventual use. If you are really
paranoid, you might want to write the results down by hand; otherwise you can
cut-and-paste into lpr. Note that each line shows both the
iteration count and the one-time password; you may still find it handy to scratch
off passwords as you use them.
S/Key can place restrictions on the use of UNIX passwords based on the host name, user name, terminal port, or IP address of a login session. These restrictions can be found in the configuration file /etc/skey.access. The skey.access(5) manual page has more information on the complete format of the file and also details some security cautions to be aware of before depending on this file for security.
If there is no /etc/skey.access file (this is the default on FreeBSD 4.X systems), then all users will be allowed to use UNIX passwords. If the file exists, however, then all users will be required to use S/Key unless explicitly permitted to do otherwise by configuration statements in the skey.access file. In all cases, UNIX passwords are permitted on the console.
Here is a sample skey.access configuration file which illustrates the three most common sorts of configuration statements:
permit internet 192.168.0.0 255.255.0.0 permit user fnord permit port ttyd0
The first line (permit internet) allows users whose IP source address (which is vulnerable to spoofing) matches the specified value and mask, to use UNIX passwords. This should not be considered a security mechanism, but rather, a means to remind authorized users that they are using an insecure network and need to use S/Key for authentication.
The second line (permit user) allows the specified username, in this case fnord, to use UNIX passwords at any time. Generally speaking, this should only be used for people who are either unable to use the key program, like those with dumb terminals, or those who are ineducable.
The third line (permit port) allows all users logging in on the specified terminal line to use UNIX passwords; this would be used for dial-ups.
OPIE can restrict the use of UNIX passwords based on the IP address of a login session just like S/Key does. The relevant file is /etc/opieaccess, which is present by default on FreeBSD 5.0 and newer systems. Please check opieaccess(5) for more information on this file and which security considerations you should be aware of when using it.
Here is a sample opieaccess file:
permit 192.168.0.0 255.255.0.0
This line allows users whose IP source address (which is vulnerable to spoofing) matches the specified value and mask, to use UNIX passwords at any time.
If no rules in opieaccess are matched, the default is to deny non-OPIE logins.
每個熟 inetd(8) 的人幾乎都會聽過 TCP Wrappers 這個東西,但很少人能完全瞭解它在網路環境上的好用在哪。 大多數的人都會裝防火牆來保護網路,雖然,防火牆用途非常廣泛,但並非萬能。 例如:若打算回傳一段文字給連線來源者等之類的。而 TCP 軟體卻可以做到這點,還有其他更多事情。在以下段落內,我們將繼續介紹 TCP Wrappers 提供的功能,以及一些實際運用的例子。
TCP Wrappers 可以讓 inetd 所管理的每個 server daemon ,都會在 TCP Wrappers 的掌握之下。透過 TCP Wrappers 這種方式可以支援連線紀錄(logging) 、回傳一段文字給連線來源者、可以讓 daemon 只接受內部連線等等。 雖然其中部份功能用防火牆也可以做到,但 TCP Wrappers 不只是增加了一層保護,還提供了防火牆所辦不到的事情。
然而, 由 TCP Wrappers 所提供的這些額外安全功能, 不應該視為優秀防火牆的替代方案。應該結合 TCP Wrappers 及防火牆、其他加強安全措施來一併運用才對,這樣才可以為系統提供多層安全防護。
由於這些設定是主要針對 inetd 所提供的,所以我們建議您先參閱 inetd 設定 一節。
注: 雖然 inetd(8) 所啟動的程式並非全部都是真正的 『daemons』,但一般來講,我們都還是會稱呼為『daemons』, 下面我們仍將使用這字眼來表達。
若要在 FreeBSD 中使用 TCP Wrappers
的話,只要確定 inetd 在啟動時,有在 /etc/rc.conf 加上 -Ww
的參數即可,這個設定在系統預設就有了。 當然還需要適當修改 /etc/hosts.allow 設定檔,但 syslogd(8) 仍會在系統
log 檔內,紀錄相關資料下來。
注: FreeBSD 的 TCP Wrappers 實作方式與其他作業系統上的 TCP Wrappers 不太一樣,目前 FreeBSD 已經廢棄不用 /etc/hosts.deny ,而一律改用 /etc/hosts.allow。
最簡單的設定方式是,每個對 daemon 的連線都由 /etc/hosts.allow 來決定是否允許或拒絕。 The default configuration in FreeBSD is to allow a connection to every daemon started with inetd. Changing this will be discussed only after the basic configuration is covered.
Basic configuration usually takes the form of daemon : address : action. Where daemon is the daemon name which inetd started. The address can be a valid hostname, an IP address or an IPv6 address enclosed in brackets ([ ]). The action field can be either allow or deny to grant or deny access appropriately. Keep in mind that configuration works off a first rule match semantic, meaning that the configuration file is scanned in ascending order for a matching rule. When a match is found the rule is applied and the search process will halt.
Several other options exist but they will be explained in a later section. A simple configuration line may easily be constructed from that information alone. For example, to allow POP3 connections via the mail/qpopper daemon, the following lines should be appended to hosts.allow:
# This line is required for POP3 connections: qpopper : ALL : allow
加上上面這行之後,必須重新啟動 inetd。重新啟動的方式可以用
kill(1) 指令,或打『
/etc/rc.d/inetd restart
』
來完成。
TCP Wrappers has advanced options too; they will allow for more control over the way connections are handled. In some cases it may be a good idea to return a comment to certain hosts or daemon connections. In other cases, perhaps a log file should be recorded or an email sent to the administrator. Other situations may require the use of a service for local connections only. This is all possible through the use of configuration options known as wildcards, expansion characters and external command execution. The next two sections are written to cover these situations.
Suppose that a situation occurs where a connection should be denied yet a reason
should be sent to the individual who attempted to establish that connection. How
could it be done? That action can be made possible by using the twist
option. When a connection attempt is made, twist
will be called to execute a shell command or script. An
example already exists in the hosts.allow file:
# The rest of the daemons are protected. ALL : ALL \ : severity auth.info \ : twist /bin/echo "You are not welcome to use %d from %h."
This example shows that the message, “You are not allowed to use daemon from hostname.” will be returned for any daemon not previously configured in the access file. This is extremely useful for sending a reply back to the connection initiator right after the established connection is dropped. Note that any message returned must be wrapped in quote " characters; there are no exceptions to this rule.
警告It may be possible to launch a denial of service attack on the server if an attacker, or group of attackers could flood these daemons with connection requests.
Another possibility is to use the spawn
option in
these cases. Like twist
, the spawn
implicitly denies the connection and may be used to run
external shell commands or scripts. Unlike twist
, spawn
will not send a reply back to the individual who
established the connection. For an example, consider the following
configuration line:
# We do not allow connections from example.com: ALL : .example.com \ : spawn (/bin/echo %a from %h attempted to access %d >> \ /var/log/connections.log) \ : deny
This will deny all connection attempts from the *.example.com domain; simultaneously logging the hostname, IP address and the daemon which they attempted to access in the /var/log/connections.log file.
Aside from the already explained substitution characters above, e.g. %a, a few others exist. See the hosts_access(5) manual page for the complete list.
Thus far the ALL example has been used continuously throughout the examples. Other options exist which could extend the functionality a bit further. For instance, ALL may be used to match every instance of either a daemon, domain or an IP address. Another wildcard available is PARANOID which may be used to match any host which provides an IP address that may be forged. In other words, paranoid may be used to define an action to be taken whenever a connection is made from an IP address that differs from its hostname. The following example may shed some more light on this discussion:
# Block possibly spoofed requests to sendmail: sendmail : PARANOID : deny
In that example all connection requests to sendmail which have an IP address that varies from its hostname will be denied.
注意Using the PARANOID may severely cripple servers if the client or server has a broken DNS setup. Administrator discretion is advised.
To learn more about wildcards and their associated functionality, see the hosts_access(5) manual page.
Before any of the specific configuration lines above will work, the first configuration line should be commented out in hosts.allow. This was noted at the beginning of this section.
Kerberos is a network add-on system/protocol that allows users to authenticate themselves through the services of a secure server. Services such as remote login, remote copy, secure inter-system file copying and other high-risk tasks are made considerably safer and more controllable.
The following instructions can be used as a guide on how to set up Kerberos as distributed for FreeBSD. However, you should refer to the relevant manual pages for a complete description.
Kerberos is an optional component of FreeBSD. The easiest way to install this software is by selecting the krb4 or krb5 distribution in sysinstall during the initial installation of FreeBSD. This will install the “eBones” (KerberosIV) or “Heimdal” (Kerberos5) implementation of Kerberos. These implementations are included because they are developed outside the USA/Canada and were thus available to system owners outside those countries during the era of restrictive export controls on cryptographic code from the USA.
Alternatively, the MIT implementation of Kerberos is available from the Ports Collection as security/krb5.
This is done on the Kerberos server only. First make sure that you do not have any old Kerberos databases around. You should change to the directory /etc/kerberosIV and check that only the following files are present:
# cd /etc/kerberosIV # ls README krb.conf krb.realms
If any additional files (such as principal.* or master_key) exist, then use the kdb_destroy command to destroy the old Kerberos database, or if Kerberos is not running, simply delete the extra files.
You should now edit the krb.conf and krb.realms files to define your Kerberos realm. In this case the realm will be EXAMPLE.COM and the server is grunt.example.com. We edit or create the krb.conf file:
# cat krb.conf EXAMPLE.COM EXAMPLE.COM grunt.example.com admin server CS.BERKELEY.EDU okeeffe.berkeley.edu ATHENA.MIT.EDU kerberos.mit.edu ATHENA.MIT.EDU kerberos-1.mit.edu ATHENA.MIT.EDU kerberos-2.mit.edu ATHENA.MIT.EDU kerberos-3.mit.edu LCS.MIT.EDU kerberos.lcs.mit.edu TELECOM.MIT.EDU bitsy.mit.edu ARC.NASA.GOV trident.arc.nasa.gov
In this case, the other realms do not need to be there. They are here as an example of how a machine may be made aware of multiple realms. You may wish to not include them for simplicity.
The first line names the realm in which this system works. The other lines contain realm/host entries. The first item on a line is a realm, and the second is a host in that realm that is acting as a “key distribution center”. The words admin server following a host's name means that host also provides an administrative database server. For further explanation of these terms, please consult the Kerberos manual pages.
Now we have to add grunt.example.com to the EXAMPLE.COM realm and also add an entry to put all hosts in the .example.com domain in the EXAMPLE.COM realm. The krb.realms file would be updated as follows:
# cat krb.realms grunt.example.com EXAMPLE.COM .example.com EXAMPLE.COM .berkeley.edu CS.BERKELEY.EDU .MIT.EDU ATHENA.MIT.EDU .mit.edu ATHENA.MIT.EDU
Again, the other realms do not need to be there. They are here as an example of how a machine may be made aware of multiple realms. You may wish to remove them to simplify things.
The first line puts the specific system into the named realm. The rest of the lines show how to default systems of a particular subdomain to a named realm.
Now we are ready to create the database. This only needs to run on the Kerberos server (or Key Distribution Center). Issue the kdb_init command to do this:
# kdb_init Realm name [default ATHENA.MIT.EDU ]: EXAMPLE.COM You will be prompted for the database Master Password. It is important that you NOT FORGET this password. Enter Kerberos master key:
Now we have to save the key so that servers on the local machine can pick it up. Use the kstash command to do this:
# kstash Enter Kerberos master key: Current Kerberos master key version is 1. Master key entered. BEWARE!
This saves the encrypted master password in /etc/kerberosIV/master_key.
Two principals need to be added to the database for each system that will be secured with Kerberos. Their names are kpasswd and rcmd. These two principals are made for each system, with the instance being the name of the individual system.
These daemons, kpasswd and rcmd allow other systems to change Kerberos passwords and run commands like rcp(1), rlogin(1) and rsh(1).
Now let us add these entries:
# kdb_edit Opening database... Enter Kerberos master key: Current Kerberos master key version is 1. Master key entered. BEWARE! Previous or default values are in [brackets] , enter return to leave the same, or new value. Principal name: passwd Instance: grunt <Not found>, Create [y] ? y Principal: passwd, Instance: grunt, kdc_key_ver: 1 New Password: <---- enter RANDOM here Verifying password New Password: <---- enter RANDOM here Random password [y] ? y Principal's new key version = 1 Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ? Max ticket lifetime (*5 minutes) [ 255 ] ? Attributes [ 0 ] ? Edit O.K. Principal name: rcmd Instance: grunt <Not found>, Create [y] ? Principal: rcmd, Instance: grunt, kdc_key_ver: 1 New Password: <---- enter RANDOM here Verifying password New Password: <---- enter RANDOM here Random password [y] ? Principal's new key version = 1 Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ? Max ticket lifetime (*5 minutes) [ 255 ] ? Attributes [ 0 ] ? Edit O.K. Principal name: <---- null entry here will cause an exit
We now have to extract all the instances which define the services on each machine. For this we use the ext_srvtab command. This will create a file which must be copied or moved by secure means to each Kerberos client's /etc/kerberosIV directory. This file must be present on each server and client, and is crucial to the operation of Kerberos.
# ext_srvtab grunt Enter Kerberos master key: Current Kerberos master key version is 1. Master key entered. BEWARE! Generating 'grunt-new-srvtab'....
Now, this command only generates a temporary file which must be renamed to srvtab so that all the servers can pick it up. Use the mv(1) command to move it into place on the original system:
# mv grunt-new-srvtab srvtab
If the file is for a client system, and the network is not deemed safe, then copy the client-new-srvtab to removable media and transport it by secure physical means. Be sure to rename it to srvtab in the client's /etc/kerberosIV directory, and make sure it is mode 600:
# mv grumble-new-srvtab srvtab # chmod 600 srvtab
We now have to add some user entries into the database. First let us create an entry for the user jane. Use the kdb_edit command to do this:
# kdb_edit Opening database... Enter Kerberos master key: Current Kerberos master key version is 1. Master key entered. BEWARE! Previous or default values are in [brackets] , enter return to leave the same, or new value. Principal name: jane Instance: <Not found>, Create [y] ? y Principal: jane, Instance: , kdc_key_ver: 1 New Password: <---- enter a secure password here Verifying password New Password: <---- re-enter the password here Principal's new key version = 1 Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ? Max ticket lifetime (*5 minutes) [ 255 ] ? Attributes [ 0 ] ? Edit O.K. Principal name: <---- null entry here will cause an exit
First we have to start the Kerberos daemons. Note that if you have correctly edited your /etc/rc.conf then this will happen automatically when you reboot. This is only necessary on the Kerberos server. Kerberos clients will automatically get what they need from the /etc/kerberosIV directory.
# kerberos & Kerberos server starting Sleep forever on error Log file is /var/log/kerberos.log Current Kerberos master key version is 1. Master key entered. BEWARE! Current Kerberos master key version is 1 Local realm: EXAMPLE.COM # kadmind -n & KADM Server KADM0.0A initializing Please do not use 'kill -9' to kill this job, use a regular kill instead Current Kerberos master key version is 1. Master key entered. BEWARE!
Now we can try using the kinit command to get a ticket for the ID jane that we created above:
% kinit jane MIT Project Athena (grunt.example.com) Kerberos Initialization for "jane" Password:
Try listing the tokens using klist to see if we really have them:
% klist Ticket file: /tmp/tkt245 Principal: jane@EXAMPLE.COM Issued Expires Principal Apr 30 11:23:22 Apr 30 19:23:22 krbtgt.EXAMPLE.COM@EXAMPLE.COM
Now try changing the password using passwd(1) to check if the kpasswd daemon can get authorization to the Kerberos database:
% passwd realm EXAMPLE.COM Old password for jane: New Password for jane: Verifying password New Password for jane: Password changed.
Kerberos allows us to give each user who needs root privileges their own separate su(1) password. We could now add an ID which is authorized to su(1) to root. This is controlled by having an instance of root associated with a principal. Using kdb_edit we can create the entry jane.root in the Kerberos database:
# kdb_edit Opening database... Enter Kerberos master key: Current Kerberos master key version is 1. Master key entered. BEWARE! Previous or default values are in [brackets] , enter return to leave the same, or new value. Principal name: jane Instance: root <Not found>, Create [y] ? y Principal: jane, Instance: root, kdc_key_ver: 1 New Password: <---- enter a SECURE password here Verifying password New Password: <---- re-enter the password here Principal's new key version = 1 Expiration date (enter yyyy-mm-dd) [ 2000-01-01 ] ? Max ticket lifetime (*5 minutes) [ 255 ] ? 12 <--- Keep this short! Attributes [ 0 ] ? Edit O.K. Principal name: <---- null entry here will cause an exit
Now try getting tokens for it to make sure it works:
# kinit jane.root MIT Project Athena (grunt.example.com) Kerberos Initialization for "jane.root" Password:
Now we need to add the user to root's .klogin file:
# cat /root/.klogin jane.root@EXAMPLE.COM
Now try doing the su(1):
% su Password:
and take a look at what tokens we have:
# klist Ticket file: /tmp/tkt_root_245 Principal: jane.root@EXAMPLE.COM Issued Expires Principal May 2 20:43:12 May 3 04:43:12 krbtgt.EXAMPLE.COM@EXAMPLE.COM
In an earlier example, we created a principal called jane with an instance root. This was based on a user with the same name as the principal, and this is a Kerberos default; that a <principal>.<instance> of the form <username>.root will allow that <username> to su(1) to root if the necessary entries are in the .klogin file in root's home directory:
# cat /root/.klogin jane.root@EXAMPLE.COM
Likewise, if a user has in their own home directory lines of the form:
% cat ~/.klogin jane@EXAMPLE.COM jack@EXAMPLE.COM
This allows anyone in the EXAMPLE.COM realm who has authenticated themselves as jane or jack (via kinit, see above) to access to jane's account or files on this system (grunt) via rlogin(1), rsh(1) or rcp(1).
For example, jane now logs into another system using Kerberos:
% kinit MIT Project Athena (grunt.example.com) Password: % rlogin grunt Last login: Mon May 1 21:14:47 from grumble Copyright (c) 1980, 1983, 1986, 1988, 1990, 1991, 1993, 1994 The Regents of the University of California. All rights reserved. FreeBSD BUILT-19950429 (GR386) #0: Sat Apr 29 17:50:09 SAT 1995
Or jack logs into jane's account on the same machine (jane having set up the .klogin file as above, and the person in charge of Kerberos having set up principal jack with a null instance):
% kinit % rlogin grunt -l jane MIT Project Athena (grunt.example.com) Password: Last login: Mon May 1 21:16:55 from grumble Copyright (c) 1980, 1983, 1986, 1988, 1990, 1991, 1993, 1994 The Regents of the University of California. All rights reserved. FreeBSD BUILT-19950429 (GR386) #0: Sat Apr 29 17:50:09 SAT 1995
Every FreeBSD release beyond FreeBSD-5.1 includes support only for Kerberos5. Hence Kerberos5 is the only version included, and its configuration is similar in many aspects to that of KerberosIV. The following information only applies to Kerberos5 in post FreeBSD-5.0 releases. Users who wish to use the KerberosIV package may install the security/krb4 port.
Kerberos is a network add-on system/protocol that allows users to authenticate themselves through the services of a secure server. Services such as remote login, remote copy, secure inter-system file copying and other high-risk tasks are made considerably safer and more controllable.
Kerberos can be described as an identity-verifying proxy system. It can also be described as a trusted third-party authentication system. Kerberos provides only one function —— the secure authentication of users on the network. It does not provide authorization functions (what users are allowed to do) or auditing functions (what those users did). After a client and server have used Kerberos to prove their identity, they can also encrypt all of their communications to assure privacy and data integrity as they go about their business.
Therefore it is highly recommended that Kerberos be used with other security methods which provide authorization and audit services.
The following instructions can be used as a guide on how to set up Kerberos as distributed for FreeBSD. However, you should refer to the relevant manual pages for a complete description.
For purposes of demonstrating a Kerberos installation, the various name spaces will be handled as follows:
The DNS domain (“zone”) will be example.org.
The Kerberos realm will be EXAMPLE.ORG.
注: Please use real domain names when setting up Kerberos even if you intend to run it internally. This avoids DNS problems and assures inter-operation with other Kerberos realms.
Kerberos was created by MIT as a solution to network security problems. The Kerberos protocol uses strong cryptography so that a client can prove its identity to a server (and vice versa) across an insecure network connection.
Kerberos is both the name of a network authentication protocol and an adjective to describe programs that implement the program (Kerberos telnet, for example). The current version of the protocol is version 5, described in RFC 1510.
Several free implementations of this protocol are available, covering a wide range of operating systems. The Massachusetts Institute of Technology (MIT), where Kerberos was originally developed, continues to develop their Kerberos package. It is commonly used in the US as a cryptography product, as such it has historically been affected by US export regulations. The MIT Kerberos is available as a port (security/krb5). Heimdal Kerberos is another version 5 implementation, and was explicitly developed outside of the US to avoid export regulations (and is thus often included in non-commercial UNIX variants). The Heimdal Kerberos distribution is available as a port (security/heimdal), and a minimal installation of it is included in the base FreeBSD install.
In order to reach the widest audience, these instructions assume the use of the Heimdal distribution included in FreeBSD.
The Key Distribution Center (KDC) is the centralized authentication service that Kerberos provides —— it is the computer that issues Kerberos tickets. The KDC is considered “trusted” by all other computers in the Kerberos realm, and thus has heightened security concerns.
Note that while running the Kerberos server requires very few computing resources, a dedicated machine acting only as a KDC is recommended for security reasons.
To begin setting up a KDC, ensure that your /etc/rc.conf file contains the correct settings to act as a KDC (you may need to adjust paths to reflect your own system):
kerberos5_server_enable="YES" kadmind5_server_enable="YES" kerberos_stash="YES"
注: The
kerberos_stash
is only available in FreeBSD 4.X.
Next we will set up your Kerberos config file, /etc/krb5.conf:
[libdefaults] default_realm = EXAMPLE.ORG [realms] EXAMPLE.ORG = { kdc = kerberos.example.org admin_server = kerberos.example.org } [domain_realm] .example.org = EXAMPLE.ORG
Note that this /etc/krb5.conf file implies that your KDC will have the fully-qualified hostname of kerberos.example.org. You will need to add a CNAME (alias) entry to your zone file to accomplish this if your KDC has a different hostname.
注: For large networks with a properly configured BIND DNS server, the above example could be trimmed to:
[libdefaults] default_realm = EXAMPLE.ORGWith the following lines being appended to the example.org zonefile:
_kerberos._udp IN SRV 01 00 88 kerberos.example.org. _kerberos._tcp IN SRV 01 00 88 kerberos.example.org. _kpasswd._udp IN SRV 01 00 464 kerberos.example.org. _kerberos-adm._tcp IN SRV 01 00 749 kerberos.example.org. _kerberos IN TXT EXAMPLE.ORG
注: For clients to be able to find the Kerberos services, you must have either a fully configured /etc/krb5.conf or a miminally configured /etc/krb5.conf and a properly configured DNS server.
Next we will create the Kerberos database. This database contains the keys of all principals encrypted with a master password. You are not required to remember this password, it will be stored in a file (/var/heimdal/m-key). To create the master key, run kstash and enter a password.
Once the master key has been created, you can initialize the database using the kadmin program with the -l option (standing for “local”). This option instructs kadmin to modify the database files directly rather than going through the kadmind network service. This handles the chicken-and-egg problem of trying to connect to the database before it is created. Once you have the kadmin prompt, use the init command to create your realms initial database.
Lastly, while still in kadmin, create your first principal using the add command. Stick to the defaults options for the principal for now, you can always change them later with the modify command. Note that you can use the ? command at any prompt to see the available options.
A sample database creation session is shown below:
# kstash Master key: xxxxxxxx Verifying password - Master key: xxxxxxxx # kadmin -l kadmin> init EXAMPLE.ORG Realm max ticket life [unlimited]: kadmin> add tillman Max ticket life [unlimited]: Max renewable life [unlimited]: Attributes []: Password: xxxxxxxx Verifying password - Password: xxxxxxxx
Now it is time to start up the KDC services. Run /etc/rc.d/kerberos start and /etc/rc.d/kadmind start to bring up the services. Note that you will not have any kerberized daemons running at this point but you should be able to confirm the that the KDC is functioning by obtaining and listing a ticket for the principal (user) that you just created from the command-line of the KDC itself:
% k5init tillman tillman@EXAMPLE.ORG's Password: % k5list Credentials cache: FILE:/tmp/krb5cc_500 Principal: tillman@EXAMPLE.ORG Issued Expires Principal Aug 27 15:37:58 Aug 28 01:37:58 krbtgt/EXAMPLE.ORG@EXAMPLE.ORG
First, we need a copy of the Kerberos configuration file, /etc/krb5.conf. To do so, simply copy it over to the client computer from the KDC in a secure fashion (using network utilities, such as scp(1), or physically via a floppy disk).
Next you need a /etc/krb5.keytab file. This is the major difference between a server providing Kerberos enabled daemons and a workstation —— the server must have a keytab file. This file contains the servers host key, which allows it and the KDC to verify each others identity. It must be transmitted to the server in a secure fashion, as the security of the server can be broken if the key is made public. This explicitly means that transferring it via a clear text channel, such as FTP, is a very bad idea.
Typically, you transfer to the keytab to the server using the kadmin program. This is handy because you also need to create the host principal (the KDC end of the krb5.keytab) using kadmin.
Note that you must have already obtained a ticket and that this ticket must be allowed to use the kadmin interface in the kadmind.acl. See the section titled “Remote administration” in the Heimdal info pages (info heimdal) for details on designing access control lists. If you do not want to enable remote kadmin access, you can simply securely connect to the KDC (via local console, ssh(1) or Kerberos telnet(1)) and perform administration locally using kadmin -l.
After installing the /etc/krb5.conf file, you can use kadmin from the Kerberos server. The add --random-key command will let you add the servers host principal, and the ext command will allow you to extract the servers host principal to its own keytab. For example:
# kadmin kadmin> add --random-key host/myserver.example.org Max ticket life [unlimited]: Max renewable life [unlimited]: Attributes []: kadmin> ext host/myserver.example.org kadmin> exit
Note that the ext command (short for “extract”) stores the extracted key in /etc/krb5.keytab by default.
If you do not have kadmind running on the KDC (possibly for security reasons) and thus do not have access to kadmin remotely, you can add the host principal (host/myserver.EXAMPLE.ORG) directly on the KDC and then extract it to a temporary file (to avoid over-writing the /etc/krb5.keytab on the KDC) using something like this:
# kadmin kadmin> ext --keytab=/tmp/example.keytab host/myserver.example.org kadmin> exit
You can then securely copy the keytab to the server computer (using scp or a floppy, for example). Be sure to specify a non-default keytab name to avoid over-writing the keytab on the KDC.
At this point your server can communicate with the KDC (due to its krb5.conf file) and it can prove its own identity (due to the krb5.keytab file). It is now ready for you to enable some Kerberos services. For this example we will enable the telnet service by putting a line like this into your /etc/inetd.conf and then restarting the inetd(8) service with /etc/rc.d/inetd restart:
telnet stream tcp nowait root /usr/libexec/telnetd telnetd -a user
The critical bit is that the -a (for authentication) type is set to user. Consult the telnetd(8) manual page for more details.
Setting up a client computer is almost trivially easy. As far as Kerberos configuration goes, you only need the Kerberos configuration file, located at /etc/krb5.conf. Simply securely copy it over to the client computer from the KDC.
Test your client computer by attempting to use kinit, klist, and kdestroy from the client to obtain, show, and then delete a ticket for the principal you created above. You should also be able to use Kerberos applications to connect to Kerberos enabled servers, though if that does not work and obtaining a ticket does the problem is likely with the server and not with the client or the KDC.
When testing an application like telnet, try using a packet sniffer (such as tcpdump(1)) to confirm that your password is not sent in the clear. Try using telnet with the -x option, which encrypts the entire data stream (similar to ssh).
The core Kerberos client applications (traditionally named kinit, klist, kdestroy, and kpasswd) are installed in the base FreeBSD install. Note that FreeBSD versions prior to 5.0 renamed them to k5init, k5list, k5destroy, k5passwd, and k5stash (though it is typically only used once).
Various non-core Kerberos client applications are also installed by default. This is where the “minimal” nature of the base Heimdal installation is felt: telnet is the only Kerberos enabled service.
The Heimdal port adds some of the missing client applications: Kerberos enabled versions of ftp, rsh, rcp, rlogin, and a few other less common programs. The MIT port also contains a full suite of Kerberos client applications.
Users within a realm typically have their Kerberos principal (such as tillman@EXAMPLE.ORG) mapped to a local user account (such as a local account named tillman). Client applications such as telnet usually do not require a user name or a principal.
Occasionally, however, you want to grant access to a local user account to someone who does not have a matching Kerberos principal. For example, tillman@EXAMPLE.ORG may need access to the local user account webdevelopers. Other principals may also need access to that local account.
The .k5login and .k5users files, placed in a users home directory, can be used similar to a powerful combination of .hosts and .rhosts, solving this problem. For example, if a .k5login with the following contents:
tillman@example.org jdoe@example.org
Were to be placed into the home directory of the local user webdevelopers then both principals listed would have access to that account without requiring a shared password.
Reading the manual pages for these commands is recommended. Note that the ksu manual page covers .k5users.
When using either the Heimdal or MIT Kerberos ports ensure that your PATH environment variable lists the Kerberos versions of the client applications before the system versions.
Do all the computers in your realm have synchronized time settings? If not, authentication may fail. µÚ 27.11 節 describes how to synchronize clocks using NTP.
MIT and Heimdal inter-operate nicely. Except for kadmin, the protocol for which is not standardized.
If you change your hostname, you also need to change your host/ principal and update your keytab. This also applies to special keytab entries like the www/ principal used for Apache's www/mod_auth_kerb.
All hosts in your realm must be resolvable (both forwards and reverse) in DNS (or /etc/hosts as a minimum). CNAMEs will work, but the A and PTR records must be correct and in place. The error message is not very intuitive: “Kerberos5 refuses authentication because Read req failed: Key table entry not found”.
Some operating systems that may being acting as clients to your KDC do not set the permissions for ksu to be setuid root. This means that ksu does not work, which is a good security idea but annoying. This is not a KDC error.
With MIT Kerberos, if you want to allow a principal to have a ticket life longer than the default ten hours, you must use modify_principal in kadmin to change the maxlife of both the principal in question and the krbtgt principal. Then the principal can use the -l option with kinit to request a ticket with a longer lifetime.
注: If you run a packet sniffer on your KDC to add in troubleshooting and then run kinit from a workstation, you will notice that your TGT is sent immediately upon running kinit —— even before you type your password! The explanation is that the Kerberos server freely transmits a TGT (Ticket Granting Ticket) to any unauthorized request; however, every TGT is encrypted in a key derived from the user's password. Therefore, when a user types their password it is not being sent to the KDC, it is being used to decrypt the TGT that kinit already obtained. If the decryption process results in a valid ticket with a valid time stamp, the user has valid Kerberos credentials. These credentials include a session key for establishing secure communications with the Kerberos server in the future, as well as the actual ticket-granting ticket, which is actually encrypted with the Kerberos server's own key. This second layer of encryption is unknown to the user, but it is what allows the Kerberos server to verify the authenticity of each TGT.
If you want to use long ticket lifetimes (a week, for example) and you are using
OpenSSH to connect to the machine where your ticket is
stored, make sure that Kerberos TicketCleanup
is set to no in your
sshd_config or else your tickets will be deleted when you
log out.
Remember that host principals can have a longer ticket lifetime as well. If your user principal has a lifetime of a week but the host you are connecting to has a lifetime of nine hours, you will have an expired host principal in your cache and the ticket cache will not work as expected.
When setting up a krb5.dict file to prevent specific bad passwords from being used (the manual page for kadmind covers this briefly), remember that it only applies to principals that have a password policy assigned to them. The krb5.dict files format is simple: one string per line. Creating a symbolic link to /usr/share/dict/words might be useful.
The major difference between the MIT and Heimdal installs relates to the kadmin program which has a different (but equivalent) set of commands and uses a different protocol. This has a large implications if your KDC is MIT as you will not be able to use the Heimdal kadmin program to administer your KDC remotely (or vice versa, for that matter).
The client applications may also take slightly different command line options to accomplish the same tasks. Following the instructions on the MIT Kerberos web site (http://web.mit.edu/Kerberos/www/) is recommended. Be careful of path issues: the MIT port installs into /usr/local/ by default, and the “normal” system applications may be run instead of MIT if your PATH environment variable lists the system directories first.
注: With the MIT security/krb5 port that is provided by FreeBSD, be sure to read the /usr/local/share/doc/krb5/README.FreeBSD file installed by the port if you want to understand why logins via telnetd and klogind behave somewhat oddly. Most importantly, correcting the “incorrect permissions on cache file” behavior requires that the login.krb5 binary be used for authentication so that it can properly change ownership for the forwarded credentials.
Every service enabled on the network must be modified to work with Kerberos (or be otherwise secured against network attacks) or else the users credentials could be stolen and re-used. An example of this would be Kerberos enabling all remote shells (via rsh and telnet, for example) but not converting the POP3 mail server which sends passwords in plain text.
In a multi-user environment, Kerberos is less secure. This is because it stores the tickets in the /tmp directory, which is readable by all users. If a user is sharing a computer with several other people simultaneously (i.e. multi-user), it is possible that the user's tickets can be stolen (copied) by another user.
This can be overcome with the -c filename command-line option or (preferably) the KRB5CCNAME environment variable, but this is rarely done. In principal, storing the ticket in the users home directory and using simple file permissions can mitigate this problem.
By design, the KDC must be as secure as the master password database is contained on it. The KDC should have absolutely no other services running on it and should be physically secured. The danger is high because Kerberos stores all passwords encrypted with the same key (the “master” key), which in turn is stored as a file on the KDC.
As a side note, a compromised master key is not quite as bad as one might normally fear. The master key is only used to encrypt the Kerberos database and as a seed for the random number generator. As long as access to your KDC is secure, an attacker cannot do much with the master key.
Additionally, if the KDC is unavailable (perhaps due to a denial of service attack or network problems) the network services are unusable as authentication can not be performed, a recipe for a denial-of-service attack. This can alleviated with multiple KDCs (a single master and one or more slaves) and with careful implementation of secondary or fall-back authentication (PAM is excellent for this).
Kerberos allows users, hosts and services to authenticate between themselves. It does not have a mechanism to authenticate the KDC to the users, hosts or services. This means that a trojanned kinit (for example) could record all user names and passwords. Something like security/tripwire or other file system integrity checking tools can alleviate this.
One feature that many users overlook is the OpenSSL toolkit included in FreeBSD. OpenSSL provides an encryption transport layer on top of the normal communications layer; thus allowing it to be intertwined with many network applications and services.
Some uses of OpenSSL may include encrypted authentication of mail clients, web based transactions such as credit card payments and more. Many ports such as www/apache13-ssl, and mail/sylpheed-claws will offer compilation support for building with OpenSSL.
注: In most cases the Ports Collection will attempt to build the security/openssl port unless the WITH_OPENSSL_BASE make variable is explicitly set to “yes”.
The version of OpenSSL included in FreeBSD supports Secure Sockets Layer v2/v3 (SSLv2/SSLv3), Transport Layer Security v1 (TLSv1) network security protocols and can be used as a general cryptographic library.
注: While OpenSSL supports the IDEA algorithm, it is disabled by default due to United States patents. To use it, the license should be reviewed and, if the restrictions are acceptable, the MAKE_IDEA variable must be set in make.conf.
One of the most common uses of OpenSSL is to provide certificates for use with software applications. These certificates ensure that the credentials of the company or individual are valid and not fraudulent. If the certificate in question has not been verified by one of the several “Certificate Authorities”, or CAs, a warning is usually produced. A Certificate Authority is a company, such as VeriSign, which will sign certificates in order to validate credentials of individuals or companies. This process has a cost associated with it and is definitely not a requirement for using certificates; however, it can put some of the more paranoid users at ease.
To generate a certificate, the following command is available:
# openssl req -new -nodes -out req.pem -keyout cert.pem Generating a 1024 bit RSA private key ................++++++ .......................................++++++ writing new private key to 'cert.pem' ----- You are about to be asked to enter information that will be incorporated into your certificate request. What you are about to enter is what is called a Distinguished Name or a DN. There are quite a few fields but you can leave some blank For some fields there will be a default value, If you enter '.', the field will be left blank. ----- Country Name (2 letter code) [AU]:US State or Province Name (full name) [Some-State]:PA Locality Name (eg, city) []:Pittsburgh Organization Name (eg, company) [Internet Widgits Pty Ltd]:My Company Organizational Unit Name (eg, section) []:Systems Administrator Common Name (eg, YOUR name) []:localhost.example.org Email Address []:trhodes@FreeBSD.org Please enter the following 'extra' attributes to be sent with your certificate request A challenge password []:SOME PASSWORD An optional company name []:Another Name
Notice the response directly after the “Common Name” prompt shows a domain name. This prompt requires a server name to be entered for verification purposes; placing anything but a domain name would yield a useless certificate. Other options, for instance expire time, alternate encryption algorithms, etc. are available. A complete list may be obtained by viewing the openssl(1) manual page.
Two files should now exist in the directory in which the aforementioned command was issued. The certificate request, req.pem, may be sent to a certificate authority who will validate the credentials that you entered, sign the request and return the certificate to you. The second file created will be named cert.pem and is the private key for the certificate and should be protected at all costs; if this falls in the hands of others it can be used to impersonate you (or your server).
In cases where a signature from a CA is not required, a self signed certificate can be created. First, generate the RSA key:
# openssl dsaparam -rand -genkey -out myRSA.key 1024
Next, generate the CA key:
# openssl gendsa -des3 -out myca.key myRSA.key
Use this key to create the certificate:
# openssl req -new -x509 -days 365 -key myca.key -out new.crt
Two new files should appear in the directory: a certificate authority signature file, myca.key and the certificate itself, new.crt. These should be placed in a directory, preferably under /etc, which is readable only by root. Permissions of 0700 should be fine for this and they can be set with the chmod utility.
So what can these files do? A good use would be to encrypt connections to the Sendmail MTA. This would dissolve the use of clear text authentication for users who send mail via the local MTA.
注: This is not the best use in the world as some MUAs will present the user with an error if they have not installed the certificate locally. Refer to the documentation included with the software for more information on certificate installation.
The following lines should be placed inside the local .mc file:
dnl SSL Options define(`confCACERT_PATH',`/etc/certs')dnl define(`confCACERT',`/etc/certs/new.crt')dnl define(`confSERVER_CERT',`/etc/certs/new.crt')dnl define(`confSERVER_KEY',`/etc/certs/myca.key')dnl define(`confTLS_SRV_OPTIONS', `V')dnl
Where /etc/certs/ is the directory to be used for
storing the certificate and key files locally. The last few requirements are a
rebuild of the local .cf file. This is easily
achieved by typing make install
within the /etc/mail
directory. Follow that up with make restart
which should start the Sendmail daemon.
If all went well there will be no error messages in the /var/log/maillog file and Sendmail will show up in the process list.
For a simple test, simply connect to the mail server using the telnet(1) utility:
# telnet example.com 25 Trying 192.0.34.166... Connected to example.com. Escape character is '^]'. 220 example.com ESMTP Sendmail 8.12.10/8.12.10; Tue, 31 Aug 2004 03:41:22 -0400 (EDT) ehlo example.com 250-example.com Hello example.com [192.0.34.166], pleased to meet you 250-ENHANCEDSTATUSCODES 250-PIPELINING 250-8BITMIME 250-SIZE 250-DSN 250-ETRN 250-AUTH LOGIN PLAIN 250-STARTTLS 250-DELIVERBY 250 HELP quit 221 2.0.0 example.com closing connection Connection closed by foreign host.
If the “STARTTLS” line appears in the output then everything is working correctly.
Creating a VPN between two networks, separated by the Internet, using FreeBSD gateways.
This section will guide you through the process of setting up IPsec, and to use it in an environment which consists of FreeBSD and Microsoft Windows 2000/XP machines, to make them communicate securely. In order to set up IPsec, it is necessary that you are familiar with the concepts of building a custom kernel (see µÚ 8 章).
IPsec is a protocol which sits on top of the Internet Protocol (IP) layer. It allows two or more hosts to communicate in a secure manner (hence the name). The FreeBSD IPsec “network stack” is based on the KAME implementation, which has support for both protocol families, IPv4 and IPv6.
注: FreeBSD 5.X contains a “hardware accelerated” IPsec stack, known as “Fast IPsec”, that was obtained from OpenBSD. It employs cryptographic hardware (whenever possible) via the crypto(4) subsystem to optimize the performance of IPsec. This subsystem is new, and does not support all the features that are available in the KAME version of IPsec. However, in order to enable hardware-accelerated IPsec, the following kernel option has to be added to your kernel configuration file:
options FAST_IPSEC # new IPsec (cannot define w/ IPSEC)Note, that it is not currently possible to use the “Fast IPsec” subsystem in lue with the KAME implementation of IPsec. Consult the fast_ipsec(4) manual page for more information.
IPsec consists of two sub-protocols:
Encapsulated Security Payload (ESP), protects the IP packet data from third party interference, by encrypting the contents using symmetric cryptography algorithms (like Blowfish, 3DES).
Authentication Header (AH), protects the IP packet header from third party interference and spoofing, by computing a cryptographic checksum and hashing the IP packet header fields with a secure hashing function. This is then followed by an additional header that contains the hash, to allow the information in the packet to be authenticated.
ESP and AH can either be used together or separately, depending on the environment.
IPsec can either be used to directly encrypt the traffic between two hosts (known as Transport Mode); or to build “virtual tunnels” between two subnets, which could be used for secure communication between two corporate networks (known as Tunnel Mode). The latter is more commonly known as a Virtual Private Network (VPN). The ipsec(4) manual page should be consulted for detailed information on the IPsec subsystem in FreeBSD.
To add IPsec support to your kernel, add the following options to your kernel configuration file:
options IPSEC #IP security options IPSEC_ESP #IP security (crypto; define w/ IPSEC)
If IPsec debugging support is desired, the following kernel option should also be added:
options IPSEC_DEBUG #debug for IP security
There is no standard for what constitutes a VPN. VPNs can be implemented using a number of different technologies, each of which have their own strengths and weaknesses. This section presents a scenario, and the strategies used for implementing a VPN for this scenario.
The premise is as follows:
You have at least two sites
Both sites are using IP internally
Both sites are connected to the Internet, through a gateway that is running FreeBSD.
The gateway on each network has at least one public IP address.
The internal addresses of the two networks can be public or private IP addresses, it does not matter. You can be running NAT on the gateway machine if necessary.
The internal IP addresses of the two networks do not collide. While I expect it is theoretically possible to use a combination of VPN technology and NAT to get this to work, I expect it to be a configuration nightmare.
If you find that you are trying to connect two networks, both of which, internally, use the same private IP address range (e.g. both of them use 192.168.1.x), then one of the networks will have to be renumbered.
The network topology might look something like this:
Notice the two public IP addresses. I will use the letters to refer to them in the rest of this article. Anywhere you see those letters in this article, replace them with your own public IP addresses. Note also that internally, the two gateway machines have .1 IP addresses, and that the two networks have different private IP addresses (192.168.1.x and 192.168.2.x respectively). All the machines on the private networks have been configured to use the .1 machine as their default gateway.
The intention is that, from a network point of view, each network should view the machines on the other network as though they were directly attached the same router -- albeit a slightly slow router with an occasional tendency to drop packets.
This means that (for example), machine 192.168.1.20 should be able to run
ping 192.168.2.34
and have it work, transparently. Windows machines should be able to see the machines on the other network, browse file shares, and so on, in exactly the same way that they can browse machines on the local network.
And the whole thing has to be secure. This means that traffic between the two networks has to be encrypted.
Creating a VPN between these two networks is a multi-step process. The stages are as follows:
Create a “virtual” network link between the two networks, across the Internet. Test it, using tools like ping(8), to make sure it works.
Apply security policies to ensure that traffic between the two networks is transparently encrypted and decrypted as necessary. Test this, using tools like tcpdump(1), to ensure that traffic is encrypted.
Configure additional software on the FreeBSD gateways, to allow Windows machines to see one another across the VPN.
Suppose that you were logged in to the gateway machine on network #1 (with public IP address A.B.C.D, private IP address 192.168.1.1), and you ran ping 192.168.2.1, which is the private address of the machine with IP address W.X.Y.Z. What needs to happen in order for this to work?
The gateway machine needs to know how to reach 192.168.2.1. In other words, it needs to have a route to 192.168.2.1.
Private IP addresses, such as those in the 192.168.x range are not supposed to appear on the Internet at large. Instead, each packet you send to 192.168.2.1 will need to be wrapped up inside another packet. This packet will need to appear to be from A.B.C.D, and it will have to be sent to W.X.Y.Z. This process is called encapsulation.
Once this packet arrives at W.X.Y.Z it will need to “unencapsulated”, and delivered to 192.168.2.1.
You can think of this as requiring a “tunnel” between the two networks. The two “tunnel mouths” are the IP addresses A.B.C.D and W.X.Y.Z, and the tunnel must be told the addresses of the private IP addresses that will be allowed to pass through it. The tunnel is used to transfer traffic with private IP addresses across the public Internet.
This tunnel is created by using the generic interface, or gif devices on FreeBSD. As you can imagine, the gif interface on each gateway host must be configured with four IP addresses; two for the public IP addresses, and two for the private IP addresses.
Support for the gif device must be compiled in to the FreeBSD kernel on both machines. You can do this by adding the line:
device gif
to the kernel configuration files on both machines, and then compile, install, and reboot as normal.
Configuring the tunnel is a two step process. First the tunnel must be told what the outside (or public) IP addresses are, using gifconfig(8). Then the private IP addresses must be configured using ifconfig(8).
注: In FreeBSD 5.X, the functionality provided by the gifconfig(8) utility has been merged into ifconfig(8).
On the gateway machine on network #1 you would run the following two commands to configure the tunnel.
gifconfig gif0 A.B.C.D W.X.Y.Z ifconfig gif0 inet 192.168.1.1 192.168.2.1 netmask 0xffffffff
On the other gateway machine you run the same commands, but with the order of the IP addresses reversed.
gifconfig gif0 W.X.Y.Z A.B.C.D ifconfig gif0 inet 192.168.2.1 192.168.1.1 netmask 0xffffffff
You can then run:
gifconfig gif0
to see the configuration. For example, on the network #1 gateway, you would see this:
# gifconfig gif0 gif0: flags=8011<UP,POINTTOPOINT,MULTICAST> mtu 1280 inet 192.168.1.1 --> 192.168.2.1 netmask 0xffffffff physical address inet A.B.C.D --> W.X.Y.Z
As you can see, a tunnel has been created between the physical addresses A.B.C.D and W.X.Y.Z, and the traffic allowed through the tunnel is that between 192.168.1.1 and 192.168.2.1.
This will also have added an entry to the routing table on both machines, which you can examine with the command netstat -rn. This output is from the gateway host on network #1.
# netstat -rn Routing tables Internet: Destination Gateway Flags Refs Use Netif Expire ... 192.168.2.1 192.168.1.1 UH 0 0 gif0 ...
As the “Flags” value indicates, this is a host route, which means that each gateway knows how to reach the other gateway, but they do not know how to reach the rest of their respective networks. That problem will be fixed shortly.
It is likely that you are running a firewall on both machines. This will need to be circumvented for your VPN traffic. You might want to allow all traffic between both networks, or you might want to include firewall rules that protect both ends of the VPN from one another.
It greatly simplifies testing if you configure the firewall to allow all traffic through the VPN. You can always tighten things up later. If you are using ipfw(8) on the gateway machines then a command like
ipfw add 1 allow ip from any to any via gif0
will allow all traffic between the two end points of the VPN, without affecting your other firewall rules. Obviously you will need to run this command on both gateway hosts.
This is sufficient to allow each gateway machine to ping the other. On 192.168.1.1, you should be able to run
ping 192.168.2.1
and get a response, and you should be able to do the same thing on the other gateway machine.
However, you will not be able to reach internal machines on either network yet. This is because of the routing -- although the gateway machines know how to reach one another, they do not know how to reach the network behind each one.
To solve this problem you must add a static route on each gateway machine. The command to do this on the first gateway would be:
route add 192.168.2.0 192.168.2.1 netmask 0xffffff00
This says “In order to reach the hosts on the network 192.168.2.0, send the packets to the host 192.168.2.1”. You will need to run a similar command on the other gateway, but with the 192.168.1.x addresses instead.
IP traffic from hosts on one network will now be able to reach hosts on the other network.
That has now created two thirds of a VPN between the two networks, in as much as it is “virtual” and it is a “network”. It is not private yet. You can test this using ping(8) and tcpdump(1). Log in to the gateway host and run
tcpdump dst host 192.168.2.1
In another log in session on the same host run
ping 192.168.2.1
You will see output that looks something like this:
16:10:24.018080 192.168.1.1 > 192.168.2.1: icmp: echo request 16:10:24.018109 192.168.1.1 > 192.168.2.1: icmp: echo reply 16:10:25.018814 192.168.1.1 > 192.168.2.1: icmp: echo request 16:10:25.018847 192.168.1.1 > 192.168.2.1: icmp: echo reply 16:10:26.028896 192.168.1.1 > 192.168.2.1: icmp: echo request 16:10:26.029112 192.168.1.1 > 192.168.2.1: icmp: echo reply
As you can see, the ICMP messages are going back and forth unencrypted. If you had
used the -s
parameter to tcpdump(1) to grab
more bytes of data from the packets you would see more information.
Obviously this is unacceptable. The next section will discuss securing the link between the two networks so that it all traffic is automatically encrypted.
Summary:
Configure both kernels with “pseudo-device gif”.
Edit /etc/rc.conf on gateway host #1 and add the following lines (replacing IP addresses as necessary).
gifconfig_gif0="A.B.C.D W.X.Y.Z" ifconfig_gif0="inet 192.168.1.1 192.168.2.1 netmask 0xffffffff" static_routes="vpn" route_vpn="192.168.2.0 192.168.2.1 netmask 0xffffff00"
Edit your firewall script (/etc/rc.firewall, or similar) on both hosts, and add
ipfw add 1 allow ip from any to any via gif0
Make similar changes to /etc/rc.conf on gateway host #2, reversing the order of IP addresses.
To secure the link we will be using IPsec. IPsec provides a mechanism for two hosts to agree on an encryption key, and to then use this key in order to encrypt data between the two hosts.
The are two areas of configuration to be considered here.
There must be a mechanism for two hosts to agree on the encryption mechanism to use. Once two hosts have agreed on this mechanism there is said to be a “security association” between them.
There must be a mechanism for specifying which traffic should be encrypted. Obviously, you do not want to encrypt all your outgoing traffic -- you only want to encrypt the traffic that is part of the VPN. The rules that you put in place to determine what traffic will be encrypted are called “security policies”.
Security associations and security policies are both maintained by the kernel, and can be modified by userland programs. However, before you can do this you must configure the kernel to support IPsec and the Encapsulated Security Payload (ESP) protocol. This is done by configuring a kernel with:
options IPSEC options IPSEC_ESP
and recompiling, reinstalling, and rebooting. As before you will need to do this to the kernels on both of the gateway hosts.
You have two choices when it comes to setting up security associations. You can configure them by hand between two hosts, which entails choosing the encryption algorithm, encryption keys, and so forth, or you can use daemons that implement the Internet Key Exchange protocol (IKE) to do this for you.
I recommend the latter. Apart from anything else, it is easier to set up.
Editing and displaying security policies is carried out using setkey(8). By analogy, setkey is to the kernel's security policy tables as route(8) is to the kernel's routing tables. setkey can also display the current security associations, and to continue the analogy further, is akin to netstat -r in that respect.
There are a number of choices for daemons to manage security associations with FreeBSD. This article will describe how to use one of these, racoon —— which is available from security/ipsec-tools in the FreeBSD Ports collection.
The racoon software must be run on both gateway hosts. On each host it is configured with the IP address of the other end of the VPN, and a secret key (which you choose, and must be the same on both gateways).
The two daemons then contact one another, confirm that they are who they say they are (by using the secret key that you configured). The daemons then generate a new secret key, and use this to encrypt the traffic over the VPN. They periodically change this secret, so that even if an attacker were to crack one of the keys (which is as theoretically close to unfeasible as it gets) it will not do them much good -- by the time they have cracked the key the two daemons have chosen another one.
The configuration file for racoon is stored in ${PREFIX}/etc/racoon. You should find a configuration file there, which should not need to be changed too much. The other component of racoon's configuration, which you will need to change, is the “pre-shared key”.
The default racoon configuration expects to find this in the file ${PREFIX}/etc/racoon/psk.txt. It is important to note that the pre-shared key is not the key that will be used to encrypt your traffic across the VPN link, it is simply a token that allows the key management daemons to trust one another.
psk.txt contains a line for each remote site you are dealing with. In this example, where there are two sites, each psk.txt file will contain one line (because each end of the VPN is only dealing with one other end).
On gateway host #1 this line should look like this:
W.X.Y.Z secret
That is, the public IP address of the remote end, whitespace, and a text string that provides the secret. Obviously, you should not use “secret” as your key -- the normal rules for choosing a password apply.
On gateway host #2 the line would look like this
A.B.C.D secret
That is, the public IP address of the remote end, and the same secret key. psk.txt must be mode 0600 (i.e., only read/write to root) before racoon will run.
You must run racoon on both gateway machines. You will also need to add some firewall rules to allow the IKE traffic, which is carried over UDP to the ISAKMP (Internet Security Association Key Management Protocol) port. Again, this should be fairly early in your firewall ruleset.
ipfw add 1 allow udp from A.B.C.D to W.X.Y.Z isakmp ipfw add 1 allow udp from W.X.Y.Z to A.B.C.D isakmp
Once racoon is running you can try pinging one gateway host from the other. The connection is still not encrypted, but racoon will then set up the security associations between the two hosts -- this might take a moment, and you may see this as a short delay before the ping commands start responding.
Once the security association has been set up you can view it using setkey(8). Run
setkey -D
on either host to view the security association information.
That's one half of the problem. They other half is setting your security policies.
To create a sensible security policy, let's review what's been set up so far. This discussions hold for both ends of the link.
Each IP packet that you send out has a header that contains data about the packet. The header includes the IP addresses of both the source and destination. As we already know, private IP addresses, such as the 192.168.x.y range are not supposed to appear on the public Internet. Instead, they must first be encapsulated inside another packet. This packet must have the public source and destination IP addresses substituted for the private addresses.
So if your outgoing packet started looking like this:
Then it will be encapsulated inside another packet, looking something like this:
This encapsulation is carried out by the gif device. As you can see, the packet now has real IP addresses on the outside, and our original packet has been wrapped up as data inside the packet that will be put out on the Internet.
Obviously, we want all traffic between the VPNs to be encrypted. You might try putting this in to words, as:
“If a packet leaves from A.B.C.D, and it is destined for W.X.Y.Z, then encrypt it, using the necessary security associations.”
“If a packet arrives from W.X.Y.Z, and it is destined for A.B.C.D, then decrypt it, using the necessary security associations.”
That's close, but not quite right. If you did this, all traffic to and from W.X.Y.Z, even traffic that was not part of the VPN, would be encrypted. That's not quite what you want. The correct policy is as follows
“If a packet leaves from A.B.C.D, and that packet is encapsulating another packet, and it is destined for W.X.Y.Z, then encrypt it, using the necessary security associations.”
“If a packet arrives from W.X.Y.Z, and that packet is encapsulating another packet, and it is destined for A.B.C.D, then decrypt it, using the necessary security associations.”
A subtle change, but a necessary one.
Security policies are also set using setkey(8). setkey(8) features a
configuration language for defining the policy. You can either enter configuration
instructions via stdin, or you can use the -f
option to
specify a filename that contains configuration instructions.
The configuration on gateway host #1 (which has the public IP address A.B.C.D) to force all outbound traffic to W.X.Y.Z to be encrypted is:
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P out ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require;
Put these commands in a file (e.g. /etc/ipsec.conf) and then run
# setkey -f /etc/ipsec.conf
spdadd
tells setkey(8) that we want
to add a rule to the secure policy database. The rest of this line specifies which
packets will match this policy. A.B.C.D/32 and W.X.Y.Z/32 are the IP addresses and netmasks that identify the
network or hosts that this policy will apply to. In this case, we want it to apply to
traffic between these two hosts. ipencap
tells the kernel
that this policy should only apply to packets that encapsulate other packets. -P out
says that this policy applies to outgoing packets, and ipsec
says that the packet will be secured.
The second line specifies how this packet will be encrypted. esp
is the protocol that will be used, while tunnel
indicates that the packet will be further encapsulated in an
IPsec packet. The repeated use of A.B.C.D and W.X.Y.Z is used to select the security association to use, and the
final require
mandates that packets must be encrypted if they
match this rule.
This rule only matches outgoing packets. You will need a similar rule to match incoming packets.
spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P in ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require;
Note the in
instead of out
in
this case, and the necessary reversal of the IP addresses.
The other gateway host (which has the public IP address W.X.Y.Z) will need similar rules.
spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P out ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require; spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P in ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require;
Finally, you need to add firewall rules to allow ESP and IPENCAP packets back and forth. These rules will need to be added to both hosts.
ipfw add 1 allow esp from A.B.C.D to W.X.Y.Z ipfw add 1 allow esp from W.X.Y.Z to A.B.C.D ipfw add 1 allow ipencap from A.B.C.D to W.X.Y.Z ipfw add 1 allow ipencap from W.X.Y.Z to A.B.C.D
Because the rules are symmetric you can use the same rules on each gateway host.
Outgoing packets will now look something like this:
When they are received by the far end of the VPN they will first be decrypted (using the security associations that have been negotiated by racoon). Then they will enter the gif interface, which will unwrap the second layer, until you are left with the innermost packet, which can then travel in to the inner network.
You can check the security using the same ping(8) test from earlier. First, log in to the A.B.C.D gateway machine, and run:
tcpdump dst host 192.168.2.1
In another log in session on the same host run
ping 192.168.2.1
This time you should see output like the following:
XXX tcpdump output
Now, as you can see, tcpdump(1) shows the
ESP packets. If you try to examine them with the -s
option
you will see (apparently) gibberish, because of the encryption.
Congratulations. You have just set up a VPN between two remote sites.
Summary
Configure both kernels with:
options IPSEC options IPSEC_ESP
Install security/ipsec-tools. Edit ${PREFIX}/etc/racoon/psk.txt on both gateway hosts, adding an entry for the remote host's IP address and a secret key that they both know. Make sure this file is mode 0600.
Add the following lines to /etc/rc.conf on each host:
ipsec_enable="YES" ipsec_file="/etc/ipsec.conf"
Create an /etc/ipsec.conf on each host that contains the necessary spdadd lines. On gateway host #1 this would be:
spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P out ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require; spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P in ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require;
On gateway host #2 this would be:
spdadd W.X.Y.Z/32 A.B.C.D/32 ipencap -P out ipsec esp/tunnel/W.X.Y.Z-A.B.C.D/require; spdadd A.B.C.D/32 W.X.Y.Z/32 ipencap -P in ipsec esp/tunnel/A.B.C.D-W.X.Y.Z/require;
Add firewall rules to allow IKE, ESP, and IPENCAP traffic to both hosts:
ipfw add 1 allow udp from A.B.C.D to W.X.Y.Z isakmp ipfw add 1 allow udp from W.X.Y.Z to A.B.C.D isakmp ipfw add 1 allow esp from A.B.C.D to W.X.Y.Z ipfw add 1 allow esp from W.X.Y.Z to A.B.C.D ipfw add 1 allow ipencap from A.B.C.D to W.X.Y.Z ipfw add 1 allow ipencap from W.X.Y.Z to A.B.C.D
The previous two steps should suffice to get the VPN up and running. Machines on each network will be able to refer to one another using IP addresses, and all traffic across the link will be automatically and securely encrypted.
OpenSSH is a set of network connectivity tools used to access remote machines securely. It can be used as a direct replacement for rlogin, rsh, rcp, and telnet. Additionally, TCP/IP connections can be tunneled/forwarded securely through SSH. OpenSSH encrypts all traffic to effectively eliminate eavesdropping, connection hijacking, and other network-level attacks.
OpenSSH is maintained by the OpenBSD project, and is based upon SSH v1.2.12 with all the recent bug fixes and updates. It is compatible with both SSH protocols 1 and 2. OpenSSH has been in the base system since FreeBSD 4.0.
Normally, when using telnet(1) or rlogin(1), data is sent over the network in an clear, un-encrypted form. Network sniffers anywhere in between the client and server can steal your user/password information or data transferred in your session. OpenSSH offers a variety of authentication and encryption methods to prevent this from happening.
The sshd daemon is enabled by default on FreeBSD 4.X. In FreeBSD 5.X and later enabling sshd is an option presented during a Standard install of FreeBSD. To see if sshd is enabled, check the rc.conf file for:
sshd_enable="YES"
This will load sshd(8), the daemon program for OpenSSH, the next time your system initializes. Alternatively, you can simply run directly the sshd daemon by typing sshd on the command line.
The ssh(1) utility works similarly to rlogin(1).
# ssh user@example.com Host key not found from the list of known hosts. Are you sure you want to continue connecting (yes/no)? yes Host 'example.com' added to the list of known hosts. user@example.com's password: *******
The login will continue just as it would have if a session was created using rlogin or telnet. SSH utilizes a key fingerprint system for verifying the authenticity of the server when the client connects. The user is prompted to enter yes only when connecting for the first time. Future attempts to login are all verified against the saved fingerprint key. The SSH client will alert you if the saved fingerprint differs from the received fingerprint on future login attempts. The fingerprints are saved in ~/.ssh/known_hosts, or ~/.ssh/known_hosts2 for SSH v2 fingerprints.
By default, recent versions of the OpenSSH servers only
accept SSH v2 connections. The client will use version 2 if possible and will fall back
to version 1. The client can also be forced to use one or the other by passing it the
-1
or -2
for version 1 or version
2, respectively. The version 1 compatability is maintained in the client for backwards
compatability with older versions.
The scp(1) command works similarly to rcp(1); it copies a file to or from a remote machine, except in a secure fashion.
# scp user@example.com:/COPYRIGHT COPYRIGHT user@example.com's password: ******* COPYRIGHT 100% |*****************************| 4735 00:00 #
Since the fingerprint was already saved for this host in the previous example, it is verified when using scp(1) here.
The arguments passed to scp(1) are similar
to cp(1), with the file
or files in the first argument, and the destination in the second. Since the file is
fetched over the network, through SSH, one or more of the file arguments takes
on the form user@host:<path_to_remote_file>
.
The system-wide configuration files for both the OpenSSH daemon and client reside within the /etc/ssh directory.
ssh_config configures the client settings, while sshd_config configures the daemon.
Additionally, the sshd_program
(/usr/sbin/sshd by default), and sshd_flags
rc.conf options can
provide more levels of configuration.
Instead of using passwords, ssh-keygen(1) can be used to generate DSA or RSA keys to authenticate a user:
% ssh-keygen -t dsa Generating public/private dsa key pair. Enter file in which to save the key (/home/user/.ssh/id_dsa): Created directory '/home/user/.ssh'. Enter passphrase (empty for no passphrase): Enter same passphrase again: Your identification has been saved in /home/user/.ssh/id_dsa. Your public key has been saved in /home/user/.ssh/id_dsa.pub. The key fingerprint is: bb:48:db:f2:93:57:80:b6:aa:bc:f5:d5:ba:8f:79:17 user@host.example.com
ssh-keygen(1) will create a public and private key pair for use in authentication. The private key is stored in ~/.ssh/id_dsa or ~/.ssh/id_rsa, whereas the public key is stored in ~/.ssh/id_dsa.pub or ~/.ssh/id_rsa.pub, respectively for DSA and RSA key types. The public key must be placed in ~/.ssh/authorized_keys of the remote machine in order for the setup to work. Similarly, RSA version 1 public keys should be placed in ~/.ssh/authorized_keys.
This will allow connection to the remote machine based upon SSH keys instead of passwords.
If a passphrase is used in ssh-keygen(1), the user will be prompted for a password each time in order to use the private key. ssh-agent(1) can alleviate the strain of repeatedly entering long passphrases, and is explored in the µÚ 14.11.7 節 section below.
警告The various options and files can be different according to the OpenSSH version you have on your system; to avoid problems you should consult the ssh-keygen(1) manual page.
The ssh-agent(1) and ssh-add(1) utilities provide methods for SSH keys to be loaded into memory for use, without needing to type the passphrase each time.
The ssh-agent(1) utility will handle the authentication using the private key(s) that are loaded into it. ssh-agent(1) should be used to launch another application. At the most basic level, it could spawn a shell or at a more advanced level, a window manager.
To use ssh-agent(1) in a shell, first it will need to be spawned with a shell as an argument. Secondly, the identity needs to be added by running ssh-add(1) and providing it the passphrase for the private key. Once these steps have been completed the user will be able to ssh(1) to any host that has the corresponding public key installed. For example:
% ssh-agent csh % ssh-add Enter passphrase for /home/user/.ssh/id_dsa: Identity added: /home/user/.ssh/id_dsa (/home/user/.ssh/id_dsa) %
To use ssh-agent(1) in X11, a call to ssh-agent(1) will need to be placed in ~/.xinitrc. This will provide the ssh-agent(1) services to all programs launched in X11. An example ~/.xinitrc file might look like this:
exec ssh-agent startxfce4
This would launch ssh-agent(1), which would in turn launch XFCE, every time X11 starts. Then once that is done and X11 has been restarted so that the changes can take effect, simply run ssh-add(1) to load all of your SSH keys.
OpenSSH has the ability to create a tunnel to encapsulate another protocol in an encrypted session.
The following command tells ssh(1) to create a tunnel for telnet:
% ssh -2 -N -f -L 5023:localhost:23 user@foo.example.com %
The ssh command is used with the following options:
-2
Forces ssh to use version 2 of the protocol. (Do not use if you are working with older SSH servers)
-N
Indicates no command, or tunnel only. If omitted, ssh would initiate a normal session.
-f
Forces ssh to run in the background.
-L
Indicates a local tunnel in localport:remotehost:remoteport fashion.
user@foo.example.com
The remote SSH server.
An SSH tunnel works by creating a listen socket on localhost on the specified port. It then forwards any connection received on the local host/port via the SSH connection to the specified remote host and port.
In the example, port 5023 on localhost is being forwarded to port 23 on localhost of the remote machine. Since 23 is telnet, this would create a secure telnet session through an SSH tunnel.
This can be used to wrap any number of insecure TCP protocols such as SMTP, POP3, FTP, etc.
範例 14-1. Using SSH to Create a Secure Tunnel for SMTP
% ssh -2 -N -f -L 5025:localhost:25 user@mailserver.example.com user@mailserver.example.com's password: ***** % telnet localhost 5025 Trying 127.0.0.1... Connected to localhost. Escape character is '^]'. 220 mailserver.example.com ESMTP
This can be used in conjunction with an ssh-keygen(1) and additional user accounts to create a more seamless/hassle-free SSH tunneling environment. Keys can be used in place of typing a password, and the tunnels can be run as a separate user.
At work, there is an SSH server that accepts connections from the outside. On the same office network resides a mail server running a POP3 server. The network, or network path between your home and office may or may not be completely trustable. Because of this, you need to check your e-mail in a secure manner. The solution is to create an SSH connection to your office's SSH server, and tunnel through to the mail server.
% ssh -2 -N -f -L 2110:mail.example.com:110 user@ssh-server.example.com user@ssh-server.example.com's password: ******
When the tunnel is up and running, you can point your mail client to send POP3 requests to localhost port 2110. A connection here will be forwarded securely across the tunnel to mail.example.com.
Some network administrators impose extremely draconian firewall rules, filtering not only incoming connections, but outgoing connections. You may be only given access to contact remote machines on ports 22 and 80 for SSH and web surfing.
You may wish to access another (perhaps non-work related) service, such as an Ogg Vorbis server to stream music. If this Ogg Vorbis server is streaming on some other port than 22 or 80, you will not be able to access it.
The solution is to create an SSH connection to a machine outside of your network's firewall, and use it to tunnel to the Ogg Vorbis server.
% ssh -2 -N -f -L 8888:music.example.com:8000 user@unfirewalled-system.example.org user@unfirewalled-system.example.org's password: *******
Your streaming client can now be pointed to localhost port 8888, which will be forwarded over to music.example.com port 8000, successfully evading the firewall.
AllowUsers
Users OptionIt is often a good idea to limit which users can log in and from where. The AllowUsers option is a good way to accomplish this. For example, to only allow the root user to log in from 192.168.1.32, something like this would be appropriate in the /etc/ssh/sshd_config file:
AllowUsers root@192.168.1.32
To allow the user admin to log in from anywhere, just list the username by itself:
AllowUsers admin
Multiple users should be listed on the same line, like so:
AllowUsers root@192.168.1.32 admin
注: It is important that you list each user that needs to log in to this machine; otherwise they will be locked out.
After making changes to /etc/ssh/sshd_config you must tell sshd(8) to reload its config files, by running:
# /etc/rc.d/sshd reload
In conjunction with file system enhancements like snapshots, FreeBSD 5.0 and later offers the security of File System Access Control Lists (ACLs).
Access Control Lists extend the standard UNIX permission model in a highly compatible (POSIX.1e) way. This feature permits an administrator to make use of and take advantage of a more sophisticated security model.
To enable ACL support for UFS file systems, the following:
options UFS_ACL
must be compiled into the kernel. If this option has not been compiled in, a warning message will be displayed when attempting to mount a file system supporting ACLs. This option is included in the GENERIC kernel. ACLs rely on extended attributes being enabled on the file system. Extended attributes are natively supported in the next generation UNIX file system, UFS2.
注: A higher level of administrative overhead is required to configure extended attributes on UFS1 than on UFS2. The performance of extended attributes on UFS2 is also substantially higher. As a result, UFS2 is generally recommended in preference to UFS1 for use with access control lists.
ACLs are enabled by the mount-time
administrative flag, acls
, which may be added to /etc/fstab. The mount-time flag can also be automatically set in a
persistent manner using tunefs(8) to modify a
superblock ACLs flag in the file system
header. In general, it is preferred to use the superblock flag for several reasons:
The mount-time ACLs flag cannot be changed
by a remount (mount(8) -u
), only by means of a complete umount(8) and fresh mount(8). This means
that ACLs cannot be enabled on the root
file system after boot. It also means that you cannot change the disposition of a
file system once it is in use.
Setting the superblock flag will cause the file system to always be mounted with ACLs enabled even if there is not an fstab entry or if the devices re-order. This prevents accidental mounting of the file system without ACLs enabled, which can result in ACLs being improperly enforced, and hence security problems.
注: We may change the ACLs behavior to allow the flag to be enabled without a complete fresh mount(8), but we consider it desirable to discourage accidental mounting without ACLs enabled, because you can shoot your feet quite nastily if you enable ACLs, then disable them, then re-enable them without flushing the extended attributes. In general, once you have enabled ACLs on a file system, they should not be disabled, as the resulting file protections may not be compatible with those intended by the users of the system, and re-enabling ACLs may re-attach the previous ACLs to files that have since had their permissions changed, resulting in other unpredictable behavior.
File systems with ACLs enabled will show a + (plus) sign in their permission settings when viewed. For example:
drwx------ 2 robert robert 512 Dec 27 11:54 private drwxrwx---+ 2 robert robert 512 Dec 23 10:57 directory1 drwxrwx---+ 2 robert robert 512 Dec 22 10:20 directory2 drwxrwx---+ 2 robert robert 512 Dec 27 11:57 directory3 drwxr-xr-x 2 robert robert 512 Nov 10 11:54 public_html
Here we see that the directory1, directory2, and directory3 directories are all taking advantage of ACLs. The public_html directory is not.
The file system ACLs can be viewed by the getfacl(1) utility. For instance, to view the ACL settings on the test file, one would use the command:
% getfacl test #file:test #owner:1001 #group:1001 user::rw- group::r-- other::r--
To change the ACL settings on this file, invoke the setfacl(1) utility. Observe:
% setfacl -k test
The -k
flag will remove all of the currently defined
ACLs from a file or file system. The
more preferable method would be to use -b
as it leaves
the basic fields required for ACLs to
work.
% setfacl -m u:trhodes:rwx,group:web:r--,o::--- test
In the aforementioned command, the -m
option was used
to modify the default ACL entries. Since
there were no pre-defined entries, as they were removed by the previous command,
this will restore the default options and assign the options listed. Take care to
notice that if you add a user or group which does not exist on the system, an
“Invalid argument” error will be printed to stdout.
In recent years, the security world has made many improvements to how vulnerability assessment is handled. The threat of system intrusion increases as third party utilities are installed and configured for virtually any operating system available today.
Vulnerability assessment is a key factor in security, and while FreeBSD releases advisories for the base system, doing so for every third party utility is beyond the FreeBSD Project's capability. There is a way to mitigate third party vulnerabilities and warn administrators of known security issues. A FreeBSD add on utility known as Portaudit exists solely for this purpose.
The security/portaudit port polls a database, updated and maintained by the FreeBSD Security Team and ports developers, for known security issues.
To begin using Portaudit, one must install it from the Ports Collection:
# cd /usr/ports/security/portaudit && make install clean
During the install process, the configuration files for periodic(8) will be updated, permitting Portaudit output in the daily security runs. Ensure the daily security run emails, which are sent to root's email account, are being read. No more configuration will be required here.
After installation, an administrator can update the database and view known vulnerabilities in installed packages by invoking the following command:
# portaudit -Fda
注: The database will automatically be updated during the periodic(8) run; thus, the previous command is completely optional. It is only required for the following examples.
To audit the third party utilities installed as part of the Ports Collection at anytime, an administrator need only run the following command:
# portaudit -a
Portaudit will produce something like this for vulnerable packages:
Affected package: cups-base-1.1.22.0_1 Type of problem: cups-base -- HPGL buffer overflow vulnerability. Reference: <http://www.FreeBSD.org/ports/portaudit/40a3bca2-6809-11d9-a9e7-0001020eed82.html> 1 problem(s) in your installed packages found. You are advised to update or deinstall the affected package(s) immediately.
By pointing a web browser to the URL shown, an administrator may obtain more information about the vulnerability in question. This will include versions affected, by FreeBSD Port version, along with other web sites which may contain security advisories.
In short, Portaudit is a powerful utility and extremely useful when coupled with the Portupgrade port.
Like many production quality operating systems, FreeBSD publishes “Security Advisories”. These advisories are usually mailed to the security lists and noted in the Errata only after the appropriate releases have been patched. This section will work to explain what an advisory is, how to understand it, and what measures to take in order to patch a system.
The FreeBSD security advisories look similar to the one below, taken from the freebsd-security-notifications mailing list.
============================================================================= FreeBSD-SA-XX:XX.UTIL Security Advisory The FreeBSD Project Topic: denial of service due to some problem Category: core Module: sys Announced: 2003-09-23 Credits: Person@EMAIL-ADDRESS Affects: All releases of FreeBSD FreeBSD 4-STABLE prior to the correction date Corrected: 2003-09-23 16:42:59 UTC (RELENG_4, 4.9-PRERELEASE) 2003-09-23 20:08:42 UTC (RELENG_5_1, 5.1-RELEASE-p6) 2003-09-23 20:07:06 UTC (RELENG_5_0, 5.0-RELEASE-p15) 2003-09-23 16:44:58 UTC (RELENG_4_8, 4.8-RELEASE-p8) 2003-09-23 16:47:34 UTC (RELENG_4_7, 4.7-RELEASE-p18) 2003-09-23 16:49:46 UTC (RELENG_4_6, 4.6-RELEASE-p21) 2003-09-23 16:51:24 UTC (RELENG_4_5, 4.5-RELEASE-p33) 2003-09-23 16:52:45 UTC (RELENG_4_4, 4.4-RELEASE-p43) 2003-09-23 16:54:39 UTC (RELENG_4_3, 4.3-RELEASE-p39) FreeBSD only: NO For general information regarding FreeBSD Security Advisories, including descriptions of the fields above, security branches, and the following sections, please visit http://www.FreeBSD.org/security/. I. Background II. Problem Description III. Impact IV. Workaround V. Solution VI. Correction details VII. References
Process accounting is a security method in which an administrator may keep track of system resources used, their allocation among users, provide for system monitoring, and minimally track a user's commands.
This indeed has its own positive and negative points. One of the positives is that an intrusion may be narrowed down to the point of entry. A negative is the amount of logs generated by process accounting, and the disk space they may require. This section will walk an administrator through the basics of process accounting.
Before making use of process accounting, it must be enabled. To do this, execute the following commands:
# touch /var/account/acct # accton /var/account/acct # echo 'accounting_enable="YES"' >> /etc/rc.conf
Once enabled, accounting will begin to track CPU stats, commands, etc. All accounting logs are in a non-human readable format and may be viewed using the sa(8) utility. If issued without any options, sa will print information relating to the number of per user calls, the total elapsed time in minutes, total CPU and user time in minutes, average number of I/O operations, etc.
To view information about commands being issued, one would use the lastcomm(1) utility. The lastcomm may be used to print out commands issued by users on specific ttys(5), for example:
# lastcomm ls trhodes ttyp1
Would print out all known usage of the ls by trhodes on the ttyp1 terminal.
Many other useful options exist and are explained in the lastcomm(1), acct(5) and sa(8) manual pages.
本章將介紹 FreeBSD jail 為何,以及如何運用之法。 Jails 有時也常被認為是 chroot 環境 的加強型替代品之一,它對系統管理者而言是非常好用的工具, 此外,它的一些基本用法對進階使用者而言,也是相當有用。
讀完這章,您將了解︰
jail 是什麼,以及它在 FreeBSD 上可以發揮的作用。
如何編譯、啟動、停止 jail。
jail 管理的基本概念:包括從 jail 內部或主機本身。
其他有用的 jail 相關資源還有:
jail(8) 線上說明。 這是有關 jail 的完整說明 —— FreeBSD 內的啟動、停止、控制 FreeBSD jail 相關管理工具。
郵遞論壇(mailing lists)及舊信檔案館(archives)。 FreeBSD list server 所提供的 FreeBSD general questions 郵遞論壇 及其他郵遞論壇的舊信 ,已有包括一堆 jail 的有用資料。 通常,搜尋舊信或者在 freebsd-questions 上發問,也相當有效。
為協助更容易理解 FreeBSD 系統的 jail 相關部分, 以及它們與 FreeBSD 其他部分的相互作用關係, 以下列出本章將使用的術語:
FreeBSD 的 system call 之一,其作用為改變 process 及其衍生 process 所能運用的根目錄 (/ dir)。
指在 “chroot” 中運行的 process 環境。 這包括了類似檔案系統的可見部分、可用的 UID、GID、網路卡及其他 IPC 機制等資源。
允許程式在 jail 環境下執行的系統管理工具。
jail 環境的控制系統。 host 系統可以使用全部可用的硬體資源, 並能控制 jail 環境內外的 process。 host 系統與 jail 最大的差別在於 :在 host 系統中的 superuser processes 並不像在 jail 環境那樣處處受到一堆限制。
可用資源受到 FreeBSD jail 限制的 process、帳號、或其他設備資源 。
由於系統管理是困難又繁瑣的工作,因此人們開發許多好用工具, 以讓管理工作更加簡單輕鬆。 這些改善通常是讓系統能夠以更簡單的方式安裝、 設定、維護,而有些改善目標則是系統安全的正確設定,使其能真正發揮原本用途, 而非陷入安全風險之中。
FreeBSD 系統所提供的一種用於強化安全的工具就是 jail 。 Jail 是由 Poul-Henning Kamp <phk@FreeBSD.org>
於
FreeBSD 4.X 開始導入,而在 FreeBSD 5.X
受到許多重大改良而集大成,成為強大而靈活的子系統,目前仍在持續開發、
以提高其可用性、效能與安全。
BSD-like 作業系統自 4.2BSD 起即提供 chroot(2)。 chroot(8) 可用來變更一組 process 的根目錄位置, 藉此建立與實體系統中相隔離的安全環境。 處於 chrooted 環境的 process 會無法不能存取世外的檔案或資源。 由於此因素, 故即使攻擊者攻破某個處於 chroot 環境的 service,也不能攻破整個系統。 chroot(8) 對於那些不太需要彈性或複雜又高級的簡單應用而言相當好用。 另外,在引入 chroot 概念的過程中,曾經發現許多可脫逃 chroot 環境的方式, 儘管這些問題在較新版本的 FreeBSD kernel 均已修正,但很明顯地 chroot(2) 絕非用於強化安全的理想解決方案。 因此, 勢必得實作新的子系統來解決這些問題。
這就是為何要開發 jail 的最主要原因。
Jail 在各種方式分進合擊,改進傳統 chroot(2) 環境的概念。 在傳統的 chroot(2) 環境中,只限制 process 對於檔案系統的存取部分, 而系統資源的其他部分(例如系統帳號、執行中的 process、網路子系統)則是由 chroot process 與 host 系統的其他 process 一起共享。 Jail 以『虛擬化』來擴展這模型,不單只有檔案系統的存取,還延伸到 系統帳號、FreeBSD kernel 的網路子系統及其他系統資源的虛擬化。 關於這些 jail 環境存取的細微調控,請參閱 µÚ 15.5 節。
jail 具有下列四項特色:
目錄子樹(directory subtree) —— 也就是進入 jail 的起點。 一旦進入 jail 之後,process 就不再被允許跳到 subtree 以外。 &傳統會影響到 chroot(2) 最初設計的安全問題,就不會再影響 FreeBSD jail。
主機名稱(hostname) —— 用於 jail 的 hostname。 由於 jail 主要用於網路服務,因此若各 jail 皆有名稱, 對於系統管理工作的簡化會相當有效。
IP address —— 是用來給 jail 使用, 並且在 jail 生命週期內都無法變更。 通常 jail 的 IP address 是現有網卡的 alias address,但這並不是必須的。
指令(Command) —— 準備在 jail 內執行的完整路徑。 這指令是相對於 jail 環境的根目錄,視 jail 環境的類型不同,而有所差異。
除了上述之外,jail 也可擁有自己的帳號及 root 帳號。 當然,這裡的root 權力會受制於 jail 環境內。 並且從 host 系統的角度來看,jail 的 root 並非無所不能的帳號。 此外 jail 的 root 並不能執行其對於 jail(8) 環境以外的一些關鍵性操作。 關於 root 的能力與限制,將於稍後的 µÚ 15.5 節 介紹之。
有些系統管理者把 jail 分為下列兩種:“complete(完全)” jail —— 通常包括完整的 FreeBSD 系統;另一種則為 “service(服務)” jail —— 專門只跑某單一可能要用特殊權限的程式或 service。 這只是一種概念上的區分 ,並不影響如何建立 jail 的過程。 至於如何建立 jail 在 jail(8) 內有更詳細的說明:
# setenv D /here/is/the/jail # mkdir -p $D # cd /usr/src # make world DESTDIR=$D # cd etc/ [12] # make distribution DESTDIR=$D # mount -t devfs $D/dev
裝好 jail 之後,就可以用 jail(8) 工具。 jail(8)
需要四項必填參數,這些參數在 µÚ 15.3.1 節 有介紹過。
除了這四個參數之外,還可以指定其他參數,像是以特定帳號在 jail 中執行 process。 command
參數取決於 jail
類型而定;對於 virtual
system(虛擬系統) ,那麼就選擇 /etc/rc,
因為它會完成真正 FreeBSD 系統啟動所需的操作。 對於 service(服務) jail 而言,執行的指令取決於將在 jail 內執行的
service 或應用程式而定。
Jail 通常要在系統開機時啟動,因此 FreeBSD 的 rc 機制提供一些便利的方式來簡化這些工作:
開機時要啟動的 jail 清單要加到 rc.conf(5) 設定檔:
jail_enable="YES" # 若設為 NO 則表示不自動啟動 jail jail_list="www" # 若有許多 jail 則請以空白隔開來寫
對於每一筆在 jail_list
所列出的 jail, 也要在 rc.conf(5)
做出相對應的設定:
jail_www_rootdir="/usr/jail/www" # jail 的根目錄 jail_www_hostname="www.example.org" # jail 的 hostname jail_www_ip="192.168.0.10" # jail 的 IP address jail_www_devfs_enable="YES" # 在 jail 內 mount devfs jail_www_devfs_ruleset="www_ruleset" # jail 內所用的 devfs 規則表
在 rc.conf(5) 所預設的
jail 啟動設定會跑 /etc/rc 內的 jail
script,也就是說會假設 jail 是完整的虛擬系統。 若要用 service jail
類型,則要另外指定啟動指令, 方法是設定對應的 jail_jailname_exec_start
設定。
注: 若欲知道所有可用的選項清單,請參閱 rc.conf(5) 說明。
也可以透過手動執行 /etc/rc.d/jail script 來啟動或停止 rc.conf 所設定的 jail:
# /etc/rc.d/jail start www # /etc/rc.d/jail stop www
目前尚無任何方法來很乾淨地關閉 jail(8)。 此乃因為正常用來關閉系統的指令,目前尚不能在 jail 中使用。 目前關閉 jail 最佳的方式,是在 jail 內執行下列指令,或者 jail 外面透過 jexec(8) 執行下列指令:
# sh /etc/rc.shutdown
詳情請參閱 jail(8) 說明。
可以為 jail 設定許多不同選項,並讓 FreeBSD 的 host 系統與 jail 以各種不同方式組合搭配,以符合更多的應用用途。 本節要介紹的是:
用以微調 jail 行為與安全限制的選項。
可透過 FreeBSD Ports Collection 安裝的高階 jail 管理程式, 搭配這些程式可以達到一些 jail-based 解決方案。
對於 jail 設定的微調,基本上都是透過設定 sysctl(8) 變數來完成。
系統提供一組 sysctl 的特殊子樹,全部相關的選項都在該子樹內,也就是 FreeBSD
kernel 中的 security.jail.*
子樹。 下面則是與 jail
相關的主要 sysctl 設定及預設值,這些名稱都相當容易理解, 如欲更進一步的資訊,請參閱
jail(8) 與 sysctl(8) 說明:
security.jail.set_hostname_allowed: 1
security.jail.socket_unixiproute_only: 1
security.jail.sysvipc_allowed: 0
security.jail.enforce_statfs: 2
security.jail.allow_raw_sockets: 0
security.jail.chflags_allowed: 0
security.jail.jailed: 0
系統管理者可在 host system
透過修改這些設定值來增加、取消 Jail 內 root
帳號的預設限制。 請注意:有些限制是不能取消,在 jail(8) 環境的
root 不能掛載或卸載檔案系統。 此外亦不能載入、 卸載
devfs(8)
規則、設定防火牆規則,或執行其他需修改 kernel 資料的管理作業,例如設定 kernel 的
securelevel
值。
FreeBSD base system 內附一些基本工具,可用來查閱目前使用中的 jail、 並接上(attach) jail 以執行管理指令。 jls(8) 及 jexec(8) 均屬於 FreeBSD base system 之一,可用來執行一些簡單工作:
列出有在使用的 jail 及其相對應的 jail identifier (JID)、IP address、 hostname、路徑。
接上(Attach)正在運作中的 jail,並在其中執行指令以進行管理工作。 這點在當 root 想乾淨關閉 jail 時相當有用, jexec(8) 也可用在 jail 中啟動 shell 以便對其進行管理, 比如:
# jexec 1 tcsh
在諸多 third-party 所提供的 jail 管理工具當中,sysutils/jailutils 是最完整也最好用的。 該套件是由一系列 jail(8) 管理小工具所組成的。 詳情請參閱其網站介紹 。
本節主要以 Simon L. Nielsen <simon@FreeBSD.org>
寫的 http://simon.nitro.dk/service-jails.html 為主,加上 Ken Tom <locals@gmail.com>
所更新的文章。 本節介紹如何設定 FreeBSD 以 jail(8)
功能來增加額外的安全層面。 這部分假設您系統跑的是 RELENG_6_0 或更新的版本,
並且對本章先前部分均能理解。
Jail 的主要問題之一在於如何對其進行更新、升級和管理。 由於每個 jail 都是從頭重新編譯,對於單一 jail 而言, 升級也許還不是很嚴重的問題,因為更新、升級並不會太麻煩。 但對於一堆 jail 而言,升級不僅會耗費太多時間,並相當枯燥乏味。
警告這些設定的前提是您對 FreeBSD 使用、功能運用上有相當的經驗, 若下面的設定對您來說太過複雜,建議您該考慮用較簡易的系統,像是 sysutils/ezjail,其提供更簡單的 FreeBSD jail 管理方式。
基本的想法是在不同的 jail 中儘量以安全的方式來共用資源 —— 採用唯讀的 mount_nullfs(8) 掛載,來讓升級更簡單, 並把各個 service 放到不同的 jail 的作法會更加可行。 此外, 其也提供對於如何增加、刪除、升級 jail 的簡便方式。
注: service 常見的例子包括: HTTP server、DNS server、SMTP server 等等。
本節介紹的設定目的在於:
建立簡易且容易理解的 jail 架構。 也就是說 不必為每個 jail 都執行完整的 installworld 。
讓 jail 的新增、移除更簡單。
讓 jail 的更新、升級更輕鬆。
可以跑自行打造的 FreeBSD 分支。
對安全有更偏執狂的追求,儘可能降低被攻陷的可能。
儘量節省空間與 inode。
如同先前所提到的,這設計主要是靠把唯讀的主要模版 (也就是大家所熟知的 nullfs)掛載到每個 jail,並且讓每個 jail 有個可讀、寫的設備,這設備可以是獨立實體硬碟、 、分割區、或以 vnode 為後端的 md(4) 設備。 在本例當中, 我們採用可讀寫的 nullfs 掛載。
下面的表則介紹檔案系統的配置:
每個 jail 都會掛載到 /home/j 底下的其中一個目錄。
/home/j/mroot 則是每個 jail 共用的模版,並對於所有 jail 而言都是唯讀。
每個 jail 在 /home/j 底下都有一個相對應的空目錄。
每個 jail 都會有 /s 目錄, 該目錄會連到系統的可讀寫部分。
每個 jail 都會在 /home/j/skel 目錄建立自屬的可讀寫空間 。
每個 jailspace (各 jail 可讀寫的部分) 都建在 /home/js>。
注: 這邊假設所有 jail 都放在 /home 分割區。 當然, 也可以依自身需求更改,但接下來的例子中, 也要記得修改相對應的地方。
本節將逐步介紹如何建立 jail 要用的唯讀主模版。
建議先把 FreeBSD 系統升級到最新的 -RELEASE 分支,至於如何做請參閱 Handbook 的 相關章節。 當更新完成之後,就要進行 buildworld 程序,此外還要裝 sysutils/cpdup 套件。 我們將用 portsnap(8) 來下載 FreeBSD Ports Collection, 在 Handbook 中對 Portsnap 章節 中有相關介紹,初學者可以看看。
首先,先建立唯讀的目錄結構給 jail 放 FreeBSD binary, 接著到 FreeBSD source tree 目錄,並安裝 jail 模版:
# mkdir -p /home/j/mroot # cd /usr/src # make installworld DESTDIR=/home/j/mroot
接著跟 FreeBSD source tree 一樣,也把 FreeBSD Ports Collection 放一份供 jail 使用,以備 mergemaster :
# cd /home/j/mroot # mkdir usr/ports # portsnap -p /home/j/mroot/usr/ports fetch extract # cpdup /usr/src /home/j/mroot/usr/src
建立可讀寫部分的骨架:
# mkdir /home/j/skel /home/j/skel/home /home/j/skel/usr-X11R6 /home/j/skel/distfiles # mv etc /home/j/skel # mv usr/local /home/j/skel/usr-local # mv tmp /home/j/skel # mv var /home/j/skel # mv root /home/j/skel
用 mergemaster 來裝漏掉的設定檔。 接下來刪除 mergemaster 所建立的多餘目錄:
# mergemaster -t /home/j/skel/var/tmp/temproot -D /home/j/skel -i # cd /home/j/skel # rm -R bin boot lib libexec mnt proc rescue sbin sys usr dev
現在把可讀寫的檔案系統以 symlink 方式連到唯讀的檔案系統。 請確認 symbolic link 是否有正確連到 s/ 目錄,若目錄建立方式不對, 或指向位置不對,可能會導致安裝失敗。
# cd /home/j/mroot # mkdir s # ln -s s/etc etc # ln -s s/home home # ln -s s/root root # ln -s ../s/usr-local usr/local # ln -s ../s/usr-X11R6 usr/X11R6 # ln -s ../../s/distfiles usr/ports/distfiles # ln -s s/tmp tmp # ln -s s/var var
最後則是新增 /home/j/skel/etc/make.conf ,並填入以下內容:
WRKDIRPREFIX?= /s/portbuild
要設定 WRKDIRPREFIX 才可以讓各 jail 得以順利編譯 FreeBSD ports。請記住 ports 目錄是屬唯讀檔案系統。 而搭配自訂的 WRKDIRPREFIX 才可以讓各 jail 在可讀寫空間進行編譯。
現在已經有完整的 FreeBSD jail 模版,可以在 /etc/rc.conf 內做相關設定。 下面這例子則示範如何建立 3 個 jail:“NS”、 “MAIL”、“WWW”。
在 /etc/fstab 加上下列設定, 以便讓系統自動掛載各 jail 所需的唯讀模版與讀寫空間:
/home/j/mroot /home/j/ns nullfs ro 0 0 /home/j/mroot /home/j/mail nullfs ro 0 0 /home/j/mroot /home/j/www nullfs ro 0 0 /home/js/ns /home/j/ns/s nullfs rw 0 0 /home/js/mail /home/j/mail/s nullfs rw 0 0 /home/js/www /home/j/www/s nullfs rw 0 0
在 /etc/rc.conf 內設定 jail:
jail_enable="YES" jail_set_hostname_allow="NO" jail_list="ns mail www" jail_ns_hostname="ns.example.org" jail_ns_ip="192.168.3.17" jail_ns_rootdir="/usr/home/j/ns" jail_ns_devfs_enable="YES" jail_mail_hostname="mail.example.org" jail_mail_ip="192.168.3.18" jail_mail_rootdir="/usr/home/j/mail" jail_mail_devfs_enable="YES" jail_www_hostname="www.example.org" jail_www_ip="62.123.43.14" jail_www_rootdir="/usr/home/j/www" jail_www_devfs_enable="YES"
警告之所以要把
jail_name_rootdir
從 /home 改為 /usr/home 的原因在於 FreeBSD 預設安裝的 /home 目錄其實只是指向 /usr/home 的 symbolic link。 而jail_name_rootdir
變數須為 實體目錄 而非 symbolic link, 否則 jail 會拒絕啟動。 可以用 realpath(1) 來決定該變數。 詳情請參閱 FreeBSD-SA-07:01.jail 安全通告。
替每個 jail 建立必須的唯讀檔案系統掛載點:
# mkdir /home/j/ns /home/j/mail /home/j/www
為每個 jail 安裝可讀寫的模版。 請注意這時要用 sysutils/cpdup ,它能確保每個目錄都有正確複製。
# mkdir /home/js # cpdup /home/j/skel /home/js/ns # cpdup /home/j/skel /home/js/mail # cpdup /home/j/skel /home/js/www
如此一來就已完成 jail 環境建立,可以準備好要用了。 請先為各 jail 掛載所須的檔案系統,再用 /etc/rc.d/jail script 來啟動:
# mount -a # /etc/rc.d/jail start
現在 jail 應該就會啟動了。 若要檢查是否有正常啟動,可以用 jls(8) 指令來看,該指令的執行結果應該類似下面:
# jls JID IP Address Hostname Path 3 192.168.3.17 ns.example.org /home/j/ns 2 192.168.3.18 mail.example.org /home/j/mail 1 62.123.43.14 www.example.org /home/j/www
此時就可以登入各 jail 並新增帳號與設定相關 service 要用的 daemon 。 上面的 JID 欄代表正在運作中的 jail 編號。 可用下列指令以在 JID 編號 3 的 jail 執行管理工作:
# jexec 3 tcsh
有時由於安全問題或者 jail 內要用新功能,而需要把 FreeBSD 系統升級到更新。 這種安裝設計方式讓既有的 jail 升級變得更加容易。 jail 也可以把 service 停機時間(downtime)降到最低,因為 jail 只需在最後關鍵才需要重開。 此外,萬一新版有問題的話, 它也提供輕鬆回溯到舊版的功能。
首先是照一般方式來升級 host system,再新增臨時的唯讀模版 /home/j/mroot2:
# mkdir /home/j/mroot2 # cd /usr/src # make installworld DESTDIR=/home/j/mroot2 # cd /home/j/mroot2 # cpdup /usr/src usr/src # mkdir s
同樣地,在執行 installworld 時會建立一些用不著的目錄,請把這些砍掉:
# chflags -R 0 var # rm -R etc var root usr/local tmp
重新建立到主系統的可讀寫空間 symlink:
# ln -s s/etc etc # ln -s s/root root # ln -s s/home home # ln -s ../s/usr-local usr/local # ln -s ../s/usr-X11R6 usr/X11R6 # ln -s s/tmp tmp # ln -s s/var var
現在可以關閉 jail:
# /etc/rc.d/jail stop
卸載原先的檔案系統:
# umount /home/j/ns/s # umount /home/j/ns # umount /home/j/mail/s # umount /home/j/mail # umount /home/j/www/s # umount /home/j/www
注: 可讀寫空間(/s) 是掛載在唯讀檔案系統底下,故要先卸載。
把舊的唯讀系統搬走,換成新的。 如此一來, 可同時保留先前系統的備份,以備萬一升級後有問題可回復。 這邊的命名方式採新唯讀檔案系統的建立時間,此外原先 FreeBSD Ports Collection 直接搬到新的檔案系統,以節省硬碟空間與 inode :
# cd /home/j # mv mroot mroot.20060601 # mv mroot2 mroot # mv mroot.20060601/usr/ports mroot/usr
現在新的唯讀模版準備好了,只剩下重新掛載以及啟動 jail:
# mount -a # /etc/rc.d/jail start
最後以 jls(8) 來檢查 jail 是否均正常啟動。 別忘了要在各 jail 內執行 mergemaster,還有相關設定檔以及 rc.d scripts 均要更新。
FreeBSD 5.X introduced new security extensions from the TrustedBSD project based on the POSIX.1e draft. Two of the most significant new security mechanisms are file system Access Control Lists (ACLs) and Mandatory Access Control (MAC) facilities. Mandatory Access Control allows new access control modules to be loaded, implementing new security policies. Some provide protections of a narrow subset of the system, hardening a particular service, while others provide comprehensive labeled security across all subjects and objects. The mandatory part of the definition comes from the fact that the enforcement of the controls is done by administrators and the system, and is not left up to the discretion of users as is done with discretionary access control (DAC, the standard file and System V IPC permissions on FreeBSD).
This chapter will focus on the Mandatory Access Control Framework (MAC Framework), and a set of pluggable security policy modules enabling various security mechanisms.
After reading this chapter, you will know:
What MAC security policy modules are currently included in FreeBSD and their associated mechanisms.
What MAC security policy modules implement as well as the difference between a labeled and non-labeled policy.
How to efficiently configure a system to use the MAC framework.
How to configure the different security policy modules included with the MAC framework.
How to implement a more secure environment using the MAC framework and the examples shown.
How to test the MAC configuration to ensure the framework has been properly implemented.
Before reading this chapter, you should:
Understand UNIX and FreeBSD basics (µÚ 3 章).
Be familiar with the basics of kernel configuration/compilation (µÚ 8 章).
Have some familiarity with security and how it pertains to FreeBSD (µÚ 14 章).
警告The improper use of the information in this chapter may cause loss of system access, aggravation of users, or inability to access the features provided by X11. More importantly, MAC should not be relied upon to completely secure a system. The MAC framework only augments existing security policy; without sound security practices and regular security checks, the system will never be completely secure.
It should also be noted that the examples contained within this chapter are just that, examples. It is not recommended that these particular settings be rolled out on a production system. Implementing the various security policy modules takes a good deal of thought. One who does not fully understand exactly how everything works may find him or herself going back through the entire system and reconfiguring many files or directories.
This chapter covers a broad range of security issues relating to the MAC framework; however, the development of new MAC security policy modules will not be covered. A number of security policy modules included with the MAC framework have specific characteristics which are provided for both testing and new module development. These include the mac_test(4), mac_stub(4) and mac_none(4). For more information on these security policy modules and the various mechanisms they provide, please review the manual pages.
Before reading this chapter, a few key terms must be explained. This will hopefully clear up any confusion that may occur and avoid the abrupt introduction of new terms and information.
compartment: A compartment is a set of programs and data to be partitioned or separated, where users are given explicit access to specific components of a system. Also, a compartment represents a grouping, such as a work group, department, project, or topic. Using compartments, it is possible to implement a need-to-know security policy.
integrity: Integrity, as a key concept, is the level of trust which can be placed on data. As the integrity of the data is elevated, so does the ability to trust that data.
label: A label is a security attribute which can be applied to files, directories, or other items in the system. It could be considered a confidentiality stamp; when a label is placed on a file it describes the security properties for that specific file and will only permit access by files, users, resources, etc. with a similar security setting. The meaning and interpretation of label values depends on the policy configuration: while some policies might treat a label as representing the integrity or secrecy of an object, other policies might use labels to hold rules for access.
level: The increased or decreased setting of a security attribute. As the level increases, its security is considered to elevate as well.
multilabel: The multilabel
property is a file system option which can be set
in single user mode using the tunefs(8) utility,
during the boot operation using the fstab(5) file, or
during the creation of a new file system. This option will permit an administrator
to apply different MAC labels on
different objects. This option only applies to security policy modules which
support labeling.
object: An object or system object is an entity through which information flows under the direction of a subject. This includes directories, files, fields, screens, keyboards, memory, magnetic storage, printers or any other data storage/moving device. Basically, an object is a data container or a system resource; access to an object effectively means access to the data.
policy: A collection of rules which defines how objectives are to be achieved. A policy usually documents how certain items are to be handled. This chapter will consider the term policy in this context as a security policy; i.e. a collection of rules which will control the flow of data and information and define whom will have access to that data and information.
sensitivity: Usually used when discussing MLS. A sensitivity level is a term used to describe how important or secret the data should be. As the sensitivity level increases, so does the importance of the secrecy, or confidentiality of the data.
single label: A single label is
when the entire file system uses one label to enforce access control over the
flow of data. When a file system has this set, which is any time when the
multilabel
option is not set, all files will conform to
the same label setting.
subject: a subject is any active entity that causes information to flow between objects; e.g. a user, user processor, system process, etc. On FreeBSD, this is almost always a thread acting in a process on behalf of a user.
With all of these new terms in mind, consider how the MAC framework augments the security of the system as a whole. The various security policy modules provided by the MAC framework could be used to protect the network and file systems, block users from accessing certain ports and sockets, and more. Perhaps the best use of the policy modules is to blend them together, by loading several security policy modules at a time for a multi-layered security environment. In a multi-layered security environment, multiple policy modules are in effect to keep security in check. This is different to a hardening policy, which typically hardens elements of a system that is used only for specific purposes. The only downside is administrative overhead in cases of multiple file system labels, setting network access control user by user, etc.
These downsides are minimal when compared to the lasting effect of the framework; for instance, the ability to pick and choose which policies are required for a specific configuration keeps performance overhead down. The reduction of support for unneeded policies can increase the overall performance of the system as well as offer flexibility of choice. A good implementation would consider the overall security requirements and effectively implement the various security policy modules offered by the framework.
Thus a system utilizing MAC features should at least guarantee that a user will not be permitted to change security attributes at will; all user utilities, programs and scripts must work within the constraints of the access rules provided by the selected security policy modules; and that total control of the MAC access rules are in the hands of the system administrator.
It is the sole duty of the system administrator to carefully select the correct security policy modules. Some environments may need to limit access control over the network; in these cases, the mac_portacl(4), mac_ifoff(4) and even mac_biba(4) policy modules might make good starting points. In other cases, strict confidentiality of file system objects might be required. Policy modules such as mac_bsdextended(4) and mac_mls(4) exist for this purpose.
Policy decisions could be made based on network configuration. Perhaps only certain users should be permitted access to facilities provided by ssh(1) to access the network or the Internet. The mac_portacl(4) would be the policy module of choice for these situations. But what should be done in the case of file systems? Should all access to certain directories be severed from other groups or specific users? Or should we limit user or utility access to specific files by setting certain objects as classified?
In the file system case, access to objects might be considered confidential to some users, but not to others. For an example, a large development team might be broken off into smaller groups of individuals. Developers in project A might not be permitted to access objects written by developers in project B. Yet they might need to access objects created by developers in project C; that is quite a situation indeed. Using the different security policy modules provided by the MAC framework; users could be divided into these groups and then given access to the appropriate areas without fear of information leakage.
Thus, each security policy module has a unique way of dealing with the overall security of a system. Module selection should be based on a well thought out security policy. In many cases, the overall policy may need to be revised and reimplemented on the system. Understanding the different security policy modules offered by the MAC framework will help administrators choose the best policies for their situations.
The default FreeBSD kernel does not include the option for the MAC framework; thus the following kernel option must be added before trying any of the examples or information in this chapter:
options MAC
And the kernel will require a rebuild and a reinstall.
注意While the various manual pages for MAC policy modules state that they may be built into the kernel, it is possible to lock the system out of the network and more. Implementing MAC is much like implementing a firewall, care must be taken to prevent being completely locked out of the system. The ability to revert back to a previous configuration should be considered while the implementation of MAC remotely should be done with extreme caution.
A MAC label is a security attribute which may be applied to subjects and objects throughout the system.
When setting a label, the user must be able to comprehend what it is, exactly, that is being done. The attributes available on an object depend on the policy module loaded, and that policy modules interpret their attributes in different ways. If improperly configured due to lack of comprehension, or the inability to understand the implications, the result will be the unexpected and perhaps, undesired, behavior of the system.
The security label on an object is used as a part of a security access control decision by a policy. With some policies, the label by itself contains all information necessary to make a decision; in other models, the labels may be processed as part of a larger rule set, etc.
For instance, setting the label of biba/low on a file will represent a label maintained by the Biba security policy module, with a value of “low”.
A few policy modules which support the labeling feature in FreeBSD offer three specific predefined labels. These are the low, high, and equal labels. Although they enforce access control in a different manner with each policy module, you can be sure that the low label will be the lowest setting, the equal label will set the subject or object to be disabled or unaffected, and the high label will enforce the highest setting available in the Biba and MLS policy modules.
Within single label file system environments, only one label may be used on objects.
This will enforce one set of access permissions across the entire system and in many
environments may be all that is required. There are a few cases where multiple labels may
be set on objects or subjects in the file system. For those cases, the multilabel
option may be passed to tunefs(8).
In the case of Biba and MLS, a numeric label may be set to indicate the precise level of hierarchical control. This numeric level is used to partition or sort information into different groups of say, classification only permitting access to that group or a higher group level.
In most cases the administrator will only be setting up a single label to use throughout the file system.
Hey wait, this is similar to DAC! I thought MAC gave control strictly to the administrator. That statement still holds true, to some extent as root is the one in control and who configures the policies so that users are placed in the appropriate categories/access levels. Alas, many policy modules can restrict the root user as well. Basic control over objects will then be released to the group, but root may revoke or modify the settings at any time. This is the hierarchal/clearance model covered by policies such as Biba and MLS.
Virtually all aspects of label policy module configuration will be performed using the base system utilities. These commands provide a simple interface for object or subject configuration or the manipulation and verification of the configuration.
All configuration may be done by use of the setfmac(8) and setpmac(8) utilities. The setfmac command is used to set MAC labels on system objects while the setpmac command is used to set the labels on system subjects. Observe:
# setfmac biba/high test
If no errors occurred with the command above, a prompt will be returned. The only time these commands are not quiescent is when an error occurred; similarly to the chmod(1) and chown(8) commands. In some cases this error may be a “Permission denied” and is usually obtained when the label is being set or modified on an object which is restricted.[13] The system administrator may use the following commands to overcome this:
# setfmac biba/high test “Permission denied” # setpmac biba/low setfmac biba/high test # getfmac test test: biba/high
As we see above, setpmac can be used to override the
policy module's settings by assigning a different label to the invoked process. The
getpmac utility is usually used with currently running
processes, such as sendmail: although it takes a process
ID in place of a command the logic is extremely similar. If users attempt to
manipulate a file not in their access, subject to the rules of the loaded policy
modules, the “Operation not permitted” error will
be displayed by the mac_set_link
function.
For the mac_biba(4), mac_mls(4) and mac_lomac(4) policy modules, the ability to assign simple labels is provided. These take the form of high, equal and low, what follows is a brief description of what these labels provide:
The low label is considered the lowest label setting an object or subject may have. Setting this on objects or subjects will block their access to objects or subjects marked high.
The equal label should only be placed on objects considered to be exempt from the policy.
The high label grants an object or subject the highest possible setting.
With respect to each policy module, each of those settings will instate a different information flow directive. Reading the proper manual pages will further explain the traits of these generic label configurations.
Numeric grade numbers used for comparison:compartment+compartment; thus the following:
biba/10:2+3+6(5:2+3-20:2+3+4+5+6)
May be interpreted as:
“Biba Policy Label”/“Grade 10” :“Compartments 2, 3 and 6”: (“grade 5 ...”)
In this example, the first grade would be considered the “effective grade” with “effective compartments”, the second grade is the low grade and the last one is the high grade. In most configurations these settings will not be used; indeed, they offered for more advanced configurations.
When applied to system objects, they will only have a current grade/compartments as opposed to system subjects as they reflect the range of available rights in the system, and network interfaces, where they are used for access control.
The grade and compartments in a subject and object pair are used to construct a relationship referred to as “dominance”, in which a subject dominates an object, the object dominates the subject, neither dominates the other, or both dominate each other. The “both dominate” case occurs when the two labels are equal. Due to the information flow nature of Biba, you have rights to a set of compartments, “need to know”, that might correspond to projects, but objects also have a set of compartments. Users may have to subset their rights using su or setpmac in order to access objects in a compartment from which they are not restricted.
Users themselves are required to have labels so that their files and processes may properly interact with the security policy defined on the system. This is configured through the login.conf file by use of login classes. Every policy module that uses labels will implement the user class setting.
An example entry containing every policy module setting is displayed below:
default:\ :copyright=/etc/COPYRIGHT:\ :welcome=/etc/motd:\ :setenv=MAIL=/var/mail/$,BLOCKSIZE=K:\ :path=~/bin:/sbin:/bin:/usr/sbin:/usr/bin:/usr/local/sbin:/usr/local/bin:\ :manpath=/usr/share/man /usr/local/man:\ :nologin=/usr/sbin/nologin:\ :cputime=1h30m:\ :datasize=8M:\ :vmemoryuse=100M:\ :stacksize=2M:\ :memorylocked=4M:\ :memoryuse=8M:\ :filesize=8M:\ :coredumpsize=8M:\ :openfiles=24:\ :maxproc=32:\ :priority=0:\ :requirehome:\ :passwordtime=91d:\ :umask=022:\ :ignoretime@:\ :label=partition/13,mls/5,biba/10(5-15),lomac10[2]:
The label option is used to set the user class default label which will be enforced by MAC. Users will never be permitted to modify this value, thus it can be considered not optional in the user case. In a real configuration, however, the administrator will never wish to enable every policy module. It is recommended that the rest of this chapter be reviewed before any of this configuration is implemented.
注: Users may change their label after the initial login; however, this change is subject constraints of the policy. The example above tells the Biba policy that a process's minimum integrity is 5, its maximum is 15, but the default effective label is 10. The process will run at 10 until it chooses to change label, perhaps due to the user using the setpmac command, which will be constrained by Biba to the range set at login.
In all cases, after a change to login.conf, the login class capability database must be rebuilt using cap_mkdb and this will be reflected throughout every forthcoming example or discussion.
It is useful to note that many sites may have a particularly large number of users requiring several different user classes. In depth planning is required as this may get extremely difficult to manage.
Future versions of FreeBSD will include a new way to deal with mapping users to labels; however, this will not be available until some time after FreeBSD 5.3.
Labels may also be set on network interfaces to help control the flow of data across the network. In all cases they function in the same way the policies function with respect to objects. Users at high settings in biba, for example, will not be permitted to access network interfaces with a label of low.
The maclabel
may be passed to ifconfig when setting the MAC label on network interfaces. For example:
# ifconfig bge0 maclabel biba/equal
will set the MAC label of biba/equal on the bge(4) interface. When using a setting similar to biba/high(low-high) the entire label should be quoted; otherwise an error will be returned.
Each policy module which supports labeling has a tunable which may be used to
disable the MAC label on network
interfaces. Setting the label to equal
will have a
similar effect. Review the output from sysctl, the policy
manual pages, or even the information found later in this chapter for those
tunables.
By default the system will use the singlelabel
option. But what does this mean to the administrator? There are several differences
which, in their own right, offer pros and cons to the flexibility in the
systems security model.
The singlelabel
only permits for one label, for
instance biba/high to be used for each subject or object.
It provides for lower administration overhead but decreases the flexibility of
policies which support labeling. Many administrators may want to use the multilabel
option in their security policy.
The multilabel
option will permit each subject or
object to have its own independent MAC
label in place of the standard singlelabel
option
which will allow only one label throughout the partition. The multilabel
and single
label
options are only required for the policies which implement the labeling feature,
including the Biba, Lomac, MLS and
SEBSD policies.
In many cases, the multilabel
may not need to be set
at all. Consider the following situation and security model:
FreeBSD web-server using the MAC framework and a mix of the various policies.
This machine only requires one label, biba/high, for
everything in the system. Here the file system would not require the multilabel
option as a single label will always be in
effect.
But, this machine will be a web server and should have the web server run at biba/low to prevent write up capabilities. The Biba policy and how it works will be discussed later, so if the previous comment was difficult to interpret just continue reading and return. The server could use a separate partition set at biba/low for most if not all of its runtime state. Much is lacking from this example, for instance the restrictions on data, configuration and user settings; however, this is just a quick example to prove the aforementioned point.
If any of the non-labeling policies are to be used, then the multilabel
option would never be required. These include the
seeotheruids, portacl and partition policies.
It should also be noted that using multilabel
with a
partition and establishing a security model based on multilabel
functionality could open the doors for higher
administrative overhead as everything in the file system would have a label.
This includes directories, files, and even device nodes.
The following command will set multilabel
on the file
systems to have multiple labels. This may only be done in single user mode:
# tunefs -l enable /
This is not a requirement for the swap file system.
注: Some users have experienced problems with setting the
multilabel
flag on the root partition. If this is the case, please review the µÚ 16.16 節 of this chapter.
Without any modules loaded, there are still some parts of MAC which may be configured using the sysctl interface. These tunables are described below and in all cases the number one (1) means enabled while the number zero (0) means disabled:
security.mac.enforce_fs defaults to one (1) and enforces MAC file system policies on the file systems.
security.mac.enforce_kld defaults to one (1) and enforces MAC kernel linking policies on the dynamic kernel linker (see kld(4)).
security.mac.enforce_network defaults to one (1) and enforces MAC network policies.
security.mac.enforce_pipe defaults to one (1) and enforces MAC policies on pipes.
security.mac.enforce_process defaults to one (1) and enforces MAC policies on processes which utilize inter-process communication.
security.mac.enforce_socket defaults to one (1) and enforces MAC policies on sockets (see the socket(2) manual page).
security.mac.enforce_system defaults to one (1) and enforces MAC policies on system activities such as accounting and rebooting.
security.mac.enforce_vm defaults to one (1) and enforces MAC policies on the virtual memory system.
注: Every policy or MAC option supports tunables. These usually hang off of the security.mac.<policyname> tree. To view all of the tunables from MAC use the following command:
# sysctl -da | grep mac
This should be interpreted as all of the basic MAC policies are enforced by default. If the modules were built into the kernel the system would be extremely locked down and most likely unable to communicate with the local network or connect to the Internet, etc. This is why building the modules into the kernel is not completely recommended. Not because it limits the ability to disable features on the fly with sysctl, but it permits the administrator to instantly switch the policies of a system without the requirement of rebuilding and reinstalling a new system.
Every module included with the MAC framework may be either compiled into the kernel as noted above or loaded as a run-time kernel module. The recommended method is to add the module name to the /boot/loader.conf file so that it will load during the initial boot operation.
The following sections will discuss the various MAC modules and cover their features. Implementing them into a
specific environment will also be a consideration of this chapter. Some modules support
the use of labeling, which is controlling access by enforcing a label such as “this is
allowed and this is not”. A label configuration file may control how files may be
accessed, network communication can be exchanged, and more. The previous section showed
how the multilabel
flag could be set on file systems to
enable per-file or per-partition access control.
A single label configuration would enforce only one label across the system, that is
why the tunefs option is called multilabel
.
Module name: mac_seeotheruids.ko
Kernel configuration line: options MAC_SEEOTHERUIDS
Boot option: mac_seeotheruids_load="YES"
The mac_seeotheruids(4) module mimics and extends the security.bsd.see_other_uids and security.bsd.see_other_gids sysctl tunables. This option does not require any labels to be set before configuration and can operate transparently with the other modules.
After loading the module, the following sysctl tunables may be used to control the features:
security.mac.seeotheruids.enabled will enable the module's features and use the default settings. These default settings will deny users the ability to view processes and sockets owned by other users.
security.mac.seeotheruids.specificgid_enabled will allow a certain group to be exempt from this policy. To exempt specific groups from this policy, use the security.mac.seeotheruids.specificgid=XXX sysctl tunable. In the above example, the XXX should be replaced with the numeric group ID to be exempted.
security.mac.seeotheruids.primarygroup_enabled is used to exempt specific primary groups from this policy. When using this tunable, the security.mac.seeotheruids.specificgid_enabled may not be set.
Module name: mac_bsdextended.ko
Kernel configuration line: options MAC_BSDEXTENDED
Boot option: mac_bsdextended_load="YES"
The mac_bsdextended(4) module enforces the file system firewall. This module's policy provides an extension to the standard file system permissions model, permitting an administrator to create a firewall-like ruleset to protect files, utilities, and directories in the file system hierarchy.
The policy may be created using a utility, ugidfw(8), that has a syntax similar to that of ipfw(8). More tools can be written by using the functions in the libugidfw(3) library.
Extreme caution should be taken when working with this module; incorrect use could block access to certain parts of the file system.
After the mac_bsdextended(4) module has been loaded, the following command may be used to list the current rule configuration:
# ugidfw list 0 slots, 0 rules
As expected, there are no rules defined. This means that everything is still completely accessible. To create a rule which will block all access by users but leave root unaffected, simply run the following command:
# ugidfw add subject not uid root new object not uid root mode n
注: In releases prior to FreeBSD 5.3, the
add
parameter did not exist. In those cases theset
should be used instead. See below for a command example.
This is a very bad idea as it will block all users from issuing even the most simple commands, such as ls. A more patriotic list of rules might be:
# ugidfw set 2 subject uid user1 object uid user2 mode n # ugidfw set 3 subject uid user1 object gid user2 mode n
This will block any and all access, including directory listings, to user2's home directory from the username user1.
In place of user1, the not uid user2
could be passed. This will enforce the
same access restrictions above for all users in place of just one user.
注: The root user will be unaffected by these changes.
This should give a general idea of how the mac_bsdextended(4) module may be used to help fortify a file system. For more information, see the mac_bsdextended(4) and the ugidfw(8) manual pages.
Module name: mac_ifoff.ko
Kernel configuration line: options MAC_IFOFF
Boot option: mac_ifoff_load="YES"
The mac_ifoff(4) module exists solely to disable network interfaces on the fly and keep network interfaces from being brought up during the initial system boot. It does not require any labels to be set up on the system, nor does it have a dependency on other MAC modules.
Most of the control is done through the sysctl tunables listed below.
security.mac.ifoff.lo_enabled will enable/disable all traffic on the loopback (lo(4)) interface.
security.mac.ifoff.bpfrecv_enabled will enable/disable all traffic on the Berkeley Packet Filter interface (bpf(4))
security.mac.ifoff.other_enabled will enable/disable traffic on all other interfaces.
One of the most common uses of mac_ifoff(4) is network monitoring in an environment where network traffic should not be permitted during the boot sequence. Another suggested use would be to write a script which uses security/aide to automatically block network traffic if it finds new or altered files in protected directories.
Module name: mac_portacl.ko
Kernel configuration line: MAC_PORTACL
Boot option: mac_portacl_load="YES"
The mac_portacl(4) module is used to limit binding to local TCP and UDP ports using a variety of sysctl variables. In essence mac_portacl(4) makes it possible to allow non-root users to bind to specified privileged ports, i.e. ports fewer than 1024.
Once loaded, this module will enable the MAC policy on all sockets. The following tunables are available:
security.mac.portacl.enabled will enable/disable the policy completely.[14]
security.mac.portacl.port_high will set the highest port number that mac_portacl(4) will enable protection for.
security.mac.portacl.suser_exempt will, when set to a non-zero value, exempt the root user from this policy.
security.mac.portacl.rules will specify the actual mac_portacl policy; see below.
The actual mac_portacl policy, as specified in the security.mac.portacl.rules sysctl, is a text string of the form: rule[,rule,...] with as many rules as needed. Each rule is of the
form: idtype:id:protocol:port. The idtype
parameter can be uid or gid and used to interpret the id
parameter as either a user id or group id, respectively. The protocol
parameter is used to determine if the rule should apply
to TCP or UDP by setting the parameter to tcp or udp. The final port
parameter is the
port number to allow the specified user or group to bind to.
注: Since the ruleset is interpreted directly by the kernel only numeric values can be used for the user ID, group ID, and port parameters. I.e. user, group, and port service names cannot be used.
By default, on UNIX-like systems, ports fewer than 1024 can only be used by/bound to privileged processes, i.e. those run as root. For mac_portacl(4) to allow non-privileged processes to bind to ports below 1024 this standard UNIX restriction has to be disabled. This can be accomplished by setting the sysctl(8) variables net.inet.ip.portrange.reservedlow and net.inet.ip.portrange.reservedhigh to zero.
See the examples below or review the mac_portacl(4) manual page for further information.
The following examples should illuminate the above discussion a little better:
# sysctl security.mac.portacl.port_high=1023 # sysctl net.inet.ip.portrange.reservedlow=0 net.inet.ip.portrange.reservedhigh=0
First we set mac_portacl(4) to cover the standard privileged ports and disable the normal UNIX bind restrictions.
# sysctl security.mac.portacl.suser_exempt=1
The root user should not be crippled by this policy, thus set the security.mac.portacl.suser_exempt to a non-zero value. The mac_portacl(4) module has now been set up to behave the same way UNIX-like systems behave by default.
# sysctl security.mac.portacl.rules=uid:80:tcp:80
Allow the user with UID 80 (normally the www user) to bind to port 80. This can be used to allow the www user to run a web server without ever having root privilege.
# sysctl security.mac.portacl.rules=uid:1001:tcp:110,uid:1001:tcp:995
Permit the user with the UID of 1001 to bind to the TCP ports 110 (“pop3”) and 995 (“pop3s”). This will permit this user to start a server that accepts connections on ports 110 and 995.
The next few sections will discuss MAC policies which use labels.
From here on this chapter will focus on the features of mac_biba(4), mac_lomac(4), mac_partition(4), and mac_mls(4).
注: This is an example configuration only and should not be considered for a production implementation. The goal is to document and show the syntax as well as examples for implementation and testing.
For these policies to work correctly several preparations must be made.
The following changes are required in the login.conf file:
An insecure class, or another class of similar type, must be added. The login class of insecure is not required and just used as an example here; different configurations may use another class name.
The insecure class should have the following settings and definitions. Several of these can be altered but the line which defines the default label is a requirement and must remain.
insecure:\ :copyright=/etc/COPYRIGHT:\ :welcome=/etc/motd:\ :setenv=MAIL=/var/mail/$,BLOCKSIZE=K:\ :path=~/bin:/sbin:/bin:/usr/sbin:/usr/bin:/usr/local/sbin:/usr/local/bin:\ :manpath=/usr/share/man /usr/local/man:\ :nologin=/usr/sbin/nologin:\ :cputime=1h30m:\ :datasize=8M:\ :vmemoryuse=100M:\ :stacksize=2M:\ :memorylocked=4M:\ :memoryuse=8M:\ :filesize=8M:\ :coredumpsize=8M:\ :openfiles=24:\ :maxproc=32:\ :priority=0:\ :requirehome:\ :passwordtime=91d:\ :umask=022:\ :ignoretime@:\ :label=partition/13,mls/5,biba/low:
The cap_mkdb(1) command needs to be ran on login.conf(5) before any of the users can be switched over to the new class.
The root username should also be placed into a login class; otherwise, almost every command executed by root will require the use of setpmac.
警告Rebuilding the login.conf database may cause some errors later with the daemon class. Simply uncommenting the daemon account and rebuilding the database should alleviate these issues.
Ensure that all partitions on which MAC labeling will be implemented support the multilabel
. We must do this because many of the examples here
contain different labels for testing purposes. Review the output from the mount command as a precautionary measure.
Switch any users who will have the higher security mechanisms enforced over to the new user class. A quick run of pw(8) or vipw(8) should do the trick.
Module name: mac_partition.ko
Kernel configuration line: options MAC_PARTITION
Boot option: mac_partition_load="YES"
The mac_partition(4) policy will drop processes into specific “partitions” based on their MAC label. Think of it as a special type of jail(8), though that is hardly a worthy comparison.
This is one module that should be added to the loader.conf(5) file so that it loads and enables the policy during the boot process.
Most configuration for this policy is done using the setpmac(8) utility which will be explained below. The following sysctl tunable is available for this policy:
security.mac.partition.enabled will enable the enforcement of MAC process partitions.
When this policy is enabled, users will only be permitted to see their processes but will not be permitted to work with certain utilities. For instance, a user in the insecure class above will not be permitted to access the top command as well as many other commands that must spawn a process.
To set or drop utilities into a partition label, use the setpmac utility:
# setpmac partition/13 top
This will add the top command to the label set on users in the insecure class. Note that all processes spawned by users in the insecure class will stay in the partition/13 label.
The following command will show you the partition label and the process list:
# ps Zax
This next command will allow the viewing of another user's process partition label and that user's currently running processes:
# ps -ZU trhodes
注: Users can see processes in root's label unless the mac_seeotheruids(4) policy is loaded.
A really crafty implementation could have all of the services disabled in /etc/rc.conf and started by a script that starts them with the proper labeling set.
注: The following policies support integer settings in place of the three default labels offered. These options, including their limitations, are further explained in the module manual pages.
Module name: mac_mls.ko
Kernel configuration line: options MAC_MLS
Boot option: mac_mls_load="YES"
The mac_mls(4) policy controls access between subjects and objects in the system by enforcing a strict information flow policy.
In MLS environments, a “clearance” level is set in each subject or objects label, along with compartments. Since these clearance or sensibility levels can reach numbers greater than six thousand; it would be a daunting task for any system administrator to thoroughly configure each subject or object. Thankfully, three “instant” labels are already included in this policy.
These labels are mls/low, mls/equal and mls/high. Since these labels are described in depth in the manual page, they will only get a brief description here:
The mls/low label contains a low configuration which permits it to be dominated by all other objects. Anything labeled with mls/low will have a low clearance level and not be permitted to access information of a higher level. In addition, this label will prevent objects of a higher clearance level from writing or passing information on to them.
The mls/equal label should be placed on objects considered to be exempt from the policy.
The mls/high label is the highest level of clearance possible. Objects assigned this label will hold dominance over all other objects in the system; however, they will not permit the leaking of information to objects of a lower class.
MLS provides for:
A hierarchical security level with a set of non hierarchical categories;
Fixed rules: no read up, no write down (a subject can have read access to objects on its own level or below, but not above. Similarly, a subject can have write access to objects on its own level or above but not beneath.);
Secrecy (preventing inappropriate disclosure of data);
Basis for the design of systems that concurrently handle data at multiple sensitivity levels (without leaking information between secret and confidential).
The following sysctl tunables are available for the configuration of special services and interfaces:
security.mac.mls.enabled is used to enable/disable the MLS policy.
security.mac.mls.ptys_equal will label all pty(4) devices as mls/equal during creation.
security.mac.mls.revocation_enabled is used to revoke access to objects after their label changes to a label of a lower grade.
security.mac.mls.max_compartments is used to set the maximum number of compartment levels with objects; basically the maximum compartment number allowed on a system.
To manipulate the MLS labels, the setfmac(8) command has been provided. To assign a label to an object, issue the following command:
# setfmac mls/5 test
To get the MLS label for the file test issue the following command:
# getfmac test
This is a summary of the MLS policy's features. Another approach is to create a master policy file in /etc which specifies the MLS policy information and to feed that file into the setfmac command. This method will be explained after all policies are covered.
Observations: an object with lower clearance is unable to observe higher clearance processes. A basic policy would be to enforce mls/high on everything not to be read, even if it needs to be written. Enforce mls/low on everything not to be written, even if it needs to be read. And finally enforce mls/equal on the rest. All users marked insecure should be set at mls/low.
Module name: mac_biba.ko
Kernel configuration line: options MAC_BIBA
Boot option: mac_biba_load="YES"
The mac_biba(4) module loads the MAC Biba policy. This policy works much like that of the MLS policy with the exception that the rules for information flow are slightly reversed. This is said to prevent the downward flow of sensitive information whereas the MLS policy prevents the upward flow of sensitive information; thus, much of this section can apply to both policies.
In Biba environments, an “integrity” label is set on each subject or object. These labels are made up of hierarchal grades, and non-hierarchal components. As an object's or subject's grade ascends, so does its integrity.
Supported labels are biba/low, biba/equal, and biba/high; as explained below:
The biba/low label is considered the lowest integrity an object or subject may have. Setting this on objects or subjects will block their write access to objects or subjects marked high. They still have read access though.
The biba/equal label should only be placed on objects considered to be exempt from the policy.
The biba/high label will permit writing to objects set at a lower label, but not permit reading that object. It is recommended that this label be placed on objects that affect the integrity of the entire system.
Biba provides for:
Hierarchical integrity level with a set of non hierarchical integrity categories;
Fixed rules: no write up, no read down (opposite of MLS). A subject can have write access to objects on its own level or below, but not above. Similarly, a subject can have read access to objects on its own level or above, but not below;
Integrity (preventing inappropriate modification of data);
Integrity levels (instead of MLS sensitivity levels).
The following sysctl tunables can be used to manipulate the Biba policy.
security.mac.biba.enabled may be used to enable/disable enforcement of the Biba policy on the target machine.
security.mac.biba.ptys_equal may be used to disable the Biba policy on pty(4) devices.
security.mac.biba.revocation_enabled will force the revocation of access to objects if the label is changed to dominate the subject.
To access the Biba policy setting on system objects, use the setfmac and getfmac commands:
# setfmac biba/low test # getfmac test test: biba/low
Observations: a lower integrity subject is unable to write to a higher integrity subject; a higher integrity subject cannot observe or read a lower integrity object.
Module name: mac_lomac.ko
Kernel configuration line: options MAC_LOMAC
Boot option: mac_lomac_load="YES"
Unlike the MAC Biba policy, the mac_lomac(4) policy permits access to lower integrity objects only after decreasing the integrity level to not disrupt any integrity rules.
The MAC version of the Low-watermark integrity policy, not to be confused with the older lomac(4) implementation, works almost identically to Biba, but with the exception of using floating labels to support subject demotion via an auxiliary grade compartment. This secondary compartment takes the form of [auxgrade]. When assigning a lomac policy with an auxiliary grade, it should look a little bit like: lomac/10[2] where the number two (2) is the auxiliary grade.
The MAC LOMAC policy relies on the ubiquitous labeling of all system objects with integrity labels, permitting subjects to read from low integrity objects and then downgrading the label on the subject to prevent future writes to high integrity objects. This is the [auxgrade] option discussed above, thus the policy may provide for greater compatibility and require less initial configuration than Biba.
Like the Biba and MLS policies; the setfmac and setpmac utilities may be used to place labels on system objects:
# setfmac /usr/home/trhodes lomac/high[low] # getfmac /usr/home/trhodes lomac/high[low]
Notice the auxiliary grade here is low, this is a feature provided only by the MAC LOMAC policy.
The following demonstration will implement a secure environment using various MAC modules with properly configured policies. This is only a test and should not be considered the complete answer to everyone's security woes. Just implementing a policy and ignoring it never works and could be disastrous in a production environment.
Before beginning this process, the multilabel option must be set on each file system as stated at the beginning of this chapter. Not doing so will result in errors.
Begin the procedure by adding the following user class to the /etc/login.conf file:
insecure:\ :copyright=/etc/COPYRIGHT:\ :welcome=/etc/motd:\ :setenv=MAIL=/var/mail/$,BLOCKSIZE=K:\ :path=~/bin:/sbin:/bin:/usr/sbin:/usr/bin:/usr/local/sbin:/usr/local/bin :manpath=/usr/share/man /usr/local/man:\ :nologin=/usr/sbin/nologin:\ :cputime=1h30m:\ :datasize=8M:\ :vmemoryuse=100M:\ :stacksize=2M:\ :memorylocked=4M:\ :memoryuse=8M:\ :filesize=8M:\ :coredumpsize=8M:\ :openfiles=24:\ :maxproc=32:\ :priority=0:\ :requirehome:\ :passwordtime=91d:\ :umask=022:\ :ignoretime@:\ :label=partition/13,mls/5:
And adding the following line to the default user class:
:label=mls/equal,biba/equal,partition/15:
Once this is completed, the following command must be issued to rebuild the database:
# cap_mkdb /etc/login.conf
Add the following lines to /boot/loader.conf so the required modules will load during system initialization:
mac_biba_load="YES" mac_mls_load="YES" mac_seeotheruids_load="YES" mac_partition_load="YES"
All user accounts that are not root or system users will now require a login class. The login class is required otherwise users will be refused access to common commands such as vi(1). The following sh script should do the trick:
# for x in `awk -F: '($3 >= 1001) && ($3 != 65534) { print $1 }' \ /etc/passwd`; do pw usermod $x -L insecure; done;
The cap_mkdb command will need to be run on /etc/master.passwd after this change.
A contexts file should now be created; the following example was taken from Robert Watson's example policy and should be placed in /etc/policy.contexts.
# This is the default BIBA/MLS policy for this system. .* biba/high,mls/high /sbin/dhclient biba/high(low),mls/high(low) /dev(/.*)? biba/equal,mls/equal # This is not an exhaustive list of all "privileged" devices. /dev/mdctl biba/high,mls/high /dev/pci biba/high,mls/high /dev/k?mem biba/high,mls/high /dev/io biba/high,mls/high /dev/agp.* biba/high,mls/high (/var)?/tmp(/.*)? biba/equal,mls/equal /tmp/\.X11-unix biba/high(equal),mls/high(equal) /tmp/\.X11-unix/.* biba/equal,mls/equal /proc(/.*)? biba/equal,mls/equal /mnt.* biba/low,mls/low (/usr)?/home biba/high(low),mls/high(low) (/usr)?/home/.* biba/low,mls/low /var/mail(/.*)? biba/low,mls/low /var/spool/mqueue(/.*)? biba/low,mls/low (/mnt)?/cdrom(/.*)? biba/high,mls/high (/usr)?/home/(ftp|samba)(/.*)? biba/high,mls/high /var/log/sendmail\.st biba/low,mls/low /var/run/utmp biba/equal,mls/equal /var/log/(lastlog|wtmp) biba/equal,mls/equal
This policy will enforce security by setting restrictions on both the downward and upward flow of information with regards to the directories and utilities listed on the left.
This can now be read into our system by issuing the following command:
# setfsmac -ef /etc/policy.contexts / # setfsmac -ef /etc/policy.contexts /usr
注: The above file system layout may be different depending on environment.
The /etc/mac.conf file requires the following modifications in the main section:
default_labels file ?biba,?mls default_labels ifnet ?biba,?mls default_labels process ?biba,?mls,?partition default_labels socket ?biba,?mls
Add a user with the adduser command and place that user in the insecure class for these tests.
The examples below will show a mix of root and regular user tests; use the prompt to distinguish between the two.
% getpmac biba/15(15-15),mls/15(15-15),partition/15 # setpmac partition/15,mls/equal top
注: The top process will be killed before we start another top process.
% ps Zax biba/15(15-15),mls/15(15-15),partition/15 1096 #C: S 0:00.03 -su (bash) biba/15(15-15),mls/15(15-15),partition/15 1101 #C: R+ 0:00.01 ps Zax
We should not be permitted to see any processes owned by other users.
Disable the MAC seeotheruids policy for the rest of these tests:
# sysctl security.mac.seeotheruids.enabled=0 % ps Zax LABEL PID TT STAT TIME COMMAND biba/equal(low-high),mls/equal(low-high),partition/15 1122 #C: S+ 0:00.02 top biba/15(15-15),mls/15(15-15),partition/15 1096 #C: S 0:00.05 -su (bash) biba/15(15-15),mls/15(15-15),partition/15 1123 #C: R+ 0:00.01 ps Zax
All users should be permitted to see every process in their partition.
# setpmac partition/15,mls/equal,biba/high\(high-high\) top % ps Zax LABEL PID TT STAT TIME COMMAND biba/high(high-high),mls/equal(low-high),partition/15 1251 #C: S+ 0:00.02 top biba/15(15-15),mls/15(15-15),partition/15 1096 #C: S 0:00.06 -su (bash) biba/15(15-15),mls/15(15-15),partition/15 1157 #C: R+ 0:00.00 ps Zax
The Biba policy allows us to read higher-labeled objects.
# setpmac partition/15,mls/equal,biba/low top % ps Zax LABEL PID TT STAT TIME COMMAND biba/15(15-15),mls/15(15-15),partition/15 1096 #C: S 0:00.07 -su (bash) biba/15(15-15),mls/15(15-15),partition/15 1226 #C: R+ 0:00.01 ps Zax
The Biba policy does not allow lower-labeled objects to be read; however, MLS does.
% ifconfig bge0 | grep maclabel maclabel biba/low(low-low),mls/low(low-low) % ping -c 1 192.0.34.166 PING 192.0.34.166 (192.0.34.166): 56 data bytes ping: sendto: Permission denied
Users are unable to ping example.com, or any domain for that matter.
To prevent this error from occurring, run the following command:
# sysctl security.mac.biba.trust_all_interfaces=1
This sets the default interface label to insecure mode, so the default Biba policy label will not be enforced.
# ifconfig bge0 maclabel biba/equal\(low-high\),mls/equal\(low-high\) % ping -c 1 192.0.34.166 PING 192.0.34.166 (192.0.34.166): 56 data bytes 64 bytes from 192.0.34.166: icmp_seq=0 ttl=50 time=204.455 ms --- 192.0.34.166 ping statistics --- 1 packets transmitted, 1 packets received, 0% packet loss round-trip min/avg/max/stddev = 204.455/204.455/204.455/0.000 ms
By setting a more correct label, we can issue ping requests.
Now to create a few files for some read and write testing procedures:
# touch test1 test2 test3 test4 test5 # getfmac test1 test1: biba/equal,mls/equal # setfmac biba/low test1 test2; setfmac biba/high test4 test5; \ setfmac mls/low test1 test3; setfmac mls/high test2 test4 # setfmac mls/equal,biba/equal test3 && getfmac test? test1: biba/low,mls/low test2: biba/low,mls/high test3: biba/equal,mls/equal test4: biba/high,mls/high test5: biba/high,mls/equal # chown testuser:testuser test?
All of these files should now be owned by our testuser user. And now for some read tests:
% ls test1 test2 test3 test4 test5 % ls test? ls: test1: Permission denied ls: test2: Permission denied ls: test4: Permission denied test3 test5
We should not be permitted to observe pairs; e.g.: (biba/low,mls/low), (biba/low,mls/high) and (biba/high,mls/high). And of course, read access should be denied. Now for some write tests:
% for i in `echo test*`; do echo 1 > $i; done -su: test1: Permission denied -su: test4: Permission denied -su: test5: Permission denied
Like with the read tests, write access should not be permitted to write pairs; e.g.: (biba/low,mls/high) and (biba/equal,mls/equal).
% cat test? cat: test1: Permission denied cat: test2: Permission denied 1 cat: test4: Permission denied
And now as root:
# cat test2 1
A separate location for the web data which users must be capable of accessing will be appointed. This will permit biba/high processes access rights to the web data.
Begin by creating a directory to store the web data in:
# mkdir /usr/home/cvs
Now initialize it with cvs:
# cvs -d /usr/home/cvs init
The first goal is to enable the biba policy, thus the mac_biba_enable="YES" should be placed in /boot/loader.conf. This assumes that support for MAC has been enabled in the kernel.
From this point on everything in the system should be set at biba/high by default.
The following modification must be made to the login.conf file, under the default user class:
:ignoretime@:\ :umask=022:\ :label=biba/high:
Every user should now be placed in the default class; a command such as:
# for x in `awk -F: '($3 >= 1001) && ($3 != 65534) { print $1 }' \ /etc/passwd`; do pw usermod $x -L default; done;
will accomplish this task in a few moments.
Now create another class, web, a copy of default, with the label setting of biba/low.
Create a user who will be used to work with the main web data stored in a cvs repository. This user must be placed in our new login class, web.
Since the default is biba/high everywhere, the repository will be the same. The web data must also be the same for users to have read/write access to it; however, since our web server will be serving data that biba/high users must access, we will need to downgrade the data as a whole.
The perfect tools for this are sh(1) and cron(8) and are already provided in FreeBSD. The following script should do everything we want:
PATH=/bin:/usr/bin:/usr/local/bin; export PATH; CVSROOT=/home/repo; export CVSROOT; cd /home/web; cvs -qR checkout -P htdocs; exit;
注: In many cases the cvs Id tags must be placed into the web site data files.
This script may now be placed into web's home directory and the following crontab(1) entry added:
# Check out the web data as biba/low every twelve hours: 0 */12 * * * web /home/web/checkout.sh
This will check out the HTML sources every twelve hours on the machine.
The default startup method for the web server must also be modified to start the process as biba/low. This can be done by making the following modification to the /usr/local/etc/rc.d/apache.sh script:
command="setpmac biba/low /usr/local/sbin/httpd"
The Apache configuration must be altered to work with the biba/low policy. In this case the software must be configured to append to the log files in a directory set at biba/low or else “access denied” errors will be returned.
注: Following this example requires that the docroot directive be set to /home/web/htdocs; otherwise, Apache will fail when trying to locate the directory to serve documents from.
Other configuration variables must be altered as well, including the PID file, Scoreboardfile, DocumentRoot, log file locations, or any other variable which requires write access. When using biba, all write access will be denied to the server in areas not set at biba/low.
During the development stage, a few users reported problems with normal configuration. Some of these problems are listed below:
multilabel
option cannot be enabled on /The multilabel
flag does not stay enabled on my root
(/) partition!
It seems that one out of every fifty users has this problem, indeed, we had this problem during our initial configuration. Further observation of this so called “bug” has lead me to believe that it is a result of either incorrect documentation or misinterpretation of the documentation. Regardless of why it happened, the following steps may be taken to resolve it:
Edit /etc/fstab and set the root partition at ro
for read-only.
Reboot into single user mode.
Run tunefs -l enable
on /.
Reboot the system into normal mode.
Run mount -urw
/ and change the ro
back to rw
in /etc/fstab and reboot the
system again.
Double-check the output from the mount to ensure that
multilabel
has been properly set on the root file
system.
After establishing a secure environment with MAC, I am no longer able to start X!
This could be caused by the MAC partition policy or by a mislabeling in one of the MAC labeling policies. To debug, try the following:
Check the error message; if the user is in the insecure class, the partition policy may be the culprit. Try setting the user's class back to the default class and rebuild the database with the cap_mkdb command. If this does not alleviate the problem, go to step two.
Double-check the label policies. Ensure that the policies are set correctly for the user in question, the X11 application, and the /dev entries.
If neither of these resolve the problem, send the error message and a description of your environment to the TrustedBSD discussion lists located at the TrustedBSD website or to the FreeBSD general questions 郵遞論壇 mailing list.
When I attempt to switch from the root to another user in the system, the error message “_secure_path: unable to state .login_conf”.
This message is usually shown when the user has a higher label setting then that
of the user whom they are attempting to become. For instance a user on the system,
joe, has a default label of biba/low
. The root user, who has a
label of biba/high
, cannot view joe's home directory. This will happen regardless if root has used the su command to
become joe, or not. In this scenario, the Biba integrity
model will not permit root to view objects set at a lower
integrity level.
In normal or even single user mode, the root is not recognized. The whoami command returns 0 (zero) and su returns “who are you?”. What could be going on?
This can happen if a labeling policy has been disabled, either by a sysctl(8) or the
policy module was unloaded. If the policy is being disabled or has been temporarily
disabled, then the login capabilities database needs to be reconfigured with
the label
option being removed. Double check the login.conf file to ensure that all label
options have been removed and rebuild the database with
the cap_mkdb command.
The FreeBSD 7-CURRENT development branch includes support for Event Auditing based on the POSIX.1e draft and Sun's published BSM API and file format. Event auditing permits the selective logging of security-relevant system events for the purposes of post-mortem analysis, system monitoring, and intrusion detection. After some settling time in FreeBSD 7-CURRENT, this support will be merged to FreeBSD 6-STABLE and appear in subsequent releases.
警告The audit facility in FreeBSD is considered experimental, and production deployment should occur only after careful consideration of the risks of deploying experimental software.
This chapter will focus mainly on the installation and configuration of Event Auditing. Explanation of audit policies, and an example configuration will be provided for the convenience of the reader.
After reading this chapter, you will know:
What Event Auditing is and how it works.
How to configure Event Auditing on FreeBSD for users and processes.
Before reading this chapter, you should:
Understand UNIX and FreeBSD basics (µÚ 3 章).
Be familiar with the basics of kernel configuration/compilation (µÚ 8 章).
Have some familiarity with security and how it pertains to FreeBSD (µÚ 14 章).
警告Event auditing can generate a great deal of log file data, exceeding gigabytes a week in some configurations. An administrator should read this chapter in its entirety to avoid possible self-inflicted DoS attacks due to improper configuration.
The implementation of Event Auditing in FreeBSD is similar to that of the Sun™ Basic Security Module, or BSM library. Thus, the configuration is almost completely interchangeable with Solaris and Mac OS X/Darwin operating systems.
Before reading this chapter, a few key terms must be explained. This is intended to clear up any confusion that may occur and to avoid the abrupt introduction of new terms and information.
event: An auditable event is an event that can be logged using the audit subsystem. The administrator can configure which events will be audited. Examples of security-relevant events include the creation of a file, the building of a network connection, or the logging in of a user. Events are either “attributable”, meaning that they can be traced back to a user authentication, or “non-attributable”. Examples of non-attributable events are any events that occur before authentication has succeeded in the login process, such as failed authentication attempts.
class: Events may be assigned to one or more classes, usually based on the general category of the events, such as “file creation”, “file access”, or “network”. Login and logout events are assigned to the lo class. The use of classes allows the administrator to specify high level auditing rules without having to specify whether each individual auditable operation will be logged.
record: A record is a log entry describing a security event. Records typically have a record event type, information on the subject (user) associated with the event, time information, information on any objects, such as files, and information on whether the event corresponded to a successful operation.
trail: An audit trail, or log file, consists of a series of audit records describing security events. Typically, trails are in roughly chronological order with respect to the time events completed. Only authorized processes are allowed to commit records to the audit trail.
prefix: A prefix is considered to be the configuration element used to toggle auditing for success and failed events.
Support for Event Auditing is installed with the normal installworld process. An administrator may confirm this by viewing the contents of /etc/security. Files beginning with the word audit should be present. For example, audit_event.
In-kernel support for the framework must also exist. This may be done by adding the following lines to the local kernel configuration file:
options AUDIT
Rebuild and reinstall the kernel via the normal process explained in µÚ 8 章.
Once completed, enable the audit daemon by adding the following line to rc.conf(5):
auditd_enable="YES"
Functionality not provided by the default may be added here with the auditd_flags
option.
All configuration files for security audit are found in /etc/security. The following files must be present before the audit daemon is started:
audit_class - Contains the definitions of the audit classes.
audit_control - Controls aspects of the audit subsystem, such as default audit classes, minimum disk space to leave on the audit log volume, etc.
audit_event - Defines the kernel audit events. These map, mostly, to system calls.
audit_user - The events to audit for individual users. Users not appearing here will be subject to the default configuration in the control configuration file.
audit_warn - A shell script used by auditd to generate warning messages in exceptional situations, such as when space for audit records is running low.
The configuration file syntax is rather arcane, albeit easy to work with. One thing an administrator must be leery about is overriding system defaults. This could create potential openings for audit data to not be collected properly.
The audit subsystem will accept both the short name and long name with regards to configuration syntax. A syntax map has been included below.
The following list contains all supported audit classes:
all
- all - All audit flags
set.
ad
- administrative -
Administrative actions performed on the system as a whole.
ap
- application -
Application defined action.
cl
- file_close - Audit
calls to the close
system call.
ex
- exec - Audit program
or utility execution.
fa
- file_attr_acc - Audit
the access of object attributes such as stat(1), pathconf(2) and
similar events.
fc
- file_creation - Audit
events where a file is created as a result.
fd
- file_deletion - Audit
events where file deletion occurs.
fm
- file_attr_mod - Audit
events where file attribute modification occurs, such as chown(8), chflags(1), flock(2),
etc.
fr
- file_read - Audit
events in which data is read, files are opened for reading, etc.
fw
- file_write - Audit
events in which data is written, files are written or modified, etc.
io
- ioctl - Audit use of
the ioctl(2) system
call.
ip
- ipc - Audit various
forms of Inter-Process Communication, including POSIX pipes and System V IPC operations.
lo
- login_logout - Audit
login(1) and logout(1) events
occurring on the system.
na
- non_attrib - Audit
non-attributable events.
no
- no_class - Null class
used to disable event auditing.
nt
- network - Audit events
related to network actions, such as connect(2) and accept(2).
ot
- other - Audit
miscellaneous events.
pc
- process - Audit
process operations, such as exec(3) and exit(3).
Following is a list of all supported audit prefixes:
none - Audit both the success or failure of an event. For example, just listing a class will result in the auditing of both success and failure.
+ - Audit successful events only.
- - Audit failed events only.
警告Using the
all
class with either the positive or negative prefix can generate a large amount of data at an extremely rapid rate.
Extra prefixes used to modify the default configuration values:
^- - Disable auditing of failed events.
^+ - Enable auditing of successful events.
^ - Disable auditing of both successful and failed events.
In most cases, administrators will need to modify only two files when configuring the audit system: audit_control and audit_user. The first controls system-wide audit paramaters and defaults for both attributable and non-attributable events. The second may be used to tune the level and nature of auditing for individual users.
The audit_control file contains some basic defaults that the administrator may wish to modify. Perhaps even set some new ones. Viewing the contents of this file, we see the following:
dir:/var/audit flags:lo minfree:20 naflags:lo
The dir
option is used to set the default directory
where audit logs are stored. Audit is frequently configured so that audit logs are
stored on a dedicated file system, so as to prevent interference between the audit
subsystem and other subsystems when file systems become full.
The flags
option is used to set the system-wide
defaults. The current setting, lo
configures the
auditing of all login(1) and logout(1)
actions. A more complex example, lo,ad,-all,^-fa,^-fc,^-cl
audits all system login(1) and logout(1) actions, all
administrator actions, all failed events in the system, and finally disables
auditing of failed attempts for fa
, fc
, and cl
. Even though the -all
turned on the auditing of all failed attempts, the ^-
prefix will override that for the latter options.
Notice that the previous paragraph shows the file is read from left to right. As such, values further on the right side may override a previous value specified to its left.
The minfree
option defines the minimum percentage of
free space for audit file systems. This relates to the file system where audit logs
are stored. For example, if the dir
specifies /var/audit and minfree
is set to
twenty (20), warning messages will be generated when the /var file system grows to eighty (80) percent full.
The naflags
option specifies audit classes to be
audited for non-attributed events —— that is, events for which there is no
authenticated user.
The audit_user file permits the administrator to determine which classes of audit events should be logged for which system users.
The following is the defaults currently placed in the audit_user file:
root:lo:no audit:fc:no
Notice how the default is to audit all cases of login/logout and disable auditing of all other actions for root. This configuration also audits all file creation and disables all other auditing for the audit user. While event auditing does not require a special user exist, some configurations, specifically environments making use of MAC, may require it.
Events written by the kernel audit subsystem cannot be altered or read in plain text. Data is stored and accessed in a method similar to that of ktrace(1) and kdump(1), that is, they may only be viewed by dumping them using the praudit command; audit trails may be reduced using the auditreduce command, which selects records from an audit trail based on properties of interest, such as the user, time of the event, and type of operation.
For example, the praudit utility will dump the entire contents of a specified audit log in plain text. To dump an audit log in its entirety, use:
# praudit /var/audit/AUDITFILE
Where AUDITFILE is the audit log of viewing choice. Since audit logs may contain enormous amounts of data, an administrator may prefer to select records for specific users. This is made possible with the following command, where trhodes is the user of choice:
# auditreduce -e trhodes /var/audit/AUDITFILE | praudit
This will select all audit records produced by the user trhodes stored in the AUDITFILE file.
There are several other options available for reading audit records, see the aforementioned command's manual pages for a more in depth explanation.
Due to log reliability requirements, audit trails are written to only by the kernel, and managed only by auditd. Administrators should not attempt to use newsyslog.conf(5) or other tools to directly rotate audit logs. Instead, the audit management tool should be used to shut down auditing, reconfigure the audit system, and perform log rotation. The following command causes the audit daemon to create a new audit log and signal the kernel to switch to using the new log. The old log will be terminated and renamed, at which point it may then be manipulated by the administrator.
# audit -n
警告If the auditd daemon is not currently running, the previous command will fail and an error message will be produced.
Adding the following line to /etc/crontab will force the rotation every twelve hours from cron(8):
* */12 * * * root /usr/sbin/audit -n
The change will take effect once you have saved the new /etc/crontab.
By default, only the root user has the right to read system audit logs. However, that right may be delegated to members of the audit group, as the audit directory and audit trail files are assigned to that group, and made group-readable. As the ability to track audit log contents provides significant insight into the behavior of users and processes, it is recommended that the delegation of audit review rights be performed with caution.
本章涵蓋如何在 FreeBSD 下使用碟片裝置 [15] 包含 memory-backed disk (用記憶體作為磁碟使用)、跨網路使用的磁碟、 標準 SCSI/IDE 磁碟、USB 介面的設備等。
閱讀本章後,您裝學會:
FreeBSD 如何描述資料在磁碟上的劃分情形 (partition 和 slices)。
如何在系統上加入磁碟
如何設定 FreeBSD 來使用 USB 裝置。
如何設定虛擬檔案系統 (virtual file systems), 例如 memory disks (用記憶體作為磁碟使用)。
如何用 quota 來限制磁碟空間的使用。
如何對磁碟加密以應付攻擊。
如何在 FreeBSD 下建立、燒錄 CD 和 DVD。
各種不同的備份設備。
如何使用 FreeBSD 提供的備份工具。
如何備份到軟碟。
什麼是 snapshots ,且如何有效率地使用之。
在閱讀之前,您應該:
知道如何設定、安裝新的 FreeBSD kernel。 (µÚ 8 章).
下面是 FreeBSD 支援的儲存媒體列表,及它們對應的裝置名稱。
表格 18-1. 命名規則
裝置類型 | 裝置名稱 |
---|---|
IDE 磁碟機 | ad |
IDE 光碟機 | acd |
SCSI 磁碟機和 USB 碟 | da |
SCSI 光碟機 | cd |
非標準規格光碟機 | Mitsumi 光碟機用 mcd, Sony 光碟機用 scd。 |
軟碟機 | fd |
SCSI 碟帶機 | sa |
IDE 碟帶機 | ast |
Flash 磁碟機 | DiskOnChip® Flash 磁碟機用 fla |
RAID 磁碟機 | Adaptec AdvancedRAID 用aacd, Mylex 用 mlxd 和 mlyd, AMI MegaRAID 用 amrd, Compaq Smart RAID 用 idad, 3ware® RAID 用 twed。 |
假設我們想新增 SCSI 磁碟到一臺原先只有一顆磁碟的機器上, 首先將電腦關機,依製造商的指示將磁碟裝上去, 詳細的操作方式請參考製造商的說明文件。
安裝好磁碟後,用 root 登入系統, 看一下 /var/run/dmesg.boot 以確認系統是否抓到新磁碟。 繼續剛才的範例,新增的磁碟會是 da1, 假設我們想將它掛載到 /1 這個位置 (如果您新增的是 IDE 磁碟的話,請用 ad1)。
FreeBSD 為了在 IBM-PC 相容電腦上執行, 必須配合 PC BIOS partition,因此和傳統的 BSD partition 有很大的不同。 在 PC 裡磁碟最多可以有四筆 BIOS partition 資訊(亦即最多可分割成四個 partition)。如果這個磁碟打算全部讓 FreeBSD 使用,可選擇 dedicated 模式, 不然的話 FreeBSD 必須置身於其中一個 PC BIOS partition 中。 在 FreeBSD 裡,PC BIOS partition 稱為 slice, 這是為了不要和傳統的 BSD partition 搞混了。 [16] 不論是完全由 FreeBSD 使用的磁碟,還是安裝了其它作業系統的磁碟, 您都可以使用 slice。這樣的好處是,其它非 FreeBSD 作業系統的 fdisk 工具可以順利操作。
如果使用 slice,這個新增的磁碟會是 /dev/da1s1e。可以這樣來解讀它:SCSI 磁碟、 unit number 1(第二個 SCSI 磁碟)、slice 1(第一個 PC BIOS partition)、 及 e BSD partition。在 dedicated 模式的話, 新磁碟則是 /dev/da1e。
因為 bsdlabel(8) 是用 32-bit 整數來儲存 sector(磁區) 數, 因此限制一個磁碟最大只能有 2^32-1 個 sector,亦即 2TB 的空間。 而 fdisk(8) 的格式容許起始 sector 編號不超過 2^32-1, 長度也不超過 2^32-1,因此 partition 最大空間是 2TB,而磁碟最大是 4TB。 sunlabel(8) 則限制 partition 最大是 2TB,磁碟最多可有 8 個 partition,因此最大是 16TB。 如果要使用更大的磁碟,請使用 gpt(8)。
操作 Sysinstall
透過 sysinstall 的選單介面, 可以輕易為磁碟分割 BIOS partition(slice) 和 BSD patition。 必須以 root 身份使用 sysinstall, 要嘛用 root 登入,要嘛用 su 切換到 root。 執行 sysinstall 後,選 Configure,在 FreeBSD Configuration Menu 裡移到 Fdisk 選項。
fdisk Partition 編輯器
在 fdisk 裡,按下 A 表示整個磁碟都給 FreeBSD 使用。 接著會提示您『是否要相容其它的作業系統』,回答 YES。 按 W 會將這些改變立即寫入磁碟,再按 q 可以離開 FDISK 編輯器。 接下來會問您要將 “Master Boot Record” 安裝於何處,由於現在是新增磁碟,表示作業系統已經裝在別的磁碟上了, 所以可以選 None 就行了。
Disk Label Editor(磁碟 Label 編輯器)
接著請關閉 sysinstall,再重開一次。 照著上一節的指示,不過這次改選 Label 進入 Disk Label Editor,在此您可以編輯傳統的 BSD partition。 一個磁碟(或著一個 slice) 最多可切分成 8 個 BSD partition,依序用 a-h 來表示。 有些字母有特別的意義,a partition 表示這是 root partition(根分割區,/), 因此只有安裝系統的磁碟(例如用來開機的磁碟) 有 a partition。 b partition 表示這是 swap partitions(交換分割區),每個磁碟上都可以有 swap。 c partition 用來表示整個磁碟(如果使用 dedicated mode 的話)或整個 slice。 其它的字母則用來表示普通的 BSD partition 。
sysinstall 的 Label editor(磁碟 Label 編輯器) 偏好用 e 來表示非 root、也非 swap 的分割區 [17] 在 Label editor 裡,按 C 可以新增一個檔案系統(BSD label),它會問您這是一個 FS(file system ,檔案系統) 或是 swap(交換分割區),選擇 FS 接著輸入要掛載的位置(例如 /mnt)。 如果系統安裝完後才新增磁碟,sysinstall 不會幫您把這筆掛載資料加入 /etc/fstab, 所以掛載的位置不太重要。
當您準備好將新的 label 寫入磁碟、建立檔案系統,按 W 即可。如果出現在什麼錯誤, sysinstall 可能無法幫您掛載這個新分割區。 結束 Label Editor、結束 sysinstall 就行了。
完成
最後要做的是編輯 /etc/fstab, 加入您新增的分割區資訊。
這種模式能讓您的磁碟分割區與其它作業系統的 fdisk 工具和平共處,因此我們建議您使用 slice 模式。 如果您一定要使用 dedicated 模式, 您得有個好理由! [18]
# dd if=/dev/zero of=/dev/da1 bs=1k count=1 # fdisk -BI da1 # 初始您的磁碟。 # bsdlabel -B -w -r da1s1 auto # 建立 bsdlabel。 # bsdlabel -e da1s1 # 編輯 bsdlabel 以新增 label。 # mkdir -p /1 # newfs /dev/da1s1e # 如果您新增了多個 label,對每個 label 重覆這個步驟。 # mount /dev/da1s1e /1 # 掛載這些新 label。 # vi /etc/fstab # 在 /etc/fstab 加入適當的資訊。
如果您新增的是 IDE 磁碟,將 da 改成 ad 即可 [19]。
如果您不打算將新磁碟用於其它的作業系統, 您可以使用 dedicated 模式。注意: Microsoft 的作業系統認不得這個模式,不過也不會去破壞它; 然而 IBM 的 OS/2 就沒那麼好心了,它會去調整所有它不認得的分割區 [20]。
# dd if=/dev/zero of=/dev/da1 bs=1k count=1 # bsdlabel -Brw da1 auto # bsdlabel -e da1 # 建立 `e' partition。 # newfs -d0 /dev/da1e # mkdir -p /1 # vi /etc/fstab # 新增一筆 /dev/da1e 的資訊。 # mount /1
另一種方法:
# dd if=/dev/zero of=/dev/da1 count=2 # bsdlabel /dev/da1 | bsdlabel -BrR da1 /dev/stdin # newfs /dev/da1e # mkdir -p /1 # vi /etc/fstab # 新增一筆 /dev/da1e 的資訊。 # mount /1
對大容量儲存設備而言,最關鍵的要素乃是速度、可靠性及價格。 然而這三者往往難以兼顧:快速可靠的設備通常很貴; 而降低成本通常也犧牲了速度或可靠性。
接下來要介紹的系統,價格是最重要的考量,接下來是速度, 最後才是可靠性。 順序如此是因為資料傳輸的速度最終取決於網路, 而儘管可靠性十分重要,卻有簡單的取代方案: 將資料完整備份於 CD-R 中。
選擇大容量儲存設備方案時,首先要定義您的需求。 如果您重視速度或可靠性甚於價格,接下來的介紹恐非您所需。
除了系統磁碟外,下面介紹的 CCD 磁碟陣列將使用到三顆 30GB、 5400 RPM 的 Western Digital IDE 磁碟,以提供約 90GB 的儲存空間。 最理想的情況是每個磁碟由獨立使用的排線連接獨立使用的 IDE 控制器, 不過為了降低成本,利用 jumper 設定磁碟,使每個 IDE 控制器可連接 一個主磁碟加一個副磁碟,如此可不必加裝額外的 IDE 控制器。
開機後,BIOS 應該設定成自重偵測磁碟。更重要的是 FreeBSD 應該 要偵測到它們:
ad0: 19574MB <WDC WD205BA> [39770/16/63] at ata0-master UDMA33 ad1: 29333MB <WDC WD307AA> [59598/16/63] at ata0-slave UDMA33 ad2: 29333MB <WDC WD307AA> [59598/16/63] at ata1-master UDMA33 ad3: 29333MB <WDC WD307AA> [59598/16/63] at ata1-slave UDMA33
注: 如果 FreeBSD 沒有偵測到所有磁碟,請確認 jumper 都設定正確。 許多 IDE 磁碟可以設定成 “Cable Select” (根據排線位置決定),這並非 master(主磁碟) 或 slave(副磁碟)。 請參閱磁碟的說明文件以正確設定 jumper 。
接下來,考慮如何將它們變成檔案系統的一部份。您可以參考 vinum(8)(µÚ 20 章) 及 ccd(4)。 在此我們選擇 ccd(4)。
ccd(4) 可以將多個磁碟接起來成為一個大磁碟。要使用 ccd(4),您的 kernel 需要支援 ccd(4)。將這行加入到 kernel 設定檔,並重編、重安裝 kernel:
device ccd
也可以載入 kernel 動態模組來支援 ccd(4)。
使用 ccd(4) 請先用 bsdlabel(8) 來初始磁碟:
bsdlabel -r -w ad1 auto bsdlabel -r -w ad2 auto bsdlabel -r -w ad3 auto
上述指令會建立 ad1c, ad2c 和 ad3c, 這些 bsdlabel 都使用了整個磁碟。
下一步是修改 label type,同樣用 bsdlabel(8) 來處理:
bsdlabel -e ad1 bsdlabel -e ad2 bsdlabel -e ad3
這個指令會打開一個編輯器(預設是 vi(1),可以用 EDITOR 環境變數來指定其它編輯器),並將目前磁碟的 label 資訊顯示在該編輯器裡。
一個還未變動過的磁碟 label 資訊看起來會像這樣:
8 partitions: # size offset fstype [fsize bsize bps/cpg] c: 60074784 0 unused 0 0 0 # (Cyl. 0 - 59597)
在此我們要新增一個 e partition 給 ccd(4) 使用。 通常複製
c partition 那一行, 再把 fstype
那一行改成 4.2BSD
就可以了。 改完之後看起來應該會像這樣:
8 partitions: # size offset fstype [fsize bsize bps/cpg] c: 60074784 0 unused 0 0 0 # (Cyl. 0 - 59597) e: 60074784 0 4.2BSD 0 0 0 # (Cyl. 0 - 59597)
現在所有的磁碟都已經建好 bsdlabel 了,可以開始建立 ccd(4)。 用 ccdconfig(8) 來建立 ccd(4),參考下面的指令:
ccdconfig ccd0 32 0 /dev/ad1e /dev/ad2e /dev/ad3e
每個參數的作用如下:
執行 ccdconfig(8) 之後,ccd(4) 已設定完成可供建立檔案系統。 請參考 newfs(8) 或輸入:
newfs /dev/ccd0c
通常您會希望每次開機時都能自動掛上(mount) ccd(4)。 用下面的指令將您目前的設定寫入 /etc/ccd.conf :
ccdconfig -g > /etc/ccd.conf
如果 /etc/ccd.conf 存在,每次開機時 /etc/rc 都會執行 ccdconfig -C 。 如此便可自動設定 ccd(4) 以便之後掛上(mount)檔案系統。
要在每次開機時自動掛上(mount) ccd(4),請在 /etc/fstab 加入 ccd(4):
/dev/ccd0c /media ufs rw 2 2
Vinum 容量管理系統(以下簡稱 Vinum) 可視為一種虛擬磁碟。 它將區塊裝置(block device) 的介面與對應資料的方式切割開來,比起原本 slice 劃分的磁碟,Vinum 可增加了彈性、效能和穩定度 [21] vinum(8) 實作了 RAID-0、RAID-1 和 RAID-5 等模組, 它們都可以單獨使用,也可以互相搭配使用。
FreeBSD 也支援許多硬體 RAID 控制器。 這些控制器自行掌控一個小型的 RAID 系統, 因此不需要特定軟體來管理。
透過控制器上的 BIOS 幾乎能控制所有的操作。 接下來將簡單介紹如何設定 Promise IDE RAID 控制卡。首先確認控制卡已安裝,接著開機。 它應該會提示一些資訊[22]。依指示進入控制卡的設定畫面, 從這裡您可以將全部的硬體結合成一個大磁碟。完成之後,FreeBSD 將只會看到這個大磁碟。當然您也可以使用其它的 RAID 模式。
FreeBSD 允許您熱插拔磁碟陣列裡壞掉的磁碟, 當然在重開機前就得先發現。
也許您會在 /var/log/messages(或 dmesg(8) 的輸出) 看到類似下面的訊息:
ad6 on monster1 suffered a hard error. ad6: READ command timeout tag=0 serv=0 - resetting ad6: trying fallback to PIO mode ata3: resetting devices .. done ad6: hard error reading fsbn 1116119 of 0-7 (ad6 bn 1116119; cn 1107 tn 4 sn 11)\\ status=59 error=40 ar0: WARNING - mirror lost
請用 atacontrol(8) 來得到更多資訊:
# atacontrol list ATA channel 0: Master: no device present Slave: acd0 <HL-DT-ST CD-ROM GCR-8520B/1.00> ATA/ATAPI rev 0 ATA channel 1: Master: no device present Slave: no device present ATA channel 2: Master: ad4 <MAXTOR 6L080J4/A93.0500> ATA/ATAPI rev 5 Slave: no device present ATA channel 3: Master: ad6 <MAXTOR 6L080J4/A93.0500> ATA/ATAPI rev 5 Slave: no device present # atacontrol status ar0 ar0: ATA RAID1 subdisks: ad4 ad6 status: DEGRADED
首先您得將損壞磁碟所在的 ata channel 卸載(detach), 如此才能安全地移除:
# atacontrol detach ata3
用好的磁碟換下損壞的。
重新載入(re-attach) ata channel:
# atacontrol attach ata3 Master: ad6 <MAXTOR 6L080J4/A93.0500> ATA/ATAPI rev 5 Slave: no device present
將新的磁碟加入原本的磁碟陣列成為備援(spare) 磁碟:
# atacontrol addspare ar0 ad6
重建磁碟陣列:
# atacontrol rebuild ar0
可以用下面指定來確認重建的進度:
# dmesg | tail -10 [output removed] ad6: removed from configuration ad6: deleted from ar0 disk1 ad6: inserted into ar0 disk1 as spare # atacontrol status ar0 ar0: ATA RAID1 subdisks: ad4 ad6 status: REBUILDING 0% completed
等重建完就完成了。
在現在,有許多外部儲存裝置採用 USB(Universal Serial Bus) 介面, 例如硬碟、USB 拇指碟、CD-R 燒錄機等。 FreeBSD 提供對這些裝置的支援。
USB mass 儲存裝置驅動程式(umass(4))提供 USB 儲存裝置的支援。 但如果是用 GENERIC kernel,就不需要做任何設定變動 。 若是自訂 kernel,請確認 kernel 設定檔含有下面這幾行:
device scbus device da device pass device uhci device ohci device usb device umass
umass(4) 驅動程式透過 SCSI 子系統存取 USB 儲存裝置, 您的 USB 裝置會被系統辨識成 SCSI 裝置。 依照您主機板上 USB 晶片型號, 您只需要 device uhci 或 device ohci 其中一個。 然而,將兩者都編進 kernel 也無妨。 只要別忘了在修改 kernel 設定後重新編譯及安裝新的 kernel 就行了。
注: 如果您的 USB 裝置是 CD-R 或 DVD 燒錄機,則 SCSI 光碟機驅動程式 cd(4) 必須寫入 kernel 設定檔,像這樣:
device cd因為燒錄機會被當成 SCSI 裝置,所以 atapicam(4) 驅動程式不需要編入 kernel。
USB 2.0 控制器的支援由 FreeBSD; 提供,然而必須在 kernel 設定檔增加下面這行以提供 USB 2.0 支援:
device ehci
The configuration is ready to be tested: plug in your USB device, and in the system message buffer (dmesg(8)), the drive should appear as something like:
umass0: USB Solid state disk, rev 1.10/1.00, addr 2 GEOM: create disk da0 dp=0xc2d74850 da0 at umass-sim0 bus 0 target 0 lun 0 da0: <Generic Traveling Disk 1.11> Removable Direct Access SCSI-2 device da0: 1.000MB/s transfers da0: 126MB (258048 512 byte sectors: 64H 32S/T 126C)
Of course, the brand, the device node (da0) and other details can differ according to your configuration.
Since the USB device is seen as a SCSI one, the camcontrol command can be used to list the USB storage devices attached to the system:
# camcontrol devlist <Generic Traveling Disk 1.11> at scbus0 target 0 lun 0 (da0,pass0)
If the drive comes with a file system, you should be able to mount it. The µÚ 18.3 節 will help you to format and create partitions on the USB drive if needed.
If you unplug the device (the disk must be unmounted before), you should see, in the system message buffer, something like the following:
umass0: at uhub0 port 1 (addr 2) disconnected (da0:umass-sim0:0:0:0): lost device (da0:umass-sim0:0:0:0): removing device entry GEOM: destroy disk da0 dp=0xc2d74850 umass0: detached
Beside the Adding Disks and Mounting and Unmounting File Systems sections, reading various manual pages may be also useful: umass(4), camcontrol(8), and usbdevs(8).
CDs have a number of features that differentiate them from conventional disks. Initially, they were not writable by the user. They are designed so that they can be read continuously without delays to move the head between tracks. They are also much easier to transport between systems than similarly sized media were at the time.
CDs do have tracks, but this refers to a section of data to be read continuously and not a physical property of the disk. To produce a CD on FreeBSD, you prepare the data files that are going to make up the tracks on the CD, then write the tracks to the CD.
The ISO 9660 file system was designed to deal with these differences. It unfortunately codifies file system limits that were common then. Fortunately, it provides an extension mechanism that allows properly written CDs to exceed those limits while still working with systems that do not support those extensions.
The sysutils/cdrtools port includes mkisofs(8), a program that you can use to produce a data file containing an ISO 9660 file system. It has options that support various extensions, and is described below.
Which tool to use to burn the CD depends on whether your CD burner is ATAPI or something else. ATAPI CD burners use the burncd program that is part of the base system. SCSI and USB CD burners should use cdrecord from the sysutils/cdrtools port.
burncd has a limited number of supported drives. To find out if a drive is supported, see the CD-R/RW supported drives list.
注: If you run FreeBSD 5.X, FreeBSD 4.8-RELEASE version or higher, it will be possible to use cdrecord and other tools for SCSI drives on an ATAPI hardware with the ATAPI/CAM module.
If you want a CD burning software with a graphical user interface, you should have a look to X-CD-Roast or K3b. These tools are available as packages or from the sysutils/xcdroast and sysutils/k3b ports. X-CD-Roast and K3b require the ATAPI/CAM module with ATAPI hardware.
The mkisofs(8) program, which is part of the sysutils/cdrtools port, produces an ISO 9660 file system that is an image of a directory tree in the UNIX file system name space. The simplest usage is:
# mkisofs -o imagefile.iso /path/to/tree
This command will create an imagefile.iso containing an ISO 9660 file system that is a copy of the tree at /path/to/tree. In the process, it will map the file names to names that fit the limitations of the standard ISO 9660 file system, and will exclude files that have names uncharacteristic of ISO file systems.
A number of options are available to overcome those restrictions. In particular,
-R
enables the Rock Ridge extensions common to UNIX systems, -J
enables Joliet
extensions used by Microsoft systems, and -hfs
can be
used to create HFS file systems used by Mac OS.
For CDs that are going to be used only on FreeBSD systems, -U
can be used to disable all filename restrictions. When used
with -R
, it produces a file system image that is
identical to the FreeBSD tree you started from, though it may violate the ISO 9660
standard in a number of ways.
The last option of general use is -b
. This is used to
specify the location of the boot image for use in producing an “El Torito”
bootable CD. This option takes an argument which is the path to a boot image from
the top of the tree being written to the CD. By default,
mkisofs(8)
creates an ISO image in the so-called “floppy disk emulation” mode, and thus
expects the boot image to be exactly 1200, 1440 or 2880 KB in size. Some boot
loaders, like the one used by the FreeBSD distribution disks, do not use emulation
mode; in this case, the -no-emul-boot
option should be
used. So, if /tmp/myboot holds a bootable FreeBSD system
with the boot image in /tmp/myboot/boot/cdboot, you
could produce the image of an ISO 9660 file system in /tmp/bootable.iso like so:
# mkisofs -R -no-emul-boot -b boot/cdboot -o /tmp/bootable.iso /tmp/myboot
Having done that, if you have md configured in your kernel, you can mount the file system with:
# mdconfig -a -t vnode -f /tmp/bootable.iso -u 0 # mount -t cd9660 /dev/md0 /mnt
At which point you can verify that /mnt and /tmp/myboot are identical.
There are many other options you can use with mkisofs(8) to fine-tune its behavior. In particular: modifications to an ISO 9660 layout and the creation of Joliet and HFS discs. See the mkisofs(8) manual page for details.
If you have an ATAPI CD burner, you can use the burncd command to burn an ISO image onto a CD. burncd is part of the base system, installed as /usr/sbin/burncd. Usage is very simple, as it has few options:
# burncd -f cddevice data imagefile.iso fixate
Will burn a copy of imagefile.iso on cddevice. The default device is /dev/acd0. See burncd(8) for options to set the write speed, eject the CD after burning, and write audio data.
If you do not have an ATAPI CD burner, you will have to use cdrecord to burn your CDs. cdrecord is not part of the base system; you must install it from either the port at sysutils/cdrtools or the appropriate package. Changes to the base system can cause binary versions of this program to fail, possibly resulting in a “coaster”. You should therefore either upgrade the port when you upgrade your system, or if you are tracking -STABLE, upgrade the port when a new version becomes available.
While cdrecord has many options, basic usage is even simpler than burncd. Burning an ISO 9660 image is done with:
# cdrecord dev=device imagefile.iso
The tricky part of using cdrecord is finding the dev
to use. To find the proper setting, use the -scanbus
flag of cdrecord, which
might produce results like this:
# cdrecord -scanbus Cdrecord-Clone 2.01 (i386-unknown-freebsd7.0) Copyright (C) 1995-2004 Jörg Schilling Using libscg version 'schily-0.1' scsibus0: 0,0,0 0) 'SEAGATE ' 'ST39236LW ' '0004' Disk 0,1,0 1) 'SEAGATE ' 'ST39173W ' '5958' Disk 0,2,0 2) * 0,3,0 3) 'iomega ' 'jaz 1GB ' 'J.86' Removable Disk 0,4,0 4) 'NEC ' 'CD-ROM DRIVE:466' '1.26' Removable CD-ROM 0,5,0 5) * 0,6,0 6) * 0,7,0 7) * scsibus1: 1,0,0 100) * 1,1,0 101) * 1,2,0 102) * 1,3,0 103) * 1,4,0 104) * 1,5,0 105) 'YAMAHA ' 'CRW4260 ' '1.0q' Removable CD-ROM 1,6,0 106) 'ARTEC ' 'AM12S ' '1.06' Scanner 1,7,0 107) *
This lists the appropriate dev
value for the devices
on the list. Locate your CD burner, and use the three numbers separated by commas as
the value for dev
. In this case, the CRW device is
1,5,0, so the appropriate input would be dev=1,5,0
.
There are easier ways to specify this value; see
cdrecord(1) for
details. That is also the place to look for information on writing audio
tracks, controlling the speed, and other things.
You can duplicate an audio CD by extracting the audio data from the CD to a series of files, and then writing these files to a blank CD. The process is slightly different for ATAPI and SCSI drives.
SCSI Drives
Use cdda2wav to extract the audio.
% cdda2wav -v255 -D2,0 -B -Owav
Use cdrecord to write the .wav files.
% cdrecord -v dev=2,0 -dao -useinfo *.wav
Make sure that 2,0 is set appropriately, as described in µÚ 18.6.4 節.
ATAPI Drives
The ATAPI CD driver makes each track available as /dev/acddtnn, where d is the drive number, and nn is the track number written with two decimal digits, prefixed with zero as needed. So the first track on the first disk is /dev/acd0t01, the second is /dev/acd0t02, the third is /dev/acd0t03, and so on.
Make sure the appropriate files exist in /dev. If the entries are missing, force the system to retaste the media:
# dd if=/dev/acd0 of=/dev/null count=1
Extract each track using dd(1). You must also use a specific block size when extracting the files.
# dd if=/dev/acd0t01 of=track1.cdr bs=2352 # dd if=/dev/acd0t02 of=track2.cdr bs=2352 ...
Burn the extracted files to disk using burncd. You must specify that these are audio files, and that burncd should fixate the disk when finished.
# burncd -f /dev/acd0 audio track1.cdr track2.cdr ... fixate
You can copy a data CD to a image file that is functionally equivalent to the image file created with mkisofs(8), and you can use it to duplicate any data CD. The example given here assumes that your CDROM device is acd0. Substitute your correct CDROM device.
# dd if=/dev/acd0 of=file.iso bs=2048
Now that you have an image, you can burn it to CD as described above.
Now that you have created a standard data CDROM, you probably want to mount it and read the data on it. By default, mount(8) assumes that a file system is of type ufs. If you try something like:
# mount /dev/cd0 /mnt
you will get a complaint about “Incorrect super
block”, and no mount. The CDROM is not a UFS file
system, so attempts to mount it as such will fail. You just need to tell mount(8) that
the file system is of type ISO9660, and everything will
work. You do this by specifying the -t cd9660
option mount(8). For
example, if you want to mount the CDROM device, /dev/cd0,
under /mnt, you would execute:
# mount -t cd9660 /dev/cd0 /mnt
Note that your device name (/dev/cd0 in this example)
could be different, depending on the interface your CDROM uses. Also, the -t cd9660
option just executes mount_cd9660(8). The
above example could be shortened to:
# mount_cd9660 /dev/cd0 /mnt
You can generally use data CDROMs from any vendor in this way. Disks with certain ISO 9660 extensions might behave oddly, however. For example, Joliet disks store all filenames in two-byte Unicode characters. The FreeBSD kernel does not speak Unicode (yet!), so non-English characters show up as question marks. (The FreeBSD CD9660 driver includes hooks to load an appropriate Unicode conversion table on the fly. Modules for some of the common encodings are available via the sysutils/cd9660_unicode port.)
Occasionally, you might get “Device not configured” when trying to mount a CDROM. This usually means that the CDROM drive thinks that there is no disk in the tray, or that the drive is not visible on the bus. It can take a couple of seconds for a CDROM drive to realize that it has been fed, so be patient.
Sometimes, a SCSI CDROM may be missed because it did not have enough time to answer the bus reset. If you have a SCSI CDROM please add the following option to your kernel configuration and rebuild your kernel.
options SCSI_DELAY=15000
This tells your SCSI bus to pause 15 seconds during boot, to give your CDROM drive every possible chance to answer the bus reset.
You can choose to burn a file directly to CD, without creating an ISO 9660 file system. Some people do this for backup purposes. This runs more quickly than burning a standard CD:
# burncd -f /dev/acd1 -s 12 data archive.tar.gz fixate
In order to retrieve the data burned to such a CD, you must read data from the raw device node:
# tar xzvf /dev/acd1
You cannot mount this disk as you would a normal CDROM. Such a CDROM cannot be read under any operating system except FreeBSD. If you want to be able to mount the CD, or share data with another operating system, you must use mkisofs(8) as described above.
This driver allows ATAPI devices (CD-ROM, CD-RW, DVD drives etc...) to be accessed through the SCSI subsystem, and so allows the use of applications like sysutils/cdrdao or cdrecord(1).
To use this driver, you will need to add the following line to your kernel configuration file:
device atapicam
You also need the following lines in your kernel configuration file:
device ata device scbus device cd device pass
which should already be present.
Then rebuild, install your new kernel, and reboot your machine. During the boot process, your burner should show up, like so:
acd0: CD-RW <MATSHITA CD-RW/DVD-ROM UJDA740> at ata1-master PIO4 cd0 at ata1 bus 0 target 0 lun 0 cd0: <MATSHITA CDRW/DVD UJDA740 1.00> Removable CD-ROM SCSI-0 device cd0: 16.000MB/s transfers cd0: Attempt to query device size failed: NOT READY, Medium not present - tray closed
The drive could now be accessed via the /dev/cd0 device name, for example to mount a CD-ROM on /mnt, just type the following:
# mount -t cd9660 /dev/cd0 /mnt
As root, you can run the following command to get the SCSI address of the burner:
# camcontrol devlist <MATSHITA CDRW/DVD UJDA740 1.00> at scbus1 target 0 lun 0 (pass0,cd0)
So 1,0,0 will be the SCSI address to use with cdrecord(1) and other SCSI application.
For more information about ATAPI/CAM and SCSI system, refer to the atapicam(4) and cam(4) manual pages.
Compared to the CD, the DVD is the next generation of optical media storage technology. The DVD can hold more data than any CD and is nowadays the standard for video publishing.
Five physical recordable formats can be defined for what we will call a recordable DVD:
DVD-R: This was the first DVD recordable format available. The DVD-R standard is defined by the DVD Forum. This format is write once.
DVD-RW: This is the rewriteable version of the DVD-R standard. A DVD-RW can be rewritten about 1000 times.
DVD-RAM: This is also a rewriteable format supported by the DVD Forum. A DVD-RAM can be seen as a removable hard drive. However, this media is not compatible with most DVD-ROM drives and DVD-Video players; only a few DVD writers support the DVD-RAM format.
DVD+RW: This is a rewriteable format defined by the DVD+RW Alliance. A DVD+RW can be rewritten about 1000 times.
DVD+R: This format is the write once variation of the DVD+RW format.
A single layer recordable DVD can hold up to 4,700,000,000 bytes which is actually 4.38 GB or 4485 MB (1 kilobyte is 1024 bytes).
注: A distinction must be made between the physical media and the application. For example, a DVD-Video is a specific file layout that can be written on any recordable DVD physical media: DVD-R, DVD+R, DVD-RW etc. Before choosing the type of media, you must be sure that both the burner and the DVD-Video player (a standalone player or a DVD-ROM drive on a computer) are compatible with the media under consideration.
The program growisofs(1) will be used to perform DVD recording. This command is part of the dvd+rw-tools utilities ( sysutils/dvd+rw-tools). The dvd+rw-tools support all DVD media types.
These tools use the SCSI subsystem to access to the devices, therefore the ATAPI/CAM support must be added to your kernel. If your burner uses the USB interface this addition is useless, and you should read the µÚ 18.5 節 for more details on USB devices configuration.
You also have to enable DMA access for ATAPI devices, this can be done in adding the following line to the /boot/loader.conf file:
hw.ata.atapi_dma="1"
Before attempting to use the dvd+rw-tools you should consult the dvd+rw-tools' hardware compatibility notes for any information related to your DVD burner.
注: If you want a graphical user interface, you should have a look to K3b (sysutils/k3b) which provides a user friendly interface to growisofs(1) and many others burning tools.
The growisofs(1) command is a frontend to mkisofs, it will invoke mkisofs(8) to create the file system layout and will perform the write on the DVD. This means you do not need to create an image of the data before the burning process.
To burn onto a DVD+R or a DVD-R the data from the /path/to/data directory, use the following command:
# growisofs -dvd-compat -Z /dev/cd0 -J -R /path/to/data
The options -J -R
are passed to
mkisofs(8) for
the file system creation (in this case: an ISO 9660 file system with Joliet and Rock
Ridge extensions), consult the
mkisofs(8)
manual page for more details.
The option -Z
is used for the initial session
recording in any case: multiple sessions or not. The DVD device, /dev/cd0, must be changed according to your
configuration. The -dvd-compat
parameter will close the
disk, the recording will be unappendable. In return this should provide better
media compatibility with DVD-ROM drives.
It is also possible to burn a pre-mastered image, for example to burn the image imagefile.iso, we will run:
# growisofs -dvd-compat -Z /dev/cd0=imagefile.iso
The write speed should be detected and automatically set according to the media
and the drive being used. If you want to force the write speed, use the -speed=
parameter. For more information, read the
growisofs(1)
manual page.
A DVD-Video is a specific file layout based on ISO 9660 and the micro-UDF (M-UDF) specifications. The DVD-Video also presents a specific data structure hierarchy, it is the reason why you need a particular program such as multimedia/dvdauthor to author the DVD.
If you already have an image of the DVD-Video file system, just burn it in the same way as for any image, see the previous section for an example. If you have made the DVD authoring and the result is in, for example, the directory /path/to/video, the following command should be used to burn the DVD-Video:
# growisofs -Z /dev/cd0 -dvd-video /path/to/video
The -dvd-video
option will be passed down to
mkisofs(8) and
will instruct it to create a DVD-Video file system layout. Beside this, the -dvd-video
option implies -dvd-compat
growisofs(1)
option.
Unlike CD-RW, a virgin DVD+RW needs to be formatted before first use. The growisofs(1) program will take care of it automatically whenever appropriate, which is the recommended way. However you can use the dvd+rw-format command to format the DVD+RW:
# dvd+rw-format /dev/cd0
You need to perform this operation just once, keep in mind that only virgin DVD+RW medias need to be formatted. Then you can burn the DVD+RW in the way seen in previous sections.
If you want to burn new data (burn a totally new file system not append some data) onto a DVD+RW, you do not need to blank it, you just have to write over the previous recording (in performing a new initial session), like this:
# growisofs -Z /dev/cd0 -J -R /path/to/newdata
DVD+RW format offers the possibility to easily append data to a previous recording. The operation consists in merging a new session to the existing one, it is not multisession writing, growisofs(1) will grow the ISO 9660 file system present on the media.
For example, if we want to append data to our previous DVD+RW, we have to use the following:
# growisofs -M /dev/cd0 -J -R /path/to/nextdata
The same mkisofs(8) options we used to burn the initial session should be used during next writes.
注: You may want to use the
-dvd-compat
option if you want better media compatibility with DVD-ROM drives. In the DVD+RW case, this will not prevent you from adding data.
If for any reason you really want to blank the media, do the following:
# growisofs -Z /dev/cd0=/dev/zero
A DVD-RW accepts two disc formats: the incremental sequential one and the restricted overwrite. By default DVD-RW discs are in sequential format.
A virgin DVD-RW can be directly written without the need of a formatting operation, however a non-virgin DVD-RW in sequential format needs to be blanked before to be able to write a new initial session.
To blank a DVD-RW in sequential mode, run:
# dvd+rw-format -blank=full /dev/cd0
注: A full blanking (
-blank=full
) will take about one hour on a 1x media. A fast blanking can be performed using the-blank
option if the DVD-RW will be recorded in Disk-At-Once (DAO) mode. To burn the DVD-RW in DAO mode, use the command:# growisofs -use-the-force-luke=dao -Z /dev/cd0=imagefile.isoThe
-use-the-force-luke=dao
option should not be required since growisofs(1) attempts to detect minimally (fast blanked) media and engage DAO write.In fact one should use restricted overwrite mode with any DVD-RW, this format is more flexible than the default incremental sequential one.
To write data on a sequential DVD-RW, use the same instructions as for the other DVD formats:
# growisofs -Z /dev/cd0 -J -R /path/to/data
If you want to append some data to your previous recording, you will have to use
the
growisofs(1)
-M
option. However, if you perform data addition on
a DVD-RW in incremental sequential mode, a new session will be created on the disc
and the result will be a multi-session disc.
A DVD-RW in restricted overwrite format does not need to be blanked before a new
initial session, you just have to overwrite the disc with the -Z
option, this is similar to the DVD+RW case. It is also
possible to grow an existing ISO 9660 file system written on the disc in a same
way as for a DVD+RW with the -M
option. The result
will be a one-session DVD.
To put a DVD-RW in the restricted overwrite format, the following command must be used:
# dvd+rw-format /dev/cd0
To change back to the sequential format use:
# dvd+rw-format -blank=full /dev/cd0
Very few DVD-ROM drives support multisession DVDs, they will most of time, hopefully, only read the first session. DVD+R, DVD-R and DVD-RW in sequential format can accept multiple sessions, the notion of multiple sessions does not exist for the DVD+RW and the DVD-RW restricted overwrite formats.
Using the following command after an initial (non-closed) session on a DVD+R, DVD-R, or DVD-RW in sequential format, will add a new session to the disc:
# growisofs -M /dev/cd0 -J -R /path/to/nextdata
Using this command line with a DVD+RW or a DVD-RW in restricted overwrite mode, will append data in merging the new session to the existing one. The result will be a single-session disc. This is the way used to add data after an initial write on these medias.
注: Some space on the media is used between each session for end and start of sessions. Therefore, one should add sessions with large amount of data to optimize media space. The number of sessions is limited to 154 for a DVD+R, about 2000 for a DVD-R, and 127 for a DVD+R Double Layer.
To obtain more information about a DVD, the dvd+rw-mediainfo /dev/cd0 command can be ran with the disc in the drive.
More information about the dvd+rw-tools can be found in the growisofs(1) manual page, on the dvd+rw-tools web site and in the cdwrite mailing list archives.
注: The dvd+rw-mediainfo output of the resulting recording or the media with issues is mandatory for any problem report. Without this output, it will be quite impossible to help you.
Storing data on floppy disks is sometimes useful, for example when one does not have any other removable storage media or when one needs to transfer small amounts of data to another computer.
This section will explain how to use floppy disks in FreeBSD. It will primarily cover formatting and usage of 3.5inch DOS floppies, but the concepts are similar for other floppy disk formats.
Floppy disks are accessed through entries in /dev, just like other devices. To access the raw floppy disk, simply use /dev/fdN.
A floppy disk needs to be low-level formated before it can be used. This is usually done by the vendor, but formatting is a good way to check media integrity. Although it is possible to force larger (or smaller) disk sizes, 1440kB is what most floppy disks are designed for.
To low-level format the floppy disk you need to use fdformat(1). This utility expects the device name as an argument.
Make note of any error messages, as these can help determine if the disk is good or bad.
Use the /dev/fdN devices to format the floppy. Insert a new 3.5inch floppy disk in your drive and issue:
# /usr/sbin/fdformat -f 1440 /dev/fd0
After low-level formatting the disk, you will need to place a disk label on it. This disk label will be destroyed later, but it is needed by the system to determine the size of the disk and its geometry later.
The new disk label will take over the whole disk, and will contain all the proper information about the geometry of the floppy. The geometry values for the disk label are listed in /etc/disktab.
You can run now bsdlabel(8) like so:
# /sbin/bsdlabel -B -r -w /dev/fd0 fd1440
注: Since FreeBSD 5.1-RELEASE, the bsdlabel(8) utility replaces the old bsdlabel(8) program. With bsdlabel(8) a number of obsolete options and parameters have been retired; in the example above the option
-r
should be removed. For more information, please refer to the bsdlabel(8) manual page.
Now the floppy is ready to be high-level formated. This will place a new file system on it, which will let FreeBSD read and write to the disk. After creating the new file system, the disk label is destroyed, so if you want to reformat the disk, you will have to recreate the disk label.
The floppy's file system can be either UFS or FAT. FAT is generally a better choice for floppies.
To put a new file system on the floppy, issue:
# /sbin/newfs_msdos /dev/fd0
The disk is now ready for use.
To use the floppy, mount it with mount_msdos(8). One can also use emulators/mtools from the ports collection.
The major tape media are the 4mm, 8mm, QIC, mini-cartridge and DLT.
4mm tapes are replacing QIC as the workstation backup media of choice. This trend accelerated greatly when Conner purchased Archive, a leading manufacturer of QIC drives, and then stopped production of QIC drives. 4mm drives are small and quiet but do not have the reputation for reliability that is enjoyed by 8mm drives. The cartridges are less expensive and smaller (3 x 2 x 0.5 inches, 76 x 51 x 12 mm) than 8mm cartridges. 4mm, like 8mm, has comparatively short head life for the same reason, both use helical scan.
Data throughput on these drives starts ~150 kB/s, peaking at ~500 kB/s. Data capacity starts at 1.3 GB and ends at 2.0 GB. Hardware compression, available with most of these drives, approximately doubles the capacity. Multi-drive tape library units can have 6 drives in a single cabinet with automatic tape changing. Library capacities reach 240 GB.
The DDS-3 standard now supports tape capacities up to 12 GB (or 24 GB compressed).
4mm drives, like 8mm drives, use helical-scan. All the benefits and drawbacks of helical-scan apply to both 4mm and 8mm drives.
Tapes should be retired from use after 2,000 passes or 100 full backups.
8mm tapes are the most common SCSI tape drives; they are the best choice of exchanging tapes. Nearly every site has an Exabyte 2 GB 8mm tape drive. 8mm drives are reliable, convenient and quiet. Cartridges are inexpensive and small (4.8 x 3.3 x 0.6 inches; 122 x 84 x 15 mm). One downside of 8mm tape is relatively short head and tape life due to the high rate of relative motion of the tape across the heads.
Data throughput ranges from ~250 kB/s to ~500 kB/s. Data sizes start at 300 MB and go up to 7 GB. Hardware compression, available with most of these drives, approximately doubles the capacity. These drives are available as single units or multi-drive tape libraries with 6 drives and 120 tapes in a single cabinet. Tapes are changed automatically by the unit. Library capacities reach 840+ GB.
The Exabyte “Mammoth” model supports 12 GB on one tape (24 GB with compression) and costs approximately twice as much as conventional tape drives.
Data is recorded onto the tape using helical-scan, the heads are positioned at an angle to the media (approximately 6 degrees). The tape wraps around 270 degrees of the spool that holds the heads. The spool spins while the tape slides over the spool. The result is a high density of data and closely packed tracks that angle across the tape from one edge to the other.
QIC-150 tapes and drives are, perhaps, the most common tape drive and media around. QIC tape drives are the least expensive “serious” backup drives. The downside is the cost of media. QIC tapes are expensive compared to 8mm or 4mm tapes, up to 5 times the price per GB data storage. But, if your needs can be satisfied with a half-dozen tapes, QIC may be the correct choice. QIC is the most common tape drive. Every site has a QIC drive of some density or another. Therein lies the rub, QIC has a large number of densities on physically similar (sometimes identical) tapes. QIC drives are not quiet. These drives audibly seek before they begin to record data and are clearly audible whenever reading, writing or seeking. QIC tapes measure (6 x 4 x 0.7 inches; 152 x 102 x 17 mm).
Data throughput ranges from ~150 kB/s to ~500 kB/s. Data capacity ranges from 40 MB to 15 GB. Hardware compression is available on many of the newer QIC drives. QIC drives are less frequently installed; they are being supplanted by DAT drives.
Data is recorded onto the tape in tracks. The tracks run along the long axis of the tape media from one end to the other. The number of tracks, and therefore the width of a track, varies with the tape's capacity. Most if not all newer drives provide backward-compatibility at least for reading (but often also for writing). QIC has a good reputation regarding the safety of the data (the mechanics are simpler and more robust than for helical scan drives).
Tapes should be retired from use after 5,000 backups.
DLT has the fastest data transfer rate of all the drive types listed here. The 1/2" (12.5mm) tape is contained in a single spool cartridge (4 x 4 x 1 inches; 100 x 100 x 25 mm). The cartridge has a swinging gate along one entire side of the cartridge. The drive mechanism opens this gate to extract the tape leader. The tape leader has an oval hole in it which the drive uses to “hook” the tape. The take-up spool is located inside the tape drive. All the other tape cartridges listed here (9 track tapes are the only exception) have both the supply and take-up spools located inside the tape cartridge itself.
Data throughput is approximately 1.5 MB/s, three times the throughput of 4mm, 8mm, or QIC tape drives. Data capacities range from 10 GB to 20 GB for a single drive. Drives are available in both multi-tape changers and multi-tape, multi-drive tape libraries containing from 5 to 900 tapes over 1 to 20 drives, providing from 50 GB to 9 TB of storage.
With compression, DLT Type IV format supports up to 70 GB capacity.
Data is recorded onto the tape in tracks parallel to the direction of travel (just like QIC tapes). Two tracks are written at once. Read/write head lifetimes are relatively long; once the tape stops moving, there is no relative motion between the heads and the tape.
AIT is a new format from Sony, and can hold up to 50 GB (with compression) per tape. The tapes contain memory chips which retain an index of the tape's contents. This index can be rapidly read by the tape drive to determine the position of files on the tape, instead of the several minutes that would be required for other tapes. Software such as SAMS:Alexandria can operate forty or more AIT tape libraries, communicating directly with the tape's memory chip to display the contents on screen, determine what files were backed up to which tape, locate the correct tape, load it, and restore the data from the tape.
Libraries like this cost in the region of $20,000, pricing them a little out of the hobbyist market.
The first time that you try to read or write a new, completely blank tape, the operation will fail. The console messages should be similar to:
sa0(ncr1:4:0): NOT READY asc:4,1 sa0(ncr1:4:0): Logical unit is in process of becoming ready
The tape does not contain an Identifier Block (block number 0). All QIC tape drives since the adoption of QIC-525 standard write an Identifier Block to the tape. There are two solutions:
mt fsf 1 causes the tape drive to write an Identifier Block to the tape.
Use the front panel button to eject the tape.
Re-insert the tape and dump data to the tape.
dump will report “DUMP: End of tape detected” and the console will show: “HARDWARE FAILURE info:280 asc:80,96”.
rewind the tape using: mt rewind.
Subsequent tape operations are successful.
Floppy disks are not really a suitable media for making backups as:
The media is unreliable, especially over long periods of time.
Backing up and restoring is very slow.
They have a very limited capacity (the days of backing up an entire hard disk onto a dozen or so floppies has long since passed).
However, if you have no other method of backing up your data then floppy disks are better than no backup at all.
If you do have to use floppy disks then ensure that you use good quality ones. Floppies that have been lying around the office for a couple of years are a bad choice. Ideally use new ones from a reputable manufacturer.
The best way to backup to floppy disk is to use tar(1) with the -M
(multi volume) option, which allows backups to span
multiple floppies.
To backup all the files in the current directory and sub-directory use this (as root):
# tar Mcvf /dev/fd0 *
When the first floppy is full tar(1) will prompt you to insert the next volume (because tar(1) is media independent it refers to volumes; in this context it means floppy disk).
Prepare volume #2 for /dev/fd0 and hit return:
This is repeated (with the volume number incrementing) until all the specified files have been archived.
Unfortunately, tar(1) will not allow
the -z
option to be used for multi-volume archives.
You could, of course, gzip(1) all the files,
tar(1) them to the
floppies, then gunzip(1) the files
again!
To restore the entire archive use:
# tar Mxvf /dev/fd0
There are two ways that you can use to restore only specific files. First, you can start with the first floppy and use:
# tar Mxvf /dev/fd0 filename
The utility tar(1) will prompt you to insert subsequent floppies until it finds the required file.
Alternatively, if you know which floppy the file is on then you can simply insert that floppy and use the same command as above. Note that if the first file on the floppy is a continuation from the previous one then tar(1) will warn you that it cannot restore it, even if you have not asked it to!
The first requirement in devising a backup plan is to make sure that all of the following problems are covered:
Disk failure
Accidental file deletion
Random file corruption
Complete machine destruction (e.g. fire), including destruction of any on-site backups.
It is perfectly possible that some systems will be best served by having each of these problems covered by a completely different technique. Except for strictly personal systems with very low-value data, it is unlikely that one technique would cover all of them.
Some of the techniques in the toolbox are:
Archives of the whole system, backed up onto permanent media offsite. This actually provides protection against all of the possible problems listed above, but is slow and inconvenient to restore from. You can keep copies of the backups onsite and/or online, but there will still be inconveniences in restoring files, especially for non-privileged users.
Filesystem snapshots. This is really only helpful in the accidental file deletion scenario, but it can be very helpful in that case, and is quick and easy to deal with.
Copies of whole filesystems and/or disks (e.g. periodic rsync of the whole machine). This is generally most useful in networks with unique requirements. For general protection against disk failure, it is usually inferior to RAID. For restoring accidentally deleted files, it can be comparable to UFS snapshots, but that depends on your preferences.
RAID. Minimizes or avoids downtime when a disk fails. At the expense of having to deal with disk failures more often (because you have more disks), albeit at a much lower urgency.
Checking fingerprints of files. The mtree(8) utility is very useful for this. Although it is not a backup technique, it helps guarantee that you will notice when you need to resort to your backups. This is particularly important for offline backups, and should be checked periodically.
It is quite easy to come up with even more techniques, many of them variations on the ones listed above. Specialized requirements will usually lead to specialized techniques (for example, backing up a live database usually requires a method particular to the database software as an intermediate step). The important thing is to know what dangers you want to protect against, and how you will handle each.
The three major backup programs are dump(8), tar(1), and cpio(1).
The traditional UNIX backup programs are dump and restore. They operate on the drive as a collection of disk blocks, below the abstractions of files, links and directories that are created by the file systems. dump backs up an entire file system on a device. It is unable to backup only part of a file system or a directory tree that spans more than one file system. dump does not write files and directories to tape, but rather writes the raw data blocks that comprise files and directories.
注: If you use dump on your root directory, you would not back up /home, /usr or many other directories since these are typically mount points for other file systems or symbolic links into those file systems.
dump has quirks that remain from its early days in Version 6 of AT&T UNIX (circa 1975). The default parameters are suitable for 9-track tapes (6250 bpi), not the high-density media available today (up to 62,182 ftpi). These defaults must be overridden on the command line to utilize the capacity of current tape drives.
It is also possible to backup data across the network to a tape drive attached to another computer with rdump and rrestore. Both programs rely upon rcmd(3) and ruserok(3) to access the remote tape drive. Therefore, the user performing the backup must be listed in the .rhosts file on the remote computer. The arguments to rdump and rrestore must be suitable to use on the remote computer. When rdumping from a FreeBSD computer to an Exabyte tape drive connected to a Sun called komodo, use:
# /sbin/rdump 0dsbfu 54000 13000 126 komodo:/dev/nsa8 /dev/da0a 2>&1
Beware: there are security implications to allowing .rhosts authentication. Evaluate your situation carefully.
It is also possible to use dump and restore in a more secure fashion over ssh.
範例 18-1. Using dump over ssh
# /sbin/dump -0uan -f - /usr | gzip -2 | ssh -c blowfish \ targetuser@targetmachine.example.com dd of=/mybigfiles/dump-usr-l0.gz
Or using dump's built-in method, setting the environment variable RSH:
tar(1) also dates back to Version 6 of AT&T UNIX (circa 1975). tar operates in cooperation with the file system; it writes files and directories to tape. tar does not support the full range of options that are available from cpio(1), but it does not require the unusual command pipeline that cpio uses.
On FreeBSD 5.3 and later, both GNU tar and the default bsdtar are available. The GNU version can be invoked with gtar. It supports remote devices using the same syntax as rdump. To tar to an Exabyte tape drive connected to a Sun called komodo, use:
# /usr/bin/gtar cf komodo:/dev/nsa8 . 2>&1
The same could be accomplished with bsdtar by using a pipeline and rsh to send the data to a remote tape drive.
# tar cf - . | rsh hostname dd of=tape-device obs=20b
If you are worried about the security of backing up over a network you should use the ssh command instead of rsh.
cpio(1) is the original UNIX file interchange tape program for magnetic media. cpio has options (among many others) to perform byte-swapping, write a number of different archive formats, and pipe the data to other programs. This last feature makes cpio an excellent choice for installation media. cpio does not know how to walk the directory tree and a list of files must be provided through stdin.
cpio does not support backups across the network. You can use a pipeline and rsh to send the data to a remote tape drive.
# for f in directory_list; do find $f >> backup.list done # cpio -v -o --format=newc < backup.list | ssh user@host "cat > backup_device"
Where directory_list is the list of directories you want to back up, user@host is the user/hostname combination that will be performing the backups, and backup_device is where the backups should be written to (e.g., /dev/nsa0).
pax(1) is IEEE/POSIX's answer to tar and cpio. Over the years the various versions of tar and cpio have gotten slightly incompatible. So rather than fight it out to fully standardize them, POSIX created a new archive utility. pax attempts to read and write many of the various cpio and tar formats, plus new formats of its own. Its command set more resembles cpio than tar.
Amanda (Advanced Maryland Network Disk Archiver) is a client/server backup system, rather than a single program. An Amanda server will backup to a single tape drive any number of computers that have Amanda clients and a network connection to the Amanda server. A common problem at sites with a number of large disks is that the length of time required to backup to data directly to tape exceeds the amount of time available for the task. Amanda solves this problem. Amanda can use a “holding disk” to backup several file systems at the same time. Amanda creates “archive sets”: a group of tapes used over a period of time to create full backups of all the file systems listed in Amanda's configuration file. The “archive set” also contains nightly incremental (or differential) backups of all the file systems. Restoring a damaged file system requires the most recent full backup and the incremental backups.
The configuration file provides fine control of backups and the network traffic that Amanda generates. Amanda will use any of the above backup programs to write the data to tape. Amanda is available as either a port or a package, it is not installed by default.
“Do nothing” is not a computer program, but it is the most widely used backup strategy. There are no initial costs. There is no backup schedule to follow. Just say no. If something happens to your data, grin and bear it!
If your time and your data is worth little to nothing, then “Do nothing” is the most suitable backup program for your computer. But beware, UNIX is a useful tool, you may find that within six months you have a collection of files that are valuable to you.
“Do nothing” is the correct backup method for /usr/obj and other directory trees that can be exactly recreated by your computer. An example is the files that comprise the HTML or PostScript version of this Handbook. These document formats have been created from SGML input files. Creating backups of the HTML or PostScript files is not necessary. The SGML files are backed up regularly.
dump(8) Period. Elizabeth D. Zwicky torture tested all the backup programs discussed here. The clear choice for preserving all your data and all the peculiarities of UNIX file systems is dump. Elizabeth created file systems containing a large variety of unusual conditions (and some not so unusual ones) and tested each program by doing a backup and restore of those file systems. The peculiarities included: files with holes, files with holes and a block of nulls, files with funny characters in their names, unreadable and unwritable files, devices, files that change size during the backup, files that are created/deleted during the backup and more. She presented the results at LISA V in Oct. 1991. See torture-testing Backup and Archive Programs.
There are only four steps that you need to perform in preparation for any disaster that may occur.
First, print the bsdlabel from each of your disks (e.g. bsdlabel da0 | lpr), your file system table (/etc/fstab) and all boot messages, two copies of each.
Second, determine that the boot and fix-it floppies (boot.flp and fixit.flp) have all your devices. The easiest way to check is to reboot your machine with the boot floppy in the floppy drive and check the boot messages. If all your devices are listed and functional, skip on to step three.
Otherwise, you have to create two custom bootable floppies which have a kernel that can mount all of your disks and access your tape drive. These floppies must contain: fdisk, bsdlabel, newfs, mount, and whichever backup program you use. These programs must be statically linked. If you use dump, the floppy must contain restore.
Third, create backup tapes regularly. Any changes that you make after your last backup may be irretrievably lost. Write-protect the backup tapes.
Fourth, test the floppies (either boot.flp and fixit.flp or the two custom bootable floppies you made in step two.) and backup tapes. Make notes of the procedure. Store these notes with the bootable floppy, the printouts and the backup tapes. You will be so distraught when restoring that the notes may prevent you from destroying your backup tapes (How? In place of tar xvf /dev/sa0, you might accidentally type tar cvf /dev/sa0 and over-write your backup tape).
For an added measure of security, make bootable floppies and two backup tapes each time. Store one of each at a remote location. A remote location is NOT the basement of the same office building. A number of firms in the World Trade Center learned this lesson the hard way. A remote location should be physically separated from your computers and disk drives by a significant distance.
範例 18-3. A Script for Creating a Bootable Floppy
#!/bin/sh # # create a restore floppy # # format the floppy # PATH=/bin:/sbin:/usr/sbin:/usr/bin fdformat -q fd0 if [ $? -ne 0 ] then echo "Bad floppy, please use a new one" exit 1 fi # place boot blocks on the floppy # bsdlabel -w -B /dev/fd0c fd1440 # # newfs the one and only partition # newfs -t 2 -u 18 -l 1 -c 40 -i 5120 -m 5 -o space /dev/fd0a # # mount the new floppy # mount /dev/fd0a /mnt # # create required directories # mkdir /mnt/dev mkdir /mnt/bin mkdir /mnt/sbin mkdir /mnt/etc mkdir /mnt/root mkdir /mnt/mnt # for the root partition mkdir /mnt/tmp mkdir /mnt/var # # populate the directories # if [ ! -x /sys/compile/MINI/kernel ] then cat << EOM The MINI kernel does not exist, please create one. Here is an example config file: # # MINI -- A kernel to get FreeBSD onto a disk. # machine "i386" cpu "I486_CPU" ident MINI maxusers 5 options INET # needed for _tcp _icmpstat _ipstat # _udpstat _tcpstat _udb options FFS #Berkeley Fast File System options FAT_CURSOR #block cursor in syscons or pccons options SCSI_DELAY=15 #Be pessimistic about Joe SCSI device options NCONS=2 #1 virtual consoles options USERCONFIG #Allow user configuration with -c XXX config kernel root on da0 swap on da0 and da1 dumps on da0 device isa0 device pci0 device fdc0 at isa? port "IO_FD1" bio irq 6 drq 2 vector fdintr device fd0 at fdc0 drive 0 device ncr0 device scbus0 device sc0 at isa? port "IO_KBD" tty irq 1 vector scintr device npx0 at isa? port "IO_NPX" irq 13 vector npxintr device da0 device da1 device da2 device sa0 pseudo-device loop # required by INET pseudo-device gzip # Exec gzipped a.out's EOM exit 1 fi cp -f /sys/compile/MINI/kernel /mnt gzip -c -best /sbin/init > /mnt/sbin/init gzip -c -best /sbin/fsck > /mnt/sbin/fsck gzip -c -best /sbin/mount > /mnt/sbin/mount gzip -c -best /sbin/halt > /mnt/sbin/halt gzip -c -best /sbin/restore > /mnt/sbin/restore gzip -c -best /bin/sh > /mnt/bin/sh gzip -c -best /bin/sync > /mnt/bin/sync cp /root/.profile /mnt/root cp -f /dev/MAKEDEV /mnt/dev chmod 755 /mnt/dev/MAKEDEV chmod 500 /mnt/sbin/init chmod 555 /mnt/sbin/fsck /mnt/sbin/mount /mnt/sbin/halt chmod 555 /mnt/bin/sh /mnt/bin/sync chmod 6555 /mnt/sbin/restore # # create the devices nodes # cd /mnt/dev ./MAKEDEV std ./MAKEDEV da0 ./MAKEDEV da1 ./MAKEDEV da2 ./MAKEDEV sa0 ./MAKEDEV pty0 cd / # # create minimum file system table # cat > /mnt/etc/fstab <<EOM /dev/fd0a / ufs rw 1 1 EOM # # create minimum passwd file # cat > /mnt/etc/passwd <<EOM root:*:0:0:Charlie &:/root:/bin/sh EOM cat > /mnt/etc/master.passwd <<EOM root::0:0::0:0:Charlie &:/root:/bin/sh EOM chmod 600 /mnt/etc/master.passwd chmod 644 /mnt/etc/passwd /usr/sbin/pwd_mkdb -d/mnt/etc /mnt/etc/master.passwd # # umount the floppy and inform the user # /sbin/umount /mnt echo "The floppy has been unmounted and is now ready."
The key question is: did your hardware survive? You have been doing regular backups so there is no need to worry about the software.
If the hardware has been damaged, the parts should be replaced before attempting to use the computer.
If your hardware is okay, check your floppies. If you are using a custom boot floppy, boot single-user (type -s at the boot: prompt). Skip the following paragraph.
If you are using the boot.flp and fixit.flp floppies, keep reading. Insert the boot.flp floppy in the first floppy drive and boot the computer. The original install menu will be displayed on the screen. Select the Fixit--Repair mode with CDROM or floppy. option. Insert the fixit.flp when prompted. restore and the other programs that you need are located in /mnt2/rescue (/mnt2/stand for FreeBSD versions older than 5.2).
Recover each file system separately.
Try to mount (e.g. mount /dev/da0a /mnt) the root partition of your first disk. If the bsdlabel was damaged, use bsdlabel to re-partition and label the disk to match the label that you printed and saved. Use newfs to re-create the file systems. Re-mount the root partition of the floppy read-write (mount -u -o rw /mnt). Use your backup program and backup tapes to recover the data for this file system (e.g. restore vrf /dev/sa0). Unmount the file system (e.g. umount /mnt). Repeat for each file system that was damaged.
Once your system is running, backup your data onto new tapes. Whatever caused the crash or data loss may strike again. Another hour spent now may save you from further distress later.
Aside from the disks you physically insert into your computer: floppies, CDs, hard drives, and so forth; other forms of disks are understood by FreeBSD - the virtual disks.
These include network file systems such as the Network File System and Coda, memory-based file systems and file-backed file systems.
According to the FreeBSD version you run, you will have to use different tools for creation and use of file-backed and memory-based file systems.
注: Use devfs(5) to allocate device nodes transparently for the user.
The utility mdconfig(8) is used to configure and enable memory disks, md(4), under FreeBSD. To use mdconfig(8), you have to load md(4) module or to add the support in your kernel configuration file:
device md
The mdconfig(8) command supports three kinds of memory backed virtual disks: memory disks allocated with malloc(9), memory disks using a file or swap space as backing. One possible use is the mounting of floppy or CD images kept in files.
To mount an existing file system image:
範例 18-4. Using mdconfig to Mount an Existing File System Image
# mdconfig -a -t vnode -f diskimage -u 0 # mount /dev/md0 /mnt
To create a new file system image with mdconfig(8):
範例 18-5. Creating a New File-Backed Disk with mdconfig
# dd if=/dev/zero of=newimage bs=1k count=5k 5120+0 records in 5120+0 records out # mdconfig -a -t vnode -f newimage -u 0 # bsdlabel -w md0 auto # newfs md0a /dev/md0a: 5.0MB (10224 sectors) block size 16384, fragment size 2048 using 4 cylinder groups of 1.25MB, 80 blks, 192 inodes. super-block backups (for fsck -b #) at: 160, 2720, 5280, 7840 # mount /dev/md0a /mnt # df /mnt Filesystem 1K-blocks Used Avail Capacity Mounted on /dev/md0a 4710 4 4330 0% /mnt
If you do not specify the unit number with the -u
option, mdconfig(8) will use
the md(4) automatic
allocation to select an unused device. The name of the allocated unit will be output
on stdout like md4. For more details about mdconfig(8), please
refer to the manual page.
The utility mdconfig(8) is very useful, however it asks many command lines to create a file-backed file system. FreeBSD also comes with a tool called mdmfs(8), this program configures a md(4) disk using mdconfig(8), puts a UFS file system on it using newfs(8), and mounts it using mount(8). For example, if you want to create and mount the same file system image as above, simply type the following:
範例 18-6. Configure and Mount a File-Backed Disk with mdmfs
# dd if=/dev/zero of=newimage bs=1k count=5k 5120+0 records in 5120+0 records out # mdmfs -F newimage -s 5m md0 /mnt # df /mnt Filesystem 1K-blocks Used Avail Capacity Mounted on /dev/md0 4718 4 4338 0% /mnt
If you use the option md
without unit number, mdmfs(8) will use md(4) auto-unit
feature to automatically select an unused device. For more details about mdmfs(8), please refer
to the manual page.
For a memory-based file system the “swap backing” should normally be used. Using swap backing does not mean that the memory disk will be swapped out to disk by default, but merely that the memory disk will be allocated from a memory pool which can be swapped out to disk if needed. It is also possible to create memory-based disk which are malloc(9) backed, but using malloc backed memory disks, especially large ones, can result in a system panic if the kernel runs out of memory.
範例 18-7. Creating a New Memory-Based Disk with mdconfig
# mdconfig -a -t malloc -s 5m -u 1 # newfs -U md1 /dev/md1: 5.0MB (10240 sectors) block size 16384, fragment size 2048 using 4 cylinder groups of 1.27MB, 81 blks, 256 inodes. with soft updates super-block backups (for fsck -b #) at: 32, 2624, 5216, 7808 # mount /dev/md1 /mnt # df /mnt Filesystem 1K-blocks Used Avail Capacity Mounted on /dev/md1 4846 2 4458 0% /mnt
範例 18-8. Creating a New Memory-Based Disk with mdmfs
# mdmfs -M -s 5m md2 /mnt # df /mnt Filesystem 1K-blocks Used Avail Capacity Mounted on /dev/md2 4846 2 4458 0% /mnt
Instead of using a malloc(9) backed file
system, it is possible to use swap, for that just replace malloc
with swap
in the command
line of mdconfig(8). The mdmfs(8) utility
by default (without -M
) creates a swap-based disk.
For more details, please refer to mdconfig(8) and
mdmfs(8) manual
pages.
When a memory-based or file-based file system is not used, you should release all resources to the system. The first thing to do is to unmount the file system, then use mdconfig(8) to detach the disk from the system and release the resources.
For example to detach and free all resources used by /dev/md4:
# mdconfig -d -u 4
It is possible to list information about configured md(4) devices in using the command mdconfig -l.
FreeBSD offers a feature in conjunction with Soft Updates: File system snapshots.
Snapshots allow a user to create images of specified file systems, and treat them as a file. Snapshot files must be created in the file system that the action is performed on, and a user may create no more than 20 snapshots per file system. Active snapshots are recorded in the superblock so they are persistent across unmount and remount operations along with system reboots. When a snapshot is no longer required, it can be removed with the standard rm(1) command. Snapshots may be removed in any order, however all the used space may not be acquired because another snapshot will possibly claim some of the released blocks.
The un-alterable snapshot
file flag is set by mksnap_ffs(8) after
initial creation of a snapshot file. The unlink(1) command
makes an exception for snapshot files since it allows them to be removed.
Snapshots are created with the mount(8) command. To place a snapshot of /var in the file /var/snapshot/snap use the following command:
# mount -u -o snapshot /var/snapshot/snap /var
Alternatively, you can use mksnap_ffs(8) to create a snapshot:
# mksnap_ffs /var /var/snapshot/snap
One can find snapshot files on a file system (e.g. /var) by using the find(1) command:
# find /var -flags snapshot
Once a snapshot has been created, it has several uses:
Some administrators will use a snapshot file for backup purposes, because the snapshot can be transfered to CDs or tape.
File integrity, fsck(8) may be ran on the snapshot. Assuming that the file system was clean when it was mounted, you should always get a clean (and unchanging) result. This is essentially what the background fsck(8) process does.
Run the dump(8) utility on the
snapshot. A dump will be returned that is consistent with the file system and
the timestamp of the snapshot. dump(8) can also
take a snapshot, create a dump image and then remove the snapshot in one command
using the -L
flag.
mount(8) the snapshot as a frozen image of the file system. To mount(8) the snapshot /var/snapshot/snap run:
# mdconfig -a -t vnode -f /var/snapshot/snap -u 4 # mount -r /dev/md4 /mnt
You can now walk the hierarchy of your frozen /var file system mounted at /mnt. Everything will initially be in the same state it was during the snapshot creation time. The only exception is that any earlier snapshots will appear as zero length files. When the use of a snapshot has delimited, it can be unmounted with:
# umount /mnt # mdconfig -d -u 4
For more information about softupdates
and file
system snapshots, including technical papers, you can visit Marshall Kirk McKusick's
website at http://www.mckusick.com/.
磁碟配額(Quota)屬於作業系統上的選用功能, 可以用來限制使用者或群組的可用空間大小,或者檔案的總數多寡。 這功能通常用在多人共用的系統環境上, 因為要限制各使用者或各群組所能運用的系統資源。 如此一來,就可避免磁碟空間被某使用者或某群組全部耗盡。
在用磁碟配額之前,請先確認 kernel 已經有作相關設定,也就是 kernel 設定檔要有下面這行:
options QUOTA
預設的 GENERIC kernel 並不會加上這項, 所以若要啟用就必需加上,並重新編譯、安裝 kernel。 kernel 設定部分可參閱 µÚ 8 章 的說明。
接著就是在 /etc/rc.conf 設定啟動磁碟配額。 請加上下列這行:
enable_quotas="YES"
為了能更完善的控管磁碟配額的啟動,還有一個設定可以用。 通常開機時, quotacheck(8) 程式會檢查各檔案系統上的配額。 quotacheck(8) 可以確保配額資料庫的資料與實際檔案系統的資料有符合。 但這功能也會在開機時,會對啟動時間造成相當明顯的影響。 若想跳過這步驟,則可以在 /etc/rc.conf 加上:
check_quotas="NO"
最後,要記得改 /etc/fstab 來啟用以檔案系統為對象的磁碟配額功能。 也可以啟用針對使用者或群組, 或者兩者皆有之的磁碟配額。
若要啟用針對使用者的配額,可以在 /etc/fstab
內要設定的檔案系統加上 userquota
選項。 比如:
/dev/da1s2g /home ufs rw,userquota 1 2
同理若要啟用針對群組的配額,則把剛剛的 userquota
換成
groupquota
即可。 而若要兩者同時啟用, 那麼則是:
/dev/da1s2g /home ufs rw,userquota,groupquota 1 2
針對使用者以及群組的磁碟配額設定檔,預設分別會放在該檔案系統根目錄的 quota.user 以及 quota.group 。 細節部分請參閱 fstab(5)。 雖然 fstab(5) 提到可以為配額設定檔指定其他地方,但並不建議如此作, 因為各種磁碟配額管理工具並不見得對這些預設值能隨之彈性變化。
接下來就可以用新 kernel 來重開機。 /etc/rc 會自動執行相關指令以對 /etc/fstab 有設定配額管理的部分,作初始設定。 所以並不需要逐一手動產生相關空的配額設定檔。
正常操作過程中,並不需要手動執行 quotacheck(8)、quotaon(8) 、quotaoff(8) 這些指令。 不過,若要更熟悉相關操作方式的話, 或許可以閱讀相關的 manual 線上說明。
一旦開始啟用配額管理之後,請記得確認是否有真的啟用。 可以打下列指令來作簡單檢查:
# quota -v
應該可以看到有關各檔案系統的配額限量, 以及現在使用量的摘要訊息。
現在可以開始用 edquota(8) 來設定各磁碟配額的限制。
有幾種選項可以用來限制使用者或群組所能運用的磁碟空間, 以及所能建立的檔案數量多寡。 可以依磁碟空間(block 配額)或檔案數量 (inode 配額),或者搭配兩者一起設定。 而每種限制還可以細分為兩類: hard(硬性)上限、soft(彈性)上限。
硬性上限是不能超過的。 一旦使用者達到硬性上限時, 就無法在該檔案系統上繼續使用更多的使用空間了。 舉例來說,若有位使用者的硬性上限為 500 KB,而目前用了 490 KB, 那麼他就只能再多用 10 KB 而已,若要新增的檔案有 11 KB 就會失敗。
然而,彈性上限則可允許一定時間內的超額使用,這段期間稱為 grace period(寬限期),預設值是一週。 若使用者持續超額使用並超出 grace period 而逾期,則彈性上限就會轉為硬性上限, 而不允許該使用者繼續新增空間。 直到該使用者的空間已經清到低於彈性上限之後,才會重設 grace period。
下面則是使用 edquota(8) 的例子。 在執行 edquota(8) 時,會進入設定磁碟配額上限的編輯器內,至於是哪一種編輯器則視您的 EDITOR 環境變數而定,若沒設定 EDITOR 的話,則會用 vi 編輯器。
# edquota -u test
Quotas for user test: /usr: kbytes in use: 65, limits (soft = 50, hard = 75) inodes in use: 7, limits (soft = 50, hard = 60) /usr/var: kbytes in use: 0, limits (soft = 50, hard = 75) inodes in use: 0, limits (soft = 50, hard = 60)
一般來說,每個啟動了磁碟配額的檔案系統都會有兩行設定。 第一行是 block 上限,而另一行則是 inode 上限。 若要更改磁碟配額上限,只需要修改後面的數值即可。 舉例來說, 要增加這位使用者的 block 上限部分:把彈性上限 50 調為 500, 硬性上限則由 75 調為 600 ,只需修改下面這行:
/usr: kbytes in use: 65, limits (soft = 50, hard = 75)
改為下列:
/usr: kbytes in use: 65, limits (soft = 500, hard = 600)
然後存檔離開後,新的配額設定就會立即生效。
有時候會想一次改大範圍 UID 的帳號設定,這時可以用 edquota(8) 的
-p
參數功能來完成。 首先,
把某個帳號調為想要的相關配額,然後可以用 edquota -p
protouser startuid-enduid 之類的方式來改。 舉例來說,假設 test 這帳號已經設定好相關配額, 然後要改的對象為 UID 從 10,000
到 19,999 的帳號, 那麼就可以下列指令來設定同樣的配額:
# edquota -p test 10000-19999
細節說明請參閱 edquota(8)。
可以用 quota(1) 或 repquota(8) 來檢查磁碟配額設定, 以及磁碟使用量。 quota(1) 可用來檢查單一使用者或群組的磁碟配額、 磁碟使用量。 不過一般帳號只能查自己的以及自己群組的磁碟配額、 磁碟使用量,只有系統管理者帳號才能察看所有使用者、 群組的配額設定與使用量。 而 repquota(8) 則可以看到所有已啟動磁碟配額的檔案系統設定、磁碟使用量摘要。
下面例子則是在兩個有配額設定的檔案系統上,打 quota -v 的顯示結果:
Disk quotas for user test (uid 1002): Filesystem usage quota limit grace files quota limit grace /usr 65* 50 75 5days 7 50 60 /usr/var 0 50 75 0 50 60
在上面這例中,該使用者在 /usr 的彈性配額是 50 KB,實際上已經超額多用 15 KB,而 grace period 還有 5 天就逾期。 請注意這個星號 * 是表示目前該使用者已經超越其配額的彈性上限了。
一般來說,若使用者並沒有用到某個檔案系統, 那麼就算該檔案有啟用磁碟配額,在 quota(1)
也不會顯示出來。 而 -v
參數則可以把這些檔案系統都全部列出來, 比如上例中的 /usr/var。
NFS server 端可以強制以 quota subsystem(配額子系統)來用磁碟配額。 而 NFS client 端則可以透過 rpc.rquotad(8) daemon 來讓 quota(1) 指令抓到相關配額資料,也就可以讓 client 端的使用者察看其配額的統計資料。
若要啟用 rpc.rquotad,可以在 /etc/inetd.conf 加上下列類似設定:
rquotad/1 dgram rpc/udp wait root /usr/libexec/rpc.rquotad rpc.rquotad
然後重啟 inetd 即可:
# kill -HUP `cat /var/run/inetd.pid`
FreeBSD offers excellent online protections against unauthorized data access. File permissions and Mandatory Access Control (MAC) (see µÚ 16 章) help prevent unauthorized third-parties from accessing data while the operating system is active and the computer is powered up. However, the permissions enforced by the operating system are irrelevant if an attacker has physical access to a computer and can simply move the computer's hard drive to another system to copy and analyze the sensitive data.
Regardless of how an attacker may have come into possession of a hard drive or powered-down computer, both GEOM Based Disk Encryption (gbde) and geli cryptographic subsystems in FreeBSD are able to protect the data on the computer's file systems against even highly-motivated attackers with significant resources. Unlike cumbersome encryption methods that encrypt only individual files, gbde and geli transparently encrypt entire file systems. No cleartext ever touches the hard drive's platter.
The following example assumes that you are adding a new hard drive to your system that will hold a single encrypted partition. This partition will be mounted as /private. gbde can also be used to encrypt /home and /var/mail, but this requires more complex instructions which exceed the scope of this introduction.
Add the New Hard Drive
Install the new drive to the system as explained in µÚ 18.3 節. For the purposes of this example, a new hard drive partition has been added as /dev/ad4s1c. The /dev/ad0s1* devices represent existing standard FreeBSD partitions on the example system.
# ls /dev/ad* /dev/ad0 /dev/ad0s1b /dev/ad0s1e /dev/ad4s1 /dev/ad0s1 /dev/ad0s1c /dev/ad0s1f /dev/ad4s1c /dev/ad0s1a /dev/ad0s1d /dev/ad4
Create a Directory to Hold gbde Lock Files
# mkdir /etc/gbde
The gbde lock file contains information that gbde requires to access encrypted partitions. Without access to the lock file, gbde will not be able to decrypt the data contained in the encrypted partition without significant manual intervention which is not supported by the software. Each encrypted partition uses a separate lock file.
Initialize the gbde Partition
A gbde partition must be initialized before it can be used. This initialization needs to be performed only once:
# gbde init /dev/ad4s1c -i -L /etc/gbde/ad4s1c
gbde(8) will open your editor, permitting you to set various configuration options in a template. For use with UFS1 or UFS2, set the sector_size to 2048:
$FreeBSD: src/sbin/gbde/template.txt,v 1.1 2002/10/20 11:16:13 phk Exp $ # # Sector size is the smallest unit of data which can be read or written. # Making it too small decreases performance and decreases available space. # Making it too large may prevent filesystems from working. 512 is the # minimum and always safe. For UFS, use the fragment size # sector_size = 2048 [...]
gbde(8) will ask you twice to type the passphrase that should be used to secure the data. The passphrase must be the same both times. gbde's ability to protect your data depends entirely on the quality of the passphrase that you choose. [23]
The gbde init command creates a lock file for your gbde partition that in this example is stored as /etc/gbde/ad4s1c.
注意gbde lock files must be backed up together with the contents of any encrypted partitions. While deleting a lock file alone cannot prevent a determined attacker from decrypting a gbde partition, without the lock file, the legitimate owner will be unable to access the data on the encrypted partition without a significant amount of work that is totally unsupported by gbde(8) and its designer.
Attach the Encrypted Partition to the Kernel
# gbde attach /dev/ad4s1c -l /etc/gbde/ad4s1c
You will be asked to provide the passphrase that you selected during the initialization of the encrypted partition. The new encrypted device will show up in /dev as /dev/device_name.bde:
# ls /dev/ad* /dev/ad0 /dev/ad0s1b /dev/ad0s1e /dev/ad4s1 /dev/ad0s1 /dev/ad0s1c /dev/ad0s1f /dev/ad4s1c /dev/ad0s1a /dev/ad0s1d /dev/ad4 /dev/ad4s1c.bde
Create a File System on the Encrypted Device
Once the encrypted device has been attached to the kernel, you can create a file
system on the device. To create a file system on the encrypted device, use newfs(8). Since it is
much faster to initialize a new UFS2 file system than it is to initialize the
old UFS1 file system, using newfs(8) with
the -O2
option is recommended.
# newfs -U -O2 /dev/ad4s1c.bde
注: The newfs(8) command must be performed on an attached gbde partition which is identified by a *.bde extension to the device name.
Mount the Encrypted Partition
Create a mount point for the encrypted file system.
# mkdir /private
Mount the encrypted file system.
# mount /dev/ad4s1c.bde /private
Verify That the Encrypted File System is Available
The encrypted file system should now be visible to df(1) and be available for use.
% df -H Filesystem Size Used Avail Capacity Mounted on /dev/ad0s1a 1037M 72M 883M 8% / /devfs 1.0K 1.0K 0B 100% /dev /dev/ad0s1f 8.1G 55K 7.5G 0% /home /dev/ad0s1e 1037M 1.1M 953M 0% /tmp /dev/ad0s1d 6.1G 1.9G 3.7G 35% /usr /dev/ad4s1c.bde 150G 4.1K 138G 0% /private
After each boot, any encrypted file systems must be re-attached to the kernel, checked for errors, and mounted, before the file systems can be used. The required commands must be executed as user root.
Attach the gbde Partition to the Kernel
# gbde attach /dev/ad4s1c -l /etc/gbde/ad4s1c
You will be asked to provide the passphrase that you selected during initialization of the encrypted gbde partition.
Check the File System for Errors
Since encrypted file systems cannot yet be listed in /etc/fstab for automatic mounting, the file systems must be checked for errors by running fsck(8) manually before mounting.
# fsck -p -t ffs /dev/ad4s1c.bde
Mount the Encrypted File System
# mount /dev/ad4s1c.bde /private
The encrypted file system is now available for use.
It is possible to create a script to automatically attach, check, and mount an encrypted partition, but for security reasons the script should not contain the gbde(8) password. Instead, it is recommended that such scripts be run manually while providing the password via the console or ssh(1).
As of FreeBSD 5.2-RELEASE, there is a new rc.d script provided. Arguments for this script can be passed via rc.conf(5), for example:
gbde_autoattach_all="YES" gbde_devices="ad4s1c"
This will require that the gbde passphrase be entered at boot time. After typing the correct passphrase, the gbde encrypted partition will be mounted automatically. This can be very useful when using gbde on notebooks.
gbde(8) encrypts the sector payload using 128-bit AES in CBC mode. Each sector on the disk is encrypted with a different AES key. For more information on gbde's cryptographic design, including how the sector keys are derived from the user-supplied passphrase, see gbde(4).
sysinstall(8) is incompatible with gbde-encrypted devices. All *.bde devices must be detached from the kernel before starting sysinstall(8) or it will crash during its initial probing for devices. To detach the encrypted device used in our example, use the following command:
# gbde detach /dev/ad4s1c
Also note that, as vinum(4) does not use the geom(4) subsystem, you cannot use gbde with vinum volumes.
A new cryptographic GEOM class is available as of FreeBSD 6.0 - geli. It is currently being developed by Pawel Jakub Dawidek
<pjd@FreeBSD.org>
. Geli is different to gbde; it offers
different features and uses a different scheme for doing cryptographic work.
The most important features of geli(8) are:
Utilizes the crypto(9) framework —— when cryptographic hardware is available, geli will use it automatically.
Supports multiple cryptographic algorithms (currently AES, Blowfish, and 3DES).
Allows the root partition to be encrypted. The passphrase used to access the encrypted root partition will be requested during the system boot.
Allows the use of two independent keys (e.g. a “key” and a “company key”).
geli is fast - performs simple sector-to-sector encryption.
Allows backup and restore of Master Keys. When a user has to destroy his keys, it will be possible to get access to the data again by restoring keys from the backup.
Allows to attach a disk with a random, one-time key —— useful for swap partitions and temporary file systems.
More geli features can be found in the geli(8) manual page.
The next steps will describe how to enable support for geli in the FreeBSD kernel and will explain how to create a new geli encryption provider. At the end it will be demonstrated how to create an encrypted swap partition using features provided by geli.
In order to use geli, you must be running FreeBSD 6.0-RELEASE or later. Super-user privileges will be required since modifications to the kernel are necessary.
Adding geli Support to the Kernel Configuration File
Add the following lines to the kernel configuration file:
options GEOM_ELI device crypto
Rebuild the kernel as described in µÚ 8 章.
Alternatively, the geli module can be loaded at boot time. Add the following line to the /boot/loader.conf:
geom_eli_load="YES"
geli(8) should now be supported by the kernel.
Generating the Master Key
The following example will describe how to generate a key file, which will be used as part of the Master Key for the encrypted provider mounted under /private. The key file will provide some random data used to encrypt the Master Key. The Master Key will be protected by a passphrase as well. Provider's sector size will be 4kB big. Furthermore, the discussion will describe how to attach the geli provider, create a file system on it, how to mount it, how to work with it, and finally how to detach it.
It is recommended to use a bigger sector size (like 4kB) for better performance.
The Master Key will be protected with a passphrase and the data source for key file will be /dev/random. The sector size of /dev/da2.eli, which we call provider, will be 4kB.
# dd if=/dev/random of=/root/da2.key bs=64 count=1 # geli init -s 4096 -K /root/da2.key /dev/da2 Enter new passphrase: Reenter new passphrase:
It is not mandatory that both a passphrase and a key file are used; either method of securing the Master Key can be used in isolation.
If key file is given as “-”, standard input will be used. This example shows how more than one key file can be used.
# cat keyfile1 keyfile2 keyfile3 | geli init -K - /dev/da2
Attaching the Provider with the generated Key
# geli attach -k /root/da2.key /dev/da2 Enter passphrase:
The new plaintext device will be named /dev/da2.eli.
# ls /dev/da2* /dev/da2 /dev/da2.eli
Creating the new File System
# dd if=/dev/random of=/dev/da2.eli bs=1m # newfs /dev/da2.eli # mount /dev/da2.eli /private
The encrypted file system should be visible to df(1) and be available for use now.
# df -H Filesystem Size Used Avail Capacity Mounted on /dev/ad0s1a 248M 89M 139M 38% / /devfs 1.0K 1.0K 0B 100% /dev /dev/ad0s1f 7.7G 2.3G 4.9G 32% /usr /dev/ad0s1d 989M 1.5M 909M 0% /tmp /dev/ad0s1e 3.9G 1.3G 2.3G 35% /var /dev/da2.eli 150G 4.1K 138G 0% /private
Unmounting and Detaching the Provider
Once the work on the encrypted partition is done, and the /private partition is no longer needed, it is prudent to consider unmounting and detaching the geli encrypted partition from the kernel.
# umount /private # geli detach da2.eli
More information about the use of geli(8) can be found in the manual page.
The following example demonstrates how to create a geli encrypted swap partition.
# dd if=/dev/random of=/dev/ad0s1b bs=1m # geli onetime -d -a 3des ad0s1b # swapon /dev/ad0s1b.eli
geli comes with a rc.d script which can be used to simplify the usage of geli. An example of configuring geli through rc.conf(5) follows:
geli_devices="da2" geli_da2_flags="-p -k /root/da2.key"
This will configure /dev/da2 as a geli provider of which the Master Key file is located in /root/da2.key, and geli will not use a passphrase when attaching the provider (note that this can only be used if -P was given during the geli init phase). The system will detach the geli provider from the kernel before the system shuts down.
More information about configuring rc.d is provided in the rc.d section of the Handbook.
Swap encryption in FreeBSD is easy to configure and has been available since FreeBSD 5.3-RELEASE. Depending on which version of FreeBSD is being used, different options are available and configuration can vary slightly. From FreeBSD 6.0-RELEASE onwards, the gbde(8) or geli(8) encryption systems can be used for swap encryption. With earlier versions, only gbde(8) is available. Both systems use the encswap rc.d script.
The previous section, Encrypting Disk Partitions, includes a short discussion on the different encryption systems.
Like the encryption of disk partitions, encryption of swap space is done to protect sensitive information. Imagine an application that e.g. deals with passwords. As long as these passwords stay in physical memory, all is well. However, if the operating system starts swapping out memory pages to free space for other applications, the passwords may be written to the disk platters unencrypted and easy to retrieve for an adversary. Encrypting swap space can be a solution for this scenario.
注: For the remainder of this section, ad0s1b will be the swap partition.
Up to this point the swap has been unencrypted. It is possible that there are already passwords or other sensitive data on the disk platters in cleartext. To rectify this, the data on the swap partition should be overwritten with random garbage:
# dd if=/dev/random of=/dev/ad0s1b bs=1m
If FreeBSD 6.0-RELEASE or newer is being used, the .bde suffix should be added to the device in the respective /etc/fstab swap line:
# Device Mountpoint FStype Options Dump Pass# /dev/ad0s1b.bde none swap sw 0 0
For systems prior to FreeBSD 6.0-RELEASE, the following line in /etc/rc.conf is also needed:
gbde_swap_enable="YES"
Alternatively, the procedure for using geli(8) for swap encryption is similar to that of using gbde(8). The .eli suffix should be added to the device in the respective /etc/fstab swap line:
# Device Mountpoint FStype Options Dump Pass# /dev/ad0s1b.eli none swap sw 0 0
geli(8) uses the AES algorithm with a key length of 256 bit by default.
Optionally, these defaults can be altered using the geli_swap_flags option in /etc/rc.conf. The following line tells the encswap rc.d script to create geli(8) swap partitions using the Blowfish algorithm with a key length of 128 bit, a sectorsize of 4 kilobytes and the “detach on last close” option set:
geli_swap_flags="-a blowfish -l 128 -s 4096 -d"
Please refer to the description of the onetime command in the geli(8) manual page for a list of possible options.
Once the system has been rebooted, proper operation of the encrypted swap can be verified using the swapinfo command.
If gbde(8) is being used:
% swapinfo Device 1K-blocks Used Avail Capacity /dev/ad0s1b.bde 542720 0 542720 0%
If geli(8) is being used:
% swapinfo Device 1K-blocks Used Avail Capacity /dev/ad0s1b.eli 542720 0 542720 0%
本章涵蓋如何在 FreeBSD 的 GEOM 架構下使用磁碟, 包含用來設定幾種常用的 RAID 的控制工具。本章不會深入探討 GEOM 如何處理底層的 I/O,這類資訊請參考 geom(4) 及相關的 SEE ALSO 部份。本章也非 RAID 設定指南,在這裡只會討論目前 GEOM 支援的 RAID 模式。
讀完這章,您將了解︰
透過 GEOM 可支援哪些模式的 RAID。
如何使用基本工具來配置、操作、維護不同模式的 RAID。
如何透過 GEOM 來完成鏡射(mirror)、分散連結(stripe)、加密(encrypt) 、遠端連接磁碟等。
當 GEOM 架構下的磁碟發生問題,如何排除。
在開始閱讀這章之前,您需要︰
GEOM 透過 privoder(即 /dev/ 下的特殊裝置檔案) 來操控 classes(如 Master Boot Records、 BSD labels 等) 。GEOM 支援多種軟體 RAID 配置,透過 GEOM 存取時, 作業系統和應用程式不會意識到 GEOM 存在。
分散連結(striping) 可用來連結多個磁碟成為一大塊空間。 很多時候硬體控制器可以完成這件事,不過 GEOM 也提供了軟體版本的 RAID0,也就是分散連結(striping)。
在 RAID0 裡,資料會被切分成很多塊, 再分散寫入全部的磁碟。例如要寫入 256k 的資料到單一磁碟,在 四個磁碟的 RAID0 中可同時寫入 64k 到四個磁碟裡, 因此可大幅提升 I/O 效能。如果使用更多的磁碟控制器, I/O 效能可再提升。
由於讀或寫時會同步交錯對許多磁碟進行 I/O 處理,因此 RAID0 的每個磁碟必須大小一樣。
用未格式化的 ATA 磁碟來建立分散連結(striping)
載入 geom_stripe kernel module:
# kldload geom_stripe.ko
確定掛載點(mount point)存在。 如果想用分散連結(striping)的空間做為根目錄(root partition,即 / ), 則先用個暫時的掛載點,如 /mnt:
# mkdir /mnt
確認要用來分散連結(striping)的裝置名稱,接著建立新的分散連結(striping)。 例如下面的指令會分散連結(striping)兩個未使用、尚未分割區的 ATA 磁碟(/dev/ad2 和 /dev/ad3) :
# gstripe label -v st0 /dev/ad2 /dev/ad3
# gstripe label -v st0 /dev/ad2 /dev/ad3
用下面的指令來建立分割區表(partition table):
# bsdlabel -wB /dev/stripe/st0
除了先前建立的 st0 ,這個步驟還會在 /dev/stripe 下新增兩個裝置: st0a 和 st0c。 利用 newfs 指令可以在 st0a 建立檔案系統:
# newfs -U /dev/stripe/st0a
螢幕上會有一堆數字傾瀉而過,幾秒鐘後就會完成。此時空間已建立, 可用來掛載使用了。
下面指令可用來手動掛載分散連結(striping)空間:
# mount /dev/stripe/st0a /mnt
如果要在開機時自動掛載,在 /etc/fstab 加入這塊空間的資訊:
# echo "/dev/stripe/st0a /mnt ufs rw 2 2" \ >> /etc/fstab
而 geom kernel module 必須在系統初始化時自動載入, 因此在 /boot/lodaer.conf 加入一行:
# echo 'geom_stripe_load="YES"' >> /boot/loader.conf
許多企業或個人用戶用鏡射(mirroring) 來不中斷系統進行備份。 鏡射簡單來說就是在 B 磁碟上重覆一份 A 磁碟的資料, 或者 C+D 磁碟重覆 A+B 磁碟的資料。不論設定如何, 最重要的是所有磁碟或分割區(partition) 上的資料都會被複製, 之後可在不中斷服務的情況下復原、備份資料,使儲存的資料更安全。
開始之前,請先確定系統上有兩個容量相同的磁碟, 後面的範例假設這兩顆磁碟是 direct access(da(4)) SCSI 磁碟。
首先我們假設 FreeBSD 安裝在第一個磁碟上,且只有兩個分割區(partition)。 其中一個是交換分割區(swap partition,大小為 RAM 的兩倍),而剩下的全用於根目錄(即 /, root file system)。當然要在不同掛載點(mount point) 切出更多分割區 (partition) 也可以,不過難度會大幅提升,因為必須手動操作 bsdlabel(8) 和 fdisk(8) 工具。
重開機並等到系統完全初始化完畢,用 root 登入。
建立 /dev/mirror/gm 裝置並以 /dev/da1 連結:
# gmirror label -vnb round-robin gm0 /dev/da1
這時系統應該會回應:
Metadata value stored on /dev/da1. Done.
初始化 GEOM,這動作會自動載入 /boot/kernel/geom_mirror.ko kernel module:
# gmirror load
注: 這動作應該會在 /dev/mirror 下建立 gm0 裝置結點(device node)。
在這個新建的 gm0 裝置上安置一般的 fdisk label 和開機磁區:
# fdisk -vBI /dev/mirror/gm0
接著安置 bsdlabel 資訊:
# bsdlabel -wB /dev/mirror/gm0s1
注: 如果存在多個 slice 和分割區(partition), 記得修改上兩指令的參數,且另一個磁碟上的 slice 和分割區(partition) 大小必須相同。
用 newfs(8) 工具在 gm0s1a 裝置結點建立預設的檔案系統:
# newfs -U /dev/mirror/gm0s1a
系統會印出許多資訊和一大堆數字,這是正常的。 確認是否有認何錯誤,接著就可以將這個裝置掛載到 /mnt 掛載點(mount mount):
# mount /dev/mirror/gm0s1a /mnt
接著將原本開機磁碟的資料搬移到新的檔案系統 (/mnt)。範例是用 dump(8) 和 restore(8) ,不過用 dd(1) 也可以。
# dump -L -0 -f- / |(cd /mnt && restore -r -v -f-)
執行上述指令時,只要將恰當的檔案系統掛在正確的位置,應該就能成功。
接著編輯 /mnt/etc/fstab 檔將 swap file 那行移除或註解起來。 [24]請參考下面範例,並根據新磁碟修改其它的檔案系統資訊:
# Device Mountpoint FStype Options Dump Pass# #/dev/da0s2b none swap sw 0 0 /dev/mirror/gm0s1a / ufs rw 1 1
在目前的根目錄及新的根目錄建立 boot.conf 檔案, 這個檔案可以『幫助』系統 BIOS 開機:
# echo "1:da(1,a)/boot/loader" > /boot.config
# echo "1:da(1,a)/boot/loader" > /mnt/boot.config
注: 在兩個根目錄上都新增檔案是為了安全起見, 如果因為某些原因新的根目錄無法開機,至少還可用原本的根目錄。
接著在 /boot/loader.conf 新增兩行:
# echo 'geom_mirror_load="YES"' >> /mnt/boot/loader.conf
這會指示 loader(8) 在開機時載入 geom_mirror.ko kernel module。
重開機:
# shutdown -r now
如果一切順利,系統應該會從 gm0s1a 裝置開機, 接下來出現 login 提示畫面。如果出錯了, 請參閱下面 Troubleshooting 那一節。 現在可以將 da0 磁碟加入 gm0 裝置:
# gmirror configure -a gm0 # gmirror insert gm0 /dev/da0
其中 -a
旗標告訴 gmirror(8)
使用「自動同步(automatic synchronization)」,例如自動同步寫入磁碟的動作。 manual
說明了如何重建、取代磁碟等,不過 manual 裡的範例是用 data
而不是 gm0。
如果開機提示類似這樣:
ffs_mountroot: can't find rootvp Root mount failed: 6 mountroot>
請用機器面板上的 Power 按鈕或 reset 按鈕來重開機,並在開機選單選 (6), 這樣子,系統就會進入 loader(8) 交談模式。這時候,請照下面指令來手動載入所需的 kernel module ,也就是 geom_mirror.ko:
OK? load geom_mirror.ko OK? boot
如果這樣成功了的話,表示因為某些原因無法自動載入 kernel module。 請將:
options GEOM_MIRROR
加入到核心設定檔(kernel configuration file),重編並安裝核心。 這應該能解決這個問題。
No matter what disks you have, there are always potential problems:
They can be too small.
They can be too slow.
They can be too unreliable.
One way some users safeguard themselves against such issues is through the use of multiple, and sometimes redundant, disks.
In addition to supporting various cards and controllers for hardware RAID systems, the base FreeBSD system includes the Vinum Volume Manager, a block device driver that implements virtual disk drives.
Vinum provides more flexibility, performance, and reliability than traditional disk storage, and implements RAID-0, RAID-1, and RAID-5 models both individually and in combination.
This chapter provides an overview of potential problems with traditional disk storage, and an introduction to the Vinum Volume Manager.
Vinum is a so-called Volume Manager, a virtual disk driver that addresses these three problems. Let us look at them in more detail. Various solutions to these problems have been proposed and implemented:
Disks are getting bigger, but so are data storage requirements. Often you will find you want a file system that is bigger than the disks you have available. Admittedly, this problem is not as acute as it was ten years ago, but it still exists. Some systems have solved this by creating an abstract device which stores its data on a number of disks.
Modern systems frequently need to access data in a highly concurrent manner. For example, large FTP or HTTP servers can maintain thousands of concurrent sessions and have multiple 100 Mbit/s connections to the outside world, well beyond the sustained transfer rate of most disks.
Current disk drives can transfer data sequentially at up to 70 MB/s, but this value is of little importance in an environment where many independent processes access a drive, where they may achieve only a fraction of these values. In such cases it is more interesting to view the problem from the viewpoint of the disk subsystem: the important parameter is the load that a transfer places on the subsystem, in other words the time for which a transfer occupies the drives involved in the transfer.
In any disk transfer, the drive must first position the heads, wait for the first sector to pass under the read head, and then perform the transfer. These actions can be considered to be atomic: it does not make any sense to interrupt them.
Consider a typical transfer of about 10 kB: the current generation of high-performance disks can position the heads in an average of 3.5 ms. The fastest drives spin at 15,000 rpm, so the average rotational latency (half a revolution) is 2 ms. At 70 MB/s, the transfer itself takes about 150 μs, almost nothing compared to the positioning time. In such a case, the effective transfer rate drops to a little over 1 MB/s and is clearly highly dependent on the transfer size.
The traditional and obvious solution to this bottleneck is “more spindles”: rather than using one large disk, it uses several smaller disks with the same aggregate storage space. Each disk is capable of positioning and transferring independently, so the effective throughput increases by a factor close to the number of disks used.
The exact throughput improvement is, of course, smaller than the number of disks involved: although each drive is capable of transferring in parallel, there is no way to ensure that the requests are evenly distributed across the drives. Inevitably the load on one drive will be higher than on another.
The evenness of the load on the disks is strongly dependent on the way the data is shared across the drives. In the following discussion, it is convenient to think of the disk storage as a large number of data sectors which are addressable by number, rather like the pages in a book. The most obvious method is to divide the virtual disk into groups of consecutive sectors the size of the individual physical disks and store them in this manner, rather like taking a large book and tearing it into smaller sections. This method is called concatenation and has the advantage that the disks are not required to have any specific size relationships. It works well when the access to the virtual disk is spread evenly about its address space. When access is concentrated on a smaller area, the improvement is less marked. 圖形 20-1 illustrates the sequence in which storage units are allocated in a concatenated organization.
An alternative mapping is to divide the address space into smaller, equal-sized components and store them sequentially on different devices. For example, the first 256 sectors may be stored on the first disk, the next 256 sectors on the next disk and so on. After filling the last disk, the process repeats until the disks are full. This mapping is called striping or RAID-0 [25]. Striping requires somewhat more effort to locate the data, and it can cause additional I/O load where a transfer is spread over multiple disks, but it can also provide a more constant load across the disks. 圖形 20-2 illustrates the sequence in which storage units are allocated in a striped organization.
The final problem with current disks is that they are unreliable. Although disk drive reliability has increased tremendously over the last few years, they are still the most likely core component of a server to fail. When they do, the results can be catastrophic: replacing a failed disk drive and restoring data to it can take days.
The traditional way to approach this problem has been mirroring, keeping two copies of the data on different physical hardware. Since the advent of the RAID levels, this technique has also been called RAID level 1 or RAID-1. Any write to the volume writes to both locations; a read can be satisfied from either, so if one drive fails, the data is still available on the other drive.
Mirroring has two problems:
The price. It requires twice as much disk storage as a non-redundant solution.
The performance impact. Writes must be performed to both drives, so they take up twice the bandwidth of a non-mirrored volume. Reads do not suffer from a performance penalty: it even looks as if they are faster.
An alternative solution is parity, implemented in the RAID levels 2, 3, 4 and 5. Of these, RAID-5 is the most interesting. As implemented in Vinum, it is a variant on a striped organization which dedicates one block of each stripe to parity of the other blocks. As implemented by Vinum, a RAID-5 plex is similar to a striped plex, except that it implements RAID-5 by including a parity block in each stripe. As required by RAID-5, the location of this parity block changes from one stripe to the next. The numbers in the data blocks indicate the relative block numbers.
Compared to mirroring, RAID-5 has the advantage of requiring significantly less storage space. Read access is similar to that of striped organizations, but write access is significantly slower, approximately 25% of the read performance. If one drive fails, the array can continue to operate in degraded mode: a read from one of the remaining accessible drives continues normally, but a read from the failed drive is recalculated from the corresponding block from all the remaining drives.
In order to address these problems, Vinum implements a four-level hierarchy of objects:
The most visible object is the virtual disk, called a volume. Volumes have essentially the same properties as a UNIX disk drive, though there are some minor differences. They have no size limitations.
Volumes are composed of plexes, each of which represent the total address space of a volume. This level in the hierarchy thus provides redundancy. Think of plexes as individual disks in a mirrored array, each containing the same data.
Since Vinum exists within the UNIX disk storage framework, it would be possible to use UNIX partitions as the building block for multi-disk plexes, but in fact this turns out to be too inflexible: UNIX disks can have only a limited number of partitions. Instead, Vinum subdivides a single UNIX partition (the drive) into contiguous areas called subdisks, which it uses as building blocks for plexes.
Subdisks reside on Vinum drives, currently UNIX partitions. Vinum drives can contain any number of subdisks. With the exception of a small area at the beginning of the drive, which is used for storing configuration and state information, the entire drive is available for data storage.
The following sections describe the way these objects provide the functionality required of Vinum.
Plexes can include multiple subdisks spread over all drives in the Vinum configuration. As a result, the size of an individual drive does not limit the size of a plex, and thus of a volume.
Vinum implements mirroring by attaching multiple plexes to a volume. Each plex is a representation of the data in a volume. A volume may contain between one and eight plexes.
Although a plex represents the complete data of a volume, it is possible for parts of the representation to be physically missing, either by design (by not defining a subdisk for parts of the plex) or by accident (as a result of the failure of a drive). As long as at least one plex can provide the data for the complete address range of the volume, the volume is fully functional.
Vinum implements both concatenation and striping at the plex level:
A concatenated plex uses the address space of each subdisk in turn.
A striped plex stripes the data across each subdisk. The subdisks must all have the same size, and there must be at least two subdisks in order to distinguish it from a concatenated plex.
The version of Vinum supplied with FreeBSD 9.1 implements two kinds of plex:
Concatenated plexes are the most flexible: they can contain any number of subdisks, and the subdisks may be of different length. The plex may be extended by adding additional subdisks. They require less CPU time than striped plexes, though the difference in CPU overhead is not measurable. On the other hand, they are most susceptible to hot spots, where one disk is very active and others are idle.
The greatest advantage of striped (RAID-0) plexes is that they reduce hot spots: by choosing an optimum sized stripe (about 256 kB), you can even out the load on the component drives. The disadvantages of this approach are (fractionally) more complex code and restrictions on subdisks: they must be all the same size, and extending a plex by adding new subdisks is so complicated that Vinum currently does not implement it. Vinum imposes an additional, trivial restriction: a striped plex must have at least two subdisks, since otherwise it is indistinguishable from a concatenated plex.
表格 20-1 summarizes the advantages and disadvantages of each plex organization.
Vinum maintains a configuration database which describes the objects known to an individual system. Initially, the user creates the configuration database from one or more configuration files with the aid of the vinum(8) utility program. Vinum stores a copy of its configuration database on each disk slice (which Vinum calls a device) under its control. This database is updated on each state change, so that a restart accurately restores the state of each Vinum object.
The configuration file describes individual Vinum objects. The definition of a simple volume might be:
drive a device /dev/da3h volume myvol plex org concat sd length 512m drive a
This file describes four Vinum objects:
The drive line describes a disk partition (drive) and its location relative to the underlying hardware. It is given the symbolic name a. This separation of the symbolic names from the device names allows disks to be moved from one location to another without confusion.
The volume line describes a volume. The only required attribute is the name, in this case myvol.
The plex line defines a plex. The only required parameter is the organization, in this case concat. No name is necessary: the system automatically generates a name from the volume name by adding the suffix .px, where x is the number of the plex in the volume. Thus this plex will be called myvol.p0.
The sd line describes a subdisk. The minimum specifications are the name of a drive on which to store it, and the length of the subdisk. As with plexes, no name is necessary: the system automatically assigns names derived from the plex name by adding the suffix .sx, where x is the number of the subdisk in the plex. Thus Vinum gives this subdisk the name myvol.p0.s0.
After processing this file, vinum(8) produces the following output:
# vinum -> create config1 Configuration summary Drives: 1 (4 configured) Volumes: 1 (4 configured) Plexes: 1 (8 configured) Subdisks: 1 (16 configured) D a State: up Device /dev/da3h Avail: 2061/2573 MB (80%) V myvol State: up Plexes: 1 Size: 512 MB P myvol.p0 C State: up Subdisks: 1 Size: 512 MB S myvol.p0.s0 State: up PO: 0 B Size: 512 MB
This output shows the brief listing format of vinum(8). It is represented graphically in 圖形 20-4.
This figure, and the ones which follow, represent a volume, which contains the plexes, which in turn contain the subdisks. In this trivial example, the volume contains one plex, and the plex contains one subdisk.
This particular volume has no specific advantage over a conventional disk partition. It contains a single plex, so it is not redundant. The plex contains a single subdisk, so there is no difference in storage allocation from a conventional disk partition. The following sections illustrate various more interesting configuration methods.
The resilience of a volume can be increased by mirroring. When laying out a mirrored volume, it is important to ensure that the subdisks of each plex are on different drives, so that a drive failure will not take down both plexes. The following configuration mirrors a volume:
drive b device /dev/da4h volume mirror plex org concat sd length 512m drive a plex org concat sd length 512m drive b
In this example, it was not necessary to specify a definition of drive a again, since Vinum keeps track of all objects in its configuration database. After processing this definition, the configuration looks like:
Drives: 2 (4 configured) Volumes: 2 (4 configured) Plexes: 3 (8 configured) Subdisks: 3 (16 configured) D a State: up Device /dev/da3h Avail: 1549/2573 MB (60%) D b State: up Device /dev/da4h Avail: 2061/2573 MB (80%) V myvol State: up Plexes: 1 Size: 512 MB V mirror State: up Plexes: 2 Size: 512 MB P myvol.p0 C State: up Subdisks: 1 Size: 512 MB P mirror.p0 C State: up Subdisks: 1 Size: 512 MB P mirror.p1 C State: initializing Subdisks: 1 Size: 512 MB S myvol.p0.s0 State: up PO: 0 B Size: 512 MB S mirror.p0.s0 State: up PO: 0 B Size: 512 MB S mirror.p1.s0 State: empty PO: 0 B Size: 512 MB
圖形 20-5 shows the structure graphically.
In this example, each plex contains the full 512 MB of address space. As in the previous example, each plex contains only a single subdisk.
The mirrored volume in the previous example is more resistant to failure than an unmirrored volume, but its performance is less: each write to the volume requires a write to both drives, using up a greater proportion of the total disk bandwidth. Performance considerations demand a different approach: instead of mirroring, the data is striped across as many disk drives as possible. The following configuration shows a volume with a plex striped across four disk drives:
drive c device /dev/da5h drive d device /dev/da6h volume stripe plex org striped 512k sd length 128m drive a sd length 128m drive b sd length 128m drive c sd length 128m drive d
As before, it is not necessary to define the drives which are already known to Vinum. After processing this definition, the configuration looks like:
Drives: 4 (4 configured) Volumes: 3 (4 configured) Plexes: 4 (8 configured) Subdisks: 7 (16 configured) D a State: up Device /dev/da3h Avail: 1421/2573 MB (55%) D b State: up Device /dev/da4h Avail: 1933/2573 MB (75%) D c State: up Device /dev/da5h Avail: 2445/2573 MB (95%) D d State: up Device /dev/da6h Avail: 2445/2573 MB (95%) V myvol State: up Plexes: 1 Size: 512 MB V mirror State: up Plexes: 2 Size: 512 MB V striped State: up Plexes: 1 Size: 512 MB P myvol.p0 C State: up Subdisks: 1 Size: 512 MB P mirror.p0 C State: up Subdisks: 1 Size: 512 MB P mirror.p1 C State: initializing Subdisks: 1 Size: 512 MB P striped.p1 State: up Subdisks: 1 Size: 512 MB S myvol.p0.s0 State: up PO: 0 B Size: 512 MB S mirror.p0.s0 State: up PO: 0 B Size: 512 MB S mirror.p1.s0 State: empty PO: 0 B Size: 512 MB S striped.p0.s0 State: up PO: 0 B Size: 128 MB S striped.p0.s1 State: up PO: 512 kB Size: 128 MB S striped.p0.s2 State: up PO: 1024 kB Size: 128 MB S striped.p0.s3 State: up PO: 1536 kB Size: 128 MB
This volume is represented in 圖形 20-6. The darkness of the stripes indicates the position within the plex address space: the lightest stripes come first, the darkest last.
With sufficient hardware, it is possible to build volumes which show both increased resilience and increased performance compared to standard UNIX partitions. A typical configuration file might be:
volume raid10 plex org striped 512k sd length 102480k drive a sd length 102480k drive b sd length 102480k drive c sd length 102480k drive d sd length 102480k drive e plex org striped 512k sd length 102480k drive c sd length 102480k drive d sd length 102480k drive e sd length 102480k drive a sd length 102480k drive b
The subdisks of the second plex are offset by two drives from those of the first plex: this helps ensure that writes do not go to the same subdisks even if a transfer goes over two drives.
圖形 20-7 represents the structure of this volume.
As described above, Vinum assigns default names to plexes and subdisks, although they may be overridden. Overriding the default names is not recommended: experience with the VERITAS volume manager, which allows arbitrary naming of objects, has shown that this flexibility does not bring a significant advantage, and it can cause confusion.
Names may contain any non-blank character, but it is recommended to restrict them to letters, digits and the underscore characters. The names of volumes, plexes and subdisks may be up to 64 characters long, and the names of drives may be up to 32 characters long.
Vinum objects are assigned device nodes in the hierarchy /dev/vinum. The configuration shown above would cause Vinum to create the following device nodes:
The control devices /dev/vinum/control and /dev/vinum/controld, which are used by vinum(8) and the Vinum daemon respectively.
Block and character device entries for each volume. These are the main devices used by Vinum. The block device names are the name of the volume, while the character device names follow the BSD tradition of prepending the letter r to the name. Thus the configuration above would include the block devices /dev/vinum/myvol, /dev/vinum/mirror, /dev/vinum/striped, /dev/vinum/raid5 and /dev/vinum/raid10, and the character devices /dev/vinum/rmyvol, /dev/vinum/rmirror, /dev/vinum/rstriped, /dev/vinum/rraid5 and /dev/vinum/rraid10. There is obviously a problem here: it is possible to have two volumes called r and rr, but there will be a conflict creating the device node /dev/vinum/rr: is it a character device for volume r or a block device for volume rr? Currently Vinum does not address this conflict: the first-defined volume will get the name.
A directory /dev/vinum/drive with entries for each drive. These entries are in fact symbolic links to the corresponding disk nodes.
A directory /dev/vinum/volume with entries for each volume. It contains subdirectories for each plex, which in turn contain subdirectories for their component subdisks.
The directories /dev/vinum/plex, /dev/vinum/sd, and /dev/vinum/rsd, which contain block device nodes for each plex and block and character device nodes respectively for each subdisk.
For example, consider the following configuration file:
drive drive1 device /dev/sd1h drive drive2 device /dev/sd2h drive drive3 device /dev/sd3h drive drive4 device /dev/sd4h volume s64 setupstate plex org striped 64k sd length 100m drive drive1 sd length 100m drive drive2 sd length 100m drive drive3 sd length 100m drive drive4
After processing this file, vinum(8) creates the following structure in /dev/vinum:
brwx------ 1 root wheel 25, 0x40000001 Apr 13 16:46 Control brwx------ 1 root wheel 25, 0x40000002 Apr 13 16:46 control brwx------ 1 root wheel 25, 0x40000000 Apr 13 16:46 controld drwxr-xr-x 2 root wheel 512 Apr 13 16:46 drive drwxr-xr-x 2 root wheel 512 Apr 13 16:46 plex crwxr-xr-- 1 root wheel 91, 2 Apr 13 16:46 rs64 drwxr-xr-x 2 root wheel 512 Apr 13 16:46 rsd drwxr-xr-x 2 root wheel 512 Apr 13 16:46 rvol brwxr-xr-- 1 root wheel 25, 2 Apr 13 16:46 s64 drwxr-xr-x 2 root wheel 512 Apr 13 16:46 sd drwxr-xr-x 3 root wheel 512 Apr 13 16:46 vol /dev/vinum/drive: total 0 lrwxr-xr-x 1 root wheel 9 Apr 13 16:46 drive1 -> /dev/sd1h lrwxr-xr-x 1 root wheel 9 Apr 13 16:46 drive2 -> /dev/sd2h lrwxr-xr-x 1 root wheel 9 Apr 13 16:46 drive3 -> /dev/sd3h lrwxr-xr-x 1 root wheel 9 Apr 13 16:46 drive4 -> /dev/sd4h /dev/vinum/plex: total 0 brwxr-xr-- 1 root wheel 25, 0x10000002 Apr 13 16:46 s64.p0 /dev/vinum/rsd: total 0 crwxr-xr-- 1 root wheel 91, 0x20000002 Apr 13 16:46 s64.p0.s0 crwxr-xr-- 1 root wheel 91, 0x20100002 Apr 13 16:46 s64.p0.s1 crwxr-xr-- 1 root wheel 91, 0x20200002 Apr 13 16:46 s64.p0.s2 crwxr-xr-- 1 root wheel 91, 0x20300002 Apr 13 16:46 s64.p0.s3 /dev/vinum/rvol: total 0 crwxr-xr-- 1 root wheel 91, 2 Apr 13 16:46 s64 /dev/vinum/sd: total 0 brwxr-xr-- 1 root wheel 25, 0x20000002 Apr 13 16:46 s64.p0.s0 brwxr-xr-- 1 root wheel 25, 0x20100002 Apr 13 16:46 s64.p0.s1 brwxr-xr-- 1 root wheel 25, 0x20200002 Apr 13 16:46 s64.p0.s2 brwxr-xr-- 1 root wheel 25, 0x20300002 Apr 13 16:46 s64.p0.s3 /dev/vinum/vol: total 1 brwxr-xr-- 1 root wheel 25, 2 Apr 13 16:46 s64 drwxr-xr-x 3 root wheel 512 Apr 13 16:46 s64.plex /dev/vinum/vol/s64.plex: total 1 brwxr-xr-- 1 root wheel 25, 0x10000002 Apr 13 16:46 s64.p0 drwxr-xr-x 2 root wheel 512 Apr 13 16:46 s64.p0.sd /dev/vinum/vol/s64.plex/s64.p0.sd: total 0 brwxr-xr-- 1 root wheel 25, 0x20000002 Apr 13 16:46 s64.p0.s0 brwxr-xr-- 1 root wheel 25, 0x20100002 Apr 13 16:46 s64.p0.s1 brwxr-xr-- 1 root wheel 25, 0x20200002 Apr 13 16:46 s64.p0.s2 brwxr-xr-- 1 root wheel 25, 0x20300002 Apr 13 16:46 s64.p0.s3
Although it is recommended that plexes and subdisks should not be allocated specific names, Vinum drives must be named. This makes it possible to move a drive to a different location and still recognize it automatically. Drive names may be up to 32 characters long.
Volumes appear to the system to be identical to disks, with one exception. Unlike UNIX drives, Vinum does not partition volumes, which thus do not contain a partition table. This has required modification to some disk utilities, notably newfs(8), which previously tried to interpret the last letter of a Vinum volume name as a partition identifier. For example, a disk drive may have a name like /dev/ad0a or /dev/da2h. These names represent the first partition (a) on the first (0) IDE disk (ad) and the eighth partition (h) on the third (2) SCSI disk (da) respectively. By contrast, a Vinum volume might be called /dev/vinum/concat, a name which has no relationship with a partition name.
Normally, newfs(8) interprets the name of the disk and complains if it cannot understand it. For example:
# newfs /dev/vinum/concat newfs: /dev/vinum/concat: can't figure out file system partition
注: The following is only valid for FreeBSD versions prior to 5.0:
In order to create a file system on this volume, use the -v
option to newfs(8):
# newfs -v /dev/vinum/concat
The GENERIC kernel does not contain Vinum. It is possible to build a special kernel which includes Vinum, but this is not recommended. The standard way to start Vinum is as a kernel module (kld). You do not even need to use kldload(8) for Vinum: when you start vinum(8), it checks whether the module has been loaded, and if it is not, it loads it automatically.
Vinum stores configuration information on the disk slices in essentially the same form as in the configuration files. When reading from the configuration database, Vinum recognizes a number of keywords which are not allowed in the configuration files. For example, a disk configuration might contain the following text:
volume myvol state up volume bigraid state down plex name myvol.p0 state up org concat vol myvol plex name myvol.p1 state up org concat vol myvol plex name myvol.p2 state init org striped 512b vol myvol plex name bigraid.p0 state initializing org raid5 512b vol bigraid sd name myvol.p0.s0 drive a plex myvol.p0 state up len 1048576b driveoffset 265b plexoffset 0b sd name myvol.p0.s1 drive b plex myvol.p0 state up len 1048576b driveoffset 265b plexoffset 1048576b sd name myvol.p1.s0 drive c plex myvol.p1 state up len 1048576b driveoffset 265b plexoffset 0b sd name myvol.p1.s1 drive d plex myvol.p1 state up len 1048576b driveoffset 265b plexoffset 1048576b sd name myvol.p2.s0 drive a plex myvol.p2 state init len 524288b driveoffset 1048841b plexoffset 0b sd name myvol.p2.s1 drive b plex myvol.p2 state init len 524288b driveoffset 1048841b plexoffset 524288b sd name myvol.p2.s2 drive c plex myvol.p2 state init len 524288b driveoffset 1048841b plexoffset 1048576b sd name myvol.p2.s3 drive d plex myvol.p2 state init len 524288b driveoffset 1048841b plexoffset 1572864b sd name bigraid.p0.s0 drive a plex bigraid.p0 state initializing len 4194304b driveoff set 1573129b plexoffset 0b sd name bigraid.p0.s1 drive b plex bigraid.p0 state initializing len 4194304b driveoff set 1573129b plexoffset 4194304b sd name bigraid.p0.s2 drive c plex bigraid.p0 state initializing len 4194304b driveoff set 1573129b plexoffset 8388608b sd name bigraid.p0.s3 drive d plex bigraid.p0 state initializing len 4194304b driveoff set 1573129b plexoffset 12582912b sd name bigraid.p0.s4 drive e plex bigraid.p0 state initializing len 4194304b driveoff set 1573129b plexoffset 16777216b
The obvious differences here are the presence of explicit location information and naming (both of which are also allowed, but discouraged, for use by the user) and the information on the states (which are not available to the user). Vinum does not store information about drives in the configuration information: it finds the drives by scanning the configured disk drives for partitions with a Vinum label. This enables Vinum to identify drives correctly even if they have been assigned different UNIX drive IDs.
In order to start Vinum automatically when you boot the system, ensure that you have the following line in your /etc/rc.conf:
start_vinum="YES" # set to YES to start vinum
If you do not have a file /etc/rc.conf, create one with this content. This will cause the system to load the Vinum kld at startup, and to start any objects mentioned in the configuration. This is done before mounting file systems, so it is possible to automatically fsck(8) and mount file systems on Vinum volumes.
When you start Vinum with the vinum start command, Vinum reads the configuration database from one of the Vinum drives. Under normal circumstances, each drive contains an identical copy of the configuration database, so it does not matter which drive is read. After a crash, however, Vinum must determine which drive was updated most recently and read the configuration from this drive. It then updates the configuration if necessary from progressively older drives.
For a machine that has fully-mirrored filesystems using Vinum, it is desirable to also mirror the root filesystem. Setting up such a configuration is less trivial than mirroring an arbitrary filesystem because:
The root filesystem must be available very early during the boot process, so the Vinum infrastructure must already be available at this time.
The volume containing the root filesystem also contains the system bootstrap and the kernel, which must be read using the host system's native utilities (e. g. the BIOS on PC-class machines) which often cannot be taught about the details of Vinum.
In the following sections, the term “root volume” is generally used to describe the Vinum volume that contains the root filesystem. It is probably a good idea to use the name "root" for this volume, but this is not technically required in any way. All command examples in the following sections assume this name though.
There are several measures to take for this to happen:
Vinum must be available in the kernel at boot-time. Thus, the method to start Vinum automatically described in µÚ 20.8.1.1 節 is not applicable to accomplish this task, and the start_vinum parameter must actually not be set when the following setup is being arranged. The first option would be to compile Vinum statically into the kernel, so it is available all the time, but this is usually not desirable. There is another option as well, to have /boot/loader (µÚ 12.3.3 節) load the vinum kernel module early, before starting the kernel. This can be accomplished by putting the line:
vinum_load="YES"
into the file /boot/loader.conf.
Vinum must be initialized early since it needs to supply the volume for the root filesystem. By default, the Vinum kernel part is not looking for drives that might contain Vinum volume information until the administrator (or one of the startup scripts) issues a vinum start command.
注: The following paragraphs are outlining the steps needed for FreeBSD 5.X and above. The setup required for FreeBSD 4.X differs, and is described below in µÚ 20.9.5 節.
By placing the line:
vinum.autostart="YES"
into /boot/loader.conf, Vinum is instructed to automatically scan all drives for Vinum information as part of the kernel startup.
Note that it is not necessary to instruct the kernel where to look for the root filesystem. /boot/loader looks up the name of the root device in /etc/fstab, and passes this information on to the kernel. When it comes to mount the root filesystem, the kernel figures out from the device name provided which driver to ask to translate this into the internal device ID (major/minor number).
Since the current FreeBSD bootstrap is only 7.5 KB of code, and already has the burden of reading files (like /boot/loader) from the UFS filesystem, it is sheer impossible to also teach it about internal Vinum structures so it could parse the Vinum configuration data, and figure out about the elements of a boot volume itself. Thus, some tricks are necessary to provide the bootstrap code with the illusion of a standard "a" partition that contains the root filesystem.
For this to be possible at all, the following requirements must be met for the root volume:
The root volume must not be striped or RAID-5.
The root volume must not contain more than one concatenated subdisk per plex.
Note that it is desirable and possible that there are multiple plexes, each containing one replica of the root filesystem. The bootstrap process will, however, only use one of these replica for finding the bootstrap and all the files, until the kernel will eventually mount the root filesystem itself. Each single subdisk within these plexes will then need its own "a" partition illusion, for the respective device to become bootable. It is not strictly needed that each of these faked "a" partitions is located at the same offset within its device, compared with other devices containing plexes of the root volume. However, it is probably a good idea to create the Vinum volumes that way so the resulting mirrored devices are symmetric, to avoid confusion.
In order to set up these "a" partitions, for each device containing part of the root volume, the following needs to be done:
The location (offset from the beginning of the device) and size of this device's subdisk that is part of the root volume need to be examined, using the command:
# vinum l -rv root
Note that Vinum offsets and sizes are measured in bytes. They must be divided by 512 in order to obtain the block numbers that are to be used in the disklabel command.
Run the command:
# disklabel -e devname
for each device that participates in the root volume. devname must be either the name of the disk (like da0) for disks without a slice (aka. fdisk) table, or the name of the slice (like ad0s1).
If there is already an "a" partition on the device (presumably, containing a pre-Vinum root filesystem), it should be renamed to something else, so it remains accessible (just in case), but will no longer be used by default to bootstrap the system. Note that active partitions (like a root filesystem currently mounted) cannot be renamed, so this must be executed either when being booted from a “Fixit” medium, or in a two-step process, where (in a mirrored situation) the disk that has not been currently booted is being manipulated first.
Then, the offset the Vinum partition on this device (if any) must be added to the offset of the respective root volume subdisk on this device. The resulting value will become the "offset" value for the new "a" partition. The "size" value for this partition can be taken verbatim from the calculation above. The "fstype" should be 4.2BSD. The "fsize", "bsize", and "cpg" values should best be chosen to match the actual filesystem, though they are fairly unimportant within this context.
That way, a new "a" partition will be established that overlaps the Vinum partition on this device. Note that the disklabel will only allow for this overlap if the Vinum partition has properly been marked using the "vinum" fstype.
That's all! A faked "a" partition does exist now on each device that has one replica of the root volume. It is highly recommendable to verify the result again, using a command like:
# fsck -n /dev/devnamea
It should be remembered that all files containing control information must be relative to the root filesystem in the Vinum volume which, when setting up a new Vinum root volume, might not match the root filesystem that is currently active. So in particular, the files /etc/fstab and /boot/loader.conf need to be taken care of.
At next reboot, the bootstrap should figure out the appropriate control information from the new Vinum-based root filesystem, and act accordingly. At the end of the kernel initialization process, after all devices have been announced, the prominent notice that shows the success of this setup is a message like:
Mounting root from ufs:/dev/vinum/root
After the Vinum root volume has been set up, the output of vinum l -rv root could look like:
... Subdisk root.p0.s0: Size: 125829120 bytes (120 MB) State: up Plex root.p0 at offset 0 (0 B) Drive disk0 (/dev/da0h) at offset 135680 (132 kB) Subdisk root.p1.s0: Size: 125829120 bytes (120 MB) State: up Plex root.p1 at offset 0 (0 B) Drive disk1 (/dev/da1h) at offset 135680 (132 kB)
The values to note are 135680 for the offset (relative to partition /dev/da0h). This translates to 265 512-byte disk blocks in disklabel's terms. Likewise, the size of this root volume is 245760 512-byte blocks. /dev/da1h, containing the second replica of this root volume, has a symmetric setup.
The disklabel for these devices might look like:
... 8 partitions: # size offset fstype [fsize bsize bps/cpg] a: 245760 281 4.2BSD 2048 16384 0 # (Cyl. 0*- 15*) c: 71771688 0 unused 0 0 # (Cyl. 0 - 4467*) h: 71771672 16 vinum # (Cyl. 0*- 4467*)
It can be observed that the "size" parameter for the faked "a" partition matches the value outlined above, while the "offset" parameter is the sum of the offset within the Vinum partition "h", and the offset of this partition within the device (or slice). This is a typical setup that is necessary to avoid the problem described in µÚ 20.9.4.3 節. It can also be seen that the entire "a" partition is completely within the "h" partition containing all the Vinum data for this device.
Note that in the above example, the entire device is dedicated to Vinum, and there is no leftover pre-Vinum root partition, since this has been a newly set-up disk that was only meant to be part of a Vinum configuration, ever.
If something goes wrong, a way is needed to recover from the situation. The following list contains few known pitfalls and solutions.
If for any reason the system does not continue to boot, the bootstrap can be interrupted with by pressing the space key at the 10-seconds warning. The loader variables (like vinum.autostart) can be examined using the show, and manipulated using set or unset commands.
If the only problem was that the Vinum kernel module was not yet in the list of modules to load automatically, a simple load vinum will help.
When ready, the boot process can be continued with a boot
-as. The options -as
will request the kernel
to ask for the root filesystem to mount (-a
), and make
the boot process stop in single-user mode (-s
),
where the root filesystem is mounted read-only. That way, even if only one plex of
a multi-plex volume has been mounted, no data inconsistency between plexes is being
risked.
At the prompt asking for a root filesystem to mount, any device that contains a valid root filesystem can be entered. If /etc/fstab had been set up correctly, the default should be something like ufs:/dev/vinum/root. A typical alternate choice would be something like ufs:da0d which could be a hypothetical partition that contains the pre-Vinum root filesystem. Care should be taken if one of the alias "a" partitions are entered here that are actually reference to the subdisks of the Vinum root device, because in a mirrored setup, this would only mount one piece of a mirrored root device. If this filesystem is to be mounted read-write later on, it is necessary to remove the other plex(es) of the Vinum root volume since these plexes would otherwise carry inconsistent data.
If /boot/loader fails to load, but the primary bootstrap still loads (visible by a single dash in the left column of the screen right after the boot process starts), an attempt can be made to interrupt the primary bootstrap at this point, using the space key. This will make the bootstrap stop in stage two, see µÚ 12.3.2 節. An attempt can be made here to boot off an alternate partition, like the partition containing the previous root filesystem that has been moved away from "a" above.
This situation will happen if the bootstrap had been destroyed by the Vinum installation. Unfortunately, Vinum accidentally currently leaves only 4 KB at the beginning of its partition free before starting to write its Vinum header information. However, the stage one and two bootstraps plus the disklabel embedded between them currently require 8 KB. So if a Vinum partition was started at offset 0 within a slice or disk that was meant to be bootable, the Vinum setup will trash the bootstrap.
Similarly, if the above situation has been recovered, for example by booting from a “Fixit” medium, and the bootstrap has been re-installed using disklabel -B as described in µÚ 12.3.2 節, the bootstrap will trash the Vinum header, and Vinum will no longer find its disk(s). Though no actual Vinum configuration data or data in Vinum volumes will be trashed by this, and it would be possible to recover all the data by entering exact the same Vinum configuration data again, the situation is hard to fix at all. It would be necessary to move the entire Vinum partition by at least 4 KB off, in order to have the Vinum header and the system bootstrap no longer collide.
Under FreeBSD 4.X, some internal functions required to make Vinum automatically scan all disks are missing, and the code that figures out the internal ID of the root device is not smart enough to handle a name like /dev/vinum/root automatically. Therefore, things are a little different here.
Vinum must explicitly be told which disks to scan, using a line like the following one in /boot/loader.conf:
vinum.drives="/dev/da0 /dev/da1"
It is important that all drives are mentioned that could possibly contain Vinum data. It does not harm if more drives are listed, nor is it necessary to add each slice and/or partition explicitly, since Vinum will scan all slices and partitions of the named drives for valid Vinum headers.
Since the routines used to parse the name of the root filesystem, and derive the device ID (major/minor number) are only prepared to handle “classical” device names like /dev/ad0s1a, they cannot make any sense out of a root volume name like /dev/vinum/root. For that reason, Vinum itself needs to pre-setup the internal kernel parameter that holds the ID of the root device during its own initialization. This is requested by passing the name of the root volume in the loader variable vinum.root. The entry in /boot/loader.conf to accomplish this looks like:
vinum.root="root"
Now, when the kernel initialization tries to find out the root device to mount, it sees whether some kernel module has already pre-initialized the kernel parameter for it. If that is the case, and the device claiming the root device matches the major number of the driver as figured out from the name of the root device string being passed (that is, "vinum" in our case), it will use the pre-allocated device ID, instead of trying to figure out one itself. That way, during the usual automatic startup, it can continue to mount the Vinum root volume for the root filesystem.
However, when boot -a has been requesting to ask for entering the name of the root device manually, it must be noted that this routine still cannot actually parse a name entered there that refers to a Vinum volume. If any device name is entered that does not refer to a Vinum device, the mismatch between the major numbers of the pre-allocated root parameter and the driver as figured out from the given name will make this routine enter its normal parser, so entering a string like ufs:da0d will work as expected. Note that if this fails, it is however no longer possible to re-enter a string like ufs:vinum/root again, since it cannot be parsed. The only way out is to reboot again, and start over then. (At the “askroot” prompt, the initial /dev/ can always be omitted.)
虛擬機器軟體可以讓同一台機器得以同時執行多種作業系統。 在 PC 上, 通常這類系統都是在宿主(host)機器上裝虛擬機器軟體,來跑一堆 guest OS 。
讀完這章,您將了解︰
host OS 以及 guest OS 的區別。
如何在搭載 Intel CPU 的 Apple® Macintosh 電腦上安裝 FreeBSD 。
如何在 Linux 上以 Xen™ 來安裝 FreeBSD。
如何在 Microsoft Windows 上以 Virtual PC 安裝 FreeBSD。
如何在虛擬機器對 FreeBSD 系統作性能調校,以取得最佳效能。
在開始閱讀這章之前,您需要︰
Mac 版的 Parallels Desktop 乃是可用於搭配 Intel CPU 以及 Mac OS 10.4.6 以上的 Apple Mac 電腦的商業軟體。 FreeBSD 是其有完整支援的 guest OS 之一。 在 Mac OS X 裝好 Parallels 後, 必須針對所欲安裝的 guest OS 來作相關的虛擬機器設定。
在 Mac OS X/Parallels 上安裝 FreeBSD 的第一步是新增虛擬機器。 如下所示,在提示視窗內請將 勾選為 :
並依據自身需求來規劃硬碟容量跟記憶體的分配。 對大多數在 Parallels 使用的情況而言,大約 4GB 硬碟以及 512MB RAM 就夠用了:
接下來,選擇網路種類以及網路卡:
最後,儲存設定檔就完成設定了:
在 FreeBSD 虛擬機器新增後,就可以繼續以其安裝 FreeBSD。 安裝方面,比較好的作法是使用官方的 FreeBSD 光碟或者從官方 FTP 站下載 ISO image 檔。 若您的 Mac 本機已經有該 ISO 檔, 或者 Mac 的光碟機內有放安裝片,那麼就可以在 FreeBSD 的 Parallels 視窗右下角按下光碟片圖示。 接著會出現一個視窗,可以把虛擬機器內的光碟機設定到該 ISO 檔, 或者是實體光碟機。
設好光碟片來源之後,就可以按下重開機圖示以重開 FreeBSD 虛擬機器。 Parallels 會以特殊 BIOS 開機,並與普通的 BIOS 一樣會先檢查是否有光碟機。
此時,它就會找到 FreeBSD 安裝片,並開始在 µÚ 2 章 內所介紹到的 sysinstall 安裝過程。 這時候也可順便裝 X11,但先不要進行相關設定。
完成安裝過程之後,就可以重開剛裝的 FreeBSD 虛擬機器。
把 FreeBSD 成功裝到 Mac OS X 的 Parallels 之後,還需要作一些設定步驟, 以便將虛擬機器內的 FreeBSD 最佳化。
設定 boot loader 參數
最重要的步驟乃是藉由調降 kern.hz
來降低 Parallels 環境內 FreeBSD 的 CPU 佔用率。 可以在 /boot/loader.conf 內加上下列設定即可:
kern.hz=100
若不作這設定,那麼光是 idle 狀態的 FreeBSD (Parallels guest OS) 就會在僅單一處理器的 iMac® 上佔了大約 15% 的 CPU 佔用率。 作上述修改之後,佔用率就會降至大約 5%。
設定新的 kernel 設定檔
可以放心把所有 SCSI、FireWire、USB 相關設備都移除。 Parallels 有提供 ed(4) 的虛擬網卡,因此,除了 ed(4) 以及 miibus(4) 以外的其他網路卡也都可以從 kernel 中移除。
設定網路
可以替虛擬機器簡單用 DHCP 來設定與 Mac 相同的 LAN 網路環境,只要在 /etc/rc.conf 內加上 ifconfig_ed0="DHCP" 即可完成。 其他進階的網路設定方式,請參考 µÚ 29 章。
Xen hypervisor 乃是開放源碼的 paravirtualization 產品,並由商業公司(XenSource)提供支援。 Guest OS 通常被稱為 domU domains,而 host OS 則是被稱為 dom0。 在 Linux 上建立 FreeBSD 虛擬機器的第一步,則是安裝 Linux dom0 的 Xen。 在本例中, host OS 乃是 Slackware Linux。
從 XenSource 網站下載 Xen 3.0
解壓縮
# cd xen-3.0.4_1-src # KERNELS="linux-2.6-xen0 linux-2.6-xenU" make world # make install
注: 為 dom0 重新編譯 kernel:
# cd xen-3.0.4_1-src/linux-2.6.16.33-xen0 # make menuconfig # make # make install舊版的 Xen 可能需要用 make ARCH=xen menuconfig
增加選項到 Grub 的 menu.lst 選單
修改 /boot/grub/menu.lst 加上下列設定:
title Xen-3.0.4 root (hd0,0) kernel /boot/xen-3.0.4-1.gz dom0_mem=262144 module /boot/vmlinuz-2.6.16.33-xen0 root=/dev/hda1 ro
重開機並進入 Xen
首先,修改 /etc/xen/xend-config.sxp 加上下列設定:
(network-script 'network-bridge netdev=eth0')
接下來,就可以啟動 Xen:
# /etc/init.d/xend start # /etc/init.d/xendomains start
現在 dom0 已經開始運作:
# xm list Name ID Mem VCPUs State Time(s) Domain-0 0 256 1 r----- 54452.9
從 http://www.fsmware.com/ 下載搭配 Xen 3.0 的 FreeBSD domU kernel 相關檔案
把 xmexample1.bsd 設定檔放到 /etc/xen/,並修改 kernel 及 disk image 相關位置。 以下是示範的例子:
kernel = "/opt/kernel-current" memory = 256 name = "freebsd" vif = [ '' ] disk = [ 'file:/opt/mdroot-7.0,hda1,w' ] #on_crash = 'preserve' extra = "boot_verbose" extra += ",boot_single" extra += ",kern.hz=100" extra += ",vfs.root.mountfrom=ufs:/dev/xbd769a"
其中 mdroot-7.0.bz2 檔要記得解壓縮之。
接下來,要修改 kernel-current 設定檔的 __xen_guest 小節,並加上 Xen 3.0.3 所需的 VIRT_BASE:
# objcopy kernel-current -R __xen_guest # perl -e 'print "LOADER=generic,GUEST_OS=freebsd,GUEST_VER=7.0,XEN_VER=xen-3.0,BSD_SYMTAB,VIRT_BASE=0xC0000000\x00"' > tmp # objcopy kernel-current --add-section __xen_guest=tmp
# objdump -j __xen_guest -s kernel-current kernel-current: file format elf32-i386 Contents of section __xen_guest: 0000 4c4f4144 45523d67 656e6572 69632c47 LOADER=generic,G 0010 55455354 5f4f533d 66726565 6273642c UEST_OS=freebsd, 0020 47554553 545f5645 523d372e 302c5845 GUEST_VER=7.0,XE 0030 4e5f5645 523d7865 6e2d332e 302c4253 N_VER=xen-3.0,BS 0040 445f5359 4d544142 2c564952 545f4241 D_SYMTAB,VIRT_BA 0050 53453d30 78433030 30303030 3000 SE=0xC0000000.
現在可以新增並啟動 domU 囉:
# xm create /etc/xen/xmexample1.bsd -c Using config file "/etc/xen/xmexample1.bsd". Started domain freebsd WARNING: loader(8) metadata is missing! Copyright (c) 1992-2006 The FreeBSD Project. Copyright (c) 1979, 1980, 1983, 1986, 1988, 1989, 1991, 1992, 1993, 1994 The Regents of the University of California. All rights reserved. FreeBSD 7.0-CURRENT #113: Wed Jan 4 06:25:43 UTC 2006 kmacy@freebsd7.gateway.2wire.net:/usr/home/kmacy/p4/freebsd7_xen3/src/sys/i386-xen/compile/XENCONF WARNING: DIAGNOSTIC option enabled, expect reduced performance. Xen reported: 1796.927 MHz processor. Timecounter "ixen" frequency 1796927000 Hz quality 0 CPU: Intel(R) Pentium(R) 4 CPU 1.80GHz (1796.93-MHz 686-class CPU) Origin = "GenuineIntel" Id = 0xf29 Stepping = 9 Features=0xbfebfbff<FPU,VME,DE,PSE,TSC,MSR,PAE,MCE,CX8,APIC,SEP,MTRR,PGE,MCA,CMOV,PAT,PSE36,CLFLUSH, DTS,ACPI,MMX,FXSR,SSE,SSE2,SS,HTT,TM,PBE> Features2=0x4400<CNTX-ID,<b14>> real memory = 265244672 (252 MB) avail memory = 255963136 (244 MB) xc0: <Xen Console> on motherboard cpu0 on motherboard Timecounters tick every 10.000 msec [XEN] Initialising virtual ethernet driver. xn0: Ethernet address: 00:16:3e:6b:de:3a [XEN] Trying to mount root from ufs:/dev/xbd769a WARNING: / was not properly dismounted Loading configuration files. No suitable dump device was found. Entropy harvesting: interrupts ethernet point_to_point kickstart. Starting file system checks: /dev/xbd769a: 18859 files, 140370 used, 113473 free (10769 frags, 12838 blocks, 4.2% fragmentation) Setting hostname: demo.freebsd.org. lo0: flags=8049<UP,LOOPBACK,RUNNING,MULTICAST> mtu 16384 inet6 ::1 prefixlen 128 inet6 fe80::1%lo0 prefixlen 64 scopeid 0x2 inet 127.0.0.1 netmask 0xff000000 Additional routing options:. Mounting NFS file systems:. Starting syslogd. /etc/rc: WARNING: Dump device does not exist. Savecore not run. ELF ldconfig path: /lib /usr/lib /usr/lib/compat /usr/X11R6/lib /usr/local/lib a.out ldconfig path: /usr/lib/aout /usr/lib/compat/aout /usr/X11R6/lib/aout Starting usbd. usb: Kernel module not available: No such file or directory Starting local daemons:. Updating motd. Starting sshd. Initial i386 initialization:. Additional ABI support: linux. Starting cron. Local package initialization:. Additional TCP options:. Starting background file system checks in 60 seconds. Sun Apr 1 02:11:43 UTC 2007 FreeBSD/i386 (demo.freebsd.org) (xc0) login:
現在 domU 應該可以跑 FreeBSD 7.0-CURRENT kernel:
# uname -a FreeBSD demo.freebsd.org 7.0-CURRENT FreeBSD 7.0-CURRENT #113: Wed Jan 4 06:25:43 UTC 2006 kmacy@freebsd7.gateway.2wire.net:/usr/home/kmacy/p4/freebsd7_xen3/src/sys/i386-xen/compile/XENCONF i386
接下來是設定 domU 的網路,FreeBSD domU 會用代號為 xn0 的特殊網路卡:
# ifconfig xn0 10.10.10.200 netmask 255.0.0.0 # ifconfig xn0: flags=843<UP,BROADCAST,RUNNING,SIMPLEX> mtu 1500 inet 10.10.10.200 netmask 0xff000000 broadcast 10.255.255.255 ether 00:16:3e:6b:de:3a lo0: flags=8049<UP,LOOPBACK,RUNNING,MULTICAST> mtu 16384 inet6 ::1 prefixlen 128 inet6 fe80::1%lo0 prefixlen 64 scopeid 0x2 inet 127.0.0.1 netmask 0xff000000
在 dom0 Slackware 上應該會出現一些 Xen 專用的網路卡:
# ifconfig eth0 Link encap:Ethernet HWaddr 00:07:E9:A0:02:C2 inet addr:10.10.10.130 Bcast:0.0.0.0 Mask:255.0.0.0 UP BROADCAST RUNNING MULTICAST MTU:1500 Metric:1 RX packets:815 errors:0 dropped:0 overruns:0 frame:0 TX packets:1400 errors:0 dropped:0 overruns:0 carrier:0 collisions:0 txqueuelen:0 RX bytes:204857 (200.0 KiB) TX bytes:129915 (126.8 KiB) lo Link encap:Local Loopback inet addr:127.0.0.1 Mask:255.0.0.0 UP LOOPBACK RUNNING MTU:16436 Metric:1 RX packets:99 errors:0 dropped:0 overruns:0 frame:0 TX packets:99 errors:0 dropped:0 overruns:0 carrier:0 collisions:0 txqueuelen:0 RX bytes:9744 (9.5 KiB) TX bytes:9744 (9.5 KiB) peth0 Link encap:Ethernet HWaddr FE:FF:FF:FF:FF:FF UP BROADCAST RUNNING NOARP MTU:1500 Metric:1 RX packets:1853349 errors:0 dropped:0 overruns:0 frame:0 TX packets:952923 errors:0 dropped:0 overruns:0 carrier:0 collisions:0 txqueuelen:1000 RX bytes:2432115831 (2.2 GiB) TX bytes:86528526 (82.5 MiB) Base address:0xc000 Memory:ef020000-ef040000 vif0.1 Link encap:Ethernet HWaddr FE:FF:FF:FF:FF:FF UP BROADCAST RUNNING NOARP MTU:1500 Metric:1 RX packets:1400 errors:0 dropped:0 overruns:0 frame:0 TX packets:815 errors:0 dropped:0 overruns:0 carrier:0 collisions:0 txqueuelen:0 RX bytes:129915 (126.8 KiB) TX bytes:204857 (200.0 KiB) vif1.0 Link encap:Ethernet HWaddr FE:FF:FF:FF:FF:FF UP BROADCAST RUNNING NOARP MTU:1500 Metric:1 RX packets:3 errors:0 dropped:0 overruns:0 frame:0 TX packets:2 errors:0 dropped:157 overruns:0 carrier:0 collisions:0 txqueuelen:1 RX bytes:140 (140.0 b) TX bytes:158 (158.0 b) xenbr1 Link encap:Ethernet HWaddr FE:FF:FF:FF:FF:FF UP BROADCAST RUNNING NOARP MTU:1500 Metric:1 RX packets:4 errors:0 dropped:0 overruns:0 frame:0 TX packets:0 errors:0 dropped:0 overruns:0 carrier:0 collisions:0 txqueuelen:0 RX bytes:112 (112.0 b) TX bytes:0 (0.0 b)
# brctl show bridge name bridge id STP enabled interfaces xenbr1 8000.feffffffffff no vif0.1 peth0 vif1.0
Virtual PC 是 Microsoft 的 Windows 軟體產品,可以免費下載使用。 相關系統需求,請參閱 system requirements 說明。 在 Microsoft Windows 裝完 Virtual PC 之後, 必須針對所欲安裝的虛擬機器來作相關設定。
在 Microsoft Windows/Virtual PC 上安裝 FreeBSD 的第一步是新增虛擬機器。 如下所示, 在提示視窗內請選擇 :
然後在
處選 :並依據自身需求來規劃硬碟容量跟記憶體的分配。 對大多數在 Virtual PC 使用 FreeBSD 的情況而言,大約 4GB 硬碟空間以及 512MB RAM 就夠用了:
儲存設定檔:
接下來選剛剛所新增的 FreeBSD 虛擬機器,並按下
,以設定網路種類以及網路卡:在 FreeBSD 虛擬機器新增後,就可以繼續以其安裝 FreeBSD。 安裝方面,比較好的作法是使用官方的 FreeBSD 光碟或者從官方 FTP 站下載 ISO image 檔。 若您的 Windows 檔案系統內已經有該 ISO 檔, 或者光碟機內有放安裝片,那麼就可以在 FreeBSD 虛擬機器上連按兩下,以開始啟動。 接著在 Virtual PC 視窗內按 再按 。 接著會出現一個視窗,可以把虛擬機器內的光碟機設定到該 ISO 檔, 或者是實體光碟機。
設好光碟片來源之後,就可以重開機,也就是先按
再按 即可。 Virtual PC 會以特殊 BIOS 開機,並與普通 BIOS 一樣會先檢查是否有光碟機。此時,它就會找到 FreeBSD 安裝片,並開始在 µÚ 2 章 內所介紹到的 sysinstall 安裝過程。 這時候也可順便裝 X11,但先不要進行相關設定。
完成安裝之後,記得把光碟片退出或者 ISO image 退片。 最後, 把裝好的 FreeBSD 虛擬機器重開機即可。
在 Microsoft Windows 上以 Virtual PC 裝好 FreeBSD 後,還需要作一些設定步驟, 以便將虛擬機器內的 FreeBSD 最佳化。
設定 boot loader 參數
最重要的步驟乃是藉由調降 kern.hz
來降低 Virtual PC 環境內 FreeBSD 的 CPU 佔用率。 可以在 /boot/loader.conf 內加上下列設定即可:
kern.hz=100
若不作這設定,那麼光是 idle 狀態的 FreeBSD Virtual PC guest OS 就會在僅單一處理器的電腦上佔了大約 40% 的 CPU 佔用率。 作上述修改之後,佔用率就會降至大約 3%。
設定新的 kernel 設定檔
可以放心把所有 SCSI、FireWire、USB 相關設備都移除。 Virtual PC 有提供 de(4) 的虛擬網卡,因此除了 de(4) 以及 miibus(4) 以外的其他網路卡也都可以從 kernel 中移除。
設定網路
可以替虛擬機器簡單用 DHCP 來設定與 host(Microsoft Windows) 相同的 LAN 網路環境,只要在 /etc/rc.conf 加上 ifconfig_de0="DHCP" 即可完成。 其他進階的網路設定方式,請參閱 µÚ 29 章。
Mac 上的 VMWare Fusion 乃是可用於搭配 Intel CPU 以及 Mac OS 10.4.9 之 Apple Mac 以上的 Apple Mac 電腦之商業軟體。 FreeBSD 是其有完整支援的 guest OS 之一。 在 Mac OS X 上裝完 VMWare Fusion 之後, 必須針對所欲安裝的 guest OS 來作相關的虛擬機器設定。
首先執行 VMWare Fusion,而其 Virtual Machine Library 也會隨之一併載入,這時請按 "New" 來建立 VM(虛擬機器):
接著會有 New Virtual Machine Assistant 來協助您建立 VM,請按 Continue 繼續:
在
選 ,以及 處請選擇是否要 或 ,這部份請依自身需求是否有要 64-bit 支援而定:接著設定 VM image 檔要存到何處,以及決定名稱:
決定該 VM 的虛擬硬碟要用多大:
選擇要裝 VM 的方式為何,要用 ISO image 檔或者光碟機:
按 Finish 以完畢,接著就會啟動該 VM:
接著就照以往安裝 FreeBSD 的方式來裝,若不熟的話請參閱 µÚ 2 章:
裝完之後,就可以修改一些 VM 設定,像是記憶體大小:
注: VM 在運作之時,不能修改 VM 的硬體設定。
調整 VM 的 CPU 數量:
光碟機狀態,通常不再需要用的時候,就可以切斷其與 VM 的連接:
最後要改的則是 VM 的網路設定。 若除了 Host OS 之外的機器也能連到 VM,那麼請選
,否則就選 即可讓 VM 連到 Internet, 但外面則無法連入該 VM。改完上述設定之後,就可以啟動新裝妥的 FreeBSD 虛擬機器。
把 FreeBSD 成功裝到 Mac OS X 的 VMWare 之後,還需要作一些設定步驟, 以便將虛擬機器內的 FreeBSD 最佳化。
設定 boot loader 參數
最重要的步驟乃是藉由調降 kern.hz
來降低 VMWare 環境內 FreeBSD 的 CPU 佔用率。 可以在 /boot/loader.conf 內加上下列設定即可:
kern.hz=100
若不作這設定,那麼光是 idle 狀態的 FreeBSD (VMWare guest OS) 就會在僅單一處理器的 iMac 上佔了大約 15% 的 CPU 佔用率。 作上述修改之後, 佔用率就會降至大約 5%。
設定新的 kernel 設定檔
可以放心把所有 FireWire、USB 相關設備都移除。 VMWare 有提供 em(4) 的虛擬網卡, 因此,除了 em(4) 以及 miibus(4) 以外的其他網路卡, 也都可以從 kernel 中移除。
設定網路
可以替虛擬機器簡單用 DHCP 來設定與 host Mac 相同的 LAN 網路環境,只要在 /etc/rc.conf 加上 ifconfig_em0="DHCP" 即可。 其他進階的網路設定方式,請參考 µÚ 29 章。
目前,尚未有任何虛擬機器軟體有官方支援 FreeBSD 作為 host OS, 但蠻多人都有在用舊版 VMware 所提供的這項功能。 不過,目前已經有人為讓 Xen 能夠以 FreeBSD 為 host OS 為目標,而進行相關工作。
由於 FreeBSD 是分佈全世界的使用者及志工所支持的計畫,本章主要探討的是 FreeBSD 的國際化、本土化議題,以便讓母語不是英語系的人也能順利完成各項工作。 在作業系統、應用程式兩種層面,主要都是透過 i18n 標準來實作的,所以, 這裡我們將會介紹大致運作方式。
讀完這章,您將了解︰
各種不同的語言與地區設定如何在作業系統上進行編碼。
如何設定登入用的 shell 語系環境。
如何將你的 console 設為英語以外的語系設定。
如何使用不同語系的設定,來讓 X Window 運作更親切。
哪邊可以找到更多與 i18n 規格相容的應用程式規格資料。
在開始閱讀這章之前,您需要︰
知道如何以 ports/packages 來安裝應用程式(µÚ 4 章)。
程式開發人員習慣把 internationalization 縮寫為 I18N,中間的數字 18 乃是最前與最後面字母之間的字母個數總和, 而 L10N 也是以一樣的方式,是 “localization” 的縮寫。 只要有符合 I18N/L10N 規格、協定的應用程式,就可以讓使用者依各自語系而作設定。
I18N 應用程式是以 I18N 開發工具來進行開發的, 它可以讓程式開發人員透過寫簡單的文字檔,就可以把執行畫面上的選單、訊息翻譯為各語系的版本。 我們強烈建議程式開發人員遵循這個遊戲規則。
I18N 和 L10N 並非 FreeBSD 所特有的,而是共通的遊戲規則。 我們鼓勵你在 FreeBSD 世界中同樣遵守這項遊戲規則。
Locale 設定由三個部分所組成:語言代碼(Language Code)、國碼(Country Code)、編碼(Encoding)。 所以,Locale 的設定名稱就是由這三個一起組成:
語言代碼_國碼.編碼
使用者必須要先知道這些特定的國碼、語言代碼(國碼會告訴應用程式該使用哪一種語言), 才能讓 FreeBSD 或其他支援 I18N 的 UNIX 類系統作 locale 相關設定。 此外,網頁瀏覽器(borwser)、SMTP/POP 主機、Web 主機等也都以這架構為主。 下面是如何使用『語言代碼、國碼』的例子:
有些語言並非採用 ASCII 編碼,可能是: 8-bit、wide 或 multibyte 字元,詳情請參閱 multibyte(3)。 較古早的程式可能無法正確判別、或誤判為特殊控制字元。而較新的程式都可以辨認 8-bit 字元。 由於各程式的作法不一,使用者可能需要在編譯程式時,加上 wide 或 multibyte 字元的支援設定,或是正確調整才行。 要輸入、處理 wide 或 multibyte 字元的話,可多多利用 FreeBSD Ports Collection 內有各國語言版本的程式。 詳情請參閱 FreeBSD 各 port 中的 I18N 相關文件。
Specifically, the user needs to look at the application documentation to decide on how to configure it correctly or to pass correct values into the configure/Makefile/compiler.
Some things to keep in mind are:
Language specific single C chars character sets (see multibyte(3)), e.g. ISO8859-1, ISO8859-15, KOI8-R, CP437.
Wide or multibyte encodings, e.g. EUC, Big5.
You can check the active list of character sets at the IANA Registry.
注: FreeBSD use X11-compatible locale encodings instead.
In the FreeBSD Ports and Package system, I18N applications have been named with I18N in their names for easy identification. However, they do not always support the language needed.
Usually it is sufficient to export the value of the locale name as LANG in the login shell. This could be done in the user's ~/.login_conf file or in the startup file of the user's shell (~/.profile, ~/.bashrc, ~/.cshrc). There is no need to set the locale subsets such as LC_CTYPE, LC_CTIME. Please refer to language-specific FreeBSD documentation for more information.
You should set the following two environment variables in your configuration files:
LANG for POSIX setlocale(3) family functions
MM_CHARSET for applications' MIME character set
This includes the user shell configuration, the specific application configuration, and the X11 configuration.
There are two methods for setting locale, and both are described below. The first (recommended one) is by assigning the environment variables in login class, and the second is by adding the environment variable assignments to the system's shell startup file.
This method allows environment variables needed for locale name and MIME character sets to be assigned once for every possible shell instead of adding specific shell assignments to each shell's startup file. User Level Setup can be done by an user himself and Administrator Level Setup require superuser privileges.
Here is a minimal example of a .login_conf file in user's home directory which has both variables set for Latin-1 encoding:
me:\ :charset=ISO-8859-1:\ :lang=de_DE.ISO8859-1:
Here is an example of a .login_conf that sets the variables for Traditional Chinese in BIG-5 encoding. Notice the many more variables set because some software does not respect locale variables correctly for Chinese, Japanese, and Korean.
#Users who do not wish to use monetary units or time formats #of Taiwan can manually change each variable me:\ :lang=zh_TW.Big5:\ :lc_all=zh_TW.Big:\ :lc_collate=zh_TW.Big5:\ :lc_ctype=zh_TW.Big5:\ :lc_messages=zh_TW.Big5:\ :lc_monetary=zh_TW.Big5:\ :lc_numeric=zh_TW.Big5:\ :lc_time=zh_TW.Big5:\ :charset=big5:\ :xmodifiers="@im=xcin": #Setting the XIM Input Server
See Administrator Level Setup and login.conf(5) for more details.
Verify that the user's login class in /etc/login.conf sets the correct language. Make sure these settings appear in /etc/login.conf:
language_name:accounts_title:\ :charset=MIME_charset:\ :lang=locale_name:\ :tc=default:
So sticking with our previous example using Latin-1, it would look like this:
german:German Users Accounts:\ :charset=ISO-8859-1:\ :lang=de_DE.ISO8859-1:\ :tc=default:
Before changing users Login Classes execute the following command
# cap_mkdb /etc/login.conf
to make new configuration in /etc/login.conf visible to the system.
Use vipw to add new users, and make the entry look like this:
user:password:1111:11:language:0:0:User Name:/home/user:/bin/sh
Use adduser to add new users, and do the following:
Set defaultclass = language in /etc/adduser.conf. Keep in mind you must enter a default class for all users of other languages in this case.
An alternative variant is answering the specified language each time that
Enter login class: default []:appears from adduser(8).
Another alternative is to use the following for each user of a different language that you wish to add:
# adduser -class language
If you use pw(8) for adding new users, call it in this form:
# pw useradd user_name -L language
注: This method is not recommended because it requires a different setup for each possible shell program chosen. Use the Login Class Method instead.
To add the locale name and MIME character set, just set the two environment variables shown below in the /etc/profile and/or /etc/csh.login shell startup files. We will use the German language as an example below:
In /etc/profile:
LANG=de_DE.ISO8859-1; export LANG MM_CHARSET=ISO-8859-1; export MM_CHARSET
Or in /etc/csh.login:
setenv LANG de_DE.ISO8859-1 setenv MM_CHARSET ISO-8859-1
Alternatively, you can add the above instructions to /usr/share/skel/dot.profile (similar to what was used in /etc/profile above), or /usr/share/skel/dot.login (similar to what was used in /etc/csh.login above).
For X11:
In $HOME/.xinitrc:
LANG=de_DE.ISO8859-1; export LANG
Or:
setenv LANG de_DE.ISO8859-1
Depending on your shell (see above).
For all single C chars character sets, set the correct console fonts in /etc/rc.conf for the language in question with:
font8x16=font_name font8x14=font_name font8x8=font_name
The font_name here is taken from the /usr/share/syscons/fonts directory, without the .fnt suffix.
Also be sure to set the correct keymap and screenmap for your single C chars character set through sysinstall (/stand/sysinstall in FreeBSD versions older than 5.2). Once inside sysinstall, choose
, then . Alternatively, you can add the following to /etc/rc.conf:scrnmap=screenmap_name keymap=keymap_name keychange="fkey_number sequence"
The screenmap_name here is taken from the /usr/share/syscons/scrnmaps directory, without the .scm suffix. A screenmap with a corresponding mapped font is usually needed as a workaround for expanding bit 8 to bit 9 on a VGA adapter's font character matrix in pseudographics area, i.e., to move letters out of that area if screen font uses a bit 8 column.
If you have the moused daemon enabled by setting the following in your /etc/rc.conf:
moused_enable="YES"
then examine the mouse cursor information in the next paragraph.
By default the mouse cursor of the syscons(4) driver occupies the 0xd0-0xd3 range in the character set. If your language uses this range, you need to move the cursor's range outside of it. To enable the workaround for FreeBSD, add the following line to /etc/rc.conf:
mousechar_start=3
The keymap_name here is taken from the /usr/share/syscons/keymaps directory, without the .kbd suffix. If you are uncertain which keymap to use, you use can kbdmap(1) to test keymaps without rebooting.
The keychange is usually needed to program function keys to match the selected terminal type because function key sequences cannot be defined in the key map.
Also be sure to set the correct console terminal type in /etc/ttys for all ttyv* entries. Current pre-defined correspondences are:
Character Set | Terminal Type |
---|---|
ISO8859-1 or ISO8859-15 | cons25l1 |
ISO8859-2 | cons25l2 |
ISO8859-7 | cons25l7 |
KOI8-R | cons25r |
KOI8-U | cons25u |
CP437 (VGA default) | cons25 |
US-ASCII | cons25w |
For wide or multibyte characters languages, use the correct FreeBSD port in your /usr/ports/language directory. Some ports appear as console while the system sees it as serial vtty's, hence you must reserve enough vtty's for both X11 and the pseudo-serial console. Here is a partial list of applications for using other languages in console:
Language | Location |
---|---|
Traditional Chinese (BIG-5) | chinese/big5con |
Japanese | japanese/kon2-16dot or japanese/mule-freewnn |
Korean | korean/han |
Although X11 is not part of the FreeBSD Project, we have included some information here for FreeBSD users. For more details, refer to the Xorg web site or whichever X11 Server you use.
In ~/.Xresources, you can additionally tune application specific I18N settings (e.g., fonts, menus, etc.).
Install Xorg server ( x11-servers/xorg-server) or XFree86 server ( x11-servers/XFree86-4-Server), then install the language TrueType fonts. Setting the correct locale should allow you to view your selected language in menus and such.
The X11 Input Method (XIM) Protocol is a new standard for all X11 clients. All X11 applications should be written as XIM clients that take input from XIM Input servers. There are several XIM servers available for different languages.
Some single C chars character sets are usually hardware coded into printers. Wide or multibyte character sets require special setup and we recommend using apsfilter. You may also convert the document to PostScript or PDF formats using language specific converters.
The FreeBSD fast filesystem (FFS) is 8-bit clean, so it can be used with any single C chars character set (see multibyte(3)), but there is no character set name stored in the filesystem; i.e., it is raw 8-bit and does not know anything about encoding order. Officially, FFS does not support any form of wide or multibyte character sets yet. However, some wide or multibyte character sets have independent patches for FFS enabling such support. They are only temporary unportable solutions or hacks and we have decided to not include them in the source tree. Refer to respective languages' web sites for more information and the patch files.
The FreeBSD MS-DOS filesystem has the configurable ability to convert between MS-DOS, Unicode character sets and chosen FreeBSD filesystem character sets. See mount_msdos(8) for details.
Many FreeBSD Ports have been ported with I18N support. Some of them are marked with -I18N in the port name. These and many other programs have built in support for I18N and need no special consideration.
However, some applications such as MySQL need to be have the Makefile configured with the specific charset. This is usually done in the Makefile or done by passing a value to configure in the source.
For more information about KOI8-R encoding, see the KOI8-R References (Russian Net Character Set).
Put the following lines into your ~/.login_conf file:
me:My Account:\ :charset=KOI8-R:\ :lang=ru_RU.KOI8-R:
See earlier in this chapter for examples of setting up the locale.
Add the following line to your /etc/rc.conf file:
mousechar_start=3
Also, use following settings in /etc/rc.conf:
keymap="ru.koi8-r" scrnmap="koi8-r2cp866" font8x16="cp866b-8x16" font8x14="cp866-8x14" font8x8="cp866-8x8"
For each ttyv* entry in /etc/ttys, use cons25r as the terminal type.
See earlier in this chapter for examples of setting up the console.
Since most printers with Russian characters come with hardware code page CP866, a special output filter is needed to convert from KOI8-R to CP866. Such a filter is installed by default as /usr/libexec/lpr/ru/koi2alt. A Russian printer /etc/printcap entry should look like:
lp|Russian local line printer:\ :sh:of=/usr/libexec/lpr/ru/koi2alt:\ :lp=/dev/lpt0:sd=/var/spool/output/lpd:lf=/var/log/lpd-errs:
See printcap(5) for a detailed description.
The following example fstab(5) entry enables support for Russian filenames in mounted MS-DOS filesystems:
/dev/ad0s2 /dos/c msdos rw,-Wkoi2dos,-Lru_RU.KOI8-R 0 0
The option -L
selects the locale name used, and
-W
sets the character conversion table. To use the
-W
option, be sure to mount /usr before the MS-DOS partition
because the conversion tables are located in /usr/libdata/msdosfs. For more information, see the mount_msdos(8) manual
page.
Do non-X locale setup first as described.
If you use Xorg, install x11-fonts/xorg-fonts-cyrillic package.
Check the "Files" section in your /etc/X11/xorg.conf file. The following lines must be added before any other FontPath entries:
FontPath "/usr/X11R6/lib/X11/fonts/cyrillic/misc" FontPath "/usr/X11R6/lib/X11/fonts/cyrillic/75dpi" FontPath "/usr/X11R6/lib/X11/fonts/cyrillic/100dpi"
If you use a high resolution video mode, swap the 75 dpi and 100 dpi lines.
To activate a Russian keyboard, add the following to the "Keyboard" section of your xorg.conf file.
Option "XkbLayout" "us,ru" Option "XkbOptions" "grp:toggle"
Also make sure that XkbDisable is turned off (commented out) there.
For grp:caps_toggle the RUS/LAT switch will be CapsLock. The old CapsLock function is still available via Shift+CapsLock (in LAT mode only). For grp:toggle the RUS/LAT switch will be Right Alt. grp:caps_toggle does not work in Xorg for unknown reason.
If you have “Windows” keys on your keyboard, and notice that some non-alphabetical keys are mapped incorrectly in RUS mode, add the following line in your xorg.conf file.
Option "XkbVariant" ",winkeys"
注: The Russian XKB keyboard may not work with non-localized applications.
注: Minimally localized applications should call a
XtSetLanguageProc (NULL, NULL, NULL);
function early in the program.See KOI8-R for X Window for more instructions on localizing X11 applications.
The FreeBSD-Taiwan Project has an Chinese HOWTO for FreeBSD at http://netlab.cse.yzu.edu.tw/~statue/freebsd/zh-tut/ using many
Chinese ports. Current editor for the FreeBSD Chinese HOWTO
is Shen Chuan-Hsing <statue@freebsd.sinica.edu.tw>
.
Chuan-Hsing Shen <statue@freebsd.sinica.edu.tw>
has created the
Chinese FreeBSD Collection (CFC) using FreeBSD-Taiwan's
zh-L10N-tut. The packages and the script files are
available at ftp://freebsd.csie.nctu.edu.tw/pub/taiwan/CFC/.
Slaven Rezic <eserte@cs.tu-berlin.de>
wrote a
tutorial how to use umlauts on a FreeBSD machine. The tutorial is written in
German and available at http://www.de.FreeBSD.org/de/umlaute/.
For Japanese, refer to http://www.jp.FreeBSD.org/, and for Korean, refer to http://www.kr.FreeBSD.org/.
Some FreeBSD contributors have translated parts of FreeBSD to other languages. They are available through links on the main site or in /usr/share/doc.
FreeBSD 是個持續發展的作業系統。對於喜歡追求新鮮、刺激的使用者而言, 有很多方法可以使您的系統輕鬆更新為最新版。 注意:並非每個人都適合這麼做! 本章主要是協助您決定到底要跟開發版本, 或是要使用較穩定的釋出版。
讀完這章,您將了解︰
FreeBSD-STABLE 與 FreeBSD-CURRENT 這兩分支的不同之處;
如何以 CSup, CVSup, CVS 或 CTM 來更新你的系統
如何以 make buildworld 等指令來重新編譯、安裝整個 base system。
在開始閱讀這章之前,您需要︰
FreeBSD 有兩個發展分支:FreeBSD-CURRENT 及 FreeBSD-STABLE。本節將會陸續介紹,並介紹它們分別又是如何更新。 首先,先介紹 FreeBSD-CURRENT,接著再介紹 FreeBSD-STABLE。
這裡再次強調,FreeBSD-CURRENT 是 FreeBSD 開發的 “最前線”。 FreeBSD-CURRENT 使用者須有較強的技術能力, 而且應該要有能力自己解決困難的系統問題。 若您是 FreeBSD 新手, 那麼請在安裝前最好先三思。
FreeBSD-CURRENT 是 FreeBSD 的最新版。它包含: 仍在研發階段、實驗性質的修改、過渡時期的機制, 這些東西在下一次正式 relase 的版本可能會有,也可能不會有的。 儘管有許多 FreeBSD 開發者每天都會編譯 FreeBSD-CURRENT source code, 但有時這些原始碼是無法編譯成功。 雖然,這些問題通常會儘快解決, 但 FreeBSD-CURRENT 到底是帶來浩劫或是多了想要用的新功能、改善, 這點主要取決於您更新原始碼的時機為何而定!
FreeBSD-CURRENT 適合下列這三類人:
FreeBSD 社群成員:積極專注於 source tree 的某一部份, 以及認為保持為 “current(最新狀態)” 為絕對需求的人。
FreeBSD 社群成員:為了確保 FreeBSD-CURRENT 能夠儘可能地維持在最穩定的狀態, 而主動花時間解決問題的測試者。 此外,還有對 FreeBSD 能提出具體建議以及改善方向,並提出 patch 修正檔的人。
只是關心或者想參考(比如,只是閱讀, 而非執行)的人。 這些人有時也會做些註解,或貢獻原始碼。
追求最新功能。 聽說裡面有些很酷的新功能, 並希望成為您周圍的人中第一個嘗試的人, 因此將 FreeBSD-CURRENT 視為取得搶鮮版的捷徑。 儘管,您能夠因此首先瞭解到最新的功能, 但這也意味著若出現新的 bug 時,您也是首當其衝。
修復 bug 的速成法。 因為 FreeBSD-CURRENT 的任何版本在修復已知 bug 的同時,又可能會產生新的 bug。
無所不在的 “officially supported”。 我們會盡力協助上述 FreeBSD-CURRENT 的那三種類別的 “legitimate” 使用者, 但我們沒時間為他們提供技術支援。 這不代表我們很惡劣,或是不想幫助人(若是的話, 我們也不會為 FreeBSD 努力了) ,實在是因為我們分身乏術,無法每天回答數百個問題, 而同時繼續開發 FreeBSD。 可以確定的一點就是, 在改善 FreeBSD 或是回答大量有關實驗碼的問題之間, 若要做個選擇的話,開發者會選擇前者。
加入 freebsd-current 及 cvs-all 論壇。 這不單只是個建議,也是 必須 作的。 若您沒訂閱 freebsd-current ,那麼就會錯過別人對目前系統狀態的說明,而枯耗在別人已解的問題。 更重要的是,可能會錯失一些對己身所管系統安危相當重要的公告。
在 cvs-all 上則可以看到每個 commit 紀錄, 因為這些記錄會連帶影響其他相關資訊。
要訂閱這些論壇或其他論壇,請參考 http://lists.FreeBSD.org/mailman/listinfo 並點選想訂閱的部分即可。 至於其他後續步驟如何進行, 在那裡會有說明。
從 FreeBSD mirror 站 取得原始碼。 有兩種方式可以達成:
以 csup 或 cvsup 程式搭配位於 /usr/share/examples/cvsup 檔名為 standard-supfile 的 supfile。 這是大家最常推薦的方式,因為它可以讓您把整個 tree 都抓回來, 之後就只取有更新的部分即可。 此外,許多人會把 csup 或 cvsup 放到 cron 以定期自動更新。 您須要自訂前述的 supfile 範例檔, 並針對自身網路環境以調整 csup 或 cvsup 相關設定。
使用 CTM 工具。 若網路環境不佳 (上網費用貴,或只能用 email 而已) CTM 會比較適合您的需求。 然而,這也有一些爭議並且常抓到一些有問題的檔案。 因此, 很少人會用它。 這也註定了不能長期依賴這個更新方式。 若是使用 9600 bps modem 或頻寬更大的上網者,建議使用 CVSup 。
若抓 source code 是要用來跑的,而不僅只是看看而已, 那麼就抓 整個 FreeBSD-CURRENT,而不要只抓部分。 因為大部分的 source code 都會相依到其他 source code 環節部分, 若是您只編譯其中一部份,保證會很麻煩。
在編譯 FreeBSD-CURRENT 之前,請仔細閱讀 /usr/src 內的 Makefile。 儘管只是升級部分東西而已,您至少也要先 裝新的 kernel 以及重新編譯 world。 此外,多多閱讀 FreeBSD-CURRENT 郵遞論壇 以及 /usr/src/UPDATING 也是必須的, 才能知道目前進度是怎樣以及下一版會有什麼新東西。
熱血!若您正在跑 FreeBSD-CURRENT, 我們很想知道您對於它的想法是什麼,尤其是加強哪些功能, 或該修正哪些錯誤的建議。 如果您在建議時能附上相關程式碼的話, 那真是太棒了!
FreeBSD-STABLE 是我們的開發分支,主要的發行版就由此而來。 這個分支會以不同速度作修改變化,並且假設這些是第一次進入 FreeBSD-CURRENT 進行測試。 然而,這 仍然 屬於開發中的分支, 也就是說在某些時候,FreeBSD-STABLE 可能會、也可能不會符合一些特殊需求。 它只不過是另一個開發分支而已,可能不太適合一般使用者。
若您有興趣去追蹤、貢獻 FreeBSD 開發過程或作些貢獻, 尤其是會跟 FreeBSD 接下來的 “關鍵性” 發行有關, 應該考慮採用 FreeBSD-STABLE。
雖然安全漏洞的修補也會進入 FreeBSD-STABLE 分支, 但不必僅僅因此而 需要 去用 FreeBSD-STABLE。 FreeBSD 每項 security advisory(安全公告) 都會解說如何去修復有受到影響的版本 [26] ,若僅因為安全因素而去採用開發分支,雖然會解決現有已知問題, 但也可能帶來一些潛藏的問題。
儘管我們盡力確保 FreeBSD-STABLE 分支在任何時候均能正確編譯、運作, 但沒人能夠擔保它隨時都可以符合上述目的。 此外,雖然原始碼在進入 FreeBSD-STABLE 之前,都會先在 FreeBSD-CURRENT 開發完畢,但使用 FreeBSD-CURRENT 的人畢竟遠比 FreeBSD-STABLE 使用者來的少,所以通常有些問題,可能在 FreeBSD-CURRENT 比較沒人注意到,隨著 FreeBSD-STABLE 使用者的廣泛使用才會浮現。
由於上述這些理由,我們並不推薦 盲目追隨 FreeBSD-STABLE,而且更重要的是,別在原始碼尚未經完整測試之前, 就衝動把 production server 轉移到 FreeBSD-STABLE 環境。
若您沒有這些多的時間、精神的話,那推薦您使用最新的 FreeBSD 發行版即可,並採用其所提供的 binary 更新機制來完成升級轉移。
訂閱 freebsd-stable list。 可以讓您隨時瞭解 FreeBSD-STABLE 的軟體編譯時的相依關係,以及其他需特別注意的問題。 開發者在考慮一些有爭議的修正或更新時,就會先在這裡發信說明, 給使用者有機會可以反應, 看他們對所提的更改是否有什麼建議或問題。
而 cvs-all list 這邊可以看到每個 commit log, 其中包括了許多中肯的資訊,例如一些可能發生的邊際效應等等。
想要加入這些通信論壇的話,只要到 http://lists.FreeBSD.org/mailman/listinfo 點下想訂閱的 list 即可。 其餘的步驟在網頁上會有說明。
若打算要安裝一個全新的系統,並且希望裝 FreeBSD-STABLE 每月定期的 snapshot,那麼請參閱 Snapshots 網頁以瞭解相關細節。 此外,也可從 mirror 站 來安裝最新的 FreeBSD-STABLE 發行版,並透過下列的的說明來更新到最新的 FreeBSD-STABLE 原始碼。
若已裝的是 FreeBSD 以前的版本,而想透過原始碼方式來升級, 那麼也是可以利用 FreeBSD mirror 站 來完成。 以下介紹兩種方式:
一般而言,若常需存取最新原始碼,而不計較網路頻寬的話, 可以使用 csup 或 cvsup 或 ftp。 否則,就考慮 CTM。
在編譯 FreeBSD-STABLE 之前,請先仔細閱讀 /usr/src 內的 Makefile 檔。 儘管只是升級部分東西而已,您至少也要先 裝新的 kernel 以及重新編譯 world。 此外,多多閱讀 FreeBSD-STABLE 郵遞論壇 以及 /usr/src/UPDATING 也是必備的, 這樣才能知道目前進度是怎樣,以及下一版會有哪些新東西。
FreeBSD 計劃原始碼有許多透過網路(或 email)的方式來更新, 無論是更新那一塊領域,這些全由您自行決定。 我們主要提供的是 Anonymous CVS、CVSup 、CTM。
警告雖然可以只更新部分原始碼,但唯一支援的更新流程是更新整個 tree, 並且重編 userland(比如:由使用者去執行的所有程式,像是 /bin、/sbin 內的程式)以及 kernel 原始碼。 若只更新部分的 source tree、或只有 kernel 部分、或只有 userland 部分,通常會造成一些錯誤,像是:編譯錯誤、kernel panic、資料毀損等 。
Anonymous CVS 及 CVSup 均是採 pull 模式來更新原始碼。 以 CVSup 為例, 使用者(或 cron script)會執行 cvsup 程式,後者會與某一台 cvsupd 伺服器作些互動, 以更新相關原始碼檔案。 您所收到更新會是當時最新的, 而且只會收到需更新的部分。 此外,也可以很輕鬆去設定要更新的範圍。 更新會由伺服器跟本機比對之後,丟出當時您所需要的更新檔案給你。 Anonymous CVS 的概念相對於 CVSup 來得更簡單些,因為它只是 CVS 的延伸而已,一樣讓你可從遠端的 CVS repository 取出最新原始碼。 然而 CVSup 在這方面會更有效率,不過 Anonymous CVS 對新手而言,是用起來比較簡單。
另一種方式則是 CTM。 它並不是以交談式介面來比對您所擁有的 sources 和伺服器上的 sources 或是您取得的更新部份。 相反的,會有一個 script 檔專門用來辨識變更過的檔案,這個程式是由 CTM 伺服器來執行, 每天會比對數次,並把兩次執行期間內變更過的檔案加以壓縮, 並給它們一個序號,然後就加以編碼(只用 printable ASCII 字元), 並以 email 的方式寄出。 當您收到它的時候,這些 “CTM deltas” 就可以由 ctm_rmail(1) 程式來處理,該程式會自動解碼、確認、 套用這些變更。 這程序比 CVSup 來說是快得多了, 而且,這個模式對我們的伺服器來說是比較輕鬆的,因為這是一個 push 的模式,而非 pull 的模式。
當然,這樣做也會帶來一些不便。 若不小心把您部份的程式清除掉了, CVSup 會偵測出來,並自動為您把不足的部份補齊。 CTM 並不會為您做這些動作。 若清掉了您的部份 source (而且沒備份),您可以從頭開始(從最新的 CVS “base delta”)並用 CTM 來重建它們 ,或是用 Anonymous CVS 來完成, 只要把不正確的地方砍掉,再重新做同步的動作即可。
在更新 FreeBSD 的 source tree 到最新之後(無論是 FreeBSD-STABLE、 FreeBSD-CURRENT 等等),接下來就可以用這些 source tree 來重新編譯系統 。
做好備份在作任何大動作 之前 要記得先把系統作備份的重要性無須強調。 儘管重新編譯 world 是 (只要有照文件指示去作的話)一件很簡單的事情,但出錯也是在所難免的。 另外,別人在 source tree 不慎搞混的錯誤,也可能會造成系統無法開機 。
請確認自己已作妥相關備份,並且手邊有 fixit 磁片或開機光碟。 您可能永遠也用不到這些東西, 但安全第一總比事後說抱歉來得好吧!
訂閱相關的 Mailing ListFreeBSD-STABLE 以及 FreeBSD-CURRENT 分支,本質上就是屬於 開發階段。 為 FreeBSD 作貢獻的也都是人,偶爾也會犯錯誤。
有時候這些錯誤並無大礙,只是會讓系統產生新的錯誤警告而已。 有時則是災難,可能會導致不能開機或檔案系統的毀損(或更糟)。
若遇到類似問題,貼封標題為 “heads up(注意)” 開頭的信到相關的 mailing list,並講清楚問題點以及會影響哪些系統。 在問題獲解決後,再貼標題為 “all clear(已解決)” 開頭的聲明信。
若用的是 FreeBSD-STABLE 或 FreeBSD-CURRENT,卻又不閱讀 FreeBSD-STABLE 郵遞論壇 或 FreeBSD-CURRENT 郵遞論壇 的討論,那麼會是自找麻煩而已。
不要用 make world一堆早期的舊文件都會建議說使用 make world。 這樣做會跳過一些重要步驟,建議只有在你知道自己在作什麼,再這麼做。 在絕大多數的情況下,請不要亂用 make world, 而該改用下面介紹的方式。
要升級系統前,一定要先查閱 /usr/src/UPDATING 文件,以瞭解 buildworld 之前需要作哪些事情或注意事項, 然後才用下列步驟:
# make buildworld # make buildkernel # make installkernel # reboot
注: 在少數狀況,可能需要先在 buildworld 步驟之前先作 mergemaster -p 才能完成。 至於何時需要或不需要,請參閱 UPDATING 內的說明。 一般來說,只要不是進行跨版號(major)的 FreeBSD 版本升級, 就可略過這步驟。
完成 installkernel 之後,需要重開機並切到 single user 模式(舉例:也可以在 loader 提示符號後面加上 boot -s)。 接下來執行:
# mergemaster -p # make installworld # mergemaster # reboot
Read Further Explanations上述步驟只是協助您升級的簡單說明而已,若要清楚瞭解每一步驟, 尤其是若欲自行打造 kernel 設定,就更該閱讀下面的內容。
在作任何事情之前,請務必先閱讀 /usr/src/UPDATING (或在 source code 內類似的文件) 。 這份文件會寫到可能遭遇的問題,或指定那些會執行的指令順序為何。 如果你機器現在的 UPDATING 文件與這邊的描述有衝突、矛盾之處,那麼請以機器上的 UPDATING 為準。
重要: 然而,如同先前所述,單單只靠閱讀 UPDATING 並不能完全取代 mailing list。 這兩者都是互補的,而不相排斥。
檢查 /usr/share/examples/etc/make.conf 以及 /etc/make.conf。 第一份文件乃是一些系統預設值 – 不過,大部分都被註解起來。 為了在重新編譯時能夠使用這些, 請把這些設定加到 /etc/make.conf。 請注意在 /etc/make.conf 的任何設定也會影響到每次使用 make 的結果, 因此設定一些適合自己系統的選項會是不錯的作法。
一般使用者通常會從 /usr/share/examples/etc/make.conf 複製 CFLAGS 以及 NO_PROFILE 之類的設定到 /etc/make.conf,並解除相關註解印記 。
此外,也可以試試看其他設定 (COPTFLAGS、 NOPORTDOCS 等等),是否符合自己所需。
在 /etc 目錄會有系統的相關設定檔, 以及開機時的各項服務啟動 script。 有些 script 隨 FreeBSD 版本的不同而有些差異。
其中有些設定檔會在每日運作的系統裡也會用到。 尤其是 /etc/group。
有時候在 make installworld 安裝過程中, 會需要先建立某些特定帳號或群組。 在進行升級之前,它們可能並不存在, 因此升級時就會造成問題。 有時候 make buildworld 會先檢查這些所需的帳號或群組是否已有存在。
舉個這樣的例子,像是某次升級之後必須新增 smmsp 帳號。 若使用者尚未新增該帳號就要完成升級操作的話, 會在 mtree(8) 嘗試建立 /var/spool/clientmqueue 時發生失敗。
解法是在 buildworld 階段之前,先執行 mergemaster(8) 並搭配
-p
選項。 它會比對那些執行 buildworld 或 installworld
所需之關鍵設定檔。 若你所用的是早期仍未支援 -p
的
mergemaster 版本,那麼直接使用 source tree
內的新版即可:
# cd /usr/src/usr.sbin/mergemaster # ./mergemaster.sh -p
提示: 若您是偏執狂(paranoid), 可以像下面這樣去試著檢查系統上有哪些檔案屬於已改名或被刪除的群組 :
# find / -group GID -print這會顯示所有符合要找的 GID 群組 (可以是群組名稱,或者是群組的數字代號)的所有檔案。
您可能會想在 single user 模式下編譯系統。 除了可以明顯更快完成之外,安裝過程中將會牽涉許多重要的系統檔案, 包括所有系統 binaries、libraries、include 檔案等。 若在運作中的系統(尤其有許多使用者在用的時候)內更改這些檔案, 那簡直是自找麻煩的作法。
另一種模式是先在 multi-user 模式下編譯好系統,然後再切到 single user 模式去安裝。 若您比較喜歡這種方式,只需在 build(編譯過程) 完成之後, 再去執行下面的步驟即可。 一直到可切換 single user 模式時,再去執行 installkernel 或 installworld 即可。
切換為 root 身份打:
# shutdown now
這樣就會從原本的 multi-user 模式切換到 single user 模式。
除此之外也可以重開機,接著在開機選單處選擇 “single user” 選項。 如此一來就會進入 single user 模式, 然後在 shell 提示符號處輸入:
# fsck -p # mount -u / # mount -a -t ufs # swapon -a
這樣會先檢查檔案系統,並重新將 / 改以可讀寫的模式掛載,以及 /etc/fstab 內所設定的其他 UFS 檔案系統,最後啟用 swap 磁區。
注: 若 CMOS 時鐘是設為當地時間,而非 GMT 時區(若 date(1) 指令沒顯示正確的時間、時區),那可能需要再輸入下列指令:
# adjkerntz -i這步驟可以確認您的當地時區設定是否正確 —— 否則日後會造成一些問題。
在重新編譯系統的過程中,編譯結果會放到(預設情況) /usr/obj 內。 這裡面的目錄會對應到 /usr/src 的目錄結構。
砍掉這目錄,可以讓以後的 make buildworld 過程更快一些,而且可避免以前編譯的東西跟現在的混淆在一起的相依錯亂 。
而有些 /usr/obj 內的檔案可能會設定不可更動的 flag(細節請參閱 chflags(1)),而必須先拿掉這些 flag 設定才行 。
# cd /usr/obj # chflags -R noschg * # rm -rf *
建議養成好習慣,把執行 make(1) 時產生的紀錄存起來。 這樣若有哪邊出錯,就會有錯誤訊息的紀錄。 雖然單單這樣, 你可能不知道如何分析是哪邊出了岔,但若把你問題記錄貼到 FreeBSD 相關的 mailing list 就可以有人可以幫忙看是怎麼一回事情。
最簡單的方是就是用 script(1) 指令,並加上參數 (你想存放記錄的檔案位置、檔名)即可。 這步驟應該在重新編譯系統時就要作,然後在完成編譯後輸入 exit 即可離開。
# script /var/tmp/mw.out
Script started, output file is /var/tmp/mw.out
# make TARGET
… compile, compile, compile …
# exit
Script done, …
對了,還有一點儘量別把檔案存到 /tmp 目錄內。 因為重開機之後, 這目錄內的東西都會被清空。 比較妥善的地方是 /var/tmp (如上例所示) 或者是 root 的家目錄。
首先請先切換到 /usr/src 目錄:
# cd /usr/src
(當然,除非你把 source code 放到其他地方,若真是這樣, 就切換到那個目錄即可)。
使用 make(1) 指令來重新編譯 world。 這指令會從 Makefile 檔(這檔會寫 FreeBSD 的程式該如何重新編譯、以哪些順序來編譯等等)去讀取相關指令。
一般下指令的格式如下:
# make -x -DVARIABLE target
在這個例子,-x
是你想傳給 make(1)
的選項,細節說明請參閱 make(1) 說明,
裡面有相關範例說明。
-DVARIABLE
則是把變數設定傳給 Makefile。 這些變數會控制 Makefile 的行為。 這些設定與 /etc/make.conf 的變數設定是一樣,
只是另一種設定方式而已。
# make -DNO_PROFILE target
上面的例子則是另一種設定方式,也就是哪些不要。 這個例子中的意思是不去編譯 profiled libraries,效果就如同設定在 /etc/make.conf 的
NO_PROFILE= true # Avoid compiling profiled libraries
target 則是告訴 make(1) 該去做哪些。 每個 Makefile 都會定義不同的 “targets”,然後依您所給的 target 就會決定會做哪些動作 。
Some targets are listed in the Makefile, but are not meant for you to run. Instead, they are used by the build process to break out the steps necessary to rebuild the system into a number of sub-steps.
Most of the time you will not need to pass any parameters to make(1), and so your command like will look like this:
# make target
Where target will be one of many build options. The first target should always be buildworld.
As the names imply, buildworld builds a complete new tree under /usr/obj, and installworld, another target, installs this tree on the current machine.
Having separate options is very useful for two reasons. First, it allows you to do the build safe in the knowledge that no components of your running system will be affected. The build is “self hosted”. Because of this, you can safely run buildworld on a machine running in multi-user mode with no fear of ill-effects. It is still recommended that you run the installworld part in single user mode, though.
Secondly, it allows you to use NFS mounts to upgrade multiple machines on your network. If you have three machines, A, B and C that you want to upgrade, run make buildworld and make installworld on A. B and C should then NFS mount /usr/src and /usr/obj from A, and you can then run make installworld to install the results of the build on B and C.
Although the world target still exists, you are strongly encouraged not to use it.
Run
# make buildworld
It is possible to specify a -j
option to make which will cause it to spawn several simultaneous processes.
This is most useful on multi-CPU machines. However, since much of the compiling process
is IO bound rather than CPU bound it is also useful on single CPU machines.
On a typical single-CPU machine you would run:
# make -j4 buildworld
make(1) will then have up to 4 processes running at any one time. Empirical evidence posted to the mailing lists shows this generally gives the best performance benefit.
If you have a multi-CPU machine and you are using an SMP configured kernel try values between 6 and 10 and see how they speed things up.
Many factors influence the build time, but fairly recent machines may only take a one or two hours to build the FreeBSD-STABLE tree, with no tricks or shortcuts used during the process. A FreeBSD-CURRENT tree will take somewhat longer.
To take full advantage of your new system you should recompile the kernel. This is practically a necessity, as certain memory structures may have changed, and programs like ps(1) and top(1) will fail to work until the kernel and source code versions are the same.
The simplest, safest way to do this is to build and install a kernel based on GENERIC. While GENERIC may not have all the necessary devices for your system, it should contain everything necessary to boot your system back to single user mode. This is a good test that the new system works properly. After booting from GENERIC and verifying that your system works you can then build a new kernel based on your normal kernel configuration file.
On FreeBSD it is important to build world before building a new kernel.
注: If you want to build a custom kernel, and already have a configuration file, just use KERNCONF=MYKERNEL like this:
# cd /usr/src # make buildkernel KERNCONF=MYKERNEL # make installkernel KERNCONF=MYKERNEL
Note that if you have raised kern.securelevel above 1 and you have set either the noschg or similar flags to your kernel binary, you might find it necessary to drop into single user mode to use installkernel. Otherwise you should be able to run both these commands from multi user mode without problems. See init(8) for details about kern.securelevel and chflags(1) for details about the various file flags.
You should reboot into single user mode to test the new kernel works. Do this by following the instructions in µÚ 23.4.5 節.
If you were building a version of FreeBSD recent enough to have used make buildworld then you should now use installworld to install the new system binaries.
Run
# cd /usr/src # make installworld
注: If you specified variables on the make buildworld command line, you must specify the same variables in the make installworld command line. This does not necessarily hold true for other options; for example,
-j
must never be used with installworld.For example, if you ran:
# make -DNO_PROFILE buildworldyou must install the results with:
# make -DNO_PROFILE installworldotherwise it would try to install profiled libraries that had not been built during the make buildworld phase.
Remaking the world will not update certain directories (in particular, /etc, /var and /usr) with new or changed configuration files.
The simplest way to update these files is to use mergemaster(8), though it is possible to do it manually if you would prefer to do that. Regardless of which way you choose, be sure to make a backup of /etc in case anything goes wrong.
The mergemaster(8) utility is a Bourne script that will aid you in determining the differences between your configuration files in /etc, and the configuration files in the source tree /usr/src/etc. This is the recommended solution for keeping the system configuration files up to date with those located in the source tree.
To begin simply type mergemaster at your prompt, and watch it
start going. mergemaster will then build a temporary root
environment, from / down, and populate it with various system
configuration files. Those files are then compared to the ones currently installed in
your system. At this point, files that differ will be shown in diff(1) format, with
the +
sign representing added or modified lines, and -
representing lines that will be either removed completely, or
replaced with a new line. See the diff(1) manual page
for more information about the diff(1) syntax and how
file differences are shown.
mergemaster(8) will then show you each file that displays variances, and at this point you will have the option of either deleting the new file (referred to as the temporary file), installing the temporary file in its unmodified state, merging the temporary file with the currently installed file, or viewing the diff(1) results again.
Choosing to delete the temporary file will tell mergemaster(8) that we wish to keep our current file unchanged, and to delete the new version. This option is not recommended, unless you see no reason to change the current file. You can get help at any time by typing ? at the mergemaster(8) prompt. If the user chooses to skip a file, it will be presented again after all other files have been dealt with.
Choosing to install the unmodified temporary file will replace the current file with the new one. For most unmodified files, this is the best option.
Choosing to merge the file will present you with a text editor, and the contents of both files. You can now merge them by reviewing both files side by side on the screen, and choosing parts from both to create a finished product. When the files are compared side by side, the l key will select the left contents and the r key will select contents from your right. The final output will be a file consisting of both parts, which can then be installed. This option is customarily used for files where settings have been modified by the user.
Choosing to view the diff(1) results again will show you the file differences just like mergemaster(8) did before prompting you for an option.
After mergemaster(8) is done with the system files you will be prompted for other options. mergemaster(8) may ask if you want to rebuild the password file and will finish up with an option to remove left-over temporary files.
If you wish to do the update manually, however, you cannot just copy over the files from /usr/src/etc to /etc and have it work. Some of these files must be “installed” first. This is because the /usr/src/etc directory is not a copy of what your /etc directory should look like. In addition, there are files that should be in /etc that are not in /usr/src/etc.
If you are using mergemaster(8) (as recommended), you can skip forward to the next section.
The simplest way to do this by hand is to install the files into a new directory, and then work through them looking for differences.
Backup Your Existing /etcAlthough, in theory, nothing is going to touch this directory automatically, it is always better to be sure. So copy your existing /etc directory somewhere safe. Something like:
# cp -Rp /etc /etc.old
-R
does a recursive copy,-p
preserves times, ownerships on files and suchlike.
You need to build a dummy set of directories to install the new /etc and other files into. /var/tmp/root is a reasonable choice, and there are a number of subdirectories required under this as well.
# mkdir /var/tmp/root # cd /usr/src/etc # make DESTDIR=/var/tmp/root distrib-dirs distribution
This will build the necessary directory structure and install the files. A lot of the subdirectories that have been created under /var/tmp/root are empty and should be deleted. The simplest way to do this is to:
# cd /var/tmp/root # find -d . -type d | xargs rmdir 2>/dev/null
This will remove all empty directories. (Standard error is redirected to /dev/null to prevent the warnings about the directories that are not empty.)
/var/tmp/root now contains all the files that should be placed in appropriate locations below /. You now have to go through each of these files, determining how they differ with your existing files.
Note that some of the files that will have been installed in /var/tmp/root have a leading “.”. At the time of writing the only files like this are shell startup files in /var/tmp/root/ and /var/tmp/root/root/, although there may be others (depending on when you are reading this). Make sure you use ls -a to catch them.
The simplest way to do this is to use diff(1) to compare the two files:
# diff /etc/shells /var/tmp/root/etc/shells
This will show you the differences between your /etc/shells file and the new /var/tmp/root/etc/shells file. Use these to decide whether to merge in changes that you have made or whether to copy over your old file.
Name the New Root Directory (/var/tmp/root) with a Time Stamp, so You Can Easily Compare Differences Between Versions: Frequently rebuilding the world means that you have to update /etc frequently as well, which can be a bit of a chore.
You can speed this process up by keeping a copy of the last set of changed files that you merged into /etc. The following procedure gives one idea of how to do this.
Make the world as normal. When you want to update /etc and the other directories, give the target directory a name based on the current date. If you were doing this on the 14th of February 1998 you could do the following:
# mkdir /var/tmp/root-19980214 # cd /usr/src/etc # make DESTDIR=/var/tmp/root-19980214 \ distrib-dirs distributionMerge in the changes from this directory as outlined above.
Do not remove the /var/tmp/root-19980214 directory when you have finished.
When you have downloaded the latest version of the source and remade it, follow step 1. This will give you a new directory, which might be called /var/tmp/root-19980221 (if you wait a week between doing updates).
You can now see the differences that have been made in the intervening week using diff(1) to create a recursive diff between the two directories:
# cd /var/tmp # diff -r root-19980214 root-19980221Typically, this will be a much smaller set of differences than those between /var/tmp/root-19980221/etc and /etc. Because the set of differences is smaller, it is easier to migrate those changes across into your /etc directory.
You can now remove the older of the two /var/tmp/root-* directories:
# rm -rf /var/tmp/root-19980214Repeat this process every time you need to merge in changes to /etc.
You can use date(1) to automate the generation of the directory names:
# mkdir /var/tmp/root-`date "+%Y%m%d"`
You are now done. After you have verified that everything appears to be in the right place you can reboot the system. A simple shutdown(8) should do it:
# shutdown -r now
You should now have successfully upgraded your FreeBSD system. Congratulations.
If things went slightly wrong, it is easy to rebuild a particular piece of the system. For example, if you accidentally deleted /etc/magic as part of the upgrade or merge of /etc, the file(1) command will stop working. In this case, the fix would be to run:
# cd /usr/src/usr.bin/file # make all install
There is no easy answer to this one, as it depends on the nature of the change. For example, if you just ran CVSup, and it has shown the following files as being updated:
src/games/cribbage/instr.c src/games/sail/pl_main.c src/release/sysinstall/config.c src/release/sysinstall/media.c src/share/mk/bsd.port.mk
it probably is not worth rebuilding the entire world. You could just go to the appropriate sub-directories and make all install, and that's about it. But if something major changed, for example src/lib/libc/stdlib then you should either re-make the world, or at least those parts of it that are statically linked (as well as anything else you might have added that is statically linked).
At the end of the day, it is your call. You might be happy re-making the world every fortnight say, and let changes accumulate over that fortnight. Or you might want to re-make just those things that have changed, and be confident you can spot all the dependencies.
And, of course, this all depends on how often you want to upgrade, and whether you are tracking FreeBSD-STABLE or FreeBSD-CURRENT.
My compile failed with lots of signal 11 (or other signal number) errors. What has happened?
This is normally indicative of hardware problems. (Re)making the world is an effective way to stress test your hardware, and will frequently throw up memory problems. These normally manifest themselves as the compiler mysteriously dying on receipt of strange signals.
A sure indicator of this is if you can restart the make and it dies at a different point in the process.
In this instance there is little you can do except start swapping around the components in your machine to determine which one is failing.
The short answer is yes.
/usr/obj contains all the object files that were produced during the compilation phase. Normally, one of the first steps in the make buildworld process is to remove this directory and start afresh. In this case, keeping /usr/obj around after you have finished makes little sense, and will free up a large chunk of disk space (currently about 340 MB).
However, if you know what you are doing you can have make buildworld skip this step. This will make subsequent builds run much faster, since most of sources will not need to be recompiled. The flip side of this is that subtle dependency problems can creep in, causing your build to fail in odd ways. This frequently generates noise on the FreeBSD mailing lists, when one person complains that their build has failed, not realizing that it is because they have tried to cut corners.
This depends on how far through the process you got before you found a problem.
In general (and this is not a hard and fast rule) the make buildworld process builds new copies of essential tools (such as gcc(1), and make(1)) and the system libraries. These tools and libraries are then installed. The new tools and libraries are then used to rebuild themselves, and are installed again. The entire system (now including regular user programs, such as ls(1) or grep(1)) is then rebuilt with the new system files.
If you are at the last stage, and you know it (because you have looked through the output that you were storing) then you can (fairly safely) do:
… fix the problem …
# cd /usr/src
# make -DNO_CLEAN all
This will not undo the work of the previous make buildworld.
If you see the message:
-------------------------------------------------------------- Building everything.. --------------------------------------------------------------
in the make buildworld output then it is probably fairly safe to do so.
If you do not see that message, or you are not sure, then it is always better to be safe than sorry, and restart the build from scratch.
Run in single user mode.
Put the /usr/src and /usr/obj directories on separate file systems held on separate disks. If possible, put these disks on separate disk controllers.
Better still, put these file systems across multiple disks using the ccd(4) (concatenated disk driver) device.
Turn off profiling (set “NO_PROFILE=true” in /etc/make.conf). You almost certainly do not need it.
Also in /etc/make.conf, set CFLAGS to something like -O
-pipe
. The optimization -O2
is much slower,
and the optimization difference between -O
and
-O2
is normally negligible. -pipe
lets the compiler use pipes rather than temporary
files for communication, which saves disk access (at the expense of
memory).
Pass the -jn
option to
make(1) to
run multiple processes in parallel. This usually helps regardless of whether
you have a single or a multi processor machine.
The file system holding /usr/src can be mounted
(or remounted) with the noatime
option. This
prevents the file system from recording the file access time. You probably
do not need this information anyway.
# mount -u -o noatime /usr/src
警告The example assumes /usr/src is on its own file system. If it is not (if it is a part of /usr for example) then you will need to use that file system mount point, and not /usr/src.
The file system holding /usr/obj can be mounted
(or remounted) with the async
option. This causes
disk writes to happen asynchronously. In other words, the write completes
immediately, and the data is written to the disk a few seconds later. This
allows writes to be clustered together, and can be a dramatic
performance boost.
警告Keep in mind that this option makes your file system more fragile. With this option there is an increased chance that, should power fail, the file system will be in an unrecoverable state when the machine restarts.
If /usr/obj is the only thing on this file system then it is not a problem. If you have other, valuable data on the same file system then ensure your backups are fresh before you enable this option.
# mount -u -o async /usr/obj
警告As above, if /usr/obj is not on its own file system, replace it in the example with the name of the appropriate mount point.
Make absolutely sure your environment has no extraneous cruft from earlier builds. This is simple enough.
# chflags -R noschg /usr/obj/usr # rm -rf /usr/obj/usr # cd /usr/src # make cleandir # make cleandir
Yes, make cleandir really should be run twice.
Then restart the whole process, starting with make buildworld.
If you still have problems, send the error and the output of uname -a to FreeBSD general questions 郵遞論壇. Be prepared to answer other questions about your setup!
If you have multiple machines that you want to track the same source tree, then having all of them download sources and rebuild everything seems like a waste of resources: disk space, network bandwidth, and CPU cycles. It is, and the solution is to have one machine do most of the work, while the rest of the machines mount that work via NFS. This section outlines a method of doing so.
First, identify a set of machines that is going to run the same set of binaries, which we will call a build set. Each machine can have a custom kernel, but they will be running the same userland binaries. From that set, choose a machine to be the build machine. It is going to be the machine that the world and kernel are built on. Ideally, it should be a fast machine that has sufficient spare CPU to run make buildworld and make buildkernel. You will also want to choose a machine to be the test machine, which will test software updates before they are put into production. This must be a machine that you can afford to have down for an extended period of time. It can be the build machine, but need not be.
All the machines in this build set need to mount /usr/obj and /usr/src from the same machine, and at the same point. Ideally, those are on two different drives on the build machine, but they can be NFS mounted on that machine as well. If you have multiple build sets, /usr/src should be on one build machine, and NFS mounted on the rest.
Finally make sure that /etc/make.conf on all the machines in the build set agrees with the build machine. That means that the build machine must build all the parts of the base system that any machine in the build set is going to install. Also, each build machine should have its kernel name set with KERNCONF in /etc/make.conf, and the build machine should list them all in KERNCONF, listing its own kernel first. The build machine must have the kernel configuration files for each machine in /usr/src/sys/arch/conf if it is going to build their kernels.
Now that all that is done, you are ready to build everything. Build the kernel and world as described in µÚ 23.4.7.2 節 on the build machine, but do not install anything. After the build has finished, go to the test machine, and install the kernel you just built. If this machine mounts /usr/src and /usr/obj via NFS, when you reboot to single user you will need to enable the network and mount them. The easiest way to do this is to boot to multi-user, then run shutdown now to go to single user mode. Once there, you can install the new kernel and world and run mergemaster just as you normally would. When done, reboot to return to normal multi-user operations for this machine.
After you are certain that everything on the test machine is working properly, use the same procedure to install the new software on each of the other machines in the build set.
The same ideas can be used for the ports tree. The first critical step is mounting /usr/ports from the same machine to all the machines in the build set. You can then set up /etc/make.conf properly to share distfiles. You should set DISTDIR to a common shared directory that is writable by whichever user root is mapped to by your NFS mounts. Each machine should set WRKDIRPREFIX to a local build directory. Finally, if you are going to be building and distributing packages, you should set PACKAGES to a directory similar to DISTDIR.
FreeBSD 是一種廣泛的被使用在高效能的網路伺服器中的作業系統,這些章節包含了:
序列埠通訊
PPP 和 PPPoE
電子郵件
執行網路伺服程式
防火牆
其他的進階網路主題
這些章節是讓您在需要查資料的時候翻閱用的。 您不需要依照特定的順序來讀,也不需要將這些章節全部讀過之後才將 FreeBSD 用在網路環境下。
UNIX has always had support for serial communications. In fact, the very first UNIX machines relied on serial lines for user input and output. Things have changed a lot from the days when the average “terminal” consisted of a 10-character-per-second serial printer and a keyboard. This chapter will cover some of the ways in which FreeBSD uses serial communications.
After reading this chapter, you will know:
How to connect terminals to your FreeBSD system.
How to use a modem to dial out to remote hosts.
How to allow remote users to login to your system with a modem.
How to boot your system from a serial console.
Before reading this chapter, you should:
Bits per Second —— the rate at which data is transmitted
Data Terminal Equipment —— for example, your computer
Data Communications Equipment —— your modem
EIA standard for hardware serial communications
When talking about communications data rates, this section does not use the term “baud”. Baud refers to the number of electrical state transitions that may be made in a period of time, while “bps” (bits per second) is the correct term to use (at least it does not seem to bother the curmudgeons quite as much).
To connect a modem or terminal to your FreeBSD system, you will need a serial port on your computer and the proper cable to connect to your serial device. If you are already familiar with your hardware and the cable it requires, you can safely skip this section.
There are several different kinds of serial cables. The two most common types for our purposes are null-modem cables and standard (“straight”) RS-232 cables. The documentation for your hardware should describe the type of cable required.
A null-modem cable passes some signals, such as “Signal Ground”, straight through, but switches other signals. For example, the “Transmitted Data” pin on one end goes to the “Received Data” pin on the other end.
You can also construct your own null-modem cable for use with terminals (e.g., for quality purposes). This table shows the RS-232C signals and the pin numbers on a DB-25 connector. Note that the standard also calls for a straight-through pin 1 to pin 1 Protective Ground line, but it is often omitted. Some terminals work OK using only pins 2, 3 and 7, while others require different configurations than the examples shown below.
表格 24-1. DB-25 to DB-25 Null-Modem Cable
Signal | Pin # | Pin # | Signal | |
---|---|---|---|---|
SG | 7 | connects to | 7 | SG |
TD | 2 | connects to | 3 | RD |
RD | 3 | connects to | 2 | TD |
RTS | 4 | connects to | 5 | CTS |
CTS | 5 | connects to | 4 | RTS |
DTR | 20 | connects to | 6 | DSR |
DTR | 20 | connects to | 8 | DCD |
DSR | 6 | connects to | 20 | DTR |
DCD | 8 | connects to | 20 | DTR |
Here are two other schemes more common nowadays.
表格 24-2. DB-9 to DB-9 Null-Modem Cable
Signal | Pin # | Pin # | Signal | |
---|---|---|---|---|
RD | 2 | connects to | 3 | TD |
TD | 3 | connects to | 2 | RD |
DTR | 4 | connects to | 6 | DSR |
DTR | 4 | connects to | 1 | DCD |
SG | 5 | connects to | 5 | SG |
DSR | 6 | connects to | 4 | DTR |
DCD | 1 | connects to | 4 | DTR |
RTS | 7 | connects to | 8 | CTS |
CTS | 8 | connects to | 7 | RTS |
表格 24-3. DB-9 to DB-25 Null-Modem Cable
Signal | Pin # | Pin # | Signal | |
---|---|---|---|---|
RD | 2 | connects to | 2 | TD |
TD | 3 | connects to | 3 | RD |
DTR | 4 | connects to | 6 | DSR |
DTR | 4 | connects to | 8 | DCD |
SG | 5 | connects to | 7 | SG |
DSR | 6 | connects to | 20 | DTR |
DCD | 1 | connects to | 20 | DTR |
RTS | 7 | connects to | 5 | CTS |
CTS | 8 | connects to | 4 | RTS |
注: When one pin at one end connects to a pair of pins at the other end, it is usually implemented with one short wire between the pair of pins in their connector and a long wire to the other single pin.
The above designs seems to be the most popular. In another variation (explained in the book RS-232 Made Easy) SG connects to SG, TD connects to RD, RTS and CTS connect to DCD, DTR connects to DSR, and vice-versa.
A standard serial cable passes all of the RS-232C signals straight through. That is, the “Transmitted Data” pin on one end of the cable goes to the “Transmitted Data” pin on the other end. This is the type of cable to use to connect a modem to your FreeBSD system, and is also appropriate for some terminals.
Serial ports are the devices through which data is transferred between the FreeBSD host computer and the terminal. This section describes the kinds of ports that exist and how they are addressed in FreeBSD.
Several kinds of serial ports exist. Before you purchase or construct a cable, you need to make sure it will fit the ports on your terminal and on the FreeBSD system.
Most terminals will have DB-25 ports. Personal computers, including PCs running FreeBSD, will have DB-25 or DB-9 ports. If you have a multiport serial card for your PC, you may have RJ-12 or RJ-45 ports.
See the documentation that accompanied the hardware for specifications on the kind of port in use. A visual inspection of the port often works too.
In FreeBSD, you access each serial port through an entry in the /dev directory. There are two different kinds of entries:
Call-in ports are named /dev/ttydN where N is the port number, starting from zero. Generally, you use the call-in port for terminals. Call-in ports require that the serial line assert the data carrier detect (DCD) signal to work correctly.
Call-out ports are named /dev/cuadN. You usually do not use the call-out port for terminals, just for modems. You may use the call-out port if the serial cable or the terminal does not support the carrier detect signal.
注: Call-out ports are named /dev/cuaaN in FreeBSD 5.X and older.
If you have connected a terminal to the first serial port (COM1 in MS-DOS), then you will use /dev/ttyd0 to refer to the terminal. If the terminal is on the second serial port (also known as COM2), use /dev/ttyd1, and so forth.
FreeBSD supports four serial ports by default. In the MS-DOS world, these are known as COM1, COM2, COM3, and COM4. FreeBSD currently supports “dumb” multiport serial interface cards, such as the BocaBoard 1008 and 2016, as well as more intelligent multi-port cards such as those made by Digiboard and Stallion Technologies. However, the default kernel only looks for the standard COM ports.
To see if your kernel recognizes any of your serial ports, watch for messages while the kernel is booting, or use the /sbin/dmesg command to replay the kernel's boot messages. In particular, look for messages that start with the characters sio.
提示: To view just the messages that have the word sio, use the command:
# /sbin/dmesg | grep 'sio'
For example, on a system with four serial ports, these are the serial-port specific kernel boot messages:
sio0 at 0x3f8-0x3ff irq 4 on isa sio0: type 16550A sio1 at 0x2f8-0x2ff irq 3 on isa sio1: type 16550A sio2 at 0x3e8-0x3ef irq 5 on isa sio2: type 16550A sio3 at 0x2e8-0x2ef irq 9 on isa sio3: type 16550A
If your kernel does not recognize all of your serial ports, you will probably need to configure your kernel in the /boot/device.hints file. You can also comment-out or completely remove lines for devices you do not have.
On FreeBSD 4.X you have to edit your kernel configuration file. For detailed information on configuring your kernel, please see µÚ 8 章. The relevant device lines would look like this:
device sio0 at isa? port IO_COM1 irq 4 device sio1 at isa? port IO_COM2 irq 3 device sio2 at isa? port IO_COM3 irq 5 device sio3 at isa? port IO_COM4 irq 9
Please refer to the sio(4) manual page for more information on serial ports and multiport boards configuration. Be careful if you are using a configuration file that was previously used for a different version of FreeBSD because the device flags and the syntax have changed between versions.
注: port IO_COM1 is a substitution for port 0x3f8, IO_COM2 is 0x2f8, IO_COM3 is 0x3e8, and IO_COM4 is 0x2e8, which are fairly common port addresses for their respective serial ports; interrupts 4, 3, 5, and 9 are fairly common interrupt request lines. Also note that regular serial ports cannot share interrupts on ISA-bus PCs (multiport boards have on-board electronics that allow all the 16550A's on the board to share one or two interrupt request lines).
Most devices in the kernel are accessed through “device special files”, which are located in the /dev directory. The sio devices are accessed through the /dev/ttydN (dial-in) and /dev/cuadN (call-out) devices. FreeBSD also provides initialization devices (/dev/ttydN.init and /dev/cuadN.init on FreeBSD 6.X, /dev/ttyidN and /dev/cuaidN on FreeBSD 5.X and older) and locking devices (/dev/ttydN.lock and /dev/cuadN.lock on FreeBSD 6.X, /dev/ttyldN and /dev/cualdN on FreeBSD 5.X and older). The initialization devices are used to initialize communications port parameters each time a port is opened, such as crtscts for modems which use RTS/CTS signaling for flow control. The locking devices are used to lock flags on ports to prevent users or programs changing certain parameters; see the manual pages termios(4), sio(4), and stty(1) for information on the terminal settings, locking and initializing devices, and setting terminal options, respectively.
注: FreeBSD 5.0 includes the devfs(5) filesystem which automatically creates device nodes as needed. If you are running a version of FreeBSD with devfs enabled then you can safely skip this section.
A shell script called MAKEDEV in the /dev directory manages the device special files. To use MAKEDEV to make dial-up device special files for COM1 (port 0), cd to /dev and issue the command MAKEDEV ttyd0. Likewise, to make dial-up device special files for COM2 (port 1), use MAKEDEV ttyd1.
MAKEDEV not only creates the /dev/ttydN device special files, but also the /dev/cuaaN, /dev/cuaiaN, /dev/cualaN, /dev/ttyldN, and /dev/ttyidN nodes.
After making new device special files, be sure to check the permissions on the files (especially the /dev/cua* files) to make sure that only users who should have access to those device special files can read and write on them —— you probably do not want to allow your average user to use your modems to dial-out. The default permissions on the /dev/cua* files should be sufficient:
crw-rw---- 1 uucp dialer 28, 129 Feb 15 14:38 /dev/cuaa1 crw-rw---- 1 uucp dialer 28, 161 Feb 15 14:38 /dev/cuaia1 crw-rw---- 1 uucp dialer 28, 193 Feb 15 14:38 /dev/cuala1
These permissions allow the user uucp and users in the group dialer to use the call-out devices.
The ttydN (or cuadN) device is the regular device you will want to open for your applications. When a process opens the device, it will have a default set of terminal I/O settings. You can see these settings with the command
# stty -a -f /dev/ttyd1
When you change the settings to this device, the settings are in effect until the
device is closed. When it is reopened, it goes back to the default set. To make changes
to the default set, you can open and adjust the settings of the “initial state” device.
For example, to turn on CLOCAL
mode, 8 bit communication, and
XON/XOFF
flow control by default for ttyd5, type:
# stty -f /dev/ttyd5.init clocal cs8 ixon ixoff
System-wide initialization of the serial devices is controlled in /etc/rc.d/serial. This file affects the default settings of serial devices.
注: On FreeBSD 4.X, system-wide initialization of the serial devices is controlled in /etc/rc.serial.
To prevent certain settings from being changed by an application, make adjustments to the “lock state” device. For example, to lock the speed of ttyd5 to 57600 bps, type:
# stty -f /dev/ttyd5.lock 57600
Now, an application that opens ttyd5 and tries to change the speed of the port will be stuck with 57600 bps.
Naturally, you should make the initial state and lock state devices writable only by the root account.
Terminals provide a convenient and low-cost way to access your FreeBSD system when you are not at the computer's console or on a connected network. This section describes how to use terminals with FreeBSD.
The original UNIX systems did not have consoles. Instead, people logged in and ran programs through terminals that were connected to the computer's serial ports. It is quite similar to using a modem and terminal software to dial into a remote system to do text-only work.
Today's PCs have consoles capable of high quality graphics, but the ability to establish a login session on a serial port still exists in nearly every UNIX style operating system today; FreeBSD is no exception. By using a terminal attached to an unused serial port, you can log in and run any text program that you would normally run on the console or in an xterm window in the X Window System.
For the business user, you can attach many terminals to a FreeBSD system and place them on your employees' desktops. For a home user, a spare computer such as an older IBM PC or a Macintosh can be a terminal wired into a more powerful computer running FreeBSD. You can turn what might otherwise be a single-user computer into a powerful multiple user system.
For FreeBSD, there are three kinds of terminals:
The remaining subsections describe each kind.
Dumb terminals are specialized pieces of hardware that let you connect to computers over serial lines. They are called “dumb” because they have only enough computational power to display, send, and receive text. You cannot run any programs on them. It is the computer to which you connect them that has all the power to run text editors, compilers, email, games, and so forth.
There are hundreds of kinds of dumb terminals made by many manufacturers, including Digital Equipment Corporation's VT-100 and Wyse's WY-75. Just about any kind will work with FreeBSD. Some high-end terminals can even display graphics, but only certain software packages can take advantage of these advanced features.
Dumb terminals are popular in work environments where workers do not need access to graphical applications such as those provided by the X Window System.
If a dumb terminal has just enough ability to display, send, and receive text, then certainly any spare personal computer can be a dumb terminal. All you need is the proper cable and some terminal emulation software to run on the computer.
Such a configuration is popular in homes. For example, if your spouse is busy working on your FreeBSD system's console, you can do some text-only work at the same time from a less powerful personal computer hooked up as a terminal to the FreeBSD system.
X terminals are the most sophisticated kind of terminal available. Instead of connecting to a serial port, they usually connect to a network like Ethernet. Instead of being relegated to text-only applications, they can display any X application.
We introduce X terminals just for the sake of completeness. However, this chapter does not cover setup, configuration, or use of X terminals.
This section describes what you need to configure on your FreeBSD system to enable a login session on a terminal. It assumes you have already configured your kernel to support the serial port to which the terminal is connected——and that you have connected it.
Recall from µÚ 12 章 that the init process is responsible for all process control and initialization at system startup. One of the tasks performed by init is to read the /etc/ttys file and start a getty process on the available terminals. The getty process is responsible for reading a login name and starting the login program.
Thus, to configure terminals for your FreeBSD system the following steps should be taken as root:
Add a line to /etc/ttys for the entry in the /dev directory for the serial port if it is not already there.
Specify that /usr/libexec/getty be run on the port, and specify the appropriate getty type from the /etc/gettytab file.
Specify the default terminal type.
Set the port to “on.”
Specify whether the port should be “secure.”
Force init to reread the /etc/ttys file.
As an optional step, you may wish to create a custom getty type for use in step 2 by making an entry in /etc/gettytab. This chapter does not explain how to do so; you are encouraged to see the gettytab(5) and the getty(8) manual pages for more information.
The /etc/ttys file lists all of the ports on your FreeBSD system where you want to allow logins. For example, the first virtual console ttyv0 has an entry in this file. You can log in on the console using this entry. This file also contains entries for the other virtual consoles, serial ports, and pseudo-ttys. For a hardwired terminal, just list the serial port's /dev entry without the /dev part (for example, /dev/ttyv0 would be listed as ttyv0).
A default FreeBSD install includes an /etc/ttys file with support for the first four serial ports: ttyd0 through ttyd3. If you are attaching a terminal to one of those ports, you do not need to add another entry.
範例 24-1. Adding Terminal Entries to /etc/ttys
Suppose we would like to connect two terminals to the system: a Wyse-50 and an old 286 IBM PC running Procomm terminal software emulating a VT-100 terminal. We connect the Wyse to the second serial port and the 286 to the sixth serial port (a port on a multiport serial card). The corresponding entries in the /etc/ttys file would look like this:
ttyd1 "/usr/libexec/getty std.38400" wy50 on insecure ttyd5 "/usr/libexec/getty std.19200" vt100 on insecure
The getty program accepts one (optional) parameter on its command line, the getty type. A getty type configures characteristics on the terminal line, like bps rate and parity. The getty program reads these characteristics from the file /etc/gettytab.
The file /etc/gettytab contains lots of entries for terminal lines both old and new. In almost all cases, the entries that start with the text std will work for hardwired terminals. These entries ignore parity. There is a std entry for each bps rate from 110 to 115200. Of course, you can add your own entries to this file. The gettytab(5) manual page provides more information.
When setting the getty type in the /etc/ttys file, make sure that the communications settings on the terminal match.
For our example, the Wyse-50 uses no parity and connects at 38400 bps. The 286 PC uses no parity and connects at 19200 bps.
For our example, the Wyse-50 uses the real terminal type while the 286 PC running Procomm will be set to emulate at VT-100.
It is highly recommended that you use “insecure” even for terminals that are behind locked doors. It is quite easy to login and use su if you need superuser privileges.
After making the necessary changes to the /etc/ttys file you should send a SIGHUP (hangup) signal to the init process to force it to re-read its configuration file. For example:
# kill -HUP 1
注: init is always the first process run on a system, therefore it will always have PID 1.
If everything is set up correctly, all cables are in place, and the terminals are powered up, then a getty process should be running on each terminal and you should see login prompts on your terminals at this point.
Even with the most meticulous attention to detail, something could still go wrong while setting up a terminal. Here is a list of symptoms and some suggested fixes.
Make sure the terminal is plugged in and powered up. If it is a personal computer acting as a terminal, make sure it is running terminal emulation software on the correct serial port.
Make sure the cable is connected firmly to both the terminal and the FreeBSD computer. Make sure it is the right kind of cable.
Make sure the terminal and FreeBSD agree on the bps rate and parity settings. If you have a video display terminal, make sure the contrast and brightness controls are turned up. If it is a printing terminal, make sure paper and ink are in good supply.
Make sure that a getty process is running and serving the terminal. For example, to get a list of running getty processes with ps, type:
# ps -axww|grep getty
You should see an entry for the terminal. For example, the following display shows that a getty is running on the second serial port ttyd1 and is using the std.38400 entry in /etc/gettytab:
22189 d1 Is+ 0:00.03 /usr/libexec/getty std.38400 ttyd1
If no getty process is running, make sure you have enabled the port in /etc/ttys. Also remember to run kill -HUP 1 after modifying the ttys file.
If the getty process is running but the terminal still does not display a login prompt, or if it displays a prompt but will not allow you to type, your terminal or cable may not support hardware handshaking. Try changing the entry in /etc/ttys from std.38400 to 3wire.38400 remember to run kill -HUP 1 after modifying /etc/ttys). The 3wire entry is similar to std, but ignores hardware handshaking. You may need to reduce the baud rate or enable software flow control when using 3wire to prevent buffer overflows.
Make sure the terminal and FreeBSD agree on the bps rate and parity settings. Check the getty processes to make sure the correct getty type is in use. If not, edit /etc/ttys and run kill -HUP 1.
Switch the terminal (or the terminal emulation software) from “half duplex” or “local echo” to “full duplex.”
Configuring your FreeBSD system for dial-in service is very similar to connecting terminals except that you are dealing with modems instead of terminals.
External modems seem to be more convenient for dial-up, because external modems often can be semi-permanently configured via parameters stored in non-volatile RAM and they usually provide lighted indicators that display the state of important RS-232 signals. Blinking lights impress visitors, but lights are also very useful to see whether a modem is operating properly.
Internal modems usually lack non-volatile RAM, so their configuration may be limited only to setting DIP switches. If your internal modem has any signal indicator lights, it is probably difficult to view the lights when the system's cover is in place.
If you are using an external modem, then you will of course need the proper cable. A standard RS-232C serial cable should suffice as long as all of the normal signals are wired:
表格 24-4. Signal Names
Acronyms | Names | |||
---|---|---|---|---|
RD | Received Data | |||
TD | Transmitted Data | |||
DTR | Data Terminal Ready | |||
DSR | Data Set Ready | |||
DCD | Data Carrier Detect (RS-232's Received Line Signal Detector) | |||
SG | Signal Ground | |||
RTS | Request to Send | |||
CTS | Clear to Send |
FreeBSD needs the RTS and CTS signals for flow control at speeds above 2400 bps, the CD signal to detect when a call has been answered or the line has been hung up, and the DTR signal to reset the modem after a session is complete. Some cables are wired without all of the needed signals, so if you have problems, such as a login session not going away when the line hangs up, you may have a problem with your cable.
Like other UNIX like operating systems, FreeBSD uses the hardware signals to find out when a call has been answered or a line has been hung up and to hangup and reset the modem after a call. FreeBSD avoids sending commands to the modem or watching for status reports from the modem. If you are familiar with connecting modems to PC-based bulletin board systems, this may seem awkward.
FreeBSD supports NS8250-, NS16450-, NS16550-, and NS16550A-based EIA RS-232C (CCITT V.24) communications interfaces. The 8250 and 16450 devices have single-character buffers. The 16550 device provides a 16-character buffer, which allows for better system performance. (Bugs in plain 16550's prevent the use of the 16-character buffer, so use 16550A's if possible). Because single-character-buffer devices require more work by the operating system than the 16-character-buffer devices, 16550A-based serial interface cards are much preferred. If the system has many active serial ports or will have a heavy load, 16550A-based cards are better for low-error-rate communications.
As with terminals, init spawns a getty process for each configured serial port for dial-in connections. For example, if a modem is attached to /dev/ttyd0, the command ps ax might show this:
4850 ?? I 0:00.09 /usr/libexec/getty V19200 ttyd0
When a user dials the modem's line and the modems connect, the CD (Carrier Detect) line is reported by the modem. The kernel notices that carrier has been detected and completes getty's open of the port. getty sends a login: prompt at the specified initial line speed. getty watches to see if legitimate characters are received, and, in a typical configuration, if it finds junk (probably due to the modem's connection speed being different than getty's speed), getty tries adjusting the line speeds until it receives reasonable characters.
After the user enters his/her login name, getty executes /usr/bin/login, which completes the login by asking for the user's password and then starting the user's shell.
There are three system configuration files in the /etc directory that you will probably need to edit to allow dial-up access to your FreeBSD system. The first, /etc/gettytab, contains configuration information for the /usr/libexec/getty daemon. Second, /etc/ttys holds information that tells /sbin/init what tty devices should have getty processes running on them. Lastly, you can place port initialization commands in the /etc/rc.d/serial script.
There are two schools of thought regarding dial-up modems on UNIX. One group likes to configure their modems and systems so that no matter at what speed a remote user dials in, the local computer-to-modem RS-232 interface runs at a locked speed. The benefit of this configuration is that the remote user always sees a system login prompt immediately. The downside is that the system does not know what a user's true data rate is, so full-screen programs like Emacs will not adjust their screen-painting methods to make their response better for slower connections.
The other school configures their modems' RS-232 interface to vary its speed based on the remote user's connection speed. For example, V.32bis (14.4 Kbps) connections to the modem might make the modem run its RS-232 interface at 19.2 Kbps, while 2400 bps connections make the modem's RS-232 interface run at 2400 bps. Because getty does not understand any particular modem's connection speed reporting, getty gives a login: message at an initial speed and watches the characters that come back in response. If the user sees junk, it is assumed that they know they should press the Enter key until they see a recognizable prompt. If the data rates do not match, getty sees anything the user types as “junk”, tries going to the next speed and gives the login: prompt again. This procedure can continue ad nauseam, but normally only takes a keystroke or two before the user sees a good prompt. Obviously, this login sequence does not look as clean as the former “locked-speed” method, but a user on a low-speed connection should receive better interactive response from full-screen programs.
This section will try to give balanced configuration information, but is biased towards having the modem's data rate follow the connection rate.
/etc/gettytab is a termcap(5)-style file of configuration information for getty(8). Please see the gettytab(5) manual page for complete information on the format of the file and the list of capabilities.
If you are locking your modem's data communications rate at a particular speed, you probably will not need to make any changes to /etc/gettytab.
You will need to set up an entry in /etc/gettytab to give getty information about the speeds you wish to use for your modem. If you have a 2400 bps modem, you can probably use the existing D2400 entry.
# # Fast dialup terminals, 2400/1200/300 rotary (can start either way) # D2400|d2400|Fast-Dial-2400:\ :nx=D1200:tc=2400-baud: 3|D1200|Fast-Dial-1200:\ :nx=D300:tc=1200-baud: 5|D300|Fast-Dial-300:\ :nx=D2400:tc=300-baud:
If you have a higher speed modem, you will probably need to add an entry in /etc/gettytab; here is an entry you could use for a 14.4 Kbps modem with a top interface speed of 19.2 Kbps:
# # Additions for a V.32bis Modem # um|V300|High Speed Modem at 300,8-bit:\ :nx=V19200:tc=std.300: un|V1200|High Speed Modem at 1200,8-bit:\ :nx=V300:tc=std.1200: uo|V2400|High Speed Modem at 2400,8-bit:\ :nx=V1200:tc=std.2400: up|V9600|High Speed Modem at 9600,8-bit:\ :nx=V2400:tc=std.9600: uq|V19200|High Speed Modem at 19200,8-bit:\ :nx=V9600:tc=std.19200:
This will result in 8-bit, no parity connections.
The example above starts the communications rate at 19.2 Kbps (for a V.32bis connection), then cycles through 9600 bps (for V.32), 2400 bps, 1200 bps, 300 bps, and back to 19.2 Kbps. Communications rate cycling is implemented with the nx= (“next table”) capability. Each of the lines uses a tc= (“table continuation”) entry to pick up the rest of the “standard” settings for a particular data rate.
If you have a 28.8 Kbps modem and/or you want to take advantage of compression on a 14.4 Kbps modem, you need to use a higher communications rate than 19.2 Kbps. Here is an example of a gettytab entry starting a 57.6 Kbps:
# # Additions for a V.32bis or V.34 Modem # Starting at 57.6 Kbps # vm|VH300|Very High Speed Modem at 300,8-bit:\ :nx=VH57600:tc=std.300: vn|VH1200|Very High Speed Modem at 1200,8-bit:\ :nx=VH300:tc=std.1200: vo|VH2400|Very High Speed Modem at 2400,8-bit:\ :nx=VH1200:tc=std.2400: vp|VH9600|Very High Speed Modem at 9600,8-bit:\ :nx=VH2400:tc=std.9600: vq|VH57600|Very High Speed Modem at 57600,8-bit:\ :nx=VH9600:tc=std.57600:
If you have a slow CPU or a heavily loaded system and do not have 16550A-based serial ports, you may receive “sio” “silo” errors at 57.6 Kbps.
Configuration of the /etc/ttys file was covered in 範例 24-1. Configuration for modems is similar but we must pass a different argument to getty and specify a different terminal type. The general format for both locked-speed and matching-speed configurations is:
ttyd0 "/usr/libexec/getty xxx" dialup on
The first item in the above line is the device special file for this entry —— ttyd0 means /dev/ttyd0 is the file that this getty will be watching. The second item, "/usr/libexec/getty xxx" (xxx will be replaced by the initial gettytab capability) is the process init will run on the device. The third item, dialup, is the default terminal type. The fourth parameter, on, indicates to init that the line is operational. There can be a fifth parameter, secure, but it should only be used for terminals which are physically secure (such as the system console).
The default terminal type (dialup in the example above) may depend on local preferences. dialup is the traditional default terminal type on dial-up lines so that users may customize their login scripts to notice when the terminal is dialup and automatically adjust their terminal type. However, the author finds it easier at his site to specify vt102 as the default terminal type, since the users just use VT102 emulation on their remote systems.
After you have made changes to /etc/ttys, you may send the init process a HUP signal to re-read the file. You can use the command
# kill -HUP 1to send the signal. If this is your first time setting up the system, you may want to wait until your modem(s) are properly configured and connected before signaling init.
For a locked-speed configuration, your ttys entry needs to have a fixed-speed entry provided to getty. For a modem whose port speed is locked at 19.2 Kbps, the ttys entry might look like this:
ttyd0 "/usr/libexec/getty std.19200" dialup on
If your modem is locked at a different data rate, substitute the appropriate value for std.speed instead of std.19200. Make sure that you use a valid type listed in /etc/gettytab.
In a matching-speed configuration, your ttys entry needs to reference the appropriate beginning “auto-baud” (sic) entry in /etc/gettytab. For example, if you added the above suggested entry for a matching-speed modem that starts at 19.2 Kbps (the gettytab entry containing the V19200 starting point), your ttys entry might look like this:
ttyd0 "/usr/libexec/getty V19200" dialup on
High-speed modems, like V.32, V.32bis, and V.34 modems, need to use hardware (RTS/CTS) flow control. You can add stty commands to /etc/rc.d/serial to set the hardware flow control flag in the FreeBSD kernel for the modem ports.
For example to set the termios flag crtscts
on serial port #1's (COM2) dial-in and dial-out initialization devices, the
following lines could be added to /etc/rc.d/serial:
# Serial port initial configuration stty -f /dev/ttyd1.init crtscts stty -f /dev/cuad1.init crtscts
If you have a modem whose parameters may be permanently set in non-volatile RAM, you will need to use a terminal program (such as Telix under MS-DOS or tip under FreeBSD) to set the parameters. Connect to the modem using the same communications speed as the initial speed getty will use and configure the modem's non-volatile RAM to match these requirements:
CD asserted when connected
DTR asserted for operation; dropping DTR hangs up line and resets modem
CTS transmitted data flow control
Disable XON/XOFF flow control
RTS received data flow control
Quiet mode (no result codes)
No command echo
Please read the documentation for your modem to find out what commands and/or DIP switch settings you need to give it.
For example, to set the above parameters on a U.S. Robotics® Sportster® 14,400 external modem, one could give these commands to the modem:
ATZ AT&C1&D2&H1&I0&R2&W
You might also want to take this opportunity to adjust other settings in the modem, such as whether it will use V.42bis and/or MNP5 compression.
The U.S. Robotics Sportster 14,400 external modem also has some DIP switches that need to be set; for other modems, perhaps you can use these settings as an example:
Switch 1: UP —— DTR Normal
Switch 2: N/A (Verbal Result Codes/Numeric Result Codes)
Switch 3: UP —— Suppress Result Codes
Switch 4: DOWN —— No echo, offline commands
Switch 5: UP —— Auto Answer
Switch 6: UP —— Carrier Detect Normal
Switch 7: UP —— Load NVRAM Defaults
Switch 8: N/A (Smart Mode/Dumb Mode)
Result codes should be disabled/suppressed for dial-up modems to avoid problems that can occur if getty mistakenly gives a login: prompt to a modem that is in command mode and the modem echoes the command or returns a result code. This sequence can result in a extended, silly conversation between getty and the modem.
For a locked-speed configuration, you will need to configure the modem to maintain a constant modem-to-computer data rate independent of the communications rate. On a U.S. Robotics Sportster 14,400 external modem, these commands will lock the modem-to-computer data rate at the speed used to issue the commands:
ATZ AT&B1&W
For a variable-speed configuration, you will need to configure your modem to adjust its serial port data rate to match the incoming call rate. On a U.S. Robotics Sportster 14,400 external modem, these commands will lock the modem's error-corrected data rate to the speed used to issue the commands, but allow the serial port rate to vary for non-error-corrected connections:
ATZ AT&B2&W
Most high-speed modems provide commands to view the modem's current operating parameters in a somewhat human-readable fashion. On the U.S. Robotics Sportster 14,400 external modems, the command ATI5 displays the settings that are stored in the non-volatile RAM. To see the true operating parameters of the modem (as influenced by the modem's DIP switch settings), use the commands ATZ and then ATI4.
If you have a different brand of modem, check your modem's manual to see how to double-check your modem's configuration parameters.
Here are a few steps you can follow to check out the dial-up modem on your system.
Hook up your modem to your FreeBSD system, boot the system, and, if your modem has status indication lights, watch to see whether the modem's DTR indicator lights when the login: prompt appears on the system's console —— if it lights up, that should mean that FreeBSD has started a getty process on the appropriate communications port and is waiting for the modem to accept a call.
If the DTR indicator does not light, login to the FreeBSD system through the console and issue a ps ax to see if FreeBSD is trying to run a getty process on the correct port. You should see lines like these among the processes displayed:
114 ?? I 0:00.10 /usr/libexec/getty V19200 ttyd0 115 ?? I 0:00.10 /usr/libexec/getty V19200 ttyd1
If you see something different, like this:
114 d0 I 0:00.10 /usr/libexec/getty V19200 ttyd0
and the modem has not accepted a call yet, this means that getty has completed its open on the communications port. This could indicate a problem with the cabling or a mis-configured modem, because getty should not be able to open the communications port until CD (carrier detect) has been asserted by the modem.
If you do not see any getty processes waiting to open the desired ttydN port, double-check your entries in /etc/ttys to see if there are any mistakes there. Also, check the log file /var/log/messages to see if there are any log messages from init or getty regarding any problems. If there are any messages, triple-check the configuration files /etc/ttys and /etc/gettytab, as well as the appropriate device special files /dev/ttydN, for any mistakes, missing entries, or missing device special files.
Try dialing into the system; be sure to use 8 bits, no parity, and 1 stop bit on the remote system. If you do not get a prompt right away, or get garbage, try pressing Enter about once per second. If you still do not see a login: prompt after a while, try sending a BREAK. If you are using a high-speed modem to do the dialing, try dialing again after locking the dialing modem's interface speed (via AT&B1 on a U.S. Robotics Sportster modem, for example).
If you still cannot get a login: prompt, check /etc/gettytab again and double-check that
The initial capability name specified in /etc/ttys for the line matches a name of a capability in /etc/gettytab
Each nx= entry matches another gettytab capability name
Each tc= entry matches another gettytab capability name
If you dial but the modem on the FreeBSD system will not answer, make sure that the modem is configured to answer the phone when DTR is asserted. If the modem seems to be configured correctly, verify that the DTR line is asserted by checking the modem's indicator lights (if it has any).
If you have gone over everything several times and it still does not work, take a break and come back to it later. If it still does not work, perhaps you can send an electronic mail message to the FreeBSD general questions 郵遞論壇 describing your modem and your problem, and the good folks on the list will try to help.
The following are tips for getting your host to be able to connect over the modem to another computer. This is appropriate for establishing a terminal session with a remote host.
This is useful to log onto a BBS.
This kind of connection can be extremely helpful to get a file on the Internet if you have problems with PPP. If you need to FTP something and PPP is broken, use the terminal session to FTP it. Then use zmodem to transfer it to your machine.
Actually, the manual page for tip is out of date. There is a generic Hayes dialer already built in. Just use at=hayes in your /etc/remote file.
The Hayes driver is not smart enough to recognize some of the advanced features of newer modems——messages like BUSY, NO DIALTONE, or CONNECT 115200 will just confuse it. You should turn those messages off when you use tip (using ATX0&W).
Also, the dial timeout for tip is 60 seconds. Your modem should use something less, or else tip will think there is a communication problem. Try ATS7=45&W.
注: As shipped, tip does not yet support Hayes modems fully. The solution is to edit the file tipconf.h in the directory /usr/src/usr.bin/tip/tip. Obviously you need the source distribution to do this.
Edit the line #define HAYES 0 to #define HAYES 1. Then make and make install. Everything works nicely after that.
Make what is called a “direct” entry in your /etc/remote file. For example, if your modem is hooked up to the first serial port, /dev/cuad0, then put in the following line:
cuad0:dv=/dev/cuad0:br#19200:pa=none
Use the highest bps rate your modem supports in the br capability. Then, type tip cuad0 and you will be connected to your modem.
Or use cu as root with the following command:
# cu -lline -sspeed
line is the serial port (e.g./dev/cuad0) and speed is the speed (e.g.57600). When you are done entering the AT commands hit ~. to exit.
The @ sign in the phone number capability tells tip to look in /etc/phones for a phone number. But the @ sign is also a special character in capability files like /etc/remote. Escape it with a backslash:
pn=\@
Put what is called a “generic” entry in your /etc/remote file. For example:
tip115200|Dial any phone number at 115200 bps:\ :dv=/dev/cuad0:br#115200:at=hayes:pa=none:du: tip57600|Dial any phone number at 57600 bps:\ :dv=/dev/cuad0:br#57600:at=hayes:pa=none:du:
Then you can do things like:
# tip -115200 5551234
If you prefer cu over tip, use a generic cu entry:
cu115200|Use cu to dial any number at 115200bps:\ :dv=/dev/cuad1:br#57600:at=hayes:pa=none:du:
and type:
# cu 5551234 -s 115200
Put in an entry for tip1200 or cu1200, but go ahead and use whatever bps rate is appropriate with the br capability. tip thinks a good default is 1200 bps which is why it looks for a tip1200 entry. You do not have to use 1200 bps, though.
Rather than waiting until you are connected and typing CONNECT <host> each time, use tip's cm capability. For example, these entries in /etc/remote:
pain|pain.deep13.com|Forrester's machine:\ :cm=CONNECT pain\n:tc=deep13: muffin|muffin.deep13.com|Frank's machine:\ :cm=CONNECT muffin\n:tc=deep13: deep13:Gizmonics Institute terminal server:\ :dv=/dev/cuad2:br#38400:at=hayes:du:pa=none:pn=5551234:
will let you type tip pain or tip muffin to connect to the hosts pain or muffin, and tip deep13 to get to the terminal server.
This is often a problem where a university has several modem lines and several thousand students trying to use them.
Make an entry for your university in /etc/remote and use @ for the pn capability:
big-university:\ :pn=\@:tc=dialout dialout:\ :dv=/dev/cuad3:br#9600:at=courier:du:pa=none:
Then, list the phone numbers for the university in /etc/phones:
big-university 5551111 big-university 5551112 big-university 5551113 big-university 5551114
tip will try each one in the listed order, then give up. If you want to keep retrying, run tip in a while loop.
Ctrl+P is the default “force” character, used to tell tip that the next character is literal data. You can set the force character to any other character with the ~s escape, which means “set a variable.”
Type ~sforce=single-char followed by a newline. single-char is any single character. If you leave out single-char, then the force character is the nul character, which you can get by typing Ctrl+2 or Ctrl+Space. A pretty good value for single-char is Shift+Ctrl+6, which is only used on some terminal servers.
You can have the force character be whatever you want by specifying the following in your $HOME/.tiprc file:
force=<single-char>
You must have pressed Ctrl+A, tip's “raise character,” specially designed for people with broken caps-lock keys. Use ~s as above and set the variable raisechar to something reasonable. In fact, you can set it to the same as the force character, if you never expect to use either of these features.
Here is a sample .tiprc file perfect for Emacs users who need to type Ctrl+2 and Ctrl+A a lot:
force=^^ raisechar=^^
The ^^ is Shift+Ctrl+6.
If you are talking to another UNIX system, you can send and receive files with ~p (put) and ~t (take). These commands run cat and echo on the remote system to accept and send files. The syntax is:
~p local-file [remote-file]
~t remote-file [local-file]
There is no error checking, so you probably should use another protocol, like zmodem.
To receive files, start the sending program on the remote end. Then, type ~C rz to begin receiving them locally.
To send files, start the receiving program on the remote end. Then, type ~C sz files to send them to the remote system.
FreeBSD has the ability to boot on a system with only a dumb terminal on a serial port as a console. Such a configuration should be useful for two classes of people: system administrators who wish to install FreeBSD on machines that have no keyboard or monitor attached, and developers who want to debug the kernel or device drivers.
As described in µÚ 12 章, FreeBSD employs a three stage bootstrap. The first two stages are in the boot block code which is stored at the beginning of the FreeBSD slice on the boot disk. The boot block will then load and run the boot loader (/boot/loader) as the third stage code.
In order to set up the serial console you must configure the boot block code, the boot loader code and the kernel.
This section assumes that you are using the default setup and just want a fast overview of setting up the serial console.
Connect the serial cable to COM1 and the controlling terminal.
To see all boot messages on the serial console, issue the following command while logged in as the superuser:
# echo 'console="comconsole"' >> /boot/loader.conf
Edit /etc/ttys and change off to on and dialup to vt100 for the ttyd0 entry. Otherwise a password will not be required to connect via the serial console, resulting in a potential security hole.
Reboot the system to see if the changes took effect.
If a different configuration is required, a more in depth configuration explanation exists in µÚ 24.6.3 節.
Prepare a serial cable.
You will need either a null-modem cable or a standard serial cable and a null-modem adapter. See µÚ 24.2.2 節 for a discussion on serial cables.
Unplug your keyboard.
Most PC systems probe for the keyboard during the Power-On Self-Test (POST) and will generate an error if the keyboard is not detected. Some machines complain loudly about the lack of a keyboard and will not continue to boot until it is plugged in.
If your computer complains about the error, but boots anyway, then you do not have to do anything special. (Some machines with Phoenix BIOS installed merely say “Keyboard failed” and continue to boot normally.)
If your computer refuses to boot without a keyboard attached then you will have to configure the BIOS so that it ignores this error (if it can). Consult your motherboard's manual for details on how to do this.
提示: Set the keyboard to “Not installed” in the BIOS setup. You will still be able to use your keyboard. All this does is tell the BIOS not to probe for a keyboard at power-on. Your BIOS should not complain if the keyboard is absent. You can leave the keyboard plugged in even with this flag set to “Not installed” and the keyboard will still work.
注: If your system has a PS/2® mouse, chances are very good that you may have to unplug your mouse as well as your keyboard. This is because PS/2 mice share some hardware with the keyboard and leaving the mouse plugged in can fool the keyboard probe into thinking the keyboard is still there. It is said that a Gateway 2000 Pentium 90 MHz system with an AMI BIOS that behaves this way. In general, this is not a problem since the mouse is not much good without the keyboard anyway.
Plug a dumb terminal into COM1 (sio0).
If you do not have a dumb terminal, you can use an old PC/XT with a modem program, or the serial port on another UNIX box. If you do not have a COM1 (sio0), get one. At this time, there is no way to select a port other than COM1 for the boot blocks without recompiling the boot blocks. If you are already using COM1 for another device, you will have to temporarily remove that device and install a new boot block and kernel once you get FreeBSD up and running. (It is assumed that COM1 will be available on a file/compute/terminal server anyway; if you really need COM1 for something else (and you cannot switch that something else to COM2 (sio1)), then you probably should not even be bothering with all this in the first place.)
Make sure the configuration file of your kernel has appropriate flags set for COM1 (sio0).
Relevant flags are:
Enables console support for this unit. The other console flags are ignored
unless this is set. Currently, at most one unit can have console support; the
first one (in config file order) with this flag set is preferred. This
option alone will not make the serial port the console. Set the
following flag or use the -h
option described
below, together with this flag.
Forces this unit to be the console (unless there is another higher priority
console), regardless of the -h
option discussed
below. The flag 0x20 must be used together
with the 0x10
flag.
Reserves this unit (in conjunction with 0x10) and makes the unit unavailable for normal access. You should not set this flag to the serial port unit which you want to use as the serial console. The only use of this flag is to designate the unit for kernel remote debugging. See The Developer's Handbook for more information on remote debugging.
注: In FreeBSD 4.0 or later the semantics of the flag 0x40 are slightly different and there is another flag to specify a serial port for remote debugging.
Example:
device sio0 at isa? port IO_COM1 flags 0x10 irq 4
See the sio(4) manual page for more details.
If the flags were not set, you need to run UserConfig (on a different console) or recompile the kernel.
Create boot.config in the root directory of the a partition on the boot drive.
This file will instruct the boot block code how you would like to boot the system. In order to activate the serial console, you need one or more of the following options——if you want multiple options, include them all on the same line:
-h
Toggles internal and serial consoles. You can use this to switch console
devices. For instance, if you boot from the internal (video) console, you can
use -h
to direct the boot loader and the kernel
to use the serial port as its console device. Alternatively, if you
boot from the serial port, you can use the -h
to
tell the boot loader and the kernel to use the video display as the console
instead.
-D
Toggles single and dual console configurations. In the single configuration
the console will be either the internal console (video display) or the serial
port, depending on the state of the -h
option
above. In the dual console configuration, both the video display and the
serial port will become the console at the same time, regardless of
the state of the -h
option. However, note that the
dual console configuration takes effect only during the boot block is running.
Once the boot loader gets control, the console specified by the
-h
option becomes the only console.
-P
Makes the boot block probe the keyboard. If no keyboard is found, the -D
and -h
options are
automatically set.
注: Due to space constraints in the current version of the boot blocks, the
-P
option is capable of detecting extended keyboards only. Keyboards with less than 101 keys (and without F11 and F12 keys) may not be detected. Keyboards on some laptop computers may not be properly found because of this limitation. If this is the case with your system, you have to abandon using the-P
option. Unfortunately there is no workaround for this problem.
Use either the -P
option to select the console
automatically, or the -h
option to activate the serial
console.
You may include other options described in boot(8) as well.
The options, except for -P
, will be passed to the
boot loader (/boot/loader). The boot loader will
determine which of the internal video or the serial port should become the console
by examining the state of the -h
option alone. This
means that if you specify the -D
option but not the
-h
option in /boot.config,
you can use the serial port as the console only during the boot block; the boot
loader will use the internal video display as the console.
Boot the machine.
When you start your FreeBSD box, the boot blocks will echo the contents of /boot.config to the console. For example:
/boot.config: -P Keyboard: no
The second line appears only if you put -P
in /boot.config and indicates presence/absence of the keyboard.
These messages go to either serial or internal console, or both, depending on the
option in /boot.config.
Options | Message goes to |
---|---|
none | internal console |
-h |
serial console |
-D |
serial and internal consoles |
-Dh |
serial and internal consoles |
-P , keyboard present |
internal console |
-P , keyboard absent |
serial console |
After the above messages, there will be a small pause before the boot blocks continue loading the boot loader and before any further messages printed to the console. Under normal circumstances, you do not need to interrupt the boot blocks, but you may want to do so in order to make sure things are set up correctly.
Hit any key, other than Enter, at the console to interrupt the boot process. The boot blocks will then prompt you for further action. You should now see something like:
>> FreeBSD/i386 BOOT Default: 0:ad(0,a)/boot/loader boot:
Verify the above message appears on either the serial or internal console or both, according to the options you put in /boot.config. If the message appears in the correct console, hit Enter to continue the boot process.
If you want the serial console but you do not see the prompt on the serial
terminal, something is wrong with your settings. In the meantime, you enter -h
and hit Enter/Return (if possible) to tell the boot block
(and then the boot loader and the kernel) to choose the serial port for the
console. Once the system is up, go back and check what went wrong.
After the boot loader is loaded and you are in the third stage of the boot process you can still switch between the internal console and the serial console by setting appropriate environment variables in the boot loader. See µÚ 24.6.6 節.
Here is the summary of various settings discussed in this section and the console eventually selected.
device sio0 at isa? port IO_COM1 flags 0x10 irq 4
Options in /boot.config | Console during boot blocks | Console during boot loader | Console in kernel |
---|---|---|---|
nothing | internal | internal | internal |
-h |
serial | serial | serial |
-D |
serial and internal | internal | internal |
-Dh |
serial and internal | serial | serial |
-P , keyboard present |
internal | internal | internal |
-P , keyboard absent |
serial and internal | serial | serial |
device sio0 at isa? port IO_COM1 flags 0x30 irq 4
Options in /boot.config | Console during boot blocks | Console during boot loader | Console in kernel |
---|---|---|---|
nothing | internal | internal | serial |
-h |
serial | serial | serial |
-D |
serial and internal | internal | serial |
-Dh |
serial and internal | serial | serial |
-P , keyboard present |
internal | internal | serial |
-P , keyboard absent |
serial and internal | serial | serial |
By default, the serial port settings are: 9600 baud, 8 bits, no parity, and 1 stop bit. If you wish to change the speed, you need to recompile at least the boot blocks. Add the following line to /etc/make.conf and compile new boot blocks:
BOOT_COMCONSOLE_SPEED=19200
See µÚ 24.6.5.2 節 for detailed instructions about building and installing new boot blocks.
If the serial console is configured in some other way than by booting with -h
, or if the serial console used by the kernel is different
from the one used by the boot blocks, then you must also add the following option
to the kernel configuration file and compile a new kernel:
options CONSPEED=19200
Using a port other than sio0 as the console requires some recompiling. If you want to use another serial port for whatever reasons, recompile the boot blocks, the boot loader and the kernel as follows.
Get the kernel source. (See µÚ 23 章)
Edit /etc/make.conf and set BOOT_COMCONSOLE_PORT to the address of the port you want to use (0x3F8, 0x2F8, 0x3E8 or 0x2E8). Only sio0 through sio3 (COM1 through COM4) can be used; multiport serial cards will not work. No interrupt setting is needed.
Create a custom kernel configuration file and add appropriate flags for the serial port you want to use. For example, if you want to make sio1 (COM2) the console:
device sio1 at isa? port IO_COM2 flags 0x10 irq 3
or
device sio1 at isa? port IO_COM2 flags 0x30 irq 3
The console flags for the other serial ports should not be set.
Recompile and install the boot blocks and the boot loader:
# cd /sys/boot # make clean # make # make install
Rebuild and install the kernel.
Write the boot blocks to the boot disk with disklabel(8) and boot from the new kernel.
If you wish to drop into the kernel debugger from the serial console (useful for remote diagnostics, but also dangerous if you generate a spurious BREAK on the serial port!) then you should compile your kernel with the following options:
options BREAK_TO_DEBUGGER options DDB
While this is not required, you may wish to get a login prompt over the serial line, now that you can see boot messages and can enter the kernel debugging session through the serial console. Here is how to do it.
Open the file /etc/ttys with an editor and locate the lines:
ttyd0 "/usr/libexec/getty std.9600" unknown off secure ttyd1 "/usr/libexec/getty std.9600" unknown off secure ttyd2 "/usr/libexec/getty std.9600" unknown off secure ttyd3 "/usr/libexec/getty std.9600" unknown off secure
ttyd0 through ttyd3 corresponds to COM1 through COM4. Change off to on for the desired port. If you have changed the speed of the serial port, you need to change std.9600 to match the current setting, e.g. std.19200.
You may also want to change the terminal type from unknown to the actual type of your serial terminal.
After editing the file, you must kill -HUP 1 to make this change take effect.
Previous sections described how to set up the serial console by tweaking the boot block. This section shows that you can specify the console by entering some commands and environment variables in the boot loader. As the boot loader is invoked at the third stage of the boot process, after the boot block, the settings in the boot loader will override the settings in the boot block.
You can easily specify the boot loader and the kernel to use the serial console by writing just one line in /boot/loader.rc:
set console="comconsole"
This will take effect regardless of the settings in the boot block discussed in the previous section.
You had better put the above line as the first line of /boot/loader.rc so as to see boot messages on the serial console as early as possible.
Likewise, you can specify the internal console as:
set console="vidconsole"
If you do not set the boot loader environment variable console, the boot loader, and subsequently the kernel, will use
whichever console indicated by the -h
option in the
boot block.
In versions 3.2 or later, you may specify the console in /boot/loader.conf.local or /boot/loader.conf, rather than in /boot/loader.rc. In this method your /boot/loader.rc should look like:
include /boot/loader.4th start
Then, create /boot/loader.conf.local and put the following line there.
console=comconsole
or
console=vidconsole
See loader.conf(5) for more information.
注: At the moment, the boot loader has no option equivalent to the
-P
option in the boot block, and there is no provision to automatically select the internal console and the serial console based on the presence of the keyboard.
You need to recompile the boot loader to use a serial port other than sio0 for the serial console. Follow the procedure described in µÚ 24.6.5.2 節.
The idea here is to allow people to set up dedicated servers that require no graphics hardware or attached keyboards. Unfortunately, while most systems will let you boot without a keyboard, there are quite a few that will not let you boot without a graphics adapter. Machines with AMI BIOSes can be configured to boot with no graphics adapter installed simply by changing the “graphics adapter” setting in the CMOS configuration to “Not installed.”
However, many machines do not support this option and will refuse to boot if you have no display hardware in the system. With these machines, you will have to leave some kind of graphics card plugged in, (even if it is just a junky mono board) although you will not have to attach a monitor. You might also try installing an AMI BIOS.
FreeBSD has a number of ways to link one computer to another. To establish a network or Internet connection through a dial-up modem, or to allow others to do so through you, requires the use of PPP or SLIP. This chapter describes setting up these modem-based communication services in detail.
After reading this chapter, you will know:
How to set up user PPP.
How to set up kernel PPP.
How to set up PPPoE (PPP over Ethernet).
How to set up PPPoA (PPP over ATM).
How to configure and set up a SLIP client and server.
Before reading this chapter, you should:
Be familiar with basic network terminology.
Understand the basics and purpose of a dialup connection and PPP and/or SLIP.
You may be wondering what the main difference is between user PPP and kernel PPP. The answer is simple: user PPP processes the inbound and outbound data in userland rather than in the kernel. This is expensive in terms of copying the data between the kernel and userland, but allows a far more feature-rich PPP implementation. User PPP uses the tun device to communicate with the outside world whereas kernel PPP uses the ppp device.
注: Throughout in this chapter, user PPP will simply be referred to as ppp unless a distinction needs to be made between it and any other PPP software such as pppd. Unless otherwise stated, all of the commands explained in this chapter should be executed as root.
This document assumes you have the following:
An account with an Internet Service Provider (ISP) which you connect to using PPP.
You have a modem or other device connected to your system and configured correctly which allows you to connect to your ISP.
The dial-up number(s) of your ISP.
Your login name and password. (Either a regular UNIX style login and password pair, or a PAP or CHAP login and password pair.)
The IP address of one or more name servers. Normally, you will be given two IP addresses by your ISP to use for this. If they have not given you at least one, then you can use the enable dns command in ppp.conf and ppp will set the name servers for you. This feature depends on your ISPs PPP implementation supporting DNS negotiation.
The following information may be supplied by your ISP, but is not completely necessary:
The IP address of your ISP's gateway. The gateway is the machine to which you will connect and will be set up as your default route. If you do not have this information, we can make one up and your ISP's PPP server will tell us the correct value when we connect.
This IP number is referred to as HISADDR by ppp.
The netmask you should use. If your ISP has not provided you with one, you can safely use 255.255.255.255.
If your ISP provides you with a static IP address and hostname, you can enter it. Otherwise, we simply let the peer assign whatever IP address it sees fit.
If you do not have any of the required information, contact your ISP.
注: Throughout this section, many of the examples showing the contents of configuration files are numbered by line. These numbers serve to aid in the presentation and discussion only and are not meant to be placed in the actual file. Proper indentation with tab and space characters is also important.
Under normal circumstances, most users will only need one tun device (/dev/tun0). References to tun0 below may be changed to tunN where N is any unit number corresponding to your system.
For FreeBSD installations that do not have devfs(5) enabled (FreeBSD 4.X and earlier), the existence of the tun0 device should be verified (this is not necessary if devfs(5) is enabled as device nodes will be created on demand).
The easiest way to make sure that the tun0 device is configured correctly is to remake the device. To remake the device, do the following:
# cd /dev # sh MAKEDEV tun0
If you need 16 tunnel devices in your kernel, you will need to create them. This can be done by executing the following commands:
# cd /dev # sh MAKEDEV tun15
Both ppp and pppd (the kernel level implementation of PPP) use the configuration files located in the /etc/ppp directory. Examples for user ppp can be found in /usr/share/examples/ppp/.
Configuring ppp requires that you edit a number of files, depending on your requirements. What you put in them depends to some extent on whether your ISP allocates IP addresses statically (i.e., you get given one IP address, and always use that one) or dynamically (i.e., your IP address changes each time you connect to your ISP).
You will need to edit the /etc/ppp/ppp.conf configuration file. It should look similar to the example below.
注: Lines that end in a : start in the first column (beginning of the line)—— all other lines should be indented as shown using spaces or tabs.
1 default: 2 set log Phase Chat LCP IPCP CCP tun command 3 ident user-ppp VERSION (built COMPILATIONDATE) 4 set device /dev/cuaa0 5 set speed 115200 6 set dial "ABORT BUSY ABORT NO\\sCARRIER TIMEOUT 5 \ 7 \"\" AT OK-AT-OK ATE1Q0 OK \\dATDT\\T TIMEOUT 40 CONNECT" 8 set timeout 180 9 enable dns 10 11 provider: 12 set phone "(123) 456 7890" 13 set authname foo 14 set authkey bar 15 set login "TIMEOUT 10 \"\" \"\" gin:--gin: \\U word: \\P col: ppp" 16 set timeout 300 17 set ifaddr x.x.x.x y.y.y.y 255.255.255.255 0.0.0.0 18 add default HISADDR
Identifies the default entry. Commands in this entry are executed automatically when ppp is run.
Enables logging parameters. When the configuration is working satisfactorily, this line should be reduced to saying
set log phase tunin order to avoid excessive log file sizes.
Tells PPP how to identify itself to the peer. PPP identifies itself to the peer if it has any trouble negotiating and setting up the link, providing information that the peers administrator may find useful when investigating such problems.
Identifies the device to which the modem is connected. COM1 is /dev/cuaa0 and COM2 is /dev/cuaa1.
Sets the speed you want to connect at. If 115200 does not work (it should with any reasonably new modem), try 38400 instead.
The dial string. User PPP uses an expect-send syntax similar to the chat(8) program. Refer to the manual page for information on the features of this language.
Note that this command continues onto the next line for readability. Any command in ppp.conf may do this if the last character on the line is a ``\'' character.
Sets the idle timeout for the link. 180 seconds is the default, so this line is purely cosmetic.
Tells PPP to ask the peer to confirm the local resolver settings. If you run a local name server, this line should be commented out or removed.
A blank line for readability. Blank lines are ignored by PPP.
Identifies an entry for a provider called “provider”. This could be
changed to the name of your ISP so that later
you can use the load ISP
to start the connection.
Sets the phone number for this provider. Multiple phone numbers may be specified using the colon (:) or pipe character (|)as a separator. The difference between the two separators is described in ppp(8). To summarize, if you want to rotate through the numbers, use a colon. If you want to always attempt to dial the first number first and only use the other numbers if the first number fails, use the pipe character. Always quote the entire set of phone numbers as shown.
You must enclose the phone number in quotation marks (") if there is any intention on using spaces in the phone number. This can cause a simple, yet subtle error.
Identifies the user name and password. When connecting using a UNIX style login prompt, these values are referred to by the set login command using the \U and \P variables. When connecting using PAP or CHAP, these values are used at authentication time.
If you are using PAP or CHAP, there will be no login at this point, and this line should be commented out or removed. See PAP and CHAP authentication for further details.
The login string is of the same chat-like syntax as the dial string. In this example, the string works for a service whose login session looks like this:
J. Random Provider login: foo password: bar protocol: ppp
You will need to alter this script to suit your own needs. When you write this script for the first time, you should ensure that you have enabled “chat” logging so you can determine if the conversation is going as expected.
Sets the default idle timeout (in seconds) for the connection. Here, the
connection will be closed automatically after 300 seconds of inactivity. If
you never want to timeout, set this value to zero or use the -ddial
command line switch.
Sets the interface addresses. The string x.x.x.x should be replaced by the IP address
that your provider has allocated to you. The string y.y.y.y should be replaced by the IP address
that your ISP indicated for their gateway (the machine to which you
connect). If your ISP has not given you a gateway address, use 10.0.0.2/0. If you need to use a “guessed” address, make
sure that you create an entry in /etc/ppp/ppp.linkup as per the instructions for PPP and Dynamic IP addresses. If this line is
omitted, ppp cannot run in -auto
mode.
Adds a default route to your ISP's gateway. The special word HISADDR is replaced with the gateway address specified on line 17. It is important that this line appears after line 17, otherwise HISADDR will not yet be initialized.
If you do not wish to run ppp in -auto
, this
line should be moved to the ppp.linkup file.
It is not necessary to add an entry to ppp.linkup when
you have a static IP address and are running ppp in -auto
mode as your routing table entries are already correct before
you connect. You may however wish to create an entry to invoke programs after connection.
This is explained later with the sendmail example.
Example configuration files can be found in the /usr/share/examples/ppp/ directory.
If your service provider does not assign static IP addresses, ppp can be configured to negotiate the local and remote addresses. This is done by “guessing” an IP address and allowing ppp to set it up correctly using the IP Configuration Protocol (IPCP) after connecting. The ppp.conf configuration is the same as PPP and Static IP Addresses, with the following change:
17 set ifaddr 10.0.0.1/0 10.0.0.2/0 255.255.255.255
Again, do not include the line number, it is just for reference. Indentation of at least one space is required.
The number after the / character is the number of bits of the address that ppp will insist on. You may wish to use IP numbers more appropriate to your circumstances, but the above example will always work.
The last argument (0.0.0.0) tells PPP to start
negotiations using address 0.0.0.0 rather than 10.0.0.1 and is necessary for some ISPs. Do not use 0.0.0.0 as the first argument to set ifaddr
as it prevents PPP from setting up an initial route in -auto
mode.
If you are not running in -auto
mode, you will need
to create an entry in /etc/ppp/ppp.linkup. ppp.linkup is used after a connection has been established.
At this point, ppp will have assigned the interface
addresses and it will now be possible to add the routing table entries:
1 provider: 2 add default HISADDR
On establishing a connection, ppp will look for an entry in ppp.linkup according to the following rules: First, try to match the same label as we used in ppp.conf. If that fails, look for an entry for the IP address of our gateway. This entry is a four-octet IP style label. If we still have not found an entry, look for the MYADDR entry.
This line tells ppp to add a default route that points to HISADDR. HISADDR will be replaced with the IP number of the gateway as negotiated by the IPCP.
See the pmdemand entry in the files /usr/share/examples/ppp/ppp.conf.sample and /usr/share/examples/ppp/ppp.linkup.sample for a detailed example.
When you configure ppp to receive incoming calls on a machine connected to a LAN, you must decide if you wish to forward packets to the LAN. If you do, you should allocate the peer an IP number from your LAN's subnet, and use the command enable proxy in your /etc/ppp/ppp.conf file. You should also confirm that the /etc/rc.conf file contains the following:
gateway_enable="YES"
Configuring FreeBSD for Dial-up Services provides a good description on enabling dial-up services using getty(8).
An alternative to getty is mgetty, a smarter version of getty designed with dial-up lines in mind.
The advantages of using mgetty is that it actively talks to modems, meaning if port is turned off in /etc/ttys then your modem will not answer the phone.
Later versions of mgetty (from 0.99beta onwards) also support the automatic detection of PPP streams, allowing your clients script-less access to your server.
Refer to Mgetty and AutoPPP for more information on mgetty.
The ppp command must normally be run as the root user. If however, you wish to allow ppp to run in server mode as a normal user by executing ppp as described below, that user must be given permission to run ppp by adding them to the network group in /etc/group.
You will also need to give them access to one or more sections of the configuration file using the allow command:
allow users fred mary
If this command is used in the default section, it gives the specified users access to everything.
Create a file called /etc/ppp/ppp-shell containing the following:
#!/bin/sh IDENT=`echo $0 | sed -e 's/^.*-\(.*\)$/\1/'` CALLEDAS="$IDENT" TTY=`tty` if [ x$IDENT = xdialup ]; then IDENT=`basename $TTY` fi echo "PPP for $CALLEDAS on $TTY" echo "Starting PPP for $IDENT" exec /usr/sbin/ppp -direct $IDENT
This script should be executable. Now make a symbolic link called ppp-dialup to this script using the following commands:
# ln -s ppp-shell /etc/ppp/ppp-dialup
You should use this script as the shell for all of your dialup users. This is an example from /etc/passwd for a dialup PPP user with username pchilds (remember do not directly edit the password file, use vipw(8)).
pchilds:*:1011:300:Peter Childs PPP:/home/ppp:/etc/ppp/ppp-dialup
Create a /home/ppp directory that is world readable containing the following 0 byte files:
-r--r--r-- 1 root wheel 0 May 27 02:23 .hushlogin -r--r--r-- 1 root wheel 0 May 27 02:22 .rhosts
which prevents /etc/motd from being displayed.
Create the ppp-shell file as above, and for each account with statically assigned IPs create a symbolic link to ppp-shell.
For example, if you have three dialup customers, fred, sam, and mary, that you route class C networks for, you would type the following:
# ln -s /etc/ppp/ppp-shell /etc/ppp/ppp-fred # ln -s /etc/ppp/ppp-shell /etc/ppp/ppp-sam # ln -s /etc/ppp/ppp-shell /etc/ppp/ppp-mary
Each of these users dialup accounts should have their shell set to the symbolic link created above (for example, mary's shell should be /etc/ppp/ppp-mary).
The /etc/ppp/ppp.conf file should contain something along the lines of:
default: set debug phase lcp chat set timeout 0 ttyd0: set ifaddr 203.14.100.1 203.14.100.20 255.255.255.255 enable proxy ttyd1: set ifaddr 203.14.100.1 203.14.100.21 255.255.255.255 enable proxy
注: The indenting is important.
The default: section is loaded for each session. For each dialup line enabled in /etc/ttys create an entry similar to the one for ttyd0: above. Each line should get a unique IP address from your pool of IP addresses for dynamic users.
Along with the contents of the sample /usr/share/examples/ppp/ppp.conf above you should add a section for each of the statically assigned dialup users. We will continue with our fred, sam, and mary example.
fred: set ifaddr 203.14.100.1 203.14.101.1 255.255.255.255 sam: set ifaddr 203.14.100.1 203.14.102.1 255.255.255.255 mary: set ifaddr 203.14.100.1 203.14.103.1 255.255.255.255
The file /etc/ppp/ppp.linkup should also contain routing information for each static IP user if required. The line below would add a route for the 203.14.101.0 class C via the client's ppp link.
fred: add 203.14.101.0 netmask 255.255.255.0 HISADDR sam: add 203.14.102.0 netmask 255.255.255.0 HISADDR mary: add 203.14.103.0 netmask 255.255.255.0 HISADDR
Configuring and compiling mgetty with the AUTO_PPP option enabled allows mgetty to detect the LCP phase of PPP connections and automatically spawn off a ppp shell. However, since the default login/password sequence does not occur it is necessary to authenticate users using either PAP or CHAP.
This section assumes the user has successfully configured, compiled, and installed a version of mgetty with the AUTO_PPP option (v0.99beta or later).
Make sure your /usr/local/etc/mgetty+sendfax/login.config file has the following in it:
/AutoPPP/ - - /etc/ppp/ppp-pap-dialup
This will tell mgetty to run the ppp-pap-dialup script for detected PPP connections.
Create a file called /etc/ppp/ppp-pap-dialup containing the following (the file should be executable):
#!/bin/sh exec /usr/sbin/ppp -direct pap$IDENT
For each dialup line enabled in /etc/ttys, create a corresponding entry in /etc/ppp/ppp.conf. This will happily co-exist with the definitions we created above.
pap: enable pap set ifaddr 203.14.100.1 203.14.100.20-203.14.100.40 enable proxy
Each user logging in with this method will need to have a username/password in /etc/ppp/ppp.secret file, or alternatively add the following option to authenticate users via PAP from the /etc/passwd file.
enable passwdauth
If you wish to assign some users a static IP number, you can specify the number as the third argument in /etc/ppp/ppp.secret. See /usr/share/examples/ppp/ppp.secret.sample for examples.
It is possible to configure PPP to supply DNS and NetBIOS nameserver addresses on demand.
To enable these extensions with PPP version 1.x, the following lines might be added to the relevant section of /etc/ppp/ppp.conf.
enable msext set ns 203.14.100.1 203.14.100.2 set nbns 203.14.100.5
And for PPP version 2 and above:
accept dns set dns 203.14.100.1 203.14.100.2 set nbns 203.14.100.5
This will tell the clients the primary and secondary name server addresses, and a NetBIOS nameserver host.
In version 2 and above, if the set dns line is omitted, PPP will use the values found in /etc/resolv.conf.
Some ISPs set their system up so that the authentication part of your connection is done using either of the PAP or CHAP authentication mechanisms. If this is the case, your ISP will not give a login: prompt when you connect, but will start talking PPP immediately.
PAP is less secure than CHAP, but security is not normally an issue here as passwords, although being sent as plain text with PAP, are being transmitted down a serial line only. There is not much room for crackers to “eavesdrop”.
Referring back to the PPP and Static IP addresses or PPP and Dynamic IP addresses sections, the following alterations must be made:
13 set authname MyUserName 14 set authkey MyPassword 15 set login
This line specifies your PAP/CHAP user name. You will need to insert the correct value for MyUserName.
This line specifies your PAP/CHAP password. You will need to insert the correct value for MyPassword. You may want to add an additional line, such as:
16 accept PAP
or
16 accept CHAP
to make it obvious that this is the intention, but PAP and CHAP are both accepted by default.
Your ISP will not normally require that you log into the server if you are using PAP or CHAP. You must therefore disable your “set login” string.
It is possible to talk to the ppp program while it is running in the background, but only if a suitable diagnostic port has been set up. To do this, add the following line to your configuration:
set server /var/run/ppp-tun%d DiagnosticPassword 0177
This will tell PPP to listen to the specified UNIX domain socket, asking clients for the specified password before allowing access. The %d in the name is replaced with the tun device number that is in use.
Once a socket has been set up, the pppctl(8) program may be used in scripts that wish to manipulate the running program.
PPP has ability to use internal NAT without kernel diverting capabilities. This functionality may be enabled by the following line in /etc/ppp/ppp.conf:
nat enable yes
Alternatively, PPP NAT may be enabled by command-line option -nat. There is also /etc/rc.conf knob named ppp_nat, which is enabled by default.
If you use this feature, you may also find useful the following /etc/ppp/ppp.conf options to enable incoming connections forwarding:
nat port tcp 10.0.0.2:ftp ftp nat port tcp 10.0.0.2:http http
or do not trust the outside at all
nat deny_incoming yes
You now have ppp configured, but there are a few more things to do before it is ready to work. They all involve editing the /etc/rc.conf file.
Working from the top down in this file, make sure the hostname= line is set, e.g.:
hostname="foo.example.com"
If your ISP has supplied you with a static IP address and name, it is probably best that you use this name as your host name.
Look for the network_interfaces variable. If you want to configure your system to dial your ISP on demand, make sure the tun0 device is added to the list, otherwise remove it.
network_interfaces="lo0 tun0" ifconfig_tun0=
注: The ifconfig_tun0 variable should be empty, and a file called /etc/start_if.tun0 should be created. This file should contain the line:
ppp -auto mysystemThis script is executed at network configuration time, starting your ppp daemon in automatic mode. If you have a LAN for which this machine is a gateway, you may also wish to use the
-alias
switch. Refer to the manual page for further details.
Make sure that the router program is set to NO with the following line in your /etc/rc.conf:
router_enable="NO"
It is important that the routed daemon is not started, as routed tends to delete the default routing table entries created by ppp.
It is probably worth your while ensuring that the sendmail_flags line does not include the -q
option, otherwise sendmail will
attempt to do a network lookup every now and then, possibly causing your machine to
dial out. You may try:
sendmail_flags="-bd"
The downside of this is that you must force sendmail to re-examine the mail queue whenever the ppp link is up by typing:
# /usr/sbin/sendmail -q
You may wish to use the !bg command in ppp.linkup to do this automatically:
1 provider: 2 delete ALL 3 add 0 0 HISADDR 4 !bg sendmail -bd -q30m
If you do not like this, it is possible to set up a “dfilter” to block SMTP traffic. Refer to the sample files for further details.
All that is left is to reboot the machine. After rebooting, you can now either type:
# ppp
and then dial provider to start the PPP session, or, if you want ppp to establish sessions automatically when there is outbound traffic (and you have not created the start_if.tun0 script), type:
# ppp -auto provider
To recap, the following steps are necessary when setting up ppp for the first time:
Client side:
Ensure that the tun device is built into your kernel.
Ensure that the tunN device file is available in the /dev directory.
Create an entry in /etc/ppp/ppp.conf. The pmdemand example should suffice for most ISPs.
If you have a dynamic IP address, create an entry in /etc/ppp/ppp.linkup.
Update your /etc/rc.conf file.
Create a start_if.tun0 script if you require demand dialing.
Server side:
Ensure that the tun device is built into your kernel.
Ensure that the tunN device file is available in the /dev directory.
Create an entry in /etc/passwd (using the vipw(8) program).
Create a profile in this users home directory that runs ppp -direct direct-server or similar.
Create an entry in /etc/ppp/ppp.conf. The direct-server example should suffice.
Create an entry in /etc/ppp/ppp.linkup.
Update your /etc/rc.conf file.
Before you start setting up PPP on your machine, make sure that pppd is located in /usr/sbin and the directory /etc/ppp exists.
pppd can work in two modes:
As a “client” —— you want to connect your machine to the outside world via a PPP serial connection or modem line.
As a “server” —— your machine is located on the network, and is used to connect other computers using PPP.
In both cases you will need to set up an options file (/etc/ppp/options or ~/.ppprc if you have more than one user on your machine that uses PPP).
You will also need some modem/serial software (preferably comms/kermit), so you can dial and establish a connection with the remote host.
The following /etc/ppp/options might be used to connect to a Cisco terminal server PPP line.
crtscts # enable hardware flow control modem # modem control line noipdefault # remote PPP server must supply your IP address # if the remote host does not send your IP during IPCP # negotiation, remove this option passive # wait for LCP packets domain ppp.foo.com # put your domain name here :<remote_ip> # put the IP of remote PPP host here # it will be used to route packets via PPP link # if you didn't specified the noipdefault option # change this line to <local_ip>:<remote_ip> defaultroute # put this if you want that PPP server will be your # default router
To connect:
Dial to the remote host using Kermit (or some other modem program), and enter your user name and password (or whatever is needed to enable PPP on the remote host).
Exit Kermit (without hanging up the line).
Enter the following:
# /usr/src/usr.sbin/pppd.new/pppd /dev/tty01 19200
Be sure to use the appropriate speed and device name.
Now your computer is connected with PPP. If the connection fails, you can add the
debug
option to the /etc/ppp/options file, and check console messages to track the
problem.
Following /etc/ppp/pppup script will make all 3 stages automatic:
#!/bin/sh ps ax |grep pppd |grep -v grep pid=`ps ax |grep pppd |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing pppd, PID=' ${pid} kill ${pid} fi ps ax |grep kermit |grep -v grep pid=`ps ax |grep kermit |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing kermit, PID=' ${pid} kill -9 ${pid} fi ifconfig ppp0 down ifconfig ppp0 delete kermit -y /etc/ppp/kermit.dial pppd /dev/tty01 19200
/etc/ppp/kermit.dial is a Kermit script that dials and makes all necessary authorization on the remote host (an example of such a script is attached to the end of this document).
Use the following /etc/ppp/pppdown script to disconnect the PPP line:
#!/bin/sh pid=`ps ax |grep pppd |grep -v grep|awk '{print $1;}'` if [ X${pid} != "X" ] ; then echo 'killing pppd, PID=' ${pid} kill -TERM ${pid} fi ps ax |grep kermit |grep -v grep pid=`ps ax |grep kermit |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing kermit, PID=' ${pid} kill -9 ${pid} fi /sbin/ifconfig ppp0 down /sbin/ifconfig ppp0 delete kermit -y /etc/ppp/kermit.hup /etc/ppp/ppptest
Check to see if pppd is still running by executing /usr/etc/ppp/ppptest, which should look like this:
#!/bin/sh pid=`ps ax| grep pppd |grep -v grep|awk '{print $1;}'` if [ X${pid} != "X" ] ; then echo 'pppd running: PID=' ${pid-NONE} else echo 'No pppd running.' fi set -x netstat -n -I ppp0 ifconfig ppp0
To hang up the modem, execute /etc/ppp/kermit.hup, which should contain:
set line /dev/tty01 ; put your modem device here set speed 19200 set file type binary set file names literal set win 8 set rec pack 1024 set send pack 1024 set block 3 set term bytesize 8 set command bytesize 8 set flow none pau 1 out +++ inp 5 OK out ATH0\13 echo \13 exit
Here is an alternate method using chat instead of kermit:
The following two files are sufficient to accomplish a pppd connection.
/etc/ppp/options:
/dev/cuaa1 115200 crtscts # enable hardware flow control modem # modem control line connect "/usr/bin/chat -f /etc/ppp/login.chat.script" noipdefault # remote PPP serve must supply your IP address # if the remote host doesn't send your IP during # IPCP negotiation, remove this option passive # wait for LCP packets domain <your.domain> # put your domain name here : # put the IP of remote PPP host here # it will be used to route packets via PPP link # if you didn't specified the noipdefault option # change this line to <local_ip>:<remote_ip> defaultroute # put this if you want that PPP server will be # your default router
/etc/ppp/login.chat.script:
注: The following should go on a single line.
ABORT BUSY ABORT 'NO CARRIER' "" AT OK ATDT<phone.number> CONNECT "" TIMEOUT 10 ogin:-\\r-ogin: <login-id> TIMEOUT 5 sword: <password>
Once these are installed and modified correctly, all you need to do is run pppd, like so:
# pppd
/etc/ppp/options should contain something similar to the following:
crtscts # Hardware flow control netmask 255.255.255.0 # netmask (not required) 192.114.208.20:192.114.208.165 # IP's of local and remote hosts # local ip must be different from one # you assigned to the Ethernet (or other) # interface on your machine. # remote IP is IP address that will be # assigned to the remote machine domain ppp.foo.com # your domain passive # wait for LCP modem # modem line
The following /etc/ppp/pppserv script will tell pppd to behave as a server:
#!/bin/sh ps ax |grep pppd |grep -v grep pid=`ps ax |grep pppd |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing pppd, PID=' ${pid} kill ${pid} fi ps ax |grep kermit |grep -v grep pid=`ps ax |grep kermit |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing kermit, PID=' ${pid} kill -9 ${pid} fi # reset ppp interface ifconfig ppp0 down ifconfig ppp0 delete # enable autoanswer mode kermit -y /etc/ppp/kermit.ans # run ppp pppd /dev/tty01 19200
Use this /etc/ppp/pppservdown script to stop the server:
#!/bin/sh ps ax |grep pppd |grep -v grep pid=`ps ax |grep pppd |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing pppd, PID=' ${pid} kill ${pid} fi ps ax |grep kermit |grep -v grep pid=`ps ax |grep kermit |grep -v grep|awk '{print $1;}'` if [ "X${pid}" != "X" ] ; then echo 'killing kermit, PID=' ${pid} kill -9 ${pid} fi ifconfig ppp0 down ifconfig ppp0 delete kermit -y /etc/ppp/kermit.noans
The following Kermit script (/etc/ppp/kermit.ans) will enable/disable autoanswer mode on your modem. It should look like this:
set line /dev/tty01 set speed 19200 set file type binary set file names literal set win 8 set rec pack 1024 set send pack 1024 set block 3 set term bytesize 8 set command bytesize 8 set flow none pau 1 out +++ inp 5 OK out ATH0\13 inp 5 OK echo \13 out ATS0=1\13 ; change this to out ATS0=0\13 if you want to disable ; autoanswer mode inp 5 OK echo \13 exit
A script named /etc/ppp/kermit.dial is used for dialing and authenticating on the remote host. You will need to customize it for your needs. Put your login and password in this script; you will also need to change the input statement depending on responses from your modem and remote host.
; ; put the com line attached to the modem here: ; set line /dev/tty01 ; ; put the modem speed here: ; set speed 19200 set file type binary ; full 8 bit file xfer set file names literal set win 8 set rec pack 1024 set send pack 1024 set block 3 set term bytesize 8 set command bytesize 8 set flow none set modem hayes set dial hangup off set carrier auto ; Then SET CARRIER if necessary, set dial display on ; Then SET DIAL if necessary, set input echo on set input timeout proceed set input case ignore def \%x 0 ; login prompt counter goto slhup :slcmd ; put the modem in command mode echo Put the modem in command mode. clear ; Clear unread characters from input buffer pause 1 output +++ ; hayes escape sequence input 1 OK\13\10 ; wait for OK if success goto slhup output \13 pause 1 output at\13 input 1 OK\13\10 if fail goto slcmd ; if modem doesn't answer OK, try again :slhup ; hang up the phone clear ; Clear unread characters from input buffer pause 1 echo Hanging up the phone. output ath0\13 ; hayes command for on hook input 2 OK\13\10 if fail goto slcmd ; if no OK answer, put modem in command mode :sldial ; dial the number pause 1 echo Dialing. output atdt9,550311\13\10 ; put phone number here assign \%x 0 ; zero the time counter :look clear ; Clear unread characters from input buffer increment \%x ; Count the seconds input 1 {CONNECT } if success goto sllogin reinput 1 {NO CARRIER\13\10} if success goto sldial reinput 1 {NO DIALTONE\13\10} if success goto slnodial reinput 1 {\255} if success goto slhup reinput 1 {\127} if success goto slhup if < \%x 60 goto look else goto slhup :sllogin ; login assign \%x 0 ; zero the time counter pause 1 echo Looking for login prompt. :slloop increment \%x ; Count the seconds clear ; Clear unread characters from input buffer output \13 ; ; put your expected login prompt here: ; input 1 {Username: } if success goto sluid reinput 1 {\255} if success goto slhup reinput 1 {\127} if success goto slhup if < \%x 10 goto slloop ; try 10 times to get a login prompt else goto slhup ; hang up and start again if 10 failures :sluid ; ; put your userid here: ; output ppp-login\13 input 1 {Password: } ; ; put your password here: ; output ppp-password\13 input 1 {Entering SLIP mode.} echo quit :slnodial echo \7No dialtone. Check the telephone line!\7 exit 1 ; local variables: ; mode: csh ; comment-start: "; " ; comment-start-skip: "; " ; end:
This section covers a few issues which may arise when using PPP over a modem connection. For instance, perhaps you need to know exactly what prompts the system you are dialing into will present. Some ISPs present the ssword prompt, and others will present password; if the ppp script is not written accordingly, the login attempt will fail. The most common way to debug ppp connections is by connecting manually. The following information will walk you through a manual connection step by step.
If you reconfigured your kernel then you recall the sio device. If you did not configure your kernel, there is no reason to worry. Just check the dmesg output for the modem device with:
# dmesg | grep sio
You should get some pertinent output about the sio devices. These are the COM ports we need. If your modem acts like a standard serial port then you should see it listed on sio1, or COM2. If so, you are not required to rebuild the kernel, you just need to make the serial device. You can do this by changing your directory to /dev and running the MAKEDEV script like above. Now make the serial devices with:
# sh MAKEDEV cuaa0 cuaa1 cuaa2 cuaa3
which will create the serial devices for your system. When matching up sio modem is on sio1 or COM2 if you are in DOS, then your modem device would be /dev/cuaa1.
Connecting to the Internet by manually controlling ppp is quick, easy, and a great way to debug a connection or just get information on how your ISP treats ppp client connections. Lets start PPP from the command line. Note that in all of our examples we will use example as the hostname of the machine running PPP. You start ppp by just typing ppp:
# ppp
We have now started ppp.
ppp ON example> set device /dev/cuaa1
We set our modem device, in this case it is cuaa1.
ppp ON example> set speed 115200
Set the connection speed, in this case we are using 115,200 kbps.
ppp ON example> enable dns
Tell ppp to configure our resolver and add the nameserver lines to /etc/resolv.conf. If ppp cannot determine our hostname, we can set one manually later.
ppp ON example> term
Switch to “terminal” mode so that we can manually control the modem.
deflink: Entering terminal mode on /dev/cuaa1 type '~h' for help
at OK atdt123456789
Use at to initialize the modem, then use atdt and the number for your ISP to begin the dial in process.
CONNECT
Confirmation of the connection, if we are going to have any connection problems, unrelated to hardware, here is where we will attempt to resolve them.
ISP Login:myusername
Here you are prompted for a username, return the prompt with the username that was provided by the ISP.
ISP Pass:mypassword
This time we are prompted for a password, just reply with the password that was provided by the ISP. Just like logging into FreeBSD, the password will not echo.
Shell or PPP:ppp
Depending on your ISP this prompt may never appear. Here we are being asked if we wish to use a shell on the provider, or to start ppp. In this example, we have chosen to use ppp as we want an Internet connection.
Ppp ON example>
Notice that in this example the first p
has been
capitalized. This shows that we have successfully connected to the ISP.
PPp ON example>
We have successfully authenticated with our ISP and are waiting for the assigned IP address.
PPP ON example>
We have made an agreement on an IP address and successfully completed our connection.
PPP ON example>add default HISADDR
Here we add our default route, we need to do this before we can talk to the
outside world as currently the only established connection is with the peer. If this
fails due to existing routes you can put a bang character ! in front of the add
.
Alternatively, you can set this before making the actual connection and it will
negotiate a new route accordingly.
If everything went good we should now have an active connection to the Internet, which could be thrown into the background using CTRL+z If you notice the PPP return to ppp then we have lost our connection. This is good to know because it shows our connection status. Capital P's show that we have a connection to the ISP and lowercase p's show that the connection has been lost for whatever reason. ppp only has these 2 states.
If you have a direct line and cannot seem to make a connection, then turn
hardware flow CTS/RTS to off with the
set ctsrts off
. This is mainly the case if you are
connected to some PPP capable terminal servers,
where PPP hangs when it tries to write data to your
communication link, so it would be waiting for a CTS, or Clear To Send signal which may never come. If you use
this option however, you should also use the set accmap
option, which may be required to defeat hardware dependent on passing certain
characters from end to end, most of the time XON/XOFF. See the ppp(8) manual page for
more information on this option, and how it is used.
If you have an older modem, you may need to use the set
parity even
. Parity is set at none be default, but is used for error
checking (with a large increase in traffic) on older modems and some ISPs. You may need this option for the
Compuserve ISP.
PPP may not return to the command mode, which is usually a negotiation error where the ISP is waiting for your side to start negotiating. At this point, using the ~p command will force ppp to start sending the configuration information.
If you never obtain a login prompt, then most likely you need to use PAP or CHAP authentication instead of the UNIX style in the example above. To use PAP or CHAP just add the following options to PPP before going into terminal mode:
ppp ON example> set authname myusername
Where myusername should be replaced with the username that was assigned by the ISP.
ppp ON example> set authkey mypassword
Where mypassword should be replaced with the password that was assigned by the ISP.
If you connect fine, but cannot seem to find any domain name, try to use ping(8) with an
IP address and see if you can get any
return information. If you experience 100 percent (100%) packet loss, then it is
most likely that you were not assigned a default route. Double check that the
option add default HISADDR
was set during the
connection. If you can connect to a remote IP address then it is possible that a resolver address has not
been added to the /etc/resolv.conf. This file should
look like:
domain example.com nameserver x.x.x.x nameserver y.y.y.y
Where x.x.x.x and y.y.y.y should be replaced with the IP address of your ISP's DNS servers. This information may or may not have been provided when you signed up, but a quick call to your ISP should remedy that.
You could also have syslog(3) provide a logging function for your PPP connection. Just add:
!ppp *.* /var/log/ppp.log
to /etc/syslog.conf. In most cases, this functionality already exists.
This section describes how to set up PPP over Ethernet (PPPoE).
No kernel configuration is necessary for PPPoE any longer. If the necessary netgraph support is not built into the kernel, it will be dynamically loaded by ppp.
Here is an example of a working ppp.conf:
default: set log Phase tun command # you can add more detailed logging if you wish set ifaddr 10.0.0.1/0 10.0.0.2/0 name_of_service_provider: set device PPPoE:xl1 # replace xl1 with your Ethernet device set authname YOURLOGINNAME set authkey YOURPASSWORD set dial set login add default HISADDR
Add the following to your /etc/rc.conf file:
ppp_enable="YES" ppp_mode="ddial" ppp_nat="YES" # if you want to enable nat for your local network, otherwise NO ppp_profile="name_of_service_provider"
Sometimes it will be necessary to use a service tag to establish your connection. Service tags are used to distinguish between different PPPoE servers attached to a given network.
You should have been given any required service tag information in the documentation provided by your ISP. If you cannot locate it there, ask your ISP's tech support personnel.
As a last resort, you could try the method suggested by the Roaring Penguin PPPoE program which can be found in the Ports Collection. Bear in mind however, this may de-program your modem and render it useless, so think twice before doing it. Simply install the program shipped with the modem by your provider. Then, access the menu from the program. The name of your profile should be listed there. It is usually ISP.
The profile name (service tag) will be used in the PPPoE configuration entry in ppp.conf as the provider part of the set device command (see the ppp(8) manual page for full details). It should look like this:
set device PPPoE:xl1:ISP
Do not forget to change xl1 to the proper device for your Ethernet card.
Do not forget to change ISP to the profile you have just found above.
For additional information, see:
Cheaper Broadband with FreeBSD on DSL by Renaud Waldura.
Nutzung von T-DSL und T-Online mit FreeBSD by Udo Erdelhoff (in German).
This modem does not follow RFC 2516 (A Method for transmitting PPP over Ethernet (PPPoE), written by L. Mamakos, K. Lidl, J. Evarts, D. Carrel, D. Simone, and R. Wheeler). Instead, different packet type codes have been used for the Ethernet frames. Please complain to 3Com if you think it should comply with the PPPoE specification.
In order to make FreeBSD capable of communicating with this device, a sysctl must be set. This can be done automatically at boot time by updating /etc/sysctl.conf:
net.graph.nonstandard_pppoe=1
or can be done immediately with the command:
# sysctl net.graph.nonstandard_pppoe=1
Unfortunately, because this is a system-wide setting, it is not possible to talk to a normal PPPoE client or server and a 3Com HomeConnect® ADSL Modem at the same time.
The following describes how to set up PPP over ATM (PPPoA). PPPoA is a popular choice among European DSL providers.
PPPoA support for this device is supplied as a port in FreeBSD because the firmware is distributed under Alcatel's license agreement and can not be redistributed freely with the base system of FreeBSD.
To install the software, simply use the Ports Collection. Install the net/pppoa port and follow the instructions provided with it.
Like many USB devices, the Alcatel SpeedTouch™ USB needs to download firmware from the host computer to operate properly. It is possible to automate this process in FreeBSD so that this transfer takes place whenever the device is plugged into a USB port. The following information can be added to the /etc/usbd.conf file to enable this automatic firmware transfer. This file must be edited as the root user.
device "Alcatel SpeedTouch USB" devname "ugen[0-9]+" vendor 0x06b9 product 0x4061 attach "/usr/local/sbin/modem_run -f /usr/local/libdata/mgmt.o"
To enable the USB daemon, usbd, put the following the line into /etc/rc.conf:
usbd_enable="YES"
It is also possible to set up ppp to dial up at startup. To do this add the following lines to /etc/rc.conf. Again, for this procedure you will need to be logged in as the root user.
ppp_enable="YES" ppp_mode="ddial" ppp_profile="adsl"
For this to work correctly you will need to have used the sample ppp.conf which is supplied with the net/pppoa port.
You can use mpd to connect to a variety of services, in particular PPTP services. You can find mpd in the Ports Collection, net/mpd. Many ADSL modems require that a PPTP tunnel is created between the modem and computer, one such modem is the Alcatel SpeedTouch Home.
First you must install the port, and then you can configure mpd to suit your requirements and provider settings. The port places a set of sample configuration files which are well documented in PREFIX/etc/mpd/. Note here that PREFIX means the directory into which your ports are installed, this defaults to /usr/local/. A complete guide to configure mpd is available in HTML format once the port has been installed. It is placed in PREFIX/share/doc/mpd/. Here is a sample configuration for connecting to an ADSL service with mpd. The configuration is spread over two files, first the mpd.conf:
default: load adsl adsl: new -i ng0 adsl adsl set bundle authname username set bundle password password set bundle disable multilink set link no pap acfcomp protocomp set link disable chap set link accept chap set link keep-alive 30 10 set ipcp no vjcomp set ipcp ranges 0.0.0.0/0 0.0.0.0/0 set iface route default set iface disable on-demand set iface enable proxy-arp set iface idle 0 open
The mpd.links file contains information about the link, or links, you wish to establish. An example mpd.links to accompany the above example is given beneath:
adsl: set link type pptp set pptp mode active set pptp enable originate outcall set pptp self 10.0.0.1 set pptp peer 10.0.0.138
It is possible to initialize the connection easily by issuing the following command as root:
# mpd -b adsl
You can see the status of the connection with the following command:
% ifconfig ng0 ng0: flags=88d1<UP,POINTOPOINT,RUNNING,NOARP,SIMPLEX,MULTICAST> mtu 1500 inet 216.136.204.117 --> 204.152.186.171 netmask 0xffffffff
Using mpd is the recommended way to connect to an ADSL service with FreeBSD.
It is also possible to use FreeBSD to connect to other PPPoA services using net/pptpclient.
To use net/pptpclient to connect to a DSL service, install the port or package and edit your /etc/ppp/ppp.conf. You will need to be root to perform both of these operations. An example section of ppp.conf is given below. For further information on ppp.conf options consult the ppp manual page, ppp(8).
adsl: set log phase chat lcp ipcp ccp tun command set timeout 0 enable dns set authname username set authkey password set ifaddr 0 0 add default HISADDR
警告Because you must put your account's password in the ppp.conf file in plain text form you should make sure than nobody can read the contents of this file. The following series of commands will make sure the file is only readable by the root account. Refer to the manual pages for chmod(1) and chown(8) for further information.
# chown root:wheel /etc/ppp/ppp.conf # chmod 600 /etc/ppp/ppp.conf
This will open a tunnel for a PPP session to your DSL router. Ethernet DSL modems have a preconfigured LAN IP address which you connect to. In the case of the Alcatel SpeedTouch Home this address is 10.0.0.138. Your router documentation should tell you which address your device uses. To open the tunnel and start a PPP session execute the following command:
# pptp address adsl
提示: You may wish to add an ampersand (“&”) to the end of the previous command because pptp will not return your prompt to you otherwise.
A tun virtual tunnel device will be created for interaction between the pptp and ppp processes. Once you have been returned to your prompt, or the pptp process has confirmed a connection you can examine the tunnel like so:
% ifconfig tun0 tun0: flags=8051<UP,POINTOPOINT,RUNNING,MULTICAST> mtu 1500 inet 216.136.204.21 --> 204.152.186.171 netmask 0xffffff00 Opened by PID 918
If you are unable to connect, check the configuration of your router, which is usually accessible via telnet or with a web browser. If you still cannot connect you should examine the output of the pptp command and the contents of the ppp log file, /var/log/ppp.log for clues.
The following is one way to set up a FreeBSD machine for SLIP on a static host network. For dynamic hostname assignments (your address changes each time you dial up), you probably need to have a more complex setup.
First, determine which serial port your modem is connected to. Many people set up a symbolic link, such as /dev/modem, to point to the real device name, /dev/cuaaN (or /dev/cuadN under FreeBSD 6.X). This allows you to abstract the actual device name should you ever need to move the modem to a different port. It can become quite cumbersome when you need to fix a bunch of files in /etc and .kermrc files all over the system!
注: /dev/cuaa0 (or /dev/cuad0 under FreeBSD 6.X) is COM1, cuaa1 (or /dev/cuad1) is COM2, etc.
Make sure you have the following in your kernel configuration file:
device sl
Under FreeBSD 4.X, use instead the following line:
pseudo-device sl 1
It is included in the GENERIC kernel, so this should not be a problem unless you have deleted it.
Add your home machine, the gateway and nameservers to your /etc/hosts file. Ours looks like this:
127.0.0.1 localhost loghost 136.152.64.181 water.CS.Example.EDU water.CS water 136.152.64.1 inr-3.CS.Example.EDU inr-3 slip-gateway 128.32.136.9 ns1.Example.EDU ns1 128.32.136.12 ns2.Example.EDU ns2
Make sure you have hosts before bind in your /etc/host.conf on
FreeBSD versions prior to 5.0. Since FreeBSD 5.0, the system uses the
file /etc/nsswitch.conf instead, make sure you have files before dns in the hosts
line of this file. Without these parameters funny
things may happen.
Edit the /etc/rc.conf file.
Set your hostname by editing the line that says:
hostname="myname.my.domain"
Your machine's full Internet hostname should be placed here.
Designate the default router by changing the line:
defaultrouter="NO"
to:
defaultrouter="slip-gateway"
Make a file /etc/resolv.conf which contains:
domain CS.Example.EDU nameserver 128.32.136.9 nameserver 128.32.136.12
As you can see, these set up the nameserver hosts. Of course, the actual domain names and addresses depend on your environment.
Set the password for root and toor (and any other accounts that do not have a password).
Reboot your machine and make sure it comes up with the correct hostname.
Dial up, type slip at the prompt, enter your machine name and password. What is required to be entered depends on your environment. If you use Kermit, you can try a script like this:
# kermit setup set modem hayes set line /dev/modem set speed 115200 set parity none set flow rts/cts set terminal bytesize 8 set file type binary # The next macro will dial up and login define slip dial 643-9600, input 10 =>, if failure stop, - output slip\x0d, input 10 Username:, if failure stop, - output silvia\x0d, input 10 Password:, if failure stop, - output ***\x0d, echo \x0aCONNECTED\x0a
Of course, you have to change the username and password to fit yours. After doing so, you can just type slip from the Kermit prompt to connect.
注: Leaving your password in plain text anywhere in the filesystem is generally a bad idea. Do it at your own risk.
Leave the Kermit there (you can suspend it by Ctrl-z) and as root, type:
# slattach -h -c -s 115200 /dev/modem
If you are able to ping hosts on the other side of the
router, you are connected! If it does not work, you might want to try -a
instead of -c
as an argument
to slattach.
Do the following:
# kill -INT `cat /var/run/slattach.modem.pid`
to kill slattach. Keep in mind you must be root to do the above. Then go back to kermit (by running fg if you suspended it) and exit from it (q).
The slattach(8) manual page says you have to use ifconfig sl0 down to mark the interface down, but this does not seem to make any difference. (ifconfig sl0 reports the same thing.)
Some times, your modem might refuse to drop the carrier. In that case, simply start kermit and quit it again. It usually goes out on the second try.
If it does not work, feel free to ask on freebsd-net mailing list. The things that people tripped over so far:
Not using -c
or -a
in
slattach (This should not be fatal, but some users have
reported that this solves their problems.)
Using s10
instead of sl0
(might be hard to see the difference on some fonts).
Try ifconfig sl0 to see your interface status. For example, you might get:
# ifconfig sl0 sl0: flags=10<POINTOPOINT> inet 136.152.64.181 --> 136.152.64.1 netmask ffffff00
If you get “no route to host” messages from ping(8), there may be a problem with your routing table. You can use the netstat -r command to display the current routes :
# netstat -r Routing tables Destination Gateway Flags Refs Use IfaceMTU Rtt Netmasks: (root node) (root node) Route Tree for Protocol Family inet: (root node) => default inr-3.Example.EDU UG 8 224515 sl0 - - localhost.Exampl localhost.Example. UH 5 42127 lo0 - 0.438 inr-3.Example.ED water.CS.Example.E UH 1 0 sl0 - - water.CS.Example localhost.Example. UGH 34 47641234 lo0 - 0.438 (root node)
The preceding examples are from a relatively busy system. The numbers on your system will vary depending on network activity.
This document provides suggestions for setting up SLIP Server services on a FreeBSD system, which typically means configuring your system to automatically startup connections upon login for remote SLIP clients.
This section is very technical in nature, so background knowledge is required. It is assumed that you are familiar with the TCP/IP network protocol, and in particular, network and node addressing, network address masks, subnetting, routing, and routing protocols, such as RIP. Configuring SLIP services on a dial-up server requires a knowledge of these concepts, and if you are not familiar with them, please read a copy of either Craig Hunt's TCP/IP Network Administration published by O'Reilly & Associates, Inc. (ISBN Number 0-937175-82-X), or Douglas Comer's books on the TCP/IP protocol.
It is further assumed that you have already set up your modem(s) and configured the appropriate system files to allow logins through your modems. If you have not prepared your system for this yet, please see µÚ 24.4 節 for details on dialup services configuration. You may also want to check the manual pages for sio(4) for information on the serial port device driver and ttys(5), gettytab(5), getty(8), & init(8) for information relevant to configuring the system to accept logins on modems, and perhaps stty(1) for information on setting serial port parameters (such as clocal for directly-connected serial interfaces).
In its typical configuration, using FreeBSD as a SLIP server works as follows: a SLIP user dials up your FreeBSD SLIP Server system and logs in with a special SLIP login ID that uses /usr/sbin/sliplogin as the special user's shell. The sliplogin program browses the file /etc/sliphome/slip.hosts to find a matching line for the special user, and if it finds a match, connects the serial line to an available SLIP interface and then runs the shell script /etc/sliphome/slip.login to configure the SLIP interface.
For example, if a SLIP user ID were Shelmerg, Shelmerg's entry in /etc/master.passwd would look something like this:
Shelmerg:password:1964:89::0:0:Guy Helmer - SLIP:/usr/users/Shelmerg:/usr/sbin/sliplogin
When Shelmerg logs in, sliplogin will search /etc/sliphome/slip.hosts for a line that had a matching user ID; for example, there may be a line in /etc/sliphome/slip.hosts that reads:
Shelmerg dc-slip sl-helmer 0xfffffc00 autocomp
sliplogin will find that matching line, hook the serial line into the next available SLIP interface, and then execute /etc/sliphome/slip.login like this:
/etc/sliphome/slip.login 0 19200 Shelmerg dc-slip sl-helmer 0xfffffc00 autocomp
If all goes well, /etc/sliphome/slip.login will issue an ifconfig for the SLIP interface to which sliplogin attached itself (SLIP interface 0, in the above example, which was the first parameter in the list given to slip.login) to set the local IP address (dc-slip), remote IP address (sl-helmer), network mask for the SLIP interface (0xfffffc00), and any additional flags (autocomp). If something goes wrong, sliplogin usually logs good informational messages via the syslogd daemon facility, which usually logs to /var/log/messages (see the manual pages for syslogd(8) and syslog.conf(5) and perhaps check /etc/syslog.conf to see to what syslogd is logging and where it is logging to).
FreeBSD's default kernel (GENERIC) comes with SLIP (sl(4)) support; in case of a custom kernel, you have to add the following line to your kernel configuration file:
device sl
Under FreeBSD 4.X, use instead the following line:
pseudo-device sl 2
注: The number at the end of the line is the maximum number of SLIP connections that may be operating simultaneously. Since FreeBSD 5.0, the sl(4) driver is “auto-cloning”.
By default, your FreeBSD machine will not forward packets. If you want your
FreeBSD SLIP Server to act as a router, you will have to edit the /etc/rc.conf file and change the setting of the gateway_enable variable to YES
.
You will then need to reboot for the new settings to take effect.
Please refer to µÚ 8 章 on Configuring the FreeBSD Kernel for help in reconfiguring your kernel.
As mentioned earlier, there are three files in the /etc/sliphome directory that are part of the configuration for /usr/sbin/sliplogin (see sliplogin(8) for the actual manual page for sliplogin): slip.hosts, which defines the SLIP users and their associated IP addresses; slip.login, which usually just configures the SLIP interface; and (optionally) slip.logout, which undoes slip.login's effects when the serial connection is terminated.
/etc/sliphome/slip.hosts contains lines which have at least four items separated by whitespace:
SLIP user's login ID
Local address (local to the SLIP server) of the SLIP link
Remote address of the SLIP link
Network mask
The local and remote addresses may be host names (resolved to IP addresses by /etc/hosts or by the domain name service, depending on your specifications in the file /etc/nsswitch.conf, or in /etc/host.conf if you use FreeBSD 4.X), and the network mask may be a name that can be resolved by a lookup into /etc/networks. On a sample system, /etc/sliphome/slip.hosts looks like this:
# # login local-addr remote-addr mask opt1 opt2 # (normal,compress,noicmp) # Shelmerg dc-slip sl-helmerg 0xfffffc00 autocomp
At the end of the line is one or more of the options:
normal
—— no header compression
compress
—— compress headers
autocomp
—— compress headers if the remote end
allows it
noicmp
—— disable ICMP packets (so any
“ping” packets will be dropped instead of using up your bandwidth)
Your choice of local and remote addresses for your SLIP links depends on whether you are going to dedicate a TCP/IP subnet or if you are going to use “proxy ARP” on your SLIP server (it is not “true” proxy ARP, but that is the terminology used in this section to describe it). If you are not sure which method to select or how to assign IP addresses, please refer to the TCP/IP books referenced in the SLIP Prerequisites (µÚ 25.7.2.1 節) and/or consult your IP network manager.
If you are going to use a separate subnet for your SLIP clients, you will need to allocate the subnet number out of your assigned IP network number and assign each of your SLIP client's IP numbers out of that subnet. Then, you will probably need to configure a static route to the SLIP subnet via your SLIP server on your nearest IP router.
Otherwise, if you will use the “proxy ARP” method, you will need to assign your SLIP client's IP addresses out of your SLIP server's Ethernet subnet, and you will also need to adjust your /etc/sliphome/slip.login and /etc/sliphome/slip.logout scripts to use arp(8) to manage the proxy-ARP entries in the SLIP server's ARP table.
The typical /etc/sliphome/slip.login file looks like this:
#!/bin/sh - # # @(#)slip.login 5.1 (Berkeley) 7/1/90 # # generic login file for a slip line. sliplogin invokes this with # the parameters: # 1 2 3 4 5 6 7-n # slipunit ttyspeed loginname local-addr remote-addr mask opt-args # /sbin/ifconfig sl$1 inet $4 $5 netmask $6
This slip.login file merely runs ifconfig for the appropriate SLIP interface with the local and remote addresses and network mask of the SLIP interface.
If you have decided to use the “proxy ARP” method (instead of using a separate subnet for your SLIP clients), your /etc/sliphome/slip.login file will need to look something like this:
#!/bin/sh - # # @(#)slip.login 5.1 (Berkeley) 7/1/90 # # generic login file for a slip line. sliplogin invokes this with # the parameters: # 1 2 3 4 5 6 7-n # slipunit ttyspeed loginname local-addr remote-addr mask opt-args # /sbin/ifconfig sl$1 inet $4 $5 netmask $6 # Answer ARP requests for the SLIP client with our Ethernet addr /usr/sbin/arp -s $5 00:11:22:33:44:55 pub
The additional line in this slip.login, arp -s $5 00:11:22:33:44:55 pub, creates an ARP entry in the SLIP server's ARP table. This ARP entry causes the SLIP server to respond with the SLIP server's Ethernet MAC address whenever another IP node on the Ethernet asks to speak to the SLIP client's IP address.
When using the example above, be sure to replace the Ethernet MAC address (00:11:22:33:44:55) with the MAC address of your system's Ethernet card, or your “proxy ARP” will definitely not work! You can discover your SLIP server's Ethernet MAC address by looking at the results of running netstat -i; the second line of the output should look something like:
ed0 1500 <Link>0.2.c1.28.5f.4a 191923 0 129457 0 116
This indicates that this particular system's Ethernet MAC address is 00:02:c1:28:5f:4a —— the periods in the Ethernet MAC address given by netstat -i must be changed to colons and leading zeros should be added to each single-digit hexadecimal number to convert the address into the form that arp(8) desires; see the manual page on arp(8) for complete information on usage.
注: When you create /etc/sliphome/slip.login and /etc/sliphome/slip.logout, the “execute” bit (i.e., chmod 755 /etc/sliphome/slip.login /etc/sliphome/slip.logout) must be set, or sliplogin will be unable to execute it.
/etc/sliphome/slip.logout is not strictly needed (unless you are implementing “proxy ARP”), but if you decide to create it, this is an example of a basic slip.logout script:
#!/bin/sh - # # slip.logout # # logout file for a slip line. sliplogin invokes this with # the parameters: # 1 2 3 4 5 6 7-n # slipunit ttyspeed loginname local-addr remote-addr mask opt-args # /sbin/ifconfig sl$1 down
If you are using “proxy ARP”, you will want to have /etc/sliphome/slip.logout remove the ARP entry for the SLIP client:
#!/bin/sh - # # @(#)slip.logout # # logout file for a slip line. sliplogin invokes this with # the parameters: # 1 2 3 4 5 6 7-n # slipunit ttyspeed loginname local-addr remote-addr mask opt-args # /sbin/ifconfig sl$1 down # Quit answering ARP requests for the SLIP client /usr/sbin/arp -d $5
The arp -d $5 removes the ARP entry that the “proxy ARP” slip.login added when the SLIP client logged in.
It bears repeating: make sure /etc/sliphome/slip.logout has the execute bit set after you create it (i.e., chmod 755 /etc/sliphome/slip.logout).
If you are not using the “proxy ARP” method for routing packets between your SLIP clients and the rest of your network (and perhaps the Internet), you will probably have to add static routes to your closest default router(s) to route your SLIP clients subnet via your SLIP server.
Adding static routes to your nearest default routers can be troublesome (or impossible if you do not have authority to do so...). If you have a multiple-router network in your organization, some routers, such as those made by Cisco and Proteon, may not only need to be configured with the static route to the SLIP subnet, but also need to be told which static routes to tell other routers about, so some expertise and troubleshooting/tweaking may be necessary to get static-route-based routing to work.
注: GateD is proprietary software now and will not be available as source code to the public anymore (more info on the GateD website). This section only exists to ensure backwards compatibility for those that are still using an older version.
An alternative to the headaches of static routes is to install GateD on your FreeBSD SLIP server and configure it to use the appropriate routing protocols (RIP/OSPF/BGP/EGP) to tell other routers about your SLIP subnet. You will need to write a /etc/gated.conf file to configure your GateD; here is a sample, similar to what the author used on a FreeBSD SLIP server:
# # gated configuration file for dc.dsu.edu; for gated version 3.5alpha5 # Only broadcast RIP information for xxx.xxx.yy out the ed Ethernet interface # # # tracing options # traceoptions "/var/tmp/gated.output" replace size 100k files 2 general ; rip yes { interface sl noripout noripin ; interface ed ripin ripout version 1 ; traceoptions route ; } ; # # Turn on a bunch of tracing info for the interface to the kernel: kernel { traceoptions remnants request routes info interface ; } ; # # Propagate the route to xxx.xxx.yy out the Ethernet interface via RIP # export proto rip interface ed { proto direct { xxx.xxx.yy mask 255.255.252.0 metric 1; # SLIP connections } ; } ; # # Accept routes from RIP via ed Ethernet interfaces import proto rip interface ed { all ; } ;
The above sample gated.conf file broadcasts routing information regarding the SLIP subnet xxx.xxx.yy via RIP onto the Ethernet; if you are using a different Ethernet driver than the ed driver, you will need to change the references to the ed interface appropriately. This sample file also sets up tracing to /var/tmp/gated.output for debugging GateD's activity; you can certainly turn off the tracing options if GateD works correctly for you. You will need to change the xxx.xxx.yy's into the network address of your own SLIP subnet (be sure to change the net mask in the proto direct clause as well).
Once you have installed and configured GateD on your system, you will need to tell the
FreeBSD startup scripts to run GateD in place of routed.
The easiest way to accomplish this is to set the router
and router_flags
variables in /etc/rc.conf. Please see the manual
page for GateD for information
on command-line parameters.
“電子郵件”或者俗稱的 email, 乃是現今使用最廣泛的溝通方式之一。 本章主要介紹如何在 FreeBSD 上安裝、 設定 email 服務,以及如何在 FreeBSD 收發信件; 然而這並不是完整的參考手冊, 實際上許多需考量的重要事項並未提及,若欲瞭解細節請參閱 附錄 B 內的參考書籍。
讀完這章,您將了解︰
哪些軟體元件與收發電子郵件有關。
FreeBSD 內的 sendmail 基本設定檔在哪。
遠端信箱與本機信箱的區別。
如何阻擋 spammer(垃圾郵件製造者)非法運用您的郵件伺服器作為 relay(轉發中繼點)。
如何安裝、設定其他 Mail Transfer Agent(MTA) 來取代 sendmail。
如何處理常見的郵件伺服器問題。
如何使用 UUCP 來進行 SMTP。
如何設定系統,使其只能發送郵件。
如何在撥接上網環境中,收發郵件。
如何設定 SMTP 驗證,以加強安全性。
如何安裝、使用 Mail User Agent(MUA) 程式,比如 mutt 來收發郵件。
如何從遠端 POP 或 IMAP 主機去下載郵件。
如何在收信方面,自動套用郵件過濾。
在開始閱讀這章之前,您需要︰
在 email 交換的過程中有 5 個主要部分,分別是:MUA、MTA、 DNS、 遠端或本機的信箱,當然還有 郵件主機本身 。
包括一些文字介面的程式,像是 mutt、 pine、elm、 and mail,以及 GUI 介面的程式, 像是 balsa、 xfmail 等等。 此外,還有更 “複雜的” 像是 WWW 瀏覽器。 這些程式會郵件處理交給 “郵件主機”,或者透過呼叫 MTA(若有的話)或者是透過 TCP 來傳遞郵件。
FreeBSD ships with sendmail by default, but also support numerous other mail server daemons, just some of which include:
exim;
postfix;
qmail.
The server daemon usually has two functions——it is responsible for receiving incoming mail as well as delivering outgoing mail. It is not responsible for the collection of mail using protocols such as POP or IMAP to read your email, nor does it allow connecting to local mbox or Maildir mailboxes. You may require an additional daemon for that.
警告Older versions of sendmail have some serious security issues which may result in an attacker gaining local and/or remote access to your machine. Make sure that you are running a current version to avoid these problems. Optionally, install an alternative MTA from the FreeBSD Ports Collection.
The Domain Name System (DNS) and its daemon named play a large role in the delivery of email. In order to deliver mail from your site to another, the server daemon will look up the remote site in the DNS to determine the host that will receive mail for the destination. This process also occurs when mail is sent from a remote host to your mail server.
DNS is responsible for mapping hostnames to IP addresses, as well as for storing information specific to mail delivery, known as MX records. The MX (Mail eXchanger) record specifies which host, or hosts, will receive mail for a particular domain. If you do not have an MX record for your hostname or domain, the mail will be delivered directly to your host provided you have an A record pointing your hostname to your IP address.
You may view the MX records for any domain by using the host(1) command, as seen in the example below:
% host -t mx FreeBSD.org FreeBSD.org mail is handled (pri=10) by mx1.FreeBSD.org
Receiving mail for your domain is done by the mail host. It will collect all mail sent to your domain and store it either in mbox (the default method for storing mail) or Maildir format, depending on your configuration. Once mail has been stored, it may either be read locally using applications such as mail(1) or mutt, or remotely accessed and collected using protocols such as POP or IMAP. This means that should you only wish to read mail locally, you are not required to install a POP or IMAP server.
In order to access mailboxes remotely, you are required to have access to a POP or IMAP server. These protocols allow users to connect to their mailboxes from remote locations with ease. Though both POP and IMAP allow users to remotely access mailboxes, IMAP offers many advantages, some of which are:
IMAP can store messages on a remote server as well as fetch them.
IMAP supports concurrent updates.
IMAP can be extremely useful over low-speed links as it allows users to fetch the structure of messages without downloading them; it can also perform tasks such as searching on the server in order to minimize data transfer between clients and servers.
In order to install a POP or IMAP server, the following steps should be performed:
Choose an IMAP or POP server that best suits your needs. The following POP and IMAP servers are well known and serve as some good examples:
qpopper;
teapop;
imap-uw;
courier-imap;
Install the POP or IMAP daemon of your choosing from the ports collection.
Where required, modify /etc/inetd.conf to load the POP or IMAP server.
警告It should be noted that both POP and IMAP transmit information, including username and password credentials in clear-text. This means that if you wish to secure the transmission of information across these protocols, you should consider tunneling sessions over ssh(1). Tunneling sessions is described in µÚ 14.11.8 節.
Mailboxes may be accessed locally by directly utilizing MUAs on the server on which the mailbox resides. This can be done using applications such as mutt or mail(1).
The mail host is the name given to a server that is responsible for delivering and receiving mail for your host, and possibly your network.
sendmail(8) is the default Mail Transfer Agent (MTA) in FreeBSD. sendmail's job is to accept mail from Mail User Agents (MUA) and deliver it to the appropriate mailer as defined by its configuration file. sendmail can also accept network connections and deliver mail to local mailboxes or deliver it to another program.
sendmail uses the following configuration files:
Filename | Function |
---|---|
/etc/mail/access | sendmail access database file |
/etc/mail/aliases | Mailbox aliases |
/etc/mail/local-host-names | Lists of hosts sendmail accepts mail for |
/etc/mail/mailer.conf | Mailer program configuration |
/etc/mail/mailertable | Mailer delivery table |
/etc/mail/sendmail.cf | sendmail master configuration file |
/etc/mail/virtusertable | Virtual users and domain tables |
The access database defines what host(s) or IP addresses have access to the local mail
server and what kind of access they have. Hosts can be listed as OK
, REJECT
, RELAY
or simply passed to sendmail's
error handling routine with a given mailer error. Hosts that are listed as OK
, which is the default, are allowed to send mail to this host as
long as the mail's final destination is the local machine. Hosts that are listed as REJECT
are rejected for all mail connections. Hosts that have the
RELAY
option for their hostname are allowed to send mail for
any destination through this mail server.
範例 26-1. Configuring the sendmail Access Database
cyberspammer.com 550 We do not accept mail from spammers FREE.STEALTH.MAILER@ 550 We do not accept mail from spammers another.source.of.spam REJECT okay.cyberspammer.com OK 128.32 RELAY
In this example we have five entries. Mail senders that match the left hand side of the table are affected by the action on the right side of the table. The first two examples give an error code to sendmail's error handling routine. The message is printed to the remote host when a mail matches the left hand side of the table. The next entry rejects mail from a specific host on the Internet, another.source.of.spam. The next entry accepts mail connections from a host okay.cyberspammer.com, which is more exact than the cyberspammer.com line above. More specific matches override less exact matches. The last entry allows relaying of electronic mail from hosts with an IP address that begins with 128.32. These hosts would be able to send mail through this mail server that are destined for other mail servers.
When this file is updated, you need to run make in /etc/mail/ to update the database.
The aliases database contains a list of virtual mailboxes that are expanded to other user(s), files, programs or other aliases. Here are a few examples that can be used in /etc/mail/aliases:
範例 26-2. Mail Aliases
root: localuser ftp-bugs: joe,eric,paul bit.bucket: /dev/null procmail: "|/usr/local/bin/procmail"
The file format is simple; the mailbox name on the left side of the colon is
expanded to the target(s) on the right. The first example simply expands the
mailbox root to the mailbox localuser, which is then looked up again in the aliases
database. If no match is found, then the message is delivered to the local user
localuser. The next example shows a mail list. Mail
to the mailbox ftp-bugs is expanded to the three local
mailboxes joe, eric, and paul. Note that a remote mailbox could be specified as <user@example.com>
. The next example shows writing mail
to a file, in this case /dev/null. The last example shows
sending mail to a program, in this case the mail message is written to the
standard input of /usr/local/bin/procmail through a
UNIX pipe.
When this file is updated, you need to run make in /etc/mail/ to update the database.
This is a list of hostnames sendmail(8) is to accept as the local host name. Place any domains or hosts that sendmail is to be receiving mail for. For example, if this mail server was to accept mail for the domain example.com and the host mail.example.com, its local-host-names might look something like this:
example.com mail.example.com
When this file is updated, sendmail(8) needs to be restarted to read the changes.
sendmail's master configuration file, sendmail.cf controls the overall behavior of sendmail, including everything from rewriting e-mail addresses to printing rejection messages to remote mail servers. Naturally, with such a diverse role, this configuration file is quite complex and its details are a bit out of the scope of this section. Fortunately, this file rarely needs to be changed for standard mail servers.
The master sendmail configuration file can be built from m4(1) macros that define the features and behavior of sendmail. Please see /usr/src/contrib/sendmail/cf/README for some of the details.
When changes to this file are made, sendmail needs to be restarted for the changes to take effect.
The virtusertable maps mail addresses for virtual domains and mailboxes to real mailboxes. These mailboxes can be local, remote, aliases defined in /etc/mail/aliases or files.
範例 26-3. Example Virtual Domain Mail Map
root@example.com root postmaster@example.com postmaster@noc.example.net @example.com joe
In the above example, we have a mapping for a domain example.com. This file is processed in a first match order down the
file. The first item maps <root@example.com>
to the
local mailbox root. The next entry maps <postmaster@example.com>
to the mailbox postmaster on the host noc.example.net.
Finally, if nothing from example.com has matched so far, it will
match the last mapping, which matches every other mail message addressed to someone at
example.com. This will be mapped to the local mailbox joe.
As already mentioned, FreeBSD comes with sendmail already installed as your MTA (Mail Transfer Agent). Therefore by default it is in charge of your outgoing and incoming mail.
However, for a variety of reasons, some system administrators want to change their system's MTA. These reasons range from simply wanting to try out another MTA to needing a specific feature or package which relies on another mailer. Fortunately, whatever the reason, FreeBSD makes it easy to make the change.
You have a wide choice of MTAs available. A good starting point is the FreeBSD Ports Collection where you will be able to find many. Of course you are free to use any MTA you want from any location, as long as you can make it run under FreeBSD.
Start by installing your new MTA. Once it is installed it gives you a chance to decide if it really fulfills your needs, and also gives you the opportunity to configure your new software before getting it to take over from sendmail. When doing this, you should be sure that installing the new software will not attempt to overwrite system binaries such as /usr/bin/sendmail. Otherwise, your new mail software has essentially been put into service before you have configured it.
Please refer to your chosen MTA's documentation for information on how to configure the software you have chosen.
The procedure used to start sendmail changed significantly between 4.5-RELEASE, 4.6-RELEASE, and later releases. Therefore, the procedure used to disable it is subtly different.
警告If you disable sendmail's outgoing mail service, it is important that you replace it with an alternative mail delivery system. If you choose not to, system functions such as periodic(8) will be unable to deliver their results by e-mail as they would normally expect to. Many parts of your system may expect to have a functional sendmail-compatible system. If applications continue to use sendmail's binaries to try to send e-mail after you have disabled them, mail could go into an inactive sendmail queue, and never be delivered.
Enter:
sendmail_enable="NO"
into /etc/rc.conf. This will disable sendmail's incoming mail service, but if /etc/mail/mailer.conf (see below) is not changed, sendmail will still be used to send e-mail.
In order to completely disable sendmail, including the outgoing mail service, you must use
sendmail_enable="NONE"
in /etc/rc.conf.
If you only want to disable sendmail's incoming mail service, you should set
sendmail_enable="NO"
in /etc/rc.conf. However, if incoming mail is disabled, local delivery will still function. More information on sendmail's startup options is available from the rc.sendmail(8) manual page.
In order to completely disable sendmail, including the outgoing mail service, you must use
sendmail_enable="NO" sendmail_submit_enable="NO" sendmail_outbound_enable="NO" sendmail_msp_queue_enable="NO"
in /etc/rc.conf.
If you only want to disable sendmail's incoming mail service, you should set
sendmail_enable="NO"
in /etc/rc.conf. More information on sendmail's startup options is available from the rc.sendmail(8) manual page.
You may have a choice of two methods for running your new MTA on boot, again depending on what version of FreeBSD you are running.
Add a script to /usr/local/etc/rc.d/ that ends in .sh and is executable by root. The script should accept start and stop parameters. At startup time the system scripts will execute the command
/usr/local/etc/rc.d/supermailer.sh start
which you can also use to manually start the server. At shutdown time, the system scripts will use the stop option, running the command
/usr/local/etc/rc.d/supermailer.sh stop
which you can also use to manually stop the server while the system is running.
With later versions of FreeBSD, you can use the above method or you can set
mta_start_script="filename"
in /etc/rc.conf, where filename is the name of some script that you want executed at boot to start your MTA.
The program sendmail is so ubiquitous as standard software on UNIX systems that some software just assumes it is already installed and configured. For this reason, many alternative MTA's provide their own compatible implementations of the sendmail command-line interface; this facilitates using them as “drop-in” replacements for sendmail.
Therefore, if you are using an alternative mailer, you will need to make sure that software trying to execute standard sendmail binaries such as /usr/bin/sendmail actually executes your chosen mailer instead. Fortunately, FreeBSD provides a system called mailwrapper(8) that does this job for you.
When sendmail is operating as installed, you will find something like the following in /etc/mail/mailer.conf:
sendmail /usr/libexec/sendmail/sendmail send-mail /usr/libexec/sendmail/sendmail mailq /usr/libexec/sendmail/sendmail newaliases /usr/libexec/sendmail/sendmail hoststat /usr/libexec/sendmail/sendmail purgestat /usr/libexec/sendmail/sendmail
This means that when any of these common commands (such as sendmail itself) are run, the system actually invokes a copy of mailwrapper named sendmail, which checks mailer.conf and executes /usr/libexec/sendmail/sendmail instead. This system makes it easy to change what binaries are actually executed when these default sendmail functions are invoked.
Therefore if you wanted /usr/local/supermailer/bin/sendmail-compat to be run instead of sendmail, you could change /etc/mail/mailer.conf to read:
sendmail /usr/local/supermailer/bin/sendmail-compat send-mail /usr/local/supermailer/bin/sendmail-compat mailq /usr/local/supermailer/bin/mailq-compat newaliases /usr/local/supermailer/bin/newaliases-compat hoststat /usr/local/supermailer/bin/hoststat-compat purgestat /usr/local/supermailer/bin/purgestat-compat
Once you have everything configured the way you want it, you should either kill the sendmail processes that you no longer need and start the processes belonging to your new software, or simply reboot. Rebooting will also give you the opportunity to ensure that you have correctly configured your system to start your new MTA automatically on boot.
You will probably find that the host is actually in a different domain; for example, if you are in foo.bar.edu and you wish to reach a host called mumble in the bar.edu domain, you will have to refer to it by the fully-qualified domain name, mumble.bar.edu, instead of just mumble.
Traditionally, this was allowed by BSD BIND resolvers. However the current version of BIND that ships with FreeBSD no longer provides default abbreviations for non-fully qualified domain names other than the domain you are in. So an unqualified host mumble must either be found as mumble.foo.bar.edu, or it will be searched for in the root domain.
This is different from the previous behavior, where the search continued across mumble.bar.edu, and mumble.edu. Have a look at RFC 1535 for why this was considered bad practice, or even a security hole.
As a good workaround, you can place the line:
search foo.bar.edu bar.eduinstead of the previous:
domain foo.bar.eduinto your /etc/resolv.conf. However, make sure that the search order does not go beyond the “boundary between local and public administration”, as RFC 1535 calls it.
This is answered in the sendmail FAQ as follows:
I'm getting these error messages: 553 MX list for domain.net points back to relay.domain.net 554 <user@domain.net>... Local configuration error How can I solve this problem? You have asked mail to the domain (e.g., domain.net) to be forwarded to a specific host (in this case, relay.domain.net) by using an MX record, but the relay machine does not recognize itself as domain.net. Add domain.net to /etc/mail/local-host-names [known as /etc/sendmail.cw prior to version 8.10] (if you are using FEATURE(use_cw_file)) or add “Cw domain.net” to /etc/mail/sendmail.cf.
The sendmail FAQ can be found at http://www.sendmail.org/faq/ and is recommended reading if you want to do any “tweaking” of your mail setup.
You want to connect a FreeBSD box on a LAN to the Internet. The FreeBSD box will be a mail gateway for the LAN. The PPP connection is non-dedicated.
There are at least two ways to do this. One way is to use UUCP.
Another way is to get a full-time Internet server to provide secondary MX services for your domain. For example, if your company's domain is example.com and your Internet service provider has set example.net up to provide secondary MX services to your domain:
example.com. MX 10 example.com. MX 20 example.net.
Only one host should be specified as the final recipient (add Cw example.com in /etc/mail/sendmail.cf on example.com).
When the sending sendmail is trying to deliver the mail it will try to connect to you (example.com) over the modem link. It will most likely time out because you are not online. The program sendmail will automatically deliver it to the secondary MX site, i.e. your Internet provider (example.net). The secondary MX site will then periodically try to connect to your host and deliver the mail to the primary MX host (example.com).
You might want to use something like this as a login script:
#!/bin/sh # Put me in /usr/local/bin/pppmyisp ( sleep 60 ; /usr/sbin/sendmail -q ) & /usr/sbin/ppp -direct pppmyisp
If you are going to create a separate login script for a user you could use sendmail -qRexample.com instead in the script above. This will force all mail in your queue for example.com to be processed immediately.
A further refinement of the situation is as follows:
Message stolen from the FreeBSD Internet service provider's 郵遞論壇.
> we provide the secondary MX for a customer. The customer connects to > our services several times a day automatically to get the mails to > his primary MX (We do not call his site when a mail for his domains > arrived). Our sendmail sends the mailqueue every 30 minutes. At the > moment he has to stay 30 minutes online to be sure that all mail is > gone to the primary MX. > > Is there a command that would initiate sendmail to send all the mails > now? The user has not root-privileges on our machine of course. In the “privacy flags” section of sendmail.cf, there is a definition Opgoaway,restrictqrun Remove restrictqrun to allow non-root users to start the queue processing. You might also like to rearrange the MXs. We are the 1st MX for our customers like this, and we have defined: # If we are the best MX for a host, try directly instead of generating # local config error. OwTrue That way a remote site will deliver straight to you, without trying the customer connection. You then send to your customer. Only works for “hosts”, so you need to get your customer to name their mail machine “customer.com” as well as “hostname.customer.com” in the DNS. Just put an A record in the DNS for “customer.com”.
In default FreeBSD installations, sendmail is configured to only send mail from the host it is running on. For example, if a POP server is available, then users will be able to check mail from school, work, or other remote locations but they still will not be able to send outgoing emails from outside locations. Typically, a few moments after the attempt, an email will be sent from MAILER-DAEMON with a “5.7 Relaying Denied” error message.
There are several ways to get around this. The most straightforward solution is to put your ISP's address in a relay-domains file at /etc/mail/relay-domains. A quick way to do this would be:
# echo "your.isp.example.com" > /etc/mail/relay-domains
After creating or editing this file you must restart sendmail. This works great if you are a server administrator and do not wish to send mail locally, or would like to use a point and click client/system on another machine or even another ISP. It is also very useful if you only have one or two email accounts set up. If there is a large number of addresses to add, you can simply open this file in your favorite text editor and then add the domains, one per line:
your.isp.example.com other.isp.example.net users-isp.example.org www.example.org
Now any mail sent through your system, by any host in this list (provided the user has an account on your system), will succeed. This is a very nice way to allow users to send mail from your system remotely without allowing people to send SPAM through your system.
The following section covers more involved topics such as mail configuration and setting up mail for your entire domain.
Out of the box, you should be able to send email to external hosts as long as you have set up /etc/resolv.conf or are running your own name server. If you would like to have mail for your host delivered to the MTA (e.g., sendmail) on your own FreeBSD host, there are two methods:
Run your own name server and have your own domain. For example, FreeBSD.org
Get mail delivered directly to your host. This is done by delivering mail directly to the current DNS name for your machine. For example, example.FreeBSD.org.
Regardless of which of the above you choose, in order to have mail delivered directly to your host, it must have a permanent static IP address (not a dynamic address, as with most PPP dial-up configurations). If you are behind a firewall, it must pass SMTP traffic on to you. If you want to receive mail directly at your host, you need to be sure of either of two things:
Make sure that the (lowest-numbered) MX record in your DNS points to your host's IP address.
Make sure there is no MX entry in your DNS for your host.
Either of the above will allow you to receive mail directly at your host.
Try this:
# hostname example.FreeBSD.org # host example.FreeBSD.org example.FreeBSD.org has address 204.216.27.XX
If that is what you see, mail directly to <yourlogin@example.FreeBSD.org>
should work without problems
(assuming sendmail is running correctly on example.FreeBSD.org).
If instead you see something like this:
# host example.FreeBSD.org example.FreeBSD.org has address 204.216.27.XX example.FreeBSD.org mail is handled (pri=10) by hub.FreeBSD.org
All mail sent to your host (example.FreeBSD.org) will end up being collected on hub under the same username instead of being sent directly to your host.
The above information is handled by your DNS server. The DNS record that carries mail routing information is the Mail eXchange entry. If no MX record exists, mail will be delivered directly to the host by way of its IP address.
The MX entry for freefall.FreeBSD.org at one time looked like this:
freefall MX 30 mail.crl.net freefall MX 40 agora.rdrop.com freefall MX 10 freefall.FreeBSD.org freefall MX 20 who.cdrom.com
As you can see, freefall had many MX entries. The lowest MX number is the host that receives mail directly if available; if it is not accessible for some reason, the others (sometimes called “backup MXes”) accept messages temporarily, and pass it along when a lower-numbered host becomes available, eventually to the lowest-numbered host.
Alternate MX sites should have separate Internet connections from your own in order to be most useful. Your ISP or another friendly site should have no problem providing this service for you.
In order to set up a “mailhost” (a.k.a. mail server) you need to have any mail sent to various workstations directed to it. Basically, you want to “claim” any mail for any hostname in your domain (in this case *.FreeBSD.org) and divert it to your mail server so your users can receive their mail on the master mail server.
To make life easiest, a user account with the same username should exist on both machines. Use adduser(8) to do this.
The mailhost you will be using must be the designated mail exchanger for each workstation on the network. This is done in your DNS configuration like so:
example.FreeBSD.org A 204.216.27.XX ; Workstation MX 10 hub.FreeBSD.org ; Mailhost
This will redirect mail for the workstation to the mailhost no matter where the A record points. The mail is sent to the MX host.
You cannot do this yourself unless you are running a DNS server. If you are not, or cannot run your own DNS server, talk to your ISP or whoever provides your DNS.
If you are doing virtual email hosting, the following information will come in handy. For this example, we will assume you have a customer with his own domain, in this case customer1.org, and you want all the mail for customer1.org sent to your mailhost, mail.myhost.com. The entry in your DNS should look like this:
customer1.org MX 10 mail.myhost.com
You do not need an A record for customer1.org if you only want to handle email for that domain.
注: Be aware that pinging customer1.org will not work unless an A record exists for it.
The last thing that you must do is tell sendmail on your mailhost what domains and/or hostnames it should be accepting mail for. There are a few different ways this can be done. Either of the following will work:
Add the hosts to your /etc/mail/local-host-names file if you are using the FEATURE(use_cw_file). If you are using a version of sendmail earlier than 8.10, the file is /etc/sendmail.cw.
Add a Cwyour.host.com line to your /etc/sendmail.cf or /etc/mail/sendmail.cf if you are using sendmail 8.10 or higher.
The sendmail configuration that ships with FreeBSD is designed for sites that connect directly to the Internet. Sites that wish to exchange their mail via UUCP must install another sendmail configuration file.
Tweaking /etc/mail/sendmail.cf manually is an advanced topic. sendmail version 8 generates config files via m4(1) preprocessing, where the actual configuration occurs on a higher abstraction level. The m4(1) configuration files can be found under /usr/share/sendmail/cf. The file README in the cf directory can serve as a basic introduction to m4(1) configuration.
The best way to support UUCP delivery is to use the mailertable feature. This creates a database that sendmail can use to make routing decisions.
First, you have to create your .mc file. The directory /usr/share/sendmail/cf/cf contains a few examples. Assuming you have named your file foo.mc, all you need to do in order to convert it into a valid sendmail.cf is:
# cd /etc/mail # make foo.cf # cp foo.cf /etc/mail/sendmail.cf
A typical .mc file might look like:
VERSIONID(`Your version number') OSTYPE(bsd4.4) FEATURE(accept_unresolvable_domains) FEATURE(nocanonify) FEATURE(mailertable, `hash -o /etc/mail/mailertable') define(`UUCP_RELAY', your.uucp.relay) define(`UUCP_MAX_SIZE', 200000) define(`confDONT_PROBE_INTERFACES') MAILER(local) MAILER(smtp) MAILER(uucp) Cw your.alias.host.name Cw youruucpnodename.UUCP
The lines containing accept_unresolvable_domains, nocanonify, and confDONT_PROBE_INTERFACES features will prevent any usage of the DNS during mail delivery. The UUCP_RELAY clause is needed to support UUCP delivery. Simply put an Internet hostname there that is able to handle .UUCP pseudo-domain addresses; most likely, you will enter the mail relay of your ISP there.
Once you have this, you need an /etc/mail/mailertable file. If you have only one link to the outside that is used for all your mails, the following file will suffice:
# # makemap hash /etc/mail/mailertable.db < /etc/mail/mailertable . uucp-dom:your.uucp.relay
A more complex example might look like this:
# # makemap hash /etc/mail/mailertable.db < /etc/mail/mailertable # horus.interface-business.de uucp-dom:horus .interface-business.de uucp-dom:if-bus interface-business.de uucp-dom:if-bus .heep.sax.de smtp8:%1 horus.UUCP uucp-dom:horus if-bus.UUCP uucp-dom:if-bus . uucp-dom:
The first three lines handle special cases where domain-addressed mail should not be sent out to the default route, but instead to some UUCP neighbor in order to “shortcut” the delivery path. The next line handles mail to the local Ethernet domain that can be delivered using SMTP. Finally, the UUCP neighbors are mentioned in the .UUCP pseudo-domain notation, to allow for a uucp-neighbor !recipient override of the default rules. The last line is always a single dot, matching everything else, with UUCP delivery to a UUCP neighbor that serves as your universal mail gateway to the world. All of the node names behind the uucp-dom: keyword must be valid UUCP neighbors, as you can verify using the command uuname.
As a reminder that this file needs to be converted into a DBM database file before use. The command line to accomplish this is best placed as a comment at the top of the mailertable file. You always have to execute this command each time you change your mailertable file.
Final hint: if you are uncertain whether some particular mail routing would work,
remember the -bt
option to sendmail. It starts sendmail in address test mode; simply enter 3,0, followed by the address you wish to test for the mail routing.
The last line tells you the used internal mail agent, the destination host this agent
will be called with, and the (possibly translated) address. Leave this mode by typing Ctrl+D.
% sendmail -bt ADDRESS TEST MODE (ruleset 3 NOT automatically invoked) Enter <ruleset> <address> > 3,0 foo@example.com canonify input: foo @ example . com ... parse returns: $# uucp-dom $@ your.uucp.relay $: foo < @ example . com . > > ^D
There are many instances where you may only want to send mail through a relay. Some examples are:
Your computer is a desktop machine, but you want to use programs such as send-pr(1). To do so, you should use your ISP's mail relay.
The computer is a server that does not handle mail locally, but needs to pass off all mail to a relay for processing.
Just about any MTA is capable of filling this particular niche. Unfortunately, it can be very difficult to properly configure a full-featured MTA just to handle offloading mail. Programs such as sendmail and postfix are largely overkill for this use.
Additionally, if you are using a typical Internet access service, your agreement may forbid you from running a “mail server”.
The easiest way to fulfill those needs is to install the mail/ssmtp port. Execute the following commands as root:
# cd /usr/ports/mail/ssmtp # make install replace clean
Once installed, mail/ssmtp can be configured with a four-line file located at /usr/local/etc/ssmtp/ssmtp.conf:
root=yourrealemail@example.com mailhub=mail.example.com rewriteDomain=example.com hostname=_HOSTNAME_
Make sure you use your real email address for root. Enter your ISP's outgoing mail relay in place of mail.example.com (some ISPs call this the “outgoing mail server” or “SMTP server”).
Make sure you disable sendmail, including the outgoing mail service. See µÚ 26.4.2 節 for details.
mail/ssmtp has some other options available. See the example configuration file in /usr/local/etc/ssmtp or the manual page of ssmtp for some examples and more information.
Setting up ssmtp in this manner will allow any software on your computer that needs to send mail to function properly, while not violating your ISP's usage policy or allowing your computer to be hijacked for spamming.
If you have a static IP address, you should not need to adjust anything from the defaults. Set your host name to your assigned Internet name and sendmail will do the rest.
If you have a dynamically assigned IP number and use a dialup PPP connection to the Internet, you will probably have a mailbox on your ISPs mail server. Let's assume your ISP's domain is example.net, and that your user name is user, you have called your machine bsd.home, and your ISP has told you that you may use relay.example.net as a mail relay.
In order to retrieve mail from your mailbox, you must install a retrieval agent. The fetchmail utility is a good choice as it supports many different protocols. This program is available as a package or from the Ports Collection (mail/fetchmail). Usually, your ISP will provide POP. If you are using user PPP, you can automatically fetch your mail when an Internet connection is established with the following entry in /etc/ppp/ppp.linkup:
MYADDR: !bg su user -c fetchmail
If you are using sendmail (as shown below) to deliver mail to non-local accounts, you probably want to have sendmail process your mailqueue as soon as your Internet connection is established. To do this, put this command after the fetchmail command in /etc/ppp/ppp.linkup:
!bg su user -c "sendmail -q"
Assume that you have an account for user on bsd.home. In the home directory of user on bsd.home, create a .fetchmailrc file:
poll example.net protocol pop3 fetchall pass MySecret
This file should not be readable by anyone except user as it contains the password MySecret.
In order to send mail with the correct from: header, you must
tell sendmail to use <user@example.net>
rather than <user@bsd.home>
. You may also wish to tell sendmail to send all mail via relay.example.net, allowing quicker mail transmission.
The following .mc file should suffice:
VERSIONID(`bsd.home.mc version 1.0') OSTYPE(bsd4.4)dnl FEATURE(nouucp)dnl MAILER(local)dnl MAILER(smtp)dnl Cwlocalhost Cwbsd.home MASQUERADE_AS(`example.net')dnl FEATURE(allmasquerade)dnl FEATURE(masquerade_envelope)dnl FEATURE(nocanonify)dnl FEATURE(nodns)dnl define(`SMART_HOST', `relay.example.net') Dmbsd.home define(`confDOMAIN_NAME',`bsd.home')dnl define(`confDELIVERY_MODE',`deferred')dnl
Refer to the previous section for details of how to turn this .mc file into a sendmail.cf file. Also, do not forget to restart sendmail after updating sendmail.cf.
Having SMTP Authentication in place on your mail server has a number of benefits. SMTP Authentication can add another layer of security to sendmail, and has the benefit of giving mobile users who switch hosts the ability to use the same mail server without the need to reconfigure their mail client settings each time.
Install security/cyrus-sasl2 from the ports. You can find this
port in security/cyrus-sasl2. The security/cyrus-sasl2 port supports a number of
compile-time options. For the SMTP Authentication method we will be using here,
make sure that the LOGIN
option is not disabled.
After installing security/cyrus-sasl2, edit /usr/local/lib/sasl2/Sendmail.conf (or create it if it does not exist) and add the following line:
pwcheck_method: saslauthd
Next, install security/cyrus-sasl2-saslauthd, edit /etc/rc.conf to add the following line:
saslauthd_enable="YES"
and finally start the saslauthd daemon:
# /usr/local/etc/rc.d/saslauthd start
This daemon serves as a broker for sendmail to authenticate against your FreeBSD passwd database. This saves the trouble of creating a new set of usernames and passwords for each user that needs to use SMTP authentication, and keeps the login and mail password the same.
Now edit /etc/make.conf and add the following lines:
SENDMAIL_CFLAGS=-I/usr/local/include/sasl -DSASL SENDMAIL_LDFLAGS=-L/usr/local/lib SENDMAIL_LDADD=-lsasl2
These lines will give sendmail the proper configuration options for linking to cyrus-sasl2 at compile time. Make sure that cyrus-sasl2 has been installed before recompiling sendmail.
Recompile sendmail by executing the following commands:
# cd /usr/src/lib/libsmutil # make cleandir && make obj && make # cd /usr/src/lib/libsm # make cleandir && make obj && make # cd /usr/src/usr.sbin/sendmail # make cleandir && make obj && make && make install
The compile of sendmail should not have any problems if /usr/src has not been changed extensively and the shared libraries it needs are available.
After sendmail has been compiled and reinstalled, edit your /etc/mail/freebsd.mc file (or whichever file you use as your .mc file. Many administrators choose to use the output from hostname(1) as the .mc file for uniqueness). Add these lines to it:
dnl set SASL options TRUST_AUTH_MECH(`GSSAPI DIGEST-MD5 CRAM-MD5 LOGIN')dnl define(`confAUTH_MECHANISMS', `GSSAPI DIGEST-MD5 CRAM-MD5 LOGIN')dnl
These options configure the different methods available to sendmail for authenticating users. If you would like to use a method other than pwcheck, please see the included documentation.
Finally, run make(1) while in /etc/mail. That will run your new .mc file and create a .cf file named freebsd.cf (or whatever name you have used for your .mc file). Then use the command make install restart, which will copy the file to sendmail.cf, and will properly restart sendmail. For more information about this process, you should refer to /etc/mail/Makefile.
If all has gone correctly, you should be able to enter your login information into the
mail client and send a test message. For further investigation, set the LogLevel
of sendmail to 13 and watch /var/log/maillog for any errors.
For more information, please see the sendmail page regarding SMTP authentication.
A Mail User Agent (MUA) is an application that is used to send and receive email. Furthermore, as email “evolves” and becomes more complex, MUA's are becoming increasingly powerful in the way they interact with email; this gives users increased functionality and flexibility. FreeBSD contains support for numerous mail user agents, all of which can be easily installed using the FreeBSD Ports Collection. Users may choose between graphical email clients such as evolution or balsa, console based clients such as mutt, pine or mail, or the web interfaces used by some large organizations.
mail(1) is the default Mail User Agent (MUA) in FreeBSD. It is a console based MUA that offers all the basic functionality required to send and receive text-based email, though it is limited in interaction abilities with attachments and can only support local mailboxes.
Although mail does not natively support interaction with POP or IMAP servers, these mailboxes may be downloaded to a local mbox file using an application such as fetchmail, which will be discussed later in this chapter (µÚ 26.12 節).
In order to send and receive email, simply invoke the mail command as per the following example:
The contents of the user mailbox in /var/mail are automatically read by the mail utility. Should the mailbox be empty, the utility exits with a message indicating that no mails could be found. Once the mailbox has been read, the application interface is started, and a list of messages will be displayed. Messages are automatically numbered, as can be seen in the following example:
Mail version 8.1 6/6/93. Type ? for help. "/var/mail/marcs": 3 messages 3 new >N 1 root@localhost Mon Mar 8 14:05 14/510 "test" N 2 root@localhost Mon Mar 8 14:05 14/509 "user account" N 3 root@localhost Mon Mar 8 14:05 14/509 "sample"
Messages can now be read by using the t mail command, suffixed by the message number that should be displayed. In this example, we will read the first email:
& t 1 Message 1: From root@localhost Mon Mar 8 14:05:52 2004 X-Original-To: marcs@localhost Delivered-To: marcs@localhost To: marcs@localhost Subject: test Date: Mon, 8 Mar 2004 14:05:52 +0200 (SAST) From: root@localhost (Charlie Root) This is a test message, please reply if you receive it.
As can be seen in the example above, the t key will cause the message to be displayed with full headers. To display the list of messages again, the h key should be used.
If the email requires a response, you may use mail to reply, by using either the R or r mail keys. The R key instructs mail to reply only to the sender of the email, while r replies not only to the sender, but also to other recipients of the message. You may also suffix these commands with the mail number which you would like make a reply to. Once this has been done, the response should be entered, and the end of the message should be marked by a single . on a new line. An example can be seen below:
& R 1 To: root@localhost Subject: Re: test Thank you, I did get your email. . EOT
In order to send new email, the m key should be used, followed by the recipient email address. Multiple recipients may also be specified by separating each address with the , delimiter. The subject of the message may then be entered, followed by the message contents. The end of the message should be specified by putting a single . on a new line.
& mail root@localhost Subject: I mastered mail Now I can send and receive email using mail ... :) . EOT
While inside the mail utility, the ? command may be used to display help at any time, the mail(1) manual page should also be consulted for more help with mail.
注: As previously mentioned, the mail(1) command was not originally designed to handle attachments, and thus deals with them very poorly. Newer MUAs such as mutt handle attachments in a much more intelligent way. But should you still wish to use the mail command, the converters/mpack port may be of considerable use.
mutt is a small yet very powerful Mail User Agent, with excellent features, just some of which include:
The ability to thread messages;
PGP support for digital signing and encryption of email;
MIME Support;
Maildir Support;
Highly customizable.
All of these features help to make mutt one of the most advanced mail user agents available. See http://www.mutt.org for more information on mutt.
The stable version of mutt may be installed using the mail/mutt port, while the current development version may be installed via the mail/mutt-devel port. After the port has been installed, mutt can be started by issuing the following command:
% mutt
mutt will automatically read the contents of the user mailbox in /var/mail and display the contents if applicable. If no mails are found in the user mailbox, then mutt will wait for commands from the user. The example below shows mutt displaying a list of messages:
In order to read an email, simply select it using the cursor keys, and press the Enter key. An example of mutt displaying email can be seen below:
As with the mail(1) command, mutt allows users to reply only to the sender of the message as well as to all recipients. To reply only to the sender of the email, use the r keyboard shortcut. To send a group reply, which will be sent to the original sender as well as all the message recipients, use the g shortcut.
注: mutt makes use of the vi(1) command as an editor for creating and replying to emails. This may be customized by the user by creating or editing their own .muttrc file in their home directory and setting the editor variable or by setting the EDITOR environment variable. See http://www.mutt.org/ for more information about configuring mutt.
In order to compose a new mail message, press m. After a valid subject has been given, mutt will start vi(1) and the mail can be written. Once the contents of the mail are complete, save and quit from vi and mutt will resume, displaying a summary screen of the mail that is to be delivered. In order to send the mail, press y. An example of the summary screen can be seen below:
mutt also contains extensive help, which can be accessed from most of the menus by pressing the ? key. The top line also displays the keyboard shortcuts where appropriate.
pine is aimed at a beginner user, but also includes some advanced features.
警告The pine software has had several remote vulnerabilities discovered in the past, which allowed remote attackers to execute arbitrary code as users on the local system, by the action of sending a specially-prepared email. All such known problems have been fixed, but the pine code is written in a very insecure style and the FreeBSD Security Officer believes there are likely to be other undiscovered vulnerabilities. You install pine at your own risk.
The current version of pine may be installed using the mail/pine4 port. Once the port has installed, pine can be started by issuing the following command:
% pine
The first time that pine is run it displays a greeting page with a brief introduction, as well as a request from the pine development team to send an anonymous email message allowing them to judge how many users are using their client. To send this anonymous message, press Enter, or alternatively press E to exit the greeting without sending an anonymous message. An example of the greeting page can be seen below:
Users are then presented with the main menu, which can be easily navigated using the cursor keys. This main menu provides shortcuts for the composing new mails, browsing of mail directories, and even the administration of address book entries. Below the main menu, relevant keyboard shortcuts to perform functions specific to the task at hand are shown.
The default directory opened by pine is the inbox. To view the message index, press I, or select the
option as seen below:The message index shows messages in the current directory, and can be navigated by using the cursor keys. Highlighted messages can be read by pressing the Enter key.
In the screenshot below, a sample message is displayed by pine. Keyboard shortcuts are displayed as a reference at the bottom of the screen. An example of one of these shortcuts is the r key, which tells the MUA to reply to the current message being displayed.
Replying to an email in pine is done using the pico editor, which is installed by default with pine. The pico utility makes it easy to navigate around the message and is slightly more forgiving on novice users than vi(1) or mail(1). Once the reply is complete, the message can be sent by pressing Ctrl+X. The pine application will ask for confirmation.
The pine application can be customized using the http://www.washington.edu/pine/ for more information.
option from the main menu. Consultfetchmail is a full-featured IMAP and POP client which allows users to automatically download mail from remote IMAP and POP servers and save it into local mailboxes; there it can be accessed more easily. fetchmail can be installed using the mail/fetchmail port, and offers various features, some of which include:
Support of POP3, APOP, KPOP, IMAP, ETRN and ODMR protocols.
Ability to forward mail using SMTP, which allows filtering, forwarding, and aliasing to function normally.
May be run in daemon mode to check periodically for new messages.
Can retrieve multiple mailboxes and forward them based on configuration, to different local users.
While it is outside the scope of this document to explain all of fetchmail's features, some basic features will be explained. The fetchmail utility requires a configuration file known as .fetchmailrc, in order to run correctly. This file includes server information as well as login credentials. Due to the sensitive nature of the contents of this file, it is advisable to make it readable only by the owner, with the following command:
% chmod 600 .fetchmailrc
The following .fetchmailrc serves as an example for downloading a single user mailbox using POP. It tells fetchmail to connect to example.com using a username of joesoap and a password of XXX. This example assumes that the user joesoap is also a user on the local system.
poll example.com protocol pop3 username "joesoap" password "XXX"
The next example connects to multiple POP and IMAP servers and redirects to different local usernames where applicable:
poll example.com proto pop3: user "joesoap", with password "XXX", is "jsoap" here; user "andrea", with password "XXXX"; poll example2.net proto imap: user "john", with password "XXXXX", is "myth" here;
The fetchmail utility can be run in daemon mode by running
it with the -d
flag, followed by the interval (in seconds)
that fetchmail should poll servers listed in the .fetchmailrc file. The following example would cause fetchmail to poll every 600 seconds:
% fetchmail -d 600
More information on fetchmail can be found at http://fetchmail.berlios.de/.
The procmail utility is an incredibly powerful application used to filter incoming mail. It allows users to define “rules” which can be matched to incoming mails to perform specific functions or to reroute mail to alternative mailboxes and/or email addresses. procmail can be installed using the mail/procmail port. Once installed, it can be directly integrated into most MTAs; consult your MTA documentation for more information. Alternatively, procmail can be integrated by adding the following line to a .forward in the home directory of the user utilizing procmail features:
"|exec /usr/local/bin/procmail || exit 75"
The following section will display some basic procmail rules, as well as brief descriptions on what they do. These rules, and others must be inserted into a .procmailrc file, which must reside in the user's home directory.
The majority of these rules can also be found in the procmailex(5) manual page.
Forward all mail from <user@example.com>
to an
external address of <goodmail@example2.com>
:
:0 * ^From.*user@example.com ! goodmail@example2.com
Forward all mails shorter than 1000 bytes to an external address of <goodmail@example2.com>
:
:0 * < 1000 ! goodmail@example2.com
Send all mail sent to <alternate@example.com>
into
a mailbox called alternate:
:0 * ^TOalternate@example.com alternate
Send all mail with a subject of “Spam” to /dev/null:
:0 ^Subject:.*Spam /dev/null
A useful recipe that parses incoming FreeBSD.org mailing lists and places each list in its own mailbox:
:0 * ^Sender:.owner-freebsd-\/[^@]+@FreeBSD.ORG { LISTNAME=${MATCH} :0 * LISTNAME??^\/[^@]+ FreeBSD-${MATCH} }
This chapter will cover some of the more frequently used network services on UNIX systems. We will cover how to install, configure, test, and maintain many different types of network services. Example configuration files are included throughout this chapter for you to benefit from.
After reading this chapter, you will know:
How to manage the inetd daemon.
How to set up a network file system.
How to set up a network information server for sharing user accounts.
How to set up automatic network settings using DHCP.
How to set up a domain name server.
How to set up the Apache HTTP Server.
How to set up a File Transfer Protocol (FTP) Server.
How to set up a file and print server for Windows clients using Samba.
How to synchronize the time and date, and set up a time server, with the NTP protocol.
Before reading this chapter, you should:
Understand the basics of the /etc/rc scripts.
Be familiar with basic network terminology.
Know how to install additional third-party software (µÚ 4 章).
inetd(8) is referred to as the “Internet Super-Server” because it manages connections for several services. When a connection is received by inetd, it determines which program the connection is destined for, spawns the particular process and delegates the socket to it (the program is invoked with the service socket as its standard input, output and error descriptors). Running one instance of inetd reduces the overall system load as compared to running each daemon individually in stand-alone mode.
Primarily, inetd is used to spawn other daemons, but several trivial protocols are handled directly, such as chargen, auth, and daytime.
This section will cover the basics in configuring inetd through its command-line options and its configuration file, /etc/inetd.conf.
inetd is initialized through the /etc/rc.conf system. The inetd_enable option is set to NO by default, but is often times turned on by sysinstall with the medium security profile. Placing:
inetd_enable="YES"or
inetd_enable="NO"into /etc/rc.conf can enable or disable inetd starting at boot time.
Additionally, different command-line options can be passed to inetd via the inetd_flags option.
inetd synopsis:
inetd [-d] [-l] [-w] [-W] [-c maximum] [-C rate] [-a address |
hostname] [-p filename] [-R rate] [configuration file]
Turn on debugging.
Turn on logging of successful connections.
Turn on TCP Wrapping for external services (on by default).
Turn on TCP Wrapping for internal services which are built into inetd (on by default).
Specify the default maximum number of simultaneous invocations of each service;
the default is unlimited. May be overridden on a per-service basis with the
max-child
parameter.
Specify the default maximum number of times a service can be invoked from a
single IP address in one minute; the default is unlimited. May be overridden on a
per-service basis with the max-connections-per-ip-per-minute
parameter.
Specify the maximum number of times a service can be invoked in one minute; the default is 256. A rate of 0 allows an unlimited number of invocations.
Specify one specific IP address to bind to. Alternatively, a hostname can be specified, in which case the IPv4 or IPv6 address which corresponds to that hostname is used. Usually a hostname is specified when inetd is run inside a jail(8), in which case the hostname corresponds to the jail(8) environment.
When hostname specification is used and both IPv4 and IPv6 bindings are desired, one entry with the appropriate protocol type for each binding is required for each service in /etc/inetd.conf. For example, a TCP-based service would need two entries, one using tcp4 for the protocol and the other using tcp6.
Specify an alternate file in which to store the process ID.
These options can be passed to inetd using the inetd_flags option in /etc/rc.conf. By default, inetd_flags is set to -wW, which turns on TCP wrapping for inetd's internal and external services. For novice users, these parameters usually do not need to be modified or even entered in /etc/rc.conf.
注: An external service is a daemon outside of inetd, which is invoked when a connection is received for it. On the other hand, an internal service is one that inetd has the facility of offering within itself.
Configuration of inetd is controlled through the /etc/inetd.conf file.
When a modification is made to /etc/inetd.conf, inetd can be forced to re-read its configuration file by sending a HangUP signal to the inetd process as shown:
Each line of the configuration file specifies an individual daemon. Comments in the file are preceded by a “#”. The format of /etc/inetd.conf is as follows:
service-name socket-type protocol {wait|nowait}[/max-child[/max-connections-per-ip-per-minute]] user[:group][/login-class] server-program server-program-arguments
An example entry for the ftpd daemon using IPv4:
ftp stream tcp nowait root /usr/libexec/ftpd ftpd -l
This is the service name of the particular daemon. It must correspond to a service listed in /etc/services. This determines which port inetd must listen to. If a new service is being created, it must be placed in /etc/services first.
Either stream, dgram, raw, or seqpacket. stream must be used for connection-based, TCP daemons, while dgram is used for daemons utilizing the UDP transport protocol.
One of the following:
wait|nowait
indicates whether the daemon invoked
from inetd is able to handle its own socket or not.
dgram
socket types must use the wait
option, while stream socket daemons, which are usually
multi-threaded, should use nowait
. wait
usually hands off multiple sockets to a single daemon,
while nowait
spawns a child daemon for each new
socket.
The maximum number of child daemons inetd may spawn
can be set using the max-child
option. If a limit
of ten instances of a particular daemon is needed, a /10
would be placed after nowait
.
In addition to max-child
, another option limiting
the maximum connections from a single place to a particular daemon can be enabled.
max-connections-per-ip-per-minute
does just this.
A value of ten here would limit any particular IP address connecting to a
particular service to ten attempts per minute. This is useful to prevent
intentional or unintentional resource consumption and Denial of Service (DoS)
attacks to a machine.
In this field, wait
or nowait
is mandatory. max-child
and max-connections-per-ip-per-minute
are
optional.
A stream-type multi-threaded daemon without any max-child
or max-connections-per-ip-per-minute
limits would simply be: nowait.
The same daemon with a maximum limit of ten daemons would read: nowait/10.
Additionally, the same setup with a limit of twenty connections per IP address per minute and a maximum total limit of ten child daemons would read: nowait/10/20.
These options are all utilized by the default settings of the fingerd daemon, as seen here:
finger stream tcp nowait/3/10 nobody /usr/libexec/fingerd fingerd -s
This is the username that the particular daemon should run as. Most commonly, daemons run as the root user. For security purposes, it is common to find some servers running as the daemon user, or the least privileged nobody user.
The full path of the daemon to be executed when a connection is received. If the
daemon is a service provided by inetd internally,
then internal
should be used.
This works in conjunction with server-program
by
specifying the arguments, starting with argv[0],
passed to the daemon on invocation. If mydaemon -d is the
command line, mydaemon -d would be the value of
server-program-arguments
. Again, if the daemon is an
internal service, use internal
here.
Depending on the security profile chosen at install, many of inetd's daemons may be enabled by default. If there is no apparent need for a particular daemon, disable it! Place a “#” in front of the daemon in question in /etc/inetd.conf, and then send a hangup signal to inetd. Some daemons, such as fingerd, may not be desired at all because they provide an attacker with too much information.
Some daemons are not security-conscious and have long, or non-existent timeouts
for connection attempts. This allows an attacker to slowly send connections to a
particular daemon, thus saturating available resources. It may be a good idea to
place max-connections-per-ip-per-minute
and max-child
limitations on certain daemons.
By default, TCP wrapping is turned on. Consult the hosts_access(5) manual page for more information on placing TCP restrictions on various inetd invoked daemons.
daytime, time, echo, discard, chargen, and auth are all internally provided services of inetd.
The auth service provides identity (ident, identd) network services, and is configurable to a certain degree.
Consult the inetd(8) manual page for more in-depth information.
Among the many different file systems that FreeBSD supports is the Network File System, also known as NFS. NFS allows a system to share directories and files with others over a network. By using NFS, users and programs can access files on remote systems almost as if they were local files.
Some of the most notable benefits that NFS can provide are:
Local workstations use less disk space because commonly used data can be stored on a single machine and still remain accessible to others over the network.
There is no need for users to have separate home directories on every network machine. Home directories could be set up on the NFS server and made available throughout the network.
Storage devices such as floppy disks, CDROM drives, and Zip® drives can be used by other machines on the network. This may reduce the number of removable media drives throughout the network.
NFS consists of at least two main parts: a server and one or more clients. The client remotely accesses the data that is stored on the server machine. In order for this to function properly a few processes have to be configured and running.
注: Under FreeBSD 4.X, the portmap utility is used in place of the rpcbind utility. Thus, in FreeBSD 4.X the user is required to replace every instance of rpcbind with portmap in the forthcoming examples.
The server has to be running the following daemons:
Daemon | Description |
---|---|
nfsd | The NFS daemon which services requests from the NFS clients. |
mountd | The NFS mount daemon which carries out the requests that nfsd(8) passes on to it. |
rpcbind | This daemon allows NFS clients to discover which port the NFS server is using. |
The client can also run a daemon, known as nfsiod. The nfsiod daemon services the requests from the NFS server. This is optional, and improves performance, but is not required for normal and correct operation. See the nfsiod(8) manual page for more information.
NFS configuration is a relatively straightforward process. The processes that need to be running can all start at boot time with a few modifications to your /etc/rc.conf file.
On the NFS server, make sure that the following options are configured in the /etc/rc.conf file:
rpcbind_enable="YES" nfs_server_enable="YES" mountd_flags="-r"
mountd runs automatically whenever the NFS server is enabled.
On the client, make sure this option is present in /etc/rc.conf:
nfs_client_enable="YES"
The /etc/exports file specifies which file systems NFS should export (sometimes referred to as “share”). Each line in /etc/exports specifies a file system to be exported and which machines have access to that file system. Along with what machines have access to that file system, access options may also be specified. There are many such options that can be used in this file but only a few will be mentioned here. You can easily discover other options by reading over the exports(5) manual page.
Here are a few example /etc/exports entries:
The following examples give an idea of how to export file systems, although the
settings may be different depending on your environment and network configuration. For
instance, to export the /cdrom directory to three example
machines that have the same domain name as the server (hence the lack of a domain name
for each) or have entries in your /etc/hosts file. The -ro
flag makes the exported file system read-only. With this flag,
the remote system will not be able to write any changes to the exported file system.
/cdrom -ro host1 host2 host3
The following line exports /home to three hosts by IP
address. This is a useful setup if you have a private network without a DNS server configured. Optionally the /etc/hosts file could be configured for internal hostnames;
please review hosts(5) for more
information. The -alldirs
flag allows the subdirectories
to be mount points. In other words, it will not mount the subdirectories but
permit the client to mount only the directories that are required or needed.
/home -alldirs 10.0.0.2 10.0.0.3 10.0.0.4
The following line exports /a so that two clients from
different domains may access the file system. The -maproot=root
flag allows the root
user on the remote system to write data on the exported file system as root. If the -maproot=root flag is
not specified, then even if a user has root access on
the remote system, he will not be able to modify files on the exported file
system.
/a -maproot=root host.example.com box.example.org
In order for a client to access an exported file system, the client must have permission to do so. Make sure the client is listed in your /etc/exports file.
In /etc/exports, each line represents the export information for one file system to one host. A remote host can only be specified once per file system, and may only have one default entry. For example, assume that /usr is a single file system. The following /etc/exports would be invalid:
# Invalid when /usr is one file system /usr/src client /usr/ports client
One file system, /usr, has two lines specifying exports to the same host, client. The correct format for this situation is:
/usr/src /usr/ports client
The properties of one file system exported to a given host must all occur on one line. Lines without a client specified are treated as a single host. This limits how you can export file systems, but for most people this is not an issue.
The following is an example of a valid export list, where /usr and /exports are local file systems:
# Export src and ports to client01 and client02, but only # client01 has root privileges on it /usr/src /usr/ports -maproot=root client01 /usr/src /usr/ports client02 # The client machines have root and can mount anywhere # on /exports. Anyone in the world can mount /exports/obj read-only /exports -alldirs -maproot=root client01 client02 /exports/obj -ro
You must restart mountd whenever you modify /etc/exports so the changes can take effect. This can be accomplished by sending the HUP signal to the mountd process:
# kill -HUP `cat /var/run/mountd.pid`
Alternatively, a reboot will make FreeBSD set everything up properly. A reboot is not necessary though. Executing the following commands as root should start everything up.
On the NFS server:
# rpcbind # nfsd -u -t -n 4 # mountd -r
On the NFS client:
# nfsiod -n 4
Now everything should be ready to actually mount a remote file system. In these examples the server's name will be server and the client's name will be client. If you only want to temporarily mount a remote file system or would rather test the configuration, just execute a command like this as root on the client:
# mount server:/home /mnt
This will mount the /home directory on the server at /mnt on the client. If everything is set up correctly you should be able to enter /mnt on the client and see all the files that are on the server.
If you want to automatically mount a remote file system each time the computer boots, add the file system to the /etc/fstab file. Here is an example:
server:/home /mnt nfs rw 0 0
The fstab(5) manual page lists all the available options.
NFS has many practical uses. Some of the more common ones are listed below:
Set several machines to share a CDROM or other media among them. This is cheaper and often a more convenient method to install software on multiple machines.
On large networks, it might be more convenient to configure a central NFS server in which to store all the user home directories. These home directories can then be exported to the network so that users would always have the same home directory, regardless of which workstation they log in to.
Several machines could have a common /usr/ports/distfiles directory. That way, when you need to install a port on several machines, you can quickly access the source without downloading it on each machine.
amd(8) (the automatic mounter daemon) automatically mounts a remote file system whenever a file or directory within that file system is accessed. Filesystems that are inactive for a period of time will also be automatically unmounted by amd. Using amd provides a simple alternative to permanent mounts, as permanent mounts are usually listed in /etc/fstab.
amd operates by attaching itself as an NFS server to the /host and /net directories. When a file is accessed within one of these directories, amd looks up the corresponding remote mount and automatically mounts it. /net is used to mount an exported file system from an IP address, while /host is used to mount an export from a remote hostname.
An access to a file within /host/foobar/usr would tell amd to attempt to mount the /usr export on the host foobar.
範例 27-2. Mounting an Export with amd
You can view the available mounts of a remote host with the showmount command. For example, to view the mounts of a host named foobar, you can use:
% showmount -e foobar Exports list on foobar: /usr 10.10.10.0 /a 10.10.10.0 % cd /host/foobar/usr
As seen in the example, the showmount shows /usr as an export. When changing directories to /host/foobar/usr, amd attempts to resolve the hostname foobar and automatically mount the desired export.
amd can be started by the startup scripts by placing the following lines in /etc/rc.conf:
amd_enable="YES"
Additionally, custom flags can be passed to amd from the
amd_flags
option. By default, amd_flags
is set to:
amd_flags="-a /.amd_mnt -l syslog /host /etc/amd.map /net /etc/amd.map"
The /etc/amd.map file defines the default options that exports are mounted with. The /etc/amd.conf file defines some of the more advanced features of amd.
Consult the amd(8) and amd.conf(5) manual pages for more information.
Certain Ethernet adapters for ISA PC systems have limitations which can lead to serious network problems, particularly with NFS. This difficulty is not specific to FreeBSD, but FreeBSD systems are affected by it.
The problem nearly always occurs when (FreeBSD) PC systems are networked with high-performance workstations, such as those made by Silicon Graphics, Inc., and Sun Microsystems, Inc. The NFS mount will work fine, and some operations may succeed, but suddenly the server will seem to become unresponsive to the client, even though requests to and from other systems continue to be processed. This happens to the client system, whether the client is the FreeBSD system or the workstation. On many systems, there is no way to shut down the client gracefully once this problem has manifested itself. The only solution is often to reset the client, because the NFS situation cannot be resolved.
Though the “correct” solution is to get a higher performance and capacity
Ethernet adapter for the FreeBSD system, there is a simple workaround that will
allow satisfactory operation. If the FreeBSD system is the server, include the option -w=1024
on the mount from the client. If the FreeBSD system is
the client, then mount the NFS
file system with the option -r=1024
. These options may
be specified using the fourth field of the fstab entry on
the client for automatic mounts, or by using the -o
parameter of the mount(8) command for
manual mounts.
It should be noted that there is a different problem, sometimes mistaken for this one, when the NFS servers and clients are on different networks. If that is the case, make certain that your routers are routing the necessary UDP information, or you will not get anywhere, no matter what else you are doing.
In the following examples, fastws is the host (interface)
name of a high-performance workstation, and freebox is the
host (interface) name of a FreeBSD system with a lower-performance Ethernet adapter.
Also, /sharedfs will be the exported NFS file system
(see exports(5)), and
/project will be the mount point on the client for
the exported file system. In all cases, note that additional options, such as hard
or soft
and bg
may be desirable in your application.
Examples for the FreeBSD system (freebox) as the client in /etc/fstab on freebox:
fastws:/sharedfs /project nfs rw,-r=1024 0 0
As a manual mount command on freebox:
# mount -t nfs -o -r=1024 fastws:/sharedfs /project
Examples for the FreeBSD system as the server in /etc/fstab on fastws:
freebox:/sharedfs /project nfs rw,-w=1024 0 0
As a manual mount command on fastws:
# mount -t nfs -o -w=1024 freebox:/sharedfs /project
Nearly any 16-bit Ethernet adapter will allow operation without the above restrictions on the read or write size.
For anyone who cares, here is what happens when the failure occurs, which also explains why it is unrecoverable. NFS typically works with a “block” size of 8 K (though it may do fragments of smaller sizes). Since the maximum Ethernet packet is around 1500 bytes, the NFS “block” gets split into multiple Ethernet packets, even though it is still a single unit to the upper-level code, and must be received, assembled, and acknowledged as a unit. The high-performance workstations can pump out the packets which comprise the NFS unit one right after the other, just as close together as the standard allows. On the smaller, lower capacity cards, the later packets overrun the earlier packets of the same unit before they can be transferred to the host and the unit as a whole cannot be reconstructed or acknowledged. As a result, the workstation will time out and try again, but it will try again with the entire 8 K unit, and the process will be repeated, ad infinitum.
By keeping the unit size below the Ethernet packet size limitation, we ensure that any complete Ethernet packet received can be acknowledged individually, avoiding the deadlock situation.
Overruns may still occur when a high-performance workstations is slamming data out to a PC system, but with the better cards, such overruns are not guaranteed on NFS “units”. When an overrun occurs, the units affected will be retransmitted, and there will be a fair chance that they will be received, assembled, and acknowledged.
NIS, which stands for Network Information Services, was developed by Sun Microsystems to centralize administration of UNIX (originally SunOS) systems. It has now essentially become an industry standard; all major UNIX like systems (Solaris, HP-UX, AIX®, Linux, NetBSD, OpenBSD, FreeBSD, etc) support NIS.
NIS was formerly known as Yellow Pages, but because of trademark issues, Sun changed the name. The old term (and yp) is still often seen and used.
It is a RPC-based client/server system that allows a group of machines within an NIS domain to share a common set of configuration files. This permits a system administrator to set up NIS client systems with only minimal configuration data and add, remove or modify configuration data from a single location.
It is similar to the Windows NT® domain system; although the internal implementation of the two are not at all similar, the basic functionality can be compared.
There are several terms and several important user processes that you will come across when attempting to implement NIS on FreeBSD, whether you are trying to create an NIS server or act as an NIS client:
Term | Description |
---|---|
NIS domainname | An NIS master server and all of its clients (including its slave servers) have a NIS domainname. Similar to an Windows NT domain name, the NIS domainname does not have anything to do with DNS. |
rpcbind | Must be running in order to enable RPC (Remote Procedure Call, a network protocol used by NIS). If rpcbind is not running, it will be impossible to run an NIS server, or to act as an NIS client (Under FreeBSD 4.X portmap is used in place of rpcbind). |
ypbind | “Binds” an NIS client to its NIS server. It will take the NIS domainname from the system, and using RPC, connect to the server. ypbind is the core of client-server communication in an NIS environment; if ypbind dies on a client machine, it will not be able to access the NIS server. |
ypserv | Should only be running on NIS servers; this is the NIS server process itself. If ypserv(8) dies, then the server will no longer be able to respond to NIS requests (hopefully, there is a slave server to take over for it). There are some implementations of NIS (but not the FreeBSD one), that do not try to reconnect to another server if the server it used before dies. Often, the only thing that helps in this case is to restart the server process (or even the whole server) or the ypbind process on the client. |
rpc.yppasswdd | Another process that should only be running on NIS master servers; this is a daemon that will allow NIS clients to change their NIS passwords. If this daemon is not running, users will have to login to the NIS master server and change their passwords there. |
There are three types of hosts in an NIS environment: master servers, slave servers, and clients. Servers act as a central repository for host configuration information. Master servers hold the authoritative copy of this information, while slave servers mirror this information for redundancy. Clients rely on the servers to provide this information to them.
Information in many files can be shared in this manner. The master.passwd, group, and hosts files are commonly shared via NIS. Whenever a process on a client needs information that would normally be found in these files locally, it makes a query to the NIS server that it is bound to instead.
A NIS master server. This server, analogous to a Windows NT primary domain controller, maintains the files used by all of the NIS clients. The passwd, group, and other various files used by the NIS clients live on the master server.
注: It is possible for one machine to be an NIS master server for more than one NIS domain. However, this will not be covered in this introduction, which assumes a relatively small-scale NIS environment.
NIS slave servers. Similar to the Windows NT backup domain controllers, NIS slave servers maintain copies of the NIS master's data files. NIS slave servers provide the redundancy, which is needed in important environments. They also help to balance the load of the master server: NIS Clients always attach to the NIS server whose response they get first, and this includes slave-server-replies.
NIS clients. NIS clients, like most Windows NT workstations, authenticate against the NIS server (or the Windows NT domain controller in the Windows NT workstations case) to log on.
This section will deal with setting up a sample NIS environment.
注: This section assumes that you are running FreeBSD 3.3 or later. The instructions given here will probably work for any version of FreeBSD greater than 3.0, but there are no guarantees that this is true.
Let us assume that you are the administrator of a small university lab. This lab, which consists of 15 FreeBSD machines, currently has no centralized point of administration; each machine has its own /etc/passwd and /etc/master.passwd. These files are kept in sync with each other only through manual intervention; currently, when you add a user to the lab, you must run adduser on all 15 machines. Clearly, this has to change, so you have decided to convert the lab to use NIS, using two of the machines as servers.
Therefore, the configuration of the lab now looks something like:
Machine name | IP address | Machine role |
---|---|---|
ellington | 10.0.0.2 | NIS master |
coltrane | 10.0.0.3 | NIS slave |
basie | 10.0.0.4 | Faculty workstation |
bird | 10.0.0.5 | Client machine |
cli[1-11] | 10.0.0.[6-17] | Other client machines |
If you are setting up a NIS scheme for the first time, it is a good idea to think through how you want to go about it. No matter what the size of your network, there are a few decisions that need to be made.
This might not be the “domainname” that you are used to. It is more accurately called the “NIS domainname”. When a client broadcasts its requests for info, it includes the name of the NIS domain that it is part of. This is how multiple servers on one network can tell which server should answer which request. Think of the NIS domainname as the name for a group of hosts that are related in some way.
Some organizations choose to use their Internet domainname for their NIS domainname. This is not recommended as it can cause confusion when trying to debug network problems. The NIS domainname should be unique within your network and it is helpful if it describes the group of machines it represents. For example, the Art department at Acme Inc. might be in the “acme-art” NIS domain. For this example, assume you have chosen the name test-domain.
However, some operating systems (notably SunOS) use their NIS domain name as their Internet domain name. If one or more machines on your network have this restriction, you must use the Internet domain name as your NIS domain name.
There are several things to keep in mind when choosing a machine to use as a NIS server. One of the unfortunate things about NIS is the level of dependency the clients have on the server. If a client cannot contact the server for its NIS domain, very often the machine becomes unusable. The lack of user and group information causes most systems to temporarily freeze up. With this in mind you should make sure to choose a machine that will not be prone to being rebooted regularly, or one that might be used for development. The NIS server should ideally be a stand alone machine whose sole purpose in life is to be an NIS server. If you have a network that is not very heavily used, it is acceptable to put the NIS server on a machine running other services, just keep in mind that if the NIS server becomes unavailable, it will affect all of your NIS clients adversely.
The canonical copies of all NIS information are stored on a single machine called the NIS master server. The databases used to store the information are called NIS maps. In FreeBSD, these maps are stored in /var/yp/[domainname] where [domainname] is the name of the NIS domain being served. A single NIS server can support several domains at once, therefore it is possible to have several such directories, one for each supported domain. Each domain will have its own independent set of maps.
NIS master and slave servers handle all NIS requests with the ypserv daemon. ypserv is responsible for receiving incoming requests from NIS clients, translating the requested domain and map name to a path to the corresponding database file and transmitting data from the database back to the client.
Setting up a master NIS server can be relatively straight forward, depending on your needs. FreeBSD comes with support for NIS out-of-the-box. All you need is to add the following lines to /etc/rc.conf, and FreeBSD will do the rest for you.
nisdomainname="test-domain"This line will set the NIS domainname to test-domain upon network setup (e.g. after reboot).
nis_server_enable="YES"This will tell FreeBSD to start up the NIS server processes when the networking is next brought up.
nis_yppasswdd_enable="YES"This will enable the rpc.yppasswdd daemon which, as mentioned above, will allow users to change their NIS password from a client machine.
注: Depending on your NIS setup, you may need to add further entries. See the section about NIS servers that are also NIS clients, below, for details.
Now, all you have to do is to run the command /etc/netstart as superuser. It will set up everything for you, using the values you defined in /etc/rc.conf.
The NIS maps are database files, that are kept in the /var/yp directory. They are generated from configuration files in the /etc directory of the NIS master, with one exception: the /etc/master.passwd file. This is for a good reason, you do not want to propagate passwords to your root and other administrative accounts to all the servers in the NIS domain. Therefore, before we initialize the NIS maps, you should:
# cp /etc/master.passwd /var/yp/master.passwd # cd /var/yp # vi master.passwd
You should remove all entries regarding system accounts (bin, tty, kmem, games, etc), as well as any accounts that you do not want to be propagated to the NIS clients (for example root and any other UID 0 (superuser) accounts).
注: Make sure the /var/yp/master.passwd is neither group nor world readable (mode 600)! Use the chmod command, if appropriate.
When you have finished, it is time to initialize the NIS maps! FreeBSD includes a
script named ypinit to do this for you (see its manual page for
more information). Note that this script is available on most UNIX Operating Systems, but not on all. On Digital UNIX/Compaq
Tru64 UNIX it is called ypsetup. Because we are generating maps
for an NIS master, we are going to pass the -m
option to ypinit. To generate the NIS maps, assuming you already performed the
steps above, run:
ellington# ypinit -m test-domain Server Type: MASTER Domain: test-domain Creating an YP server will require that you answer a few questions. Questions will all be asked at the beginning of the procedure. Do you want this procedure to quit on non-fatal errors? [y/n: n] n Ok, please remember to go back and redo manually whatever fails. If you don't, something might not work. At this point, we have to construct a list of this domains YP servers. rod.darktech.org is already known as master server. Please continue to add any slave servers, one per line. When you are done with the list, type a <control D>. master server : ellington next host to add: coltrane next host to add: ^D The current list of NIS servers looks like this: ellington coltrane Is this correct? [y/n: y] y [..output from map generation..] NIS Map update completed. ellington has been setup as an YP master server without any errors.
ypinit should have created /var/yp/Makefile from /var/yp/Makefile.dist. When created, this file assumes that you are operating in a single server NIS environment with only FreeBSD machines. Since test-domain has a slave server as well, you must edit /var/yp/Makefile:
ellington# vi /var/yp/Makefile
You should comment out the line that says
NOPUSH = "True"
(if it is not commented out already).
Setting up an NIS slave server is even more simple than setting up the master.
Log on to the slave server and edit the file /etc/rc.conf as
you did before. The only difference is that we now must use the -s
option when running ypinit. The -s
option requires the name of the NIS master be passed to it as
well, so our command line looks like:
coltrane# ypinit -s ellington test-domain Server Type: SLAVE Domain: test-domain Master: ellington Creating an YP server will require that you answer a few questions. Questions will all be asked at the beginning of the procedure. Do you want this procedure to quit on non-fatal errors? [y/n: n] n Ok, please remember to go back and redo manually whatever fails. If you don't, something might not work. There will be no further questions. The remainder of the procedure should take a few minutes, to copy the databases from ellington. Transferring netgroup... ypxfr: Exiting: Map successfully transferred Transferring netgroup.byuser... ypxfr: Exiting: Map successfully transferred Transferring netgroup.byhost... ypxfr: Exiting: Map successfully transferred Transferring master.passwd.byuid... ypxfr: Exiting: Map successfully transferred Transferring passwd.byuid... ypxfr: Exiting: Map successfully transferred Transferring passwd.byname... ypxfr: Exiting: Map successfully transferred Transferring group.bygid... ypxfr: Exiting: Map successfully transferred Transferring group.byname... ypxfr: Exiting: Map successfully transferred Transferring services.byname... ypxfr: Exiting: Map successfully transferred Transferring rpc.bynumber... ypxfr: Exiting: Map successfully transferred Transferring rpc.byname... ypxfr: Exiting: Map successfully transferred Transferring protocols.byname... ypxfr: Exiting: Map successfully transferred Transferring master.passwd.byname... ypxfr: Exiting: Map successfully transferred Transferring networks.byname... ypxfr: Exiting: Map successfully transferred Transferring networks.byaddr... ypxfr: Exiting: Map successfully transferred Transferring netid.byname... ypxfr: Exiting: Map successfully transferred Transferring hosts.byaddr... ypxfr: Exiting: Map successfully transferred Transferring protocols.bynumber... ypxfr: Exiting: Map successfully transferred Transferring ypservers... ypxfr: Exiting: Map successfully transferred Transferring hosts.byname... ypxfr: Exiting: Map successfully transferred coltrane has been setup as an YP slave server without any errors. Don't forget to update map ypservers on ellington.
You should now have a directory called /var/yp/test-domain. Copies of the NIS master server's maps should be in this directory. You will need to make sure that these stay updated. The following /etc/crontab entries on your slave servers should do the job:
20 * * * * root /usr/libexec/ypxfr passwd.byname 21 * * * * root /usr/libexec/ypxfr passwd.byuid
These two lines force the slave to sync its maps with the maps on the master server. Although these entries are not mandatory, since the master server attempts to ensure any changes to its NIS maps are communicated to its slaves and because password information is vital to systems depending on the server, it is a good idea to force the updates. This is more important on busy networks where map updates might not always complete.
Now, run the command /etc/netstart on the slave server as well, which again starts the NIS server.
An NIS client establishes what is called a binding to a particular NIS server using the ypbind daemon. ypbind checks the system's default domain (as set by the domainname command), and begins broadcasting RPC requests on the local network. These requests specify the name of the domain for which ypbind is attempting to establish a binding. If a server that has been configured to serve the requested domain receives one of the broadcasts, it will respond to ypbind, which will record the server's address. If there are several servers available (a master and several slaves, for example), ypbind will use the address of the first one to respond. From that point on, the client system will direct all of its NIS requests to that server. ypbind will occasionally “ping” the server to make sure it is still up and running. If it fails to receive a reply to one of its pings within a reasonable amount of time, ypbind will mark the domain as unbound and begin broadcasting again in the hopes of locating another server.
Setting up a FreeBSD machine to be a NIS client is fairly straightforward.
Edit the file /etc/rc.conf and add the following lines in order to set the NIS domainname and start ypbind upon network startup:
nisdomainname="test-domain" nis_client_enable="YES"
To import all possible password entries from the NIS server, remove all user accounts from your /etc/master.passwd file and use vipw to add the following line to the end of the file:
+:::::::::
注: This line will afford anyone with a valid account in the NIS server's password maps an account. There are many ways to configure your NIS client by changing this line. See the netgroups section below for more information. For more detailed reading see O'Reilly's book on Managing NFS and NIS.
注: You should keep at least one local account (i.e. not imported via NIS) in your /etc/master.passwd and this account should also be a member of the group wheel. If there is something wrong with NIS, this account can be used to log in remotely, become root, and fix things.
To import all possible group entries from the NIS server, add this line to your /etc/group file:
+:*::
After completing these steps, you should be able to run ypcat passwd and see the NIS server's passwd map.
In general, any remote user can issue an RPC to ypserv(8) and retrieve the contents of your NIS maps, provided the remote user knows your domainname. To prevent such unauthorized transactions, ypserv(8) supports a feature called “securenets” which can be used to restrict access to a given set of hosts. At startup, ypserv(8) will attempt to load the securenets information from a file called /var/yp/securenets.
注: This path varies depending on the path specified with the
-p
option. This file contains entries that consist of a network specification and a network mask separated by white space. Lines starting with “#” are considered to be comments. A sample securenets file might look like this:
# allow connections from local host -- mandatory 127.0.0.1 255.255.255.255 # allow connections from any host # on the 192.168.128.0 network 192.168.128.0 255.255.255.0 # allow connections from any host # between 10.0.0.0 to 10.0.15.255 # this includes the machines in the testlab 10.0.0.0 255.255.240.0
If ypserv(8) receives a request from an address that matches one of these rules, it will process the request normally. If the address fails to match a rule, the request will be ignored and a warning message will be logged. If the /var/yp/securenets file does not exist, ypserv will allow connections from any host.
The ypserv program also has support for Wietse Venema's TCP Wrapper package. This allows the administrator to use the TCP Wrapper configuration files for access control instead of /var/yp/securenets.
注: While both of these access control mechanisms provide some security, they, like the privileged port test, are vulnerable to “IP spoofing” attacks. All NIS-related traffic should be blocked at your firewall.
Servers using /var/yp/securenets may fail to serve legitimate NIS clients with archaic TCP/IP implementations. Some of these implementations set all host bits to zero when doing broadcasts and/or fail to observe the subnet mask when calculating the broadcast address. While some of these problems can be fixed by changing the client configuration, other problems may force the retirement of the client systems in question or the abandonment of /var/yp/securenets.
Using /var/yp/securenets on a server with such an archaic implementation of TCP/IP is a really bad idea and will lead to loss of NIS functionality for large parts of your network.
The use of the TCP Wrapper package increases the latency of your NIS server. The additional delay may be long enough to cause timeouts in client programs, especially in busy networks or with slow NIS servers. If one or more of your client systems suffers from these symptoms, you should convert the client systems in question into NIS slave servers and force them to bind to themselves.
In our lab, there is a machine basie that is supposed to be a faculty only workstation. We do not want to take this machine out of the NIS domain, yet the passwd file on the master NIS server contains accounts for both faculty and students. What can we do?
There is a way to bar specific users from logging on to a machine, even if they are present in the NIS database. To do this, all you must do is add -username to the end of the /etc/master.passwd file on the client machine, where username is the username of the user you wish to bar from logging in. This should preferably be done using vipw, since vipw will sanity check your changes to /etc/master.passwd, as well as automatically rebuild the password database when you finish editing. For example, if we wanted to bar user bill from logging on to basie we would:
basie# vipw [add -bill to the end, exit] vipw: rebuilding the database... vipw: done basie# cat /etc/master.passwd root:[password]:0:0::0:0:The super-user:/root:/bin/csh toor:[password]:0:0::0:0:The other super-user:/root:/bin/sh daemon:*:1:1::0:0:Owner of many system processes:/root:/sbin/nologin operator:*:2:5::0:0:System &:/:/sbin/nologin bin:*:3:7::0:0:Binaries Commands and Source,,,:/:/sbin/nologin tty:*:4:65533::0:0:Tty Sandbox:/:/sbin/nologin kmem:*:5:65533::0:0:KMem Sandbox:/:/sbin/nologin games:*:7:13::0:0:Games pseudo-user:/usr/games:/sbin/nologin news:*:8:8::0:0:News Subsystem:/:/sbin/nologin man:*:9:9::0:0:Mister Man Pages:/usr/share/man:/sbin/nologin bind:*:53:53::0:0:Bind Sandbox:/:/sbin/nologin uucp:*:66:66::0:0:UUCP pseudo-user:/var/spool/uucppublic:/usr/libexec/uucp/uucico xten:*:67:67::0:0:X-10 daemon:/usr/local/xten:/sbin/nologin pop:*:68:6::0:0:Post Office Owner:/nonexistent:/sbin/nologin nobody:*:65534:65534::0:0:Unprivileged user:/nonexistent:/sbin/nologin +::::::::: -bill basie#
The method shown in the previous section works reasonably well if you need special rules for a very small number of users and/or machines. On larger networks, you will forget to bar some users from logging onto sensitive machines, or you may even have to modify each machine separately, thus losing the main benefit of NIS: centralized administration.
The NIS developers' solution for this problem is called netgroups. Their purpose and semantics can be compared to the normal groups used by UNIX file systems. The main differences are the lack of a numeric ID and the ability to define a netgroup by including both user accounts and other netgroups.
Netgroups were developed to handle large, complex networks with hundreds of users and machines. On one hand, this is a Good Thing if you are forced to deal with such a situation. On the other hand, this complexity makes it almost impossible to explain netgroups with really simple examples. The example used in the remainder of this section demonstrates this problem.
Let us assume that your successful introduction of NIS in your laboratory caught your superiors' interest. Your next job is to extend your NIS domain to cover some of the other machines on campus. The two tables contain the names of the new users and new machines as well as brief descriptions of them.
User Name(s) | Description |
---|---|
alpha, beta | Normal employees of the IT department |
charlie, delta | The new apprentices of the IT department |
echo, foxtrott, golf, ... | Ordinary employees |
able, baker, ... | The current interns |
Machine Name(s) | Description |
---|---|
war, death, famine, pollution | Your most important servers. Only the IT employees are allowed to log onto these machines. |
pride, greed, envy, wrath, lust, sloth | Less important servers. All members of the IT department are allowed to login onto these machines. |
one, two, three, four, ... | Ordinary workstations. Only the real employees are allowed to use these machines. |
trashcan | A very old machine without any critical data. Even the intern is allowed to use this box. |
If you tried to implement these restrictions by separately blocking each user, you would have to add one -user line to each system's passwd for each user who is not allowed to login onto that system. If you forget just one entry, you could be in trouble. It may be feasible to do this correctly during the initial setup, however you will eventually forget to add the lines for new users during day-to-day operations. After all, Murphy was an optimist.
Handling this situation with netgroups offers several advantages. Each user need not be handled separately; you assign a user to one or more netgroups and allow or forbid logins for all members of the netgroup. If you add a new machine, you will only have to define login restrictions for netgroups. If a new user is added, you will only have to add the user to one or more netgroups. Those changes are independent of each other: no more “for each combination of user and machine do...” If your NIS setup is planned carefully, you will only have to modify exactly one central configuration file to grant or deny access to machines.
The first step is the initialization of the NIS map netgroup. FreeBSD's ypinit(8) does not create this map by default, but its NIS implementation will support it once it has been created. To create an empty map, simply type
ellington# vi /var/yp/netgroup
and start adding content. For our example, we need at least four netgroups: IT employees, IT apprentices, normal employees and interns.
IT_EMP (,alpha,test-domain) (,beta,test-domain) IT_APP (,charlie,test-domain) (,delta,test-domain) USERS (,echo,test-domain) (,foxtrott,test-domain) \ (,golf,test-domain) INTERNS (,able,test-domain) (,baker,test-domain)
IT_EMP, IT_APP etc. are the names of the netgroups. Each bracketed group adds one or more user accounts to it. The three fields inside a group are:
The name of the host(s) where the following items are valid. If you do not specify a hostname, the entry is valid on all hosts. If you do specify a hostname, you will enter a realm of darkness, horror and utter confusion.
The name of the account that belongs to this netgroup.
The NIS domain for the account. You can import accounts from other NIS domains into your netgroup if you are one of the unlucky fellows with more than one NIS domain.
Each of these fields can contain wildcards. See netgroup(5) for details.
注: Netgroup names longer than 8 characters should not be used, especially if you have machines running other operating systems within your NIS domain. The names are case sensitive; using capital letters for your netgroup names is an easy way to distinguish between user, machine and netgroup names.
Some NIS clients (other than FreeBSD) cannot handle netgroups with a large number of entries. For example, some older versions of SunOS start to cause trouble if a netgroup contains more than 15 entries. You can circumvent this limit by creating several sub-netgroups with 15 users or less and a real netgroup that consists of the sub-netgroups:
BIGGRP1 (,joe1,domain) (,joe2,domain) (,joe3,domain) [...] BIGGRP2 (,joe16,domain) (,joe17,domain) [...] BIGGRP3 (,joe31,domain) (,joe32,domain) BIGGROUP BIGGRP1 BIGGRP2 BIGGRP3You can repeat this process if you need more than 225 users within a single netgroup.
Activating and distributing your new NIS map is easy:
ellington# cd /var/yp ellington# make
This will generate the three NIS maps netgroup, netgroup.byhost and netgroup.byuser. Use ypcat(1) to check if your new NIS maps are available:
ellington% ypcat -k netgroup ellington% ypcat -k netgroup.byhost ellington% ypcat -k netgroup.byuser
The output of the first command should resemble the contents of /var/yp/netgroup. The second command will not produce output if you have not specified host-specific netgroups. The third command can be used to get the list of netgroups for a user.
The client setup is quite simple. To configure the server war, you only have to start vipw(8) and replace the line
+:::::::::
with
+@IT_EMP:::::::::
Now, only the data for the users defined in the netgroup IT_EMP is imported into war's password database and only these users are allowed to login.
Unfortunately, this limitation also applies to the ~ function of the shell and all routines converting between user names and numerical user IDs. In other words, cd ~user will not work, ls -l will show the numerical ID instead of the username and find . -user joe -print will fail with “No such user”. To fix this, you will have to import all user entries without allowing them to login onto your servers.
This can be achieved by adding another line to /etc/master.passwd. This line should contain:
+:::::::::/sbin/nologin, meaning “Import all entries but replace the shell with /sbin/nologin in the imported entries”. You can replace any field in the passwd entry by placing a default value in your /etc/master.passwd.
警告Make sure that the line +:::::::::/sbin/nologin is placed after +@IT_EMP:::::::::. Otherwise, all user accounts imported from NIS will have /sbin/nologin as their login shell.
After this change, you will only have to change one NIS map if a new employee joins the IT department. You could use a similar approach for the less important servers by replacing the old +::::::::: in their local version of /etc/master.passwd with something like this:
+@IT_EMP::::::::: +@IT_APP::::::::: +:::::::::/sbin/nologin
The corresponding lines for the normal workstations could be:
+@IT_EMP::::::::: +@USERS::::::::: +:::::::::/sbin/nologin
And everything would be fine until there is a policy change a few weeks later: The IT department starts hiring interns. The IT interns are allowed to use the normal workstations and the less important servers; and the IT apprentices are allowed to login onto the main servers. You add a new netgroup IT_INTERN, add the new IT interns to this netgroup and start to change the configuration on each and every machine... As the old saying goes: “Errors in centralized planning lead to global mess”.
NIS' ability to create netgroups from other netgroups can be used to prevent situations like these. One possibility is the creation of role-based netgroups. For example, you could create a netgroup called BIGSRV to define the login restrictions for the important servers, another netgroup called SMALLSRV for the less important servers and a third netgroup called USERBOX for the normal workstations. Each of these netgroups contains the netgroups that are allowed to login onto these machines. The new entries for your NIS map netgroup should look like this:
BIGSRV IT_EMP IT_APP SMALLSRV IT_EMP IT_APP ITINTERN USERBOX IT_EMP ITINTERN USERS
This method of defining login restrictions works reasonably well if you can define groups of machines with identical restrictions. Unfortunately, this is the exception and not the rule. Most of the time, you will need the ability to define login restrictions on a per-machine basis.
Machine-specific netgroup definitions are the other possibility to deal with the policy change outlined above. In this scenario, the /etc/master.passwd of each box contains two lines starting with “+”. The first of them adds a netgroup with the accounts allowed to login onto this machine, the second one adds all other accounts with /sbin/nologin as shell. It is a good idea to use the “ALL-CAPS” version of the machine name as the name of the netgroup. In other words, the lines should look like this:
+@BOXNAME::::::::: +:::::::::/sbin/nologin
Once you have completed this task for all your machines, you will not have to modify the local versions of /etc/master.passwd ever again. All further changes can be handled by modifying the NIS map. Here is an example of a possible netgroup map for this scenario with some additional goodies:
# Define groups of users first IT_EMP (,alpha,test-domain) (,beta,test-domain) IT_APP (,charlie,test-domain) (,delta,test-domain) DEPT1 (,echo,test-domain) (,foxtrott,test-domain) DEPT2 (,golf,test-domain) (,hotel,test-domain) DEPT3 (,india,test-domain) (,juliet,test-domain) ITINTERN (,kilo,test-domain) (,lima,test-domain) D_INTERNS (,able,test-domain) (,baker,test-domain) # # Now, define some groups based on roles USERS DEPT1 DEPT2 DEPT3 BIGSRV IT_EMP IT_APP SMALLSRV IT_EMP IT_APP ITINTERN USERBOX IT_EMP ITINTERN USERS # # And a groups for a special tasks # Allow echo and golf to access our anti-virus-machine SECURITY IT_EMP (,echo,test-domain) (,golf,test-domain) # # machine-based netgroups # Our main servers WAR BIGSRV FAMINE BIGSRV # User india needs access to this server POLLUTION BIGSRV (,india,test-domain) # # This one is really important and needs more access restrictions DEATH IT_EMP # # The anti-virus-machine mentioned above ONE SECURITY # # Restrict a machine to a single user TWO (,hotel,test-domain) # [...more groups to follow]
If you are using some kind of database to manage your user accounts, you should be able to create the first part of the map with your database's report tools. This way, new users will automatically have access to the boxes.
One last word of caution: It may not always be advisable to use machine-based netgroups. If you are deploying a couple of dozen or even hundreds of identical machines for student labs, you should use role-based netgroups instead of machine-based netgroups to keep the size of the NIS map within reasonable limits.
There are still a couple of things that you will need to do differently now that you are in an NIS environment.
Every time you wish to add a user to the lab, you must add it to the master NIS server only, and you must remember to rebuild the NIS maps. If you forget to do this, the new user will not be able to login anywhere except on the NIS master. For example, if we needed to add a new user jsmith to the lab, we would:
# pw useradd jsmith # cd /var/yp # make test-domain
You could also run adduser jsmith instead of pw useradd jsmith.
Keep the administration accounts out of the NIS maps. You do not want to be propagating administrative accounts and passwords to machines that will have users that should not have access to those accounts.
Keep the NIS master and slave secure, and minimize their downtime. If somebody either hacks or simply turns off these machines, they have effectively rendered many people without the ability to login to the lab.
This is the chief weakness of any centralized administration system. If you do not protect your NIS servers, you will have a lot of angry users!
FreeBSD's ypserv has some support for serving NIS v1 clients. FreeBSD's NIS implementation only uses the NIS v2 protocol, however other implementations include support for the v1 protocol for backwards compatibility with older systems. The ypbind daemons supplied with these systems will try to establish a binding to an NIS v1 server even though they may never actually need it (and they may persist in broadcasting in search of one even after they receive a response from a v2 server). Note that while support for normal client calls is provided, this version of ypserv does not handle v1 map transfer requests; consequently, it cannot be used as a master or slave in conjunction with older NIS servers that only support the v1 protocol. Fortunately, there probably are not any such servers still in use today.
Care must be taken when running ypserv in a multi-server domain where the server machines are also NIS clients. It is generally a good idea to force the servers to bind to themselves rather than allowing them to broadcast bind requests and possibly become bound to each other. Strange failure modes can result if one server goes down and others are dependent upon it. Eventually all the clients will time out and attempt to bind to other servers, but the delay involved can be considerable and the failure mode is still present since the servers might bind to each other all over again.
You can force a host to bind to a particular server by running ypbind with the -S
flag. If you do
not want to do this manually each time you reboot your NIS server, you can add the
following lines to your /etc/rc.conf:
nis_client_enable="YES" # run client stuff as well nis_client_flags="-S NIS domain,server"
See ypbind(8) for further information.
One of the most common issues that people run into when trying to implement NIS is password format compatibility. If your NIS server is using DES encrypted passwords, it will only support clients that are also using DES. For example, if you have Solaris NIS clients in your network, then you will almost certainly need to use DES encrypted passwords.
To check which format your servers and clients are using, look at /etc/login.conf. If the host is configured to use DES encrypted passwords, then the default class will contain an entry like this:
default:\ :passwd_format=des:\ :copyright=/etc/COPYRIGHT:\ [Further entries elided]
Other possible values for the passwd_format capability include blf and md5 (for Blowfish and MD5 encrypted passwords, respectively).
If you have made changes to /etc/login.conf, you will also need to rebuild the login capability database, which is achieved by running the following command as root:
# cap_mkdb /etc/login.conf
注: The format of passwords already in /etc/master.passwd will not be updated until a user changes his password for the first time after the login capability database is rebuilt.
Next, in order to ensure that passwords are encrypted with the format that you have chosen, you should also check that the crypt_default in /etc/auth.conf gives precedence to your chosen password format. To do this, place the format that you have chosen first in the list. For example, when using DES encrypted passwords, the entry would be:
crypt_default = des blf md5
Having followed the above steps on each of the FreeBSD based NIS servers and clients, you can be sure that they all agree on which password format is used within your network. If you have trouble authenticating on an NIS client, this is a pretty good place to start looking for possible problems. Remember: if you want to deploy an NIS server for a heterogenous network, you will probably have to use DES on all systems because it is the lowest common standard.
DHCP, the Dynamic Host Configuration Protocol, describes the means by which a system can connect to a network and obtain the necessary information for communication upon that network. FreeBSD versions prior to 6.0 use the ISC (Internet Software Consortium) DHCP client (dhclient(8)) implementation. Later versions use the OpenBSD dhclient taken from OpenBSD 3.7. All information here regarding dhclient is for use with either of the ISC or OpenBSD DHCP clients. The DHCP server is the one included in the ISC distribution.
This section describes both the client-side components of the ISC and OpenBSD DHCP client and server-side components of the ISC DHCP system. The client-side program, dhclient, comes integrated within FreeBSD, and the server-side portion is available from the net/isc-dhcp3-server port. The dhclient(8), dhcp-options(5), and dhclient.conf(5) manual pages, in addition to the references below, are useful resources.
When dhclient, the DHCP client, is executed on the client machine, it begins broadcasting requests for configuration information. By default, these requests are on UDP port 68. The server replies on UDP 67, giving the client an IP address and other relevant network information such as netmask, router, and DNS servers. All of this information comes in the form of a DHCP “lease” and is only valid for a certain time (configured by the DHCP server maintainer). In this manner, stale IP addresses for clients no longer connected to the network can be automatically reclaimed.
DHCP clients can obtain a great deal of information from the server. An exhaustive list may be found in dhcp-options(5).
FreeBSD fully integrates the ISC or OpenBSD DHCP client, dhclient (according to the FreeBSD version you run). DHCP client support is provided within both the installer and the base system, obviating the need for detailed knowledge of network configurations on any network that runs a DHCP server. dhclient has been included in all FreeBSD distributions since 3.2.
DHCP is supported by sysinstall. When configuring a network interface within sysinstall, the second question asked is: “Do you want to try DHCP configuration of the interface?”. Answering affirmatively will execute dhclient, and if successful, will fill in the network configuration information automatically.
There are two things you must do to have your system use DHCP upon startup:
Make sure that the bpf device is compiled into your kernel. To do this, add device bpf (pseudo-device bpf under FreeBSD 4.X) to your kernel configuration file, and rebuild the kernel. For more information about building kernels, see µÚ 8 章.
The bpf device is already part of the GENERIC kernel that is supplied with FreeBSD, so if you do not have a custom kernel, you should not need to create one in order to get DHCP working.
注: For those who are particularly security conscious, you should be warned that bpf is also the device that allows packet sniffers to work correctly (although they still have to be run as root). bpf is required to use DHCP, but if you are very sensitive about security, you probably should not add bpf to your kernel in the expectation that at some point in the future you will be using DHCP.
Edit your /etc/rc.conf to include the following:
ifconfig_fxp0="DHCP"
注: Be sure to replace fxp0 with the designation for the interface that you wish to dynamically configure, as described in µÚ 11.8 節.
If you are using a different location for dhclient, or if you wish to pass additional flags to dhclient, also include the following (editing as necessary):
dhcp_program="/sbin/dhclient" dhcp_flags=""
The DHCP server, dhcpd, is included as part of the net/isc-dhcp3-server port in the ports collection. This port contains the ISC DHCP server and documentation.
/etc/dhclient.conf
dhclient requires a configuration file, /etc/dhclient.conf. Typically the file contains only comments, the defaults being reasonably sane. This configuration file is described by the dhclient.conf(5) manual page.
/sbin/dhclient
dhclient is statically linked and resides in /sbin. The dhclient(8) manual page gives more information about dhclient.
/sbin/dhclient-script
dhclient-script is the FreeBSD-specific DHCP client configuration script. It is described in dhclient-script(8), but should not need any user modification to function properly.
/var/db/dhclient.leases
The DHCP client keeps a database of valid leases in this file, which is written as a log. dhclient.leases(5) gives a slightly longer description.
The DHCP protocol is fully described in RFC 2131. An informational resource has also been set up at http://www.dhcp.org/.
This section provides information on how to configure a FreeBSD system to act as a DHCP server using the ISC (Internet Software Consortium) implementation of the DHCP suite.
The server portion of the suite is not provided as part of FreeBSD, and so you will need to install the net/isc-dhcp3-server port to provide this service. See µÚ 4 章 for more information on using the Ports Collection.
In order to configure your FreeBSD system as a DHCP server, you will need to ensure that the bpf(4) device is compiled into your kernel. To do this, add device bpf (pseudo-device bpf under FreeBSD 4.X) to your kernel configuration file, and rebuild the kernel. For more information about building kernels, see µÚ 8 章.
The bpf device is already part of the GENERIC kernel that is supplied with FreeBSD, so you do not need to create a custom kernel in order to get DHCP working.
注: Those who are particularly security conscious should note that bpf is also the device that allows packet sniffers to work correctly (although such programs still need privileged access). bpf is required to use DHCP, but if you are very sensitive about security, you probably should not include bpf in your kernel purely because you expect to use DHCP at some point in the future.
The next thing that you will need to do is edit the sample dhcpd.conf which was installed by the net/isc-dhcp3-server port. By default, this will be /usr/local/etc/dhcpd.conf.sample, and you should copy this to /usr/local/etc/dhcpd.conf before proceeding to make changes.
dhcpd.conf is comprised of declarations regarding subnets and hosts, and is perhaps most easily explained using an example :
option domain-name "example.com"; option domain-name-servers 192.168.4.100; option subnet-mask 255.255.255.0; default-lease-time 3600; max-lease-time 86400; ddns-update-style none; subnet 192.168.4.0 netmask 255.255.255.0 { range 192.168.4.129 192.168.4.254; option routers 192.168.4.1; } host mailhost { hardware ethernet 02:03:04:05:06:07; fixed-address mailhost.example.com; }
Once you have finished writing your dhcpd.conf, you can proceed to start the server by issuing the following command:
# /usr/local/etc/rc.d/isc-dhcpd.sh start
Should you need to make changes to the configuration of your server in the future, it is important to note that sending a SIGHUP signal to dhcpd does not result in the configuration being reloaded, as it does with most daemons. You will need to send a SIGTERM signal to stop the process, and then restart it using the command above.
/usr/local/sbin/dhcpd
dhcpd is statically linked and resides in /usr/local/sbin. The dhcpd(8) manual page installed with the port gives more information about dhcpd.
/usr/local/etc/dhcpd.conf
dhcpd requires a configuration file, /usr/local/etc/dhcpd.conf before it will start providing service to clients. This file needs to contain all the information that should be provided to clients that are being serviced, along with information regarding the operation of the server. This configuration file is described by the dhcpd.conf(5) manual page installed by the port.
/var/db/dhcpd.leases
The DHCP server keeps a database of leases it has issued in this file, which is written as a log. The manual page dhcpd.leases(5), installed by the port gives a slightly longer description.
/usr/local/sbin/dhcrelay
dhcrelay is used in advanced environments where one DHCP server forwards a request from a client to another DHCP server on a separate network. If you require this functionality, then install the net/isc-dhcp3-relay port. The dhcrelay(8) manual page provided with the port contains more detail.
FreeBSD utilizes, by default, a version of BIND (Berkeley Internet Name Domain), which is the most common implementation of the DNS protocol. DNS is the protocol through which names are mapped to IP addresses, and vice versa. For example, a query for www.FreeBSD.org will receive a reply with the IP address of The FreeBSD Project's web server, whereas, a query for ftp.FreeBSD.org will return the IP address of the corresponding FTP machine. Likewise, the opposite can happen. A query for an IP address can resolve its hostname. It is not necessary to run a name server to perform DNS lookups on a system.
DNS is coordinated across the Internet through a somewhat complex system of authoritative root name servers, and other smaller-scale name servers who host and cache individual domain information.
This document refers to BIND 8.x, as it is the stable version used in FreeBSD. Versions of FreeBSD 5.3 and beyond include BIND9 and the configuration instructions may be found later in this chapter. Users of FreeBSD 5.2 and other previous versions may install BIND9 from the net/bind9 port.
RFC1034 and RFC1035 dictate the DNS protocol.
Currently, BIND is maintained by the Internet Software Consortium http://www.isc.org/.
To understand this document, some terms related to DNS must be understood.
Term | Definition |
---|---|
Forward DNS | Mapping of hostnames to IP addresses |
Origin | Refers to the domain covered in a particular zone file |
named, BIND, name server | Common names for the BIND name server package within FreeBSD |
Resolver | A system process through which a machine queries a name server for zone information |
Reverse DNS | The opposite of forward DNS; mapping of IP addresses to hostnames |
Root zone | The beginning of the Internet zone hierarchy. All zones fall under the root zone, similar to how all files in a file system fall under the root directory. |
Zone | An individual domain, subdomain, or portion of the DNS administered by the same authority |
Examples of zones:
. is the root zone
org. is a zone under the root zone
example.org. is a zone under the org. zone
foo.example.org. is a subdomain, a zone under the example.org. zone
1.2.3.in-addr.arpa is a zone referencing all IP addresses which fall under the 3.2.1.* IP space.
As one can see, the more specific part of a hostname appears to its left. For example, example.org. is more specific than org., as org. is more specific than the root zone. The layout of each part of a hostname is much like a file system: the /dev directory falls within the root, and so on.
Name servers usually come in two forms: an authoritative name server, and a caching name server.
An authoritative name server is needed when:
one wants to serve DNS information to the world, replying authoritatively to queries.
a domain, such as example.org, is registered and IP addresses need to be assigned to hostnames under it.
an IP address block requires reverse DNS entries (IP to hostname).
a backup name server, called a slave, must reply to queries when the primary is down or inaccessible.
A caching name server is needed when:
a local DNS server may cache and respond more quickly than querying an outside name server.
a reduction in overall network traffic is desired (DNS traffic has been measured to account for 5% or more of total Internet traffic).
When one queries for www.FreeBSD.org, the resolver usually queries the uplink ISP's name server, and retrieves the reply. With a local, caching DNS server, the query only has to be made once to the outside world by the caching DNS server. Every additional query will not have to look to the outside of the local network, since the information is cached locally.
In FreeBSD, the BIND daemon is called named for obvious reasons.
File | Description |
---|---|
named | the BIND daemon |
ndc | name daemon control program |
/etc/namedb | directory where BIND zone information resides |
/etc/namedb/named.conf | daemon configuration file |
Zone files are usually contained within the /etc/namedb directory, and contain the DNS zone information served by the name server.
Since BIND is installed by default, configuring it all is relatively simple.
To ensure the named daemon is started at boot, put the following line in /etc/rc.conf:
named_enable="YES"
To start the daemon manually (after configuring it):
# ndc start
Be sure to:
# cd /etc/namedb # sh make-localhost
to properly create the local reverse DNS zone file in /etc/namedb/master/localhost.rev.
// $FreeBSD$ // // Refer to the named(8) manual page for details. If you are ever going // to setup a primary server, make sure you've understood the hairy // details of how DNS is working. Even with simple mistakes, you can // break connectivity for affected parties, or cause huge amount of // useless Internet traffic. options { directory "/etc/namedb"; // In addition to the "forwarders" clause, you can force your name // server to never initiate queries of its own, but always ask its // forwarders only, by enabling the following line: // // forward only; // If you've got a DNS server around at your upstream provider, enter // its IP address here, and enable the line below. This will make you // benefit from its cache, thus reduce overall DNS traffic in the Internet. /* forwarders { 127.0.0.1; }; */
Just as the comment says, to benefit from an uplink's cache, forwarders can be enabled here. Under normal circumstances, a name server will recursively query the Internet looking at certain name servers until it finds the answer it is looking for. Having this enabled will have it query the uplink's name server (or name server provided) first, taking advantage of its cache. If the uplink name server in question is a heavily trafficked, fast name server, enabling this may be worthwhile.
警告127.0.0.1 will not work here. Change this IP address to a name server at your uplink.
/* * If there is a firewall between you and name servers you want * to talk to, you might need to uncomment the query-source * directive below. Previous versions of BIND always asked * questions using port 53, but BIND 8.1 uses an unprivileged * port by default. */ // query-source address * port 53; /* * If running in a sandbox, you may have to specify a different * location for the dumpfile. */ // dump-file "s/named_dump.db"; }; // Note: the following will be supported in a future release. /* host { any; } { topology { 127.0.0.0/8; }; }; */ // Setting up secondaries is way easier and the rough picture for this // is explained below. // // If you enable a local name server, don't forget to enter 127.0.0.1 // into your /etc/resolv.conf so this server will be queried first. // Also, make sure to enable it in /etc/rc.conf. zone "." { type hint; file "named.root"; }; zone "0.0.127.IN-ADDR.ARPA" { type master; file "localhost.rev"; }; // NB: Do not use the IP addresses below, they are faked, and only // serve demonstration/documentation purposes! // // Example secondary config entries. It can be convenient to become // a secondary at least for the zone where your own domain is in. Ask // your network administrator for the IP address of the responsible // primary. // // Never forget to include the reverse lookup (IN-ADDR.ARPA) zone! // (This is the first bytes of the respective IP address, in reverse // order, with ".IN-ADDR.ARPA" appended.) // // Before starting to setup a primary zone, better make sure you fully // understand how DNS and BIND works, however. There are sometimes // unobvious pitfalls. Setting up a secondary is comparably simpler. // // NB: Don't blindly enable the examples below. :-) Use actual names // and addresses instead. // // NOTE!!! FreeBSD runs BIND in a sandbox (see named_flags in rc.conf). // The directory containing the secondary zones must be write accessible // to BIND. The following sequence is suggested: // // mkdir /etc/namedb/s // chown bind:bind /etc/namedb/s // chmod 750 /etc/namedb/s
For more information on running BIND in a sandbox, see Running named in a sandbox.
/* zone "example.com" { type slave; file "s/example.com.bak"; masters { 192.168.1.1; }; }; zone "0.168.192.in-addr.arpa" { type slave; file "s/0.168.192.in-addr.arpa.bak"; masters { 192.168.1.1; }; }; */
In named.conf, these are examples of slave entries for a forward and reverse zone.
For each new zone served, a new zone entry must be added to named.conf.
For example, the simplest zone entry for example.org can look like:
zone "example.org" { type master; file "example.org"; };
The zone is a master, as indicated by the type
statement, holding its zone information in /etc/namedb/example.org indicated by the file
statement.
zone "example.org" { type slave; file "example.org"; };
In the slave case, the zone information is transferred from the master name server for the particular zone, and saved in the file specified. If and when the master server dies or is unreachable, the slave name server will have the transferred zone information and will be able to serve it.
An example master zone file for example.org (existing within /etc/namedb/example.org) is as follows:
$TTL 3600 example.org. IN SOA ns1.example.org. admin.example.org. ( 5 ; Serial 10800 ; Refresh 3600 ; Retry 604800 ; Expire 86400 ) ; Minimum TTL ; DNS Servers @ IN NS ns1.example.org. @ IN NS ns2.example.org. ; Machine Names localhost IN A 127.0.0.1 ns1 IN A 3.2.1.2 ns2 IN A 3.2.1.3 mail IN A 3.2.1.10 @ IN A 3.2.1.30 ; Aliases www IN CNAME @ ; MX Record @ IN MX 10 mail.example.org.
Note that every hostname ending in a “.” is an exact hostname, whereas everything without a trailing “.” is referenced to the origin. For example, www is translated into www.origin. In our fictitious zone file, our origin is example.org., so www would translate to www.example.org.
The format of a zone file follows:
recordname IN recordtype value
The most commonly used DNS records:
start of zone authority
an authoritative name server
a host address
the canonical name for an alias
mail exchanger
a domain name pointer (used in reverse DNS)
example.org. IN SOA ns1.example.org. admin.example.org. ( 5 ; Serial 10800 ; Refresh after 3 hours 3600 ; Retry after 1 hour 604800 ; Expire after 1 week 86400 ) ; Minimum TTL of 1 day
the domain name, also the origin for this zone file.
the primary/authoritative name server for this zone.
the responsible person for this zone, email address with “@” replaced.
(<admin@example.org>
becomes admin.example.org)
the serial number of the file. This must be incremented each time the zone file is modified. Nowadays, many admins prefer a yyyymmddrr format for the serial number. 2001041002 would mean last modified 04/10/2001, the latter 02 being the second time the zone file has been modified this day. The serial number is important as it alerts slave name servers for a zone when it is updated.
@ IN NS ns1.example.org.
This is an NS entry. Every name server that is going to reply authoritatively for the zone must have one of these entries. The @ as seen here could have been example.org. The @ translates to the origin.
localhost IN A 127.0.0.1 ns1 IN A 3.2.1.2 ns2 IN A 3.2.1.3 mail IN A 3.2.1.10 @ IN A 3.2.1.30
The A record indicates machine names. As seen above, ns1.example.org would resolve to 3.2.1.2. Again, the origin symbol, @, is used here, thus meaning example.org would resolve to 3.2.1.30.
www IN CNAME @
The canonical name record is usually used for giving aliases to a machine. In the example, www is aliased to the machine addressed to the origin, or example.org (3.2.1.30). CNAMEs can be used to provide alias hostnames, or round robin one hostname among multiple machines.
@ IN MX 10 mail.example.org.
The MX record indicates which mail servers are responsible for handling incoming mail for the zone. mail.example.org is the hostname of the mail server, and 10 being the priority of that mail server.
One can have several mail servers, with priorities of 3, 2, 1. A mail server attempting to deliver to example.org would first try the highest priority MX, then the second highest, etc, until the mail can be properly delivered.
For in-addr.arpa zone files (reverse DNS), the same format is used, except with PTR entries instead of A or CNAME.
$TTL 3600 1.2.3.in-addr.arpa. IN SOA ns1.example.org. admin.example.org. ( 5 ; Serial 10800 ; Refresh 3600 ; Retry 604800 ; Expire 3600 ) ; Minimum @ IN NS ns1.example.org. @ IN NS ns2.example.org. 2 IN PTR ns1.example.org. 3 IN PTR ns2.example.org. 10 IN PTR mail.example.org. 30 IN PTR example.org.
This file gives the proper IP address to hostname mappings of our above fictitious domain.
A caching name server is a name server that is not authoritative for any zones. It simply asks queries of its own, and remembers them for later use. To set one up, just configure the name server as usual, omitting any inclusions of zones.
For added security you may want to run named(8) as an unprivileged user, and configure it to chroot(8) into a sandbox directory. This makes everything outside of the sandbox inaccessible to the named daemon. Should named be compromised, this will help to reduce the damage that can be caused. By default, FreeBSD has a user and a group called bind, intended for this use.
注: Various people would recommend that instead of configuring named to chroot, you should run named inside a jail(8). This section does not attempt to cover this situation.
Since named will not be able to access anything outside of the sandbox (such as shared libraries, log sockets, and so on), there are a number of steps that need to be followed in order to allow named to function correctly. In the following checklist, it is assumed that the path to the sandbox is /etc/namedb and that you have made no prior modifications to the contents of this directory. Perform the following steps as root:
Create all directories that named expects to see:
# cd /etc/namedb # mkdir -p bin dev etc var/tmp var/run master slave # chown bind:bind slave var/*
Rearrange and create basic zone and configuration files:
# cp /etc/localtime etc # mv named.conf etc && ln -sf etc/named.conf # mv named.root master # sh make-localhost # cat > master/named.localhost $ORIGIN localhost. $TTL 6h @ IN SOA localhost. postmaster.localhost. ( 1 ; serial 3600 ; refresh 1800 ; retry 604800 ; expiration 3600 ) ; minimum IN NS localhost. IN A 127.0.0.1 ^D
If you are running a version of FreeBSD prior to 4.9-RELEASE, build a statically linked copy of named-xfer, and copy it into the sandbox:
# cd /usr/src/lib/libisc # make cleandir && make cleandir && make depend && make all # cd /usr/src/lib/libbind # make cleandir && make cleandir && make depend && make all # cd /usr/src/libexec/named-xfer # make cleandir && make cleandir && make depend && make NOSHARED=yes all # cp named-xfer /etc/namedb/bin && chmod 555 /etc/namedb/bin/named-xfer
After your statically linked named-xfer is installed some cleaning up is required, to avoid leaving stale copies of libraries or programs in your source tree:
# cd /usr/src/lib/libisc # make cleandir # cd /usr/src/lib/libbind # make cleandir # cd /usr/src/libexec/named-xfer # make cleandir
# cd /usr/src && make cleandir && make cleandir
and delete your /usr/obj tree:
# rm -fr /usr/obj && mkdir /usr/obj
This will clean out any “cruft” from your source tree, and retrying the steps above should then work.
If you are running FreeBSD version 4.9-RELEASE or later, then the copy of named-xfer in /usr/libexec is statically linked by default, and you can simply use cp(1) to copy it into your sandbox.
Make a dev/null that named can see and write to:
# cd /etc/namedb/dev && mknod null c 2 2 # chmod 666 null
Symlink /var/run/ndc to /etc/namedb/var/run/ndc:
# ln -sf /etc/namedb/var/run/ndc /var/run/ndc
注: This simply avoids having to specify the
-c
option to ndc(8) every time you run it. Since the contents of /var/run are deleted on boot, it may be useful to add this command to root's crontab(5), using the@reboot
option.
Configure syslogd(8) to create
an extra log socket that named can write to. To do this, add -l
/etc/namedb/dev/log to the syslogd_flags
variable
in /etc/rc.conf.
Arrange to have named start and chroot itself to the sandbox by adding the following to /etc/rc.conf:
named_enable="YES" named_flags="-u bind -g bind -t /etc/namedb /etc/named.conf"
注: Note that the configuration file /etc/named.conf is denoted by a full pathname relative to the sandbox, i.e. in the line above, the file referred to is actually /etc/namedb/etc/named.conf.
The next step is to edit /etc/namedb/etc/named.conf so that named knows which zones to load and where to find them on the disk. There follows a commented example (anything not specifically commented here is no different from the setup for a DNS server not running in a sandbox):
options { directory "/"; named-xfer "/bin/named-xfer"; version ""; // Don't reveal BIND version query-source address * port 53; }; // ndc control socket controls { unix "/var/run/ndc" perm 0600 owner 0 group 0; }; // Zones follow: zone "localhost" IN { type master; file "master/named.localhost"; allow-transfer { localhost; }; notify no; }; zone "0.0.127.in-addr.arpa" IN { type master; file "master/localhost.rev"; allow-transfer { localhost; }; notify no; }; zone "." IN { type hint; file "master/named.root"; }; zone "private.example.net" in { type master; file "master/private.example.net.db"; allow-transfer { 192.168.10.0/24; }; }; zone "10.168.192.in-addr.arpa" in { type slave; masters { 192.168.10.2; }; file "slave/192.168.10.db"; };
After completing the steps above, either reboot your server or restart syslogd(8) and start
named(8), making
sure to use the new options specified in syslogd_flags
and named_flags
.
You should now be running a sandboxed copy of named!
Although BIND is the most common implementation of DNS, there is always the issue of security. Possible and exploitable security holes are sometimes found.
It is a good idea to read CERT's security advisories and to subscribe to the FreeBSD security notifications 郵遞論壇 to stay up to date with the current Internet and FreeBSD security issues.
提示: If a problem arises, keeping sources up to date and having a fresh build of named would not hurt.
The release of FreeBSD 5.3 brought the BIND9 DNS server software into the distribution. New security features, a new file system layout and automated chroot(8) configuration came with the import. This section has been written in two parts, the first will discuss new features and their configuration; the latter will cover upgrades to aid in move to FreeBSD 5.3. From this moment on, the server will be referred to simply as named(8) in place of BIND. This section skips over the terminology described in the previous section as well as some of the theoretical discussions; thus, it is recommended that the previous section be consulted before reading any further here.
Configuration files for named currently reside in /var/named/etc/namedb/ and will need modification before use. This is where most of the configuration will be performed.
To configure a master zone visit /var/named/etc/namedb/ and run the following command:
# sh make-localhost
If all went well a new file should exist in the master directory. The filenames should be localhost.rev for the local domain name and localhost-v6.rev for IPv6 configurations. As the default configuration file, configuration for its use will already be present in the named.conf file.
Configuration for extra domains or sub domains may be done properly by setting them as a slave zone. In most cases, the master/localhost.rev file could just be copied over into the slave directory and modified. Once completed, the files need to be properly added in named.conf such as in the following configuration for example.com:
zone "example.com" { type slave; file "slave/example.com"; masters { 10.0.0.1; }; }; zone "0.168.192.in-addr.arpa" { type slave; file "slave/0.168.192.in-addr.arpa"; masters { 10.0.0.1; }; };
Note well that in this example, the master IP address is the primary domain server from which the zones are transferred; it does not necessary serve as DNS server itself.
In order for the named daemon to start when the system is booted, the following option must be present in the rc.conf file:
named_enable="YES"
While other options exist, this is the bare minimal requirement. Consult the rc.conf(5) manual page for a list of the other options. If nothing is entered in the rc.conf file then named may be started on the command line by invoking:
# /etc/rc.d/named start
While FreeBSD automatically drops named into a chroot(8) environment; there are several other security mechanisms in place which could help to lure off possible DNS service attacks.
A query access control list can be used to restrict queries against the zones. The configuration works by defining the network inside of the acl token and then listing IP addresses in the zone configuration. To permit domains to query the example host, just define it like this:
acl "example.com" { 192.168.0.0/24; }; zone "example.com" { type slave; file "slave/example.com"; masters { 10.0.0.1; }; allow-query { example.com; }; }; zone "0.168.192.in-addr.arpa" { type slave; file "slave/0.168.192.in-addr.arpa"; masters { 10.0.0.1; }; allow-query { example.com; }; };
Permitting version lookups on the DNS server could be opening the doors for an attacker. A malicious user may use this information to hunt up known exploits or bugs to utilize against the host.
警告Setting a false version will not protect the server from exploits. Only upgrading to a version that is not vulnerable will protect your server.
A false version string can be placed the options section of named.conf:
options { directory "/etc/namedb"; pid-file "/var/run/named/pid"; dump-file "/var/dump/named_dump.db"; statistics-file "/var/stats/named.stats"; version "None of your business"; };
FreeBSD is used to run some of the busiest web sites in the world. The majority of web servers on the Internet are using the Apache HTTP Server. Apache software packages should be included on your FreeBSD installation media. If you did not install Apache when you first installed FreeBSD, then you can install it from the www/apache13 or www/apache20 port.
Once Apache has been installed successfully, it must be configured.
注: This section covers version 1.3.X of the Apache HTTP Server as that is the most widely used version for FreeBSD. Apache 2.X introduces many new technologies but they are not discussed here. For more information about Apache 2.X, please see http://httpd.apache.org/.
The main Apache HTTP Server configuration file is installed as /usr/local/etc/apache/httpd.conf on FreeBSD. This file is a typical UNIX text configuration file with comment lines beginning with the # character. A comprehensive description of all possible configuration options is outside the scope of this book, so only the most frequently modified directives will be described here.
This specifies the default directory hierarchy for the Apache installation. Binaries are stored in the bin and sbin subdirectories of the server root, and configuration files are stored in etc/apache.
The address to which problems with the server should be emailed. This address appears on some server-generated pages, such as error documents.
ServerName allows you to set a host name which is sent back to clients for your server if it is different to the one that the host is configured with (i.e., use www instead of the host's real name).
DocumentRoot: The directory out of which you will serve your documents. By default, all requests are taken from this directory, but symbolic links and aliases may be used to point to other locations.
It is always a good idea to make backup copies of your Apache configuration file before making changes. Once you are satisfied with your initial configuration you are ready to start running Apache.
Apache does not run from the inetd super server as many other network servers do. It is configured to run standalone for better performance for incoming HTTP requests from client web browsers. A shell script wrapper is included to make starting, stopping, and restarting the server as simple as possible. To start up Apache for the first time, just run:
# /usr/local/sbin/apachectl start
You can stop the server at any time by typing:
# /usr/local/sbin/apachectl stop
After making changes to the configuration file for any reason, you will need to restart the server:
# /usr/local/sbin/apachectl restart
To restart Apache without aborting current connections, run:
# /usr/local/sbin/apachectl graceful
Additional information available at apachectl(8) manual page.
To launch Apache at system startup, add the following line to /etc/rc.conf:
apache_enable="YES"
If you would like to supply additional command line options for the Apache httpd program started at system boot, you may specify them with an additional line in rc.conf:
apache_flags=""
Now that the web server is running, you can view your web site by pointing a web browser to http://localhost/. The default web page that is displayed is /usr/local/www/data/index.html.
Apache supports two different types of Virtual Hosting. The first method is Name-based Virtual Hosting. Name-based virtual hosting uses the clients HTTP/1.1 headers to figure out the hostname. This allows many different domains to share the same IP address.
To setup Apache to use Name-based Virtual Hosting add an entry like the following to your httpd.conf:
NameVirtualHost *
If your webserver was named www.domain.tld and you wanted to setup a virtual domain for www.someotherdomain.tld then you would add the following entries to httpd.conf:
<VirtualHost *> ServerName www.domain.tld DocumentRoot /www/domain.tld </VirtualHost> <VirtualHost *> ServerName www.someotherdomain.tld DocumentRoot /www/someotherdomain.tld </VirtualHost>
Replace the addresses with the addresses you want to use and the path to the documents with what you are using.
For more information about setting up virtual hosts, please consult the official Apache documentation at: http://httpd.apache.org/docs/vhosts/.
There are many different Apache modules available to add functionality to the basic server. The FreeBSD Ports Collection provides an easy way to install Apache together with some of the more popular add-on modules.
The mod_ssl module uses the OpenSSL library to provide strong cryptography via the Secure Sockets Layer (SSL v2/v3) and Transport Layer Security (TLS v1) protocols. This module provides everything necessary to request a signed certificate from a trusted certificate signing authority so that you can run a secure web server on FreeBSD.
If you have not yet installed Apache, then a version of Apache 1.3.X that includes mod_ssl may be installed with the www/apache13-modssl port. SSL support is also available for Apache 2.X in the www/apache20 port, where it is enabled by default.
In the past few years, more businesses have turned to the Internet in order to enhance their revenue and increase exposure. This has also increased the need for interactive web content. While some companies, such as Microsoft, have introduced solutions into their proprietary products, the open source community answered the call. Two options for dynamic web content include mod_perl & mod_php.
The Apache/Perl integration project brings together the full power of the Perl programming language and the Apache HTTP Server. With the mod_perl module it is possible to write Apache modules entirely in Perl. In addition, the persistent interpreter embedded in the server avoids the overhead of starting an external interpreter and the penalty of Perl start-up time.
mod_perl is available a few different ways. To use mod_perl remember that mod_perl 1.0 only works with Apache 1.3 and mod_perl 2.0 only works with Apache 2. mod_perl 1.0 is available in www/mod_perl and a statically compiled version is available in www/apache13-modperl. mod_perl 2.0 is avaliable in www/mod_perl2.
PHP, also known as “PHP: Hypertext Preprocessor” is a general-purpose scripting language that is especially suited for Web development. Capable of being embedded into HTML its syntax draws upon C, Java, and Perl with the intention of allowing web developers to write dynamically generated webpages quickly.
To gain support for PHP5 for the Apache web server, begin by installing the www/mod_php5 port.
This will install and configure the modules required to support dynamic PHP applications. Check to ensure the following lines have been added to /usr/local/etc/apache/httpd.conf:
LoadModule php5_module libexec/apache/libphp5.so AddModule mod_php5.c <IfModule mod_php5.c> DirectoryIndex index.php index.html </IfModule> <IfModule mod_php5.c> AddType application/x-httpd-php .php AddType application/x-httpd-php-source .phps </IfModule>
Once completed, a simple call to the apachectl command for a graceful restart is needed to load the PHP module:
# apachectl graceful
The PHP support in FreeBSD is extremely modular so the base install is very limited. It is very easy to add support using the lang/php5-extensions port. This port provides a menu driven interface to PHP extension installation. Alternatively, individual extensions can be installed using the appropriate port.
For instance, to add support for the MySQL database server to PHP5, simply install the databases/php5-mysql port.
After installing an extension, the Apache server must be reloaded to pick up the new configuration changes.
# apachectl graceful
The File Transfer Protocol (FTP) provides users with a simple way to transfer files to and from an FTP server. FreeBSD includes FTP server software, ftpd, in the base system. This makes setting up and administering an FTP server on FreeBSD very straightforward.
The most important configuration step is deciding which accounts will be allowed access to the FTP server. A normal FreeBSD system has a number of system accounts used for various daemons, but unknown users should not be allowed to log in with these accounts. The /etc/ftpusers file is a list of users disallowed any FTP access. By default, it includes the aforementioned system accounts, but it is possible to add specific users here that should not be allowed access to FTP.
You may want to restrict the access of some users without preventing them completely from using FTP. This can be accomplished with the /etc/ftpchroot file. This file lists users and groups subject to FTP access restrictions. The ftpchroot(5) manual page has all of the details so it will not be described in detail here.
If you would like to enable anonymous FTP access to your server, then you must create a user named ftp on your FreeBSD system. Users will then be able to log on to your FTP server with a username of ftp or anonymous and with any password (by convention an email address for the user should be used as the password). The FTP server will call chroot(2) when an anonymous user logs in, to restrict access to only the home directory of the ftp user.
There are two text files that specify welcome messages to be displayed to FTP clients. The contents of the file /etc/ftpwelcome will be displayed to users before they reach the login prompt. After a successful login, the contents of the file /etc/ftpmotd will be displayed. Note that the path to this file is relative to the login environment, so the file ~ftp/etc/ftpmotd would be displayed for anonymous users.
Once the FTP server has been configured properly, it must be enabled in /etc/inetd.conf. All that is required here is to remove the comment symbol “#” from in front of the existing ftpd line :
ftp stream tcp nowait root /usr/libexec/ftpd ftpd -l
As explained in 範例 27-1, a HangUP Signal must be sent to inetd after this configuration file is changed.
You can now log on to your FTP server by typing:
% ftp localhost
The ftpd daemon uses syslog(3) to log messages. By default, the system log daemon will put messages related to FTP in the /var/log/xferlog file. The location of the FTP log can be modified by changing the following line in /etc/syslog.conf:
ftp.info /var/log/xferlog
Be aware of the potential problems involved with running an anonymous FTP server. In particular, you should think twice about allowing anonymous users to upload files. You may find that your FTP site becomes a forum for the trade of unlicensed commercial software or worse. If you do need to allow anonymous FTP uploads, then you should set up the permissions so that these files can not be read by other anonymous users until they have been reviewed.
Samba is a popular open source software package that provides file and print services for Microsoft Windows clients. Such clients can connect to and use FreeBSD filespace as if it was a local disk drive, or FreeBSD printers as if they were local printers.
Samba software packages should be included on your FreeBSD installation media. If you did not install Samba when you first installed FreeBSD, then you can install it from the net/samba3 port or package.
A default Samba configuration file is installed as /usr/local/etc/smb.conf.default. This file must be copied to /usr/local/etc/smb.conf and customized before Samba can be used.
The smb.conf file contains runtime configuration information for Samba, such as definitions of the printers and “file system shares” that you would like to share with Windows clients. The Samba package includes a web based tool called swat which provides a simple way of configuring the smb.conf file.
The Samba Web Administration Tool (SWAT) runs as a daemon from inetd. Therefore, the following line in /etc/inetd.conf should be uncommented before swat can be used to configure Samba:
swat stream tcp nowait/400 root /usr/local/sbin/swat
As explained in 範例 27-1, a HangUP Signal must be sent to inetd after this configuration file is changed.
Once swat has been enabled in inetd.conf, you can use a browser to connect to http://localhost:901. You will first have to log on with the system root account.
Once you have successfully logged on to the main Samba configuration page, you can browse the system documentation, or begin by clicking on the
tab. The section corresponds to the variables that are set in the [global] section of /usr/local/etc/smb.conf.Whether you are using swat or editing /usr/local/etc/smb.conf directly, the first directives you are likely to encounter when configuring Samba are:
NT Domain-Name or Workgroup-Name for the computers that will be accessing this server.
This sets the NetBIOS name by which a Samba server is known. By default it is the same as the first component of the host's DNS name.
This sets the string that will be displayed with the net view command and some other networking tools that seek to display descriptive text about the server.
Two of the most important settings in /usr/local/etc/smb.conf are the security model chosen, and the backend password format for client users. The following directives control these options:
The two most common options here are security = share and security = user. If your clients use usernames that are the same as their usernames on your FreeBSD machine then you will want to use user level security. This is the default security policy and it requires clients to first log on before they can access shared resources.
In share level security, client do not need to log onto the server with a valid username and password before attempting to connect to a shared resource. This was the default security model for older versions of Samba.
Samba has several different backend authentication models. You can authenticate clients with LDAP, NIS+, a SQL database, or a modified password file. The default authentication method is smbpasswd, and that is all that will be covered here.
Assuming that the default smbpasswd backend is used, the /usr/local/private/smbpasswd file must be created to allow Samba to authenticate clients. If you would like to give all of your UNIX user accounts access from Windows clients, use the following command:
# grep -v "^#" /etc/passwd | make_smbpasswd > /usr/local/private/smbpasswd # chmod 600 /usr/local/private/smbpasswd
Please see the Samba documentation for additional information about configuration options. With the basics outlined here, you should have everything you need to start running Samba.
To enable Samba when your system boots, add the following line to /etc/rc.conf:
samba_enable="YES"
You can then start Samba at any time by typing:
# /usr/local/etc/rc.d/samba.sh start Starting SAMBA: removing stale tdbs : Starting nmbd. Starting smbd.
Samba actually consists of three separate daemons. You should see that both the nmbd and smbd daemons are started by the samba.sh script. If you enabled winbind name resolution services in smb.conf, then you will also see that the winbindd daemon is started.
You can stop Samba at any time by typing :
# /usr/local/etc/rc.d/samba.sh stop
Samba is a complex software suite with functionality that allows broad integration with Microsoft Windows networks. For more information about functionality beyond the basic installation described here, please see http://www.samba.org.
Over time, a computer's clock is prone to drift. The Network Time Protocol (NTP) is one way to ensure your clock stays accurate.
Many Internet services rely on, or greatly benefit from, computers' clocks being accurate. For example, a web server may receive requests to send a file if it has been modified since a certain time. In a local area network environment, it is essential that computers sharing files from the same file server have synchronized clocks so that file timestamps stay consistent. Services such as cron(8) also rely on an accurate system clock to run commands at the specified times.
FreeBSD ships with the ntpd(8) NTP server which can be used to query other NTP servers to set the clock on your machine or provide time services to others.
In order to synchronize your clock, you will need to find one or more NTP servers to use. Your network administrator or ISP may have set up an NTP server for this purpose——check their documentation to see if this is the case. There is an online list of publicly accessible NTP servers which you can use to find an NTP server near to you. Make sure you are aware of the policy for any servers you choose, and ask for permission if required.
Choosing several unconnected NTP servers is a good idea in case one of the servers you are using becomes unreachable or its clock is unreliable. ntpd(8) uses the responses it receives from other servers intelligently——it will favor unreliable servers less than reliable ones.
If you only wish to synchronize your clock when the machine boots up, you can use ntpdate(8). This may be appropriate for some desktop machines which are frequently rebooted and only require infrequent synchronization, but most machines should run ntpd(8).
Using ntpdate(8) at boot time is also a good idea for machines that run ntpd(8). The ntpd(8) program changes the clock gradually, whereas ntpdate(8) sets the clock, no matter how great the difference between a machine's current clock setting and the correct time.
To enable ntpdate(8) at boot
time, add ntpdate_enable="YES" to /etc/rc.conf. You will also need to specify all servers you
wish to synchronize with and any flags to be passed to ntpdate(8) in
ntpdate_flags
.
NTP is configured by the /etc/ntp.conf file in the format described in ntp.conf(5). Here is a simple example:
server ntplocal.example.com prefer server timeserver.example.org server ntp2a.example.net driftfile /var/db/ntp.drift
The server option specifies which servers are to be used, with one server listed on each line. If a server is specified with the prefer argument, as with ntplocal.example.com, that server is preferred over other servers. A response from a preferred server will be discarded if it differs significantly from other servers' responses, otherwise it will be used without any consideration to other responses. The prefer argument is normally used for NTP servers that are known to be highly accurate, such as those with special time monitoring hardware.
The driftfile option specifies which file is used to store the system clock's frequency offset. The ntpd(8) program uses this to automatically compensate for the clock's natural drift, allowing it to maintain a reasonably correct setting even if it is cut off from all external time sources for a period of time.
The driftfile option specifies which file is used to store information about previous responses from the NTP servers you are using. This file contains internal information for NTP. It should not be modified by any other process.
By default, your NTP server will be accessible to all hosts on the Internet. The restrict option in /etc/ntp.conf allows you to control which machines can access your server.
If you want to deny all machines from accessing your NTP server, add the following line to /etc/ntp.conf:
restrict default ignore
If you only want to allow machines within your own network to synchronize their clocks with your server, but ensure they are not allowed to configure the server or used as peers to synchronize against, add
restrict 192.168.1.0 mask 255.255.255.0 nomodify notrap
instead, where 192.168.1.0 is an IP address on your network and 255.255.255.0 is your network's netmask.
/etc/ntp.conf can contain multiple restrict options. For more details, see the Access Control Support subsection of ntp.conf(5).
To ensure the NTP server is started at boot time, add the line ntpd_enable="YES" to /etc/rc.conf. If
you wish to pass additional flags to ntpd(8), edit the
ntpd_flags
parameter in /etc/rc.conf.
To start the server without rebooting your machine, run ntpd being sure to specify any additional parameters from ntpd_flags
in /etc/rc.conf. For
example:
# ntpd -p /var/run/ntpd.pid
注: Under FreeBSD 4.X, you have to replace every instance of ntpd with xntpd in the options above.
The ntpd(8) program does not need a permanent connection to the Internet to function properly. However, if you have a temporary connection that is configured to dial out on demand, it is a good idea to prevent NTP traffic from triggering a dial out or keeping the connection alive. If you are using user PPP, you can use filter directives in /etc/ppp/ppp.conf. For example:
set filter dial 0 deny udp src eq 123 # Prevent NTP traffic from initiating dial out set filter dial 1 permit 0 0 set filter alive 0 deny udp src eq 123 # Prevent incoming NTP traffic from keeping the connection open set filter alive 1 deny udp dst eq 123 # Prevent outgoing NTP traffic from keeping the connection open set filter alive 2 permit 0/0 0/0
For more details see the PACKET FILTERING section in ppp(8) and the examples in /usr/share/examples/ppp/.
注: Some Internet access providers block low-numbered ports, preventing NTP from functioning since replies never reach your machine.
Documentation for the NTP server can be found in /usr/share/doc/ntp/ in HTML format.
防火牆能夠過濾你的系統中進出的流量。 防火牆也能藉由設置一或多組「規則(rules)」 來檢查你的網路連結中進出的網路封包(network packets), 並且能允許或阻擋其通過。 這些防火牆的規則可以檢查封包中的特徵, 這些特徵涵蓋,但不限於某些通訊協定類型、主機位址的來源或目的, 以及連接埠(port)的來源及目的。
防火牆能夠大幅地增強主機或是網路的安全性。 它也能夠用來執行下列事項:
保護或隔離你內部網路的應用程式、服務以及機器, 免於被來自 Internet 中你不想要的傳輸所影響
限制或禁止內部網路對 Internet 的存取服務
支援「網路位址轉換」(network address translation , NAT),它可以允許你的內部網路使用 private IP 位址並可以共同分享一個單一連線到網際網路上 (可同時用單一IP位址或是一組公共網址)
讀完這章之後,你將會知道:
如何適當地訂出封包過濾的規則。
FreeBSD 中內建的防火牆之間的差異。
如何使用及設定 OpenBSD 的 PF 防火牆。
如何使用及設定 IPFILTER。
如何使用及設定 IPFW。
在閱讀這章之前,你必須:
了解基本的 FreeBSD 和 Internet 觀念
基本上防火牆規則可分為兩種型態,分別為:「exclusive」以及 「inclusive」。 「exclusive」類似「黑名單」,它先允許所有封包通過, 然後違反規則的封包則禁止通過防火牆。 相反的,「inclusive」類似「白名單」,它先擋住所有封包通過, 然後只允許有符合規則的才可通過防火牆。
整體來說,「inclusive」式防火牆會比「exclusive」式防火牆安全些。 因為「inclusive」明顯降低了不必要的風險。
此外,使用「stateful firewall」可讓安全性更嚴密。 它會持續記錄通過防火牆開放的連線, 並且只允許符合現存或開啟新的連線才能通過防火牆。 狀態防火牆的缺點是如果在非常快的速度下開啟許多新連線, 就可能會受到阻絕式服務攻擊(DoS, Denial of Service)。 在大多數的防火牆方案中,也可以交叉運用「stateful 」及「non-stateful」 防火牆的組合,讓該網站的防火牆達到最佳化。
在 FreeBSD 基本系統中內建有三種不同的防火牆軟體套件。 它們分別是 IPFILTER (也就是 IPF)、 IPFIREWALL (也就是 IPFW), 以及OpenBSD 的 PacketFilter (即有名的 PF)。 FreeBSD 也有兩個內建的流量控管套件(基本上是控制頻寬的使用): altq(4) 以及 dummynet(4)。 通常我們習慣把 Dummynet 與 IPFW 一併運用, 而 ALTQ 則是搭配 IPF/PF 一同使用。 雖然 IPF、IPFW 以及 PF 是使用不同的實做方式及規則語法, 但是它們都使用規則來控制是否允許資料封包進出你的系統。
FreeBSD 為何會內建許多不同的防火牆軟體套件,這是因為不同人會有不同的需求 、偏好,很難說哪一個防火牆軟體套件是最好的。
而筆者偏好 IPFILTER 的原因,是因為運用在 NAT 環境的時候,它的狀態規則是相對簡單許多的。 而且它內建的 FTP 代理,也簡化了如何設定安全的對外 FTP 服務規則。
正由於所有的防火牆都是以「檢查、控制所選定之封包」的實作,所以, 制定防火牆規則的人就更必須了解 TCP/IP 如何運作, 以及如何控制封包在正常 session 的各種作用。 更詳盡的說明,請參閱: http://www.ipprimer.com/overview.cfm。
在 2003 年 6 月份,OpenBSD 的防火牆軟體 PF 被移植到 FreeBSD 中,並且收錄於 Ports Collection 內。 而 2004 年 11 月份所發行的 FreeBSD 5.3 版也是第一次將 PF 整合為基礎系統的一部分。 PF是個完備、全功能的防火牆, 並且具有選擇性 ALTQ(交錯佇列,Alternate Queuing) 的功能。 ALTQ提供了「QoS」 (Quality of Service)頻寬管制功能, 它可以用過濾規則的方式來保障各種不同服務的頻寬。 另外,OpenBSD 計劃中已經對 PF 的使用指南提供了詳盡的解說, 因此在這本手冊中我們不會作重複的贅述,而只介紹概要。
更多關於 PF 的資訊可於下列網址查詢:http://pf4freebsd.love2party.net/.
PF 在 FreeBSD 5.3 之後的系統中,就可以輕鬆使用 kernel 動態模組來載入。 在 rc.conf 中加入 pf_enable="YES" 後, 系統就會載入 PF 的 kernel 動態模組。這模組會在建立時也啟用 pflog(4) 記錄功能。
注: 這個模組會假設 kernel 內已有 options INET 和 device bpf。 除非編譯 kernel 時已在像是 make.conf(5) 設定檔中加入 NOINET6( FreeBSD 6.0 以後的版本則是 NO_INET6) 這樣才會避免不打開 IPv6 支援, 否則 pf 模組同時也需要 options INET6,也就是 IPv6 支援。
一旦載入 PF 的 kernel 模組或是靜態編譯入 kernel 內, 就可以使用 pfctl 來啟動或關閉 pf。
下面這個例子示範如何啟動 pf:
# pfctl -e
pfctl 是使用 pf 防火牆的指令。 若要了解更詳盡的 pfctl 運用,請查閱 pfctl(8) 線上手冊。
在編譯 FreeBSD kernel 時,並不必完全加入下列的選項來啟用 PF。 在這裡只是要列出給你參考的一些資訊而已。 將 PF 編譯入 kernel 中,會導致無法使用 kernel 的動態載入模組。
設定 PF 的 kernel 選項範例在 kernel 原始碼中的 /usr/src/sys/conf/NOTES,轉貼內容如下:
device pf device pflog device pfsync
device pf 是用來啟動「packet filter(封包過濾)」 的防火牆支援。
而 device pflog,此功能要裝不裝皆可,它會啟動 pflog(4),以 bpf(4) 格式來記錄網路流量。 pflogd(8) daemon 則是用來紀錄這些訊息,並存在硬碟上。
device pfsync,此功能要裝不裝皆可,它會啟動 pfsync(4),可以用來監控「狀態的改變」。 請注意: device pfsync並不是 kernel 動態模組,要使用的話, 必須要編入自訂的 kernel 中才行。
這些設定將會在你編譯及安裝好新 kernel 後才會生效。
你需要在 /etc/rc.conf 中加入下列的設定,以便在系統啟動時啟用 PF:
pf_enable="YES" # 啟用 PF (如果需要的話載入模組) pf_rules="/etc/pf.conf" # PF 防火牆規則設定檔 pf_flags="" # pfctl 啟動時的附加選項 pflog_enable="YES" # 啟動 pflogd(8) pflog_logfile="/var/log/pflog" # pflogd 儲存記錄檔案的地方 pflog_flags="" # pflogd 啟動時附加的選項
如果您的防火牆後面有個 LAN(區域網路),並要透過它來轉送封包, 就必須要設定下列選項:
gateway_enable="YES" # 啟用 LAN Gateway
ALTQ 只有在編入 FreeBSD kernel 中才能生效。 不是所有的網路卡驅動程式都支援 ALTQ。 請看 altq(4) 線上手冊來了解你使用的 FreeBSD 版本中支援驅動程式的清單。 下面所列的將會啟用 ALTQ 及其他附加功能:
options ALTQ options ALTQ_CBQ # Class Bases Queuing (CBQ) options ALTQ_RED # Random Early Detection (RED) options ALTQ_RIO # RED In/Out options ALTQ_HFSC # Hierarchical Packet Scheduler (HFSC) options ALTQ_PRIQ # Priority Queuing (PRIQ) options ALTQ_NOPCC # Required for SMP build
options ALTQ 是啟用 ALTQ 主架構。
options ALTQ_CBQ 會啟用「CBQ」 (Class Based Queuing)支援。 CBQ 允許你 divide a connection's bandwidth into different classes or queues to prioritize traffic based on filter rules.
options ALTQ_RED enables Random Early Detection (RED). RED is used to avoid network congestion. RED does this by measuring the length of the queue and comparing it to the minimum and maximum thresholds for the queue. If the queue is over the maximum all new packets will be dropped. True to its name, RED drops packets from different connections randomly.
options ALTQ_RIO enables Random Early Detection In and Out.
options ALTQ_HFSC enables the Hierarchical Fair Service Curve Packet Scheduler. For more information about HFSC see: http://www-2.cs.cmu.edu/~hzhang/HFSC/main.html.
options ALTQ_PRIQ enables Priority Queuing (PRIQ). PRIQ will always pass traffic that is in a higher queue first.
options ALTQ_NOPCC enables SMP support for ALTQ. This option is required on SMP systems.
The Packet Filter reads its configuration rules from the pf.conf(5) file and it modifies, drops or passes packets according to the rules or definitions specified there. The FreeBSD installation comes with a default /etc/pf.conf which contains useful examples and explanations.
Although FreeBSD has its own /etc/pf.conf the syntax is the same as one used in OpenBSD. A great resource for configuring the pf firewall has been written by OpenBSD team and is available at http://www.openbsd.org/faq/pf/.
警告When browsing the pf user's guide, please keep in mind that different versions of FreeBSD contain different versions of pf. The pf firewall in FreeBSD 5.X is at the level of OpenBSD version 3.5 and in FreeBSD 6.X is at the level of OpenBSD version 3.7.
The FreeBSD packet filter 郵遞論壇 is a good place to ask questions about configuring and running the pf firewall. Do not forget to check the mailing list archives before asking questions.
注: 此一節的內容仍在陸續補充、更新,所以本節內容可能並未完全符合現況。
IPFILTER 的作者為 Darren Reed。IPFILTER 並非得綁某特定作業系統才行: 它是個跨 OS 平台的 open source 應用程式,且已被移植到 FreeBSD、NetBSD、OpenBSD、SunOS、HP/UX 以及 Solaris 這些作業系統上。此外,IPFILTER 的支援、維護也相當積極,也有定期釋出的更新版。
IPFILTER is based on a kernel-side firewall and NAT mechanism that can be controlled and monitored by userland interface programs. The firewall rules can be set or deleted with the ipf(8) utility. The NAT rules can be set or deleted with the ipnat(1) utility. The ipfstat(8) utility can print run-time statistics for the kernel parts of IPFILTER. The ipmon(8) program can log IPFILTER actions to the system log files.
IPF was originally written using a rule processing logic of 「the last matching rule wins」 and used only stateless type of rules. Over time IPF has been enhanced to include a 「quick」 option and a stateful 「keep state」 option which drastically modernized the rules processing logic. IPF's official documentation covers the legacy rule coding parameters and the legacy rule file processing logic. The modernized functions are only included as additional options, completely understating their benefits in producing a far superior secure firewall.
The instructions contained in this section are based on using rules that contain the 「quick」 option and the stateful 「keep state」 option. This is the basic framework for coding an inclusive firewall rule set.
An inclusive firewall only allows packets matching the rules to pass through. This way you can control what services can originate behind the firewall destined for the public Internet and also control the services which can originate from the public Internet accessing your private network. Everything else is blocked and logged by default design. Inclusive firewalls are much, much more secure than exclusive firewall rule sets and is the only rule set type covered herein.
For detailed explanation of the legacy rules processing method see: http://www.obfuscation.org/ipf/ipf-howto.html#TOC_1 and http://coombs.anu.edu.au/~avalon/ip-filter.html.
IPF 的 FAQ 位於 http://www.phildev.net/ipf/index.html.
IPF is included in the basic FreeBSD install as a separate run time loadable module. The system will dynamically load the IPF kernel loadable module when the rc.conf statement ipfilter_enable="YES" is used. The loadable module was created with logging enabled and the default pass all options. You do not need to compile IPF into the FreeBSD kernel just to change the default to block all, you can do that by just coding a block all rule at the end of your rule set.
在編譯 FreeBSD kernel 時,並不必完全加入下列的選項來啟用 IPF。 在這裡只是要列出給你參考的一些資訊而已。 將 IPF 編譯入 kernel 中,會導致無法使用 kernel 的動態載入模組。
Sample kernel config IPF option statements are in the /usr/src/sys/conf/NOTES kernel source (/usr/src/sys/arch/conf/LINT for FreeBSD 4.X) and are reproduced here:
options IPFILTER options IPFILTER_LOG options IPFILTER_DEFAULT_BLOCK
options IPFILTER enables support for the 「IPFILTER」 firewall.
options IPFILTER_LOG enables the option to have IPF log traffic by writing to the ipl packet logging pseudo——device for every rule that has the log keyword.
options IPFILTER_DEFAULT_BLOCK changes the default behavior so any packet not matching a firewall pass rule gets blocked.
These settings will take effect only after you have built and installed a kernel with them set.
須在 /etc/rc.conf 內加入下列內容,以便在開機時就會啟用 IPF:
ipfilter_enable="YES" # Start ipf firewall ipfilter_rules="/etc/ipf.rules" # IPF 防火牆規則設定檔 ipmon_enable="YES" # 啟用 IP 監控記錄 ipmon_flags="-Ds" # D = 使用服務程序 (daemon) 啟動 # s = 使用 syslog 記錄 # v = 記錄於 tcp window, ack, seq # n = 將 IP 及 port 對應至名稱中
If you have a LAN behind this firewall that uses the reserved private IP address ranges, then you need to add the following to enable NAT functionality:
gateway_enable="YES" # 啟用 LAN Gateway ipnat_enable="YES" # Start ipnat function ipnat_rules="/etc/ipnat.rules" # rules definition file for ipnat
The ipf command is used to load your rules file. Normally you create a file containing your custom rules and use this command to replace in mass the currently running firewall internal rules:
# ipf -Fa -f /etc/ipf.rules
-Fa
means flush all internal rules tables.
-f
means this is the file to read for the rules to
load.
This gives you the ability to make changes to your custom rules file, run the above IPF command, and thus update the running firewall with a fresh copy of all the rules without having to reboot the system. This method is very convenient for testing new rules as the procedure can be executed as many times as needed.
See the ipf(8) manual page for details on the other flags available with this command.
The ipf(8) command expects the rules file to be a standard text file. It will not accept a rules file written as a script with symbolic substitution.
There is a way to build IPF rules that utilizes the power of script symbolic substitution. For more information, see µÚ 28.5.9 節.
The default behavior of ipfstat(8) is to retrieve and display the totals of the accumulated statistics gathered as a result of applying the user coded rules against packets going in and out of the firewall since it was last started, or since the last time the accumulators were reset to zero by the ipf -Z command.
See the ipfstat(8) manual page for details.
The default ipfstat(8) command output will look something like this:
input packets: blocked 99286 passed 1255609 nomatch 14686 counted 0 output packets: blocked 4200 passed 1284345 nomatch 14687 counted 0 input packets logged: blocked 99286 passed 0 output packets logged: blocked 0 passed 0 packets logged: input 0 output 0 log failures: input 3898 output 0 fragment state(in): kept 0 lost 0 fragment state(out): kept 0 lost 0 packet state(in): kept 169364 lost 0 packet state(out): kept 431395 lost 0 ICMP replies: 0 TCP RSTs sent: 0 Result cache hits(in): 1215208 (out): 1098963 IN Pullups succeeded: 2 failed: 0 OUT Pullups succeeded: 0 failed: 0 Fastroute successes: 0 failures: 0 TCP cksum fails(in): 0 (out): 0 Packet log flags set: (0)
When supplied with either -i
for inbound or -o
for outbound, it will retrieve and display the appropriate
list of filter rules currently installed and in use by the kernel.
ipfstat -in displays the inbound internal rules table with rule number.
ipfstat -on displays the outbound internal rules table with the rule number.
The output will look something like this:
@1 pass out on xl0 from any to any @2 block out on dc0 from any to any @3 pass out quick on dc0 proto tcp/udp from any to any keep state
ipfstat -ih displays the inbound internal rules table, prefixing each rule with a count of how many times the rule was matched.
ipfstat -oh displays the outbound internal rules table, prefixing each rule with a count of how many times the rule was matched.
The output will look something like this:
2451423 pass out on xl0 from any to any 354727 block out on dc0 from any to any 430918 pass out quick on dc0 proto tcp/udp from any to any keep state
One of the most important functions of the ipfstat
command is the -t
flag which displays the state table in
a way similar to the way top(1) shows the
FreeBSD running process table. When your firewall is under attack this function
gives you the ability to identify, drill down to, and see the attacking packets. The
optional sub-flags give the ability to select the destination or source IP,
port, or protocol that you want to monitor in real time. See the ipfstat(8) manual page
for details.
In order for ipmon to work properly, the kernel option
IPFILTER_LOG must be turned on. This command has two different modes that it can be
used in. Native mode is the default mode when you type the command on the command
line without the -D
flag.
Daemon mode is for when you want to have a continuous system log file available
so that you can review logging of past events. This is how FreeBSD and IPFILTER are
configured to work together. FreeBSD has a built in facility to automatically
rotate system logs. That is why outputting the log information to syslogd is
better than the default of outputting to a regular file. In the default rc.conf file you see the ipmon_flags statement uses the -Ds
flags:
ipmon_flags="-Ds" # D = start as daemon # s = log to syslog # v = log tcp window, ack, seq # n = map IP & port to names
The benefits of logging are obvious. It provides the ability to review, after the fact, information such as which packets had been dropped, what addresses they came from and where they were going. These all give you a significant edge in tracking down attackers.
Even with the logging facility enabled, IPF will not generate any rule logging on its own. The firewall administrator decides what rules in the rule set he wants to log and adds the log keyword to those rules. Normally only deny rules are logged.
It is very customary to include a default deny everything rule with the log keyword included as your last rule in the rule set. This way you get to see all the packets that did not match any of the rules in the rule set.
Syslogd uses its own special method for segregation of
log data. It uses special groupings called 「facility」 and “level”. IPMON in
-Ds
mode uses security (local0 in 4.X) as the 「facility」 name. All IPMON logged data
goes to security (local0 in 4.X).
The following levels can be used to further segregate the logged data if
desired:
LOG_INFO - packets logged using the "log" keyword as the action rather than pass or block. LOG_NOTICE - packets logged which are also passed LOG_WARNING - packets logged which are also blocked LOG_ERR - packets which have been logged and which can be considered short
To setup IPFILTER to log all data to /var/log/ipfilter.log, you will need to create the file. The following command will do that:
# touch /var/log/ipfilter.log
The syslog function is controlled by definition statements in the /etc/syslog.conf file. The syslog.conf file offers considerable flexibility in how syslog will deal with system messages issued by software applications like IPF.
Add the following statement to /etc/syslog.conf for FreeBSD 5.X and later:
security.* /var/log/ipfilter.log
Or add the following statement to /etc/syslog.conf for FreeBSD 4.X:
local0.* /var/log/ipfilter.log
The security.* (local0 for 4.X) means to write all the logged messages to the coded file location.
To activate the changes to /etc/syslog.conf you can reboot or bump the syslog task into re-reading /etc/syslog.conf by running /etc/rc.d/syslogd reload (killall -HUP syslogd in FreeBSD 4.X).
Do not forget to change /etc/newsyslog.conf to rotate the new log you just created above.
Messages generated by ipmon consist of data fields separated by white space. Fields common to all messages are:
The date of packet receipt.
The time of packet receipt. This is in the form HH:MM:SS.F, for hours, minutes, seconds, and fractions of a second (which can be several digits long).
The name of the interface the packet was processed on, e.g. dc0.
The group and rule number of the rule, e.g. @0:17.
These can be viewed with ipfstat -in.
The action: p for passed, b for blocked, S for a short packet, n did not match any rules, L for a log rule. The order of precedence in showing flags is: S, p, b, n, L. A capital P or B means that the packet has been logged due to a global logging setting, not a particular rule.
The addresses. This is actually three fields: the source address and port (separated by a comma), the -> symbol, and the destination address and port. 209.53.17.22,80 -> 198.73.220.17,1722.
PR followed by the protocol name or number, e.g. PR tcp.
len followed by the header length and total length of the packet, e.g. len 20 40.
If the packet is a TCP packet, there will be an additional field starting with a hyphen followed by letters corresponding to any flags that were set. See the ipmon(8) manual page for a list of letters and their flags.
If the packet is an ICMP packet, there will be two fields at the end, the first always being 「ICMP」, and the next being the ICMP message and sub-message type, separated by a slash, e.g. ICMP 3/3 for a port unreachable message.
Some experienced IPF users create a file containing the rules and code them in a manner compatible with running them as a script with symbolic substitution. The major benefit of doing this is that you only have to change the value associated with the symbolic name and when the script is run all the rules containing the symbolic name will have the value substituted in the rules. Being a script, you can use symbolic substitution to code frequently used values and substitute them in multiple rules. You will see this in the following example.
The script syntax used here is compatible with the sh, csh, and tcsh shells.
Symbolic substitution fields are prefixed with a dollar sign: $.
Symbolic fields do not have the $ prefix.
The value to populate the symbolic field must be enclosed with double quotes (").
Start your rule file with something like this:
############# IPF 規則命令稿的開始 ######################## oif="dc0" # 對外網路裝置的名稱 odns="192.0.2.11" # ISP 的 DNS 伺服器 IP 位址 myip="192.0.2.7" # 從我的 ISP 提供的靜態 IP ks="keep state" fks="flags S keep state" # You can choose between building /etc/ipf.rules file # from this script or running this script "as is". # # Uncomment only one line and comment out another. # # 1) This can be used for building /etc/ipf.rules: #cat > /etc/ipf.rules << EOF # # 2) This can be used to run script "as is": /sbin/ipf -Fa -f - << EOF # Allow out access to my ISP's Domain name server. pass out quick on $oif proto tcp from any to $odns port = 53 $fks pass out quick on $oif proto udp from any to $odns port = 53 $ks # Allow out non-secure standard www function pass out quick on $oif proto tcp from $myip to any port = 80 $fks # Allow out secure www function https over TLS SSL pass out quick on $oif proto tcp from $myip to any port = 443 $fks EOF ################## End of IPF rules script ########################
That is all there is to it. The rules are not important in this example; how the symbolic substitution fields are populated and used are. If the above example was in a file named /etc/ipf.rules.script, you could reload these rules by entering the following command:
# sh /etc/ipf.rules.script
There is one problem with using a rules file with embedded symbolics: IPF does not understand symbolic substitution, and cannot read such scripts directly.
This script can be used in one of two ways:
Uncomment the line that begins with cat, and comment out the line that begins with /sbin/ipf. Place ipfilter_enable="YES" into /etc/rc.conf as usual, and run script once after each modification to create or update /etc/ipf.rules.
Disable IPFILTER in system startup scripts by adding ipfilter_enable="NO" (this is default value) into /etc/rc.conf file.
Add a script like the following to your /usr/local/etc/rc.d/ startup directory. The script should have an obvious name like ipf.loadrules.sh. The .sh extension is mandatory.
#!/bin/sh sh /etc/ipf.rules.script
The permissions on this script file must be read, write, execute for owner root.
# chmod 700 /usr/local/etc/rc.d/ipf.loadrules.sh
從現在起,當系統開機時就會載入你所設的 IPF 規則。
A rule set is a group of ipf rules coded to pass or block packets based on the values contained in the packet. The bi-directional exchange of packets between hosts comprises a session conversation. The firewall rule set processes the packet two times, once on its arrival from the public Internet host and again as it leaves for its return trip back to the public Internet host. Each TCP/IP service (i.e. telnet, www, mail, etc.) is predefined by its protocol, source and destination IP address, or the source and destination port number. This is the basic selection criteria used to create rules which will pass or block services.
IPF was originally written using a rules processing logic of 「the last matching rule wins」 and used only stateless rules. Over time IPF has been enhanced to include a 「quick」 option and a stateful 「keep state」 option which drastically modernized the rule processing logic.
The instructions contained in this section are based on using rules that contain the 「quick」 option and the stateful 「keep state」 option. This is the basic framework for coding an inclusive firewall rule set.
An inclusive firewall only allows services matching the rules through. This way you can control what services can originate behind the firewall destined for the public Internet and also control the services which can originate from the public Internet accessing your private network. Everything else is blocked and logged by default design. Inclusive firewalls are much, much securer than exclusive firewall rule sets and is the only rule set type covered herein.
警告When working with the firewall rules, be very careful. Some configurations will lock you out of the server. To be on the safe side, you may wish to consider performing the initial firewall configuration from the local console rather than doing it remotely e.g. via ssh.
The rule syntax presented here has been simplified to only address the modern stateful rule context and 「first matching rule wins」 logic. For the complete legacy rule syntax description see the ipf(8) manual page.
A # character is used to mark the start of a comment and may appear at the end of a rule line or on its own line. Blank lines are ignored.
Rules contain keywords. These keywords have to be coded in a specific order from left to right on the line. Keywords are identified in bold type. Some keywords have sub-options which may be keywords themselves and also include more sub-options. Each of the headings in the below syntax has a bold section header which expands on the content.
ACTION IN-OUT OPTIONS SELECTION STATEFUL PROTO SRC_ADDR,DST_ADDR OBJECT PORT_NUM TCP_FLAG STATEFUL
ACTION = block | pass
IN-OUT = in | out
OPTIONS = log | quick | on interface-name
SELECTION = proto value | source/destination IP | port = number | flags flag-value
PROTO = tcp/udp | udp | tcp | icmp
SRC_ADD,DST_ADDR = all | from object to object
OBJECT = IP address | any
PORT_NUM = port number
TCP_FLAG = S
STATEFUL = keep state
The action indicates what to do with the packet if it matches the rest of the filter rule. Each rule must have a action. The following actions are recognized:
block indicates that the packet should be dropped if the selection parameters match the packet.
pass indicates that the packet should exit the firewall if the selection parameters match the packet.
A mandatory requirement is that each filter rule explicitly state which side of the I/O it is to be used on. The next keyword must be either in or out and one or the other has to be coded or the rule will not pass syntax checks.
in means this rule is being applied against an inbound packet which has just been received on the interface facing the public Internet.
out means this rule is being applied against an outbound packet destined for the interface facing the public Internet.
注: These options must be used in the order shown here.
log indicates that the packet header will be written to the ipl log (as described in the LOGGING section below) if the selection parameters match the packet.
quick indicates that if the selection parameters match the packet, this rule will be the last rule checked, allowing a 「short-circuit」 path to avoid processing any following rules for this packet. This option is a mandatory requirement for the modernized rules processing logic.
on indicates the interface name to be incorporated into the selection parameters. Interface names are as displayed by ifconfig(8). Using this option, the rule will only match if the packet is going through that interface in the specified direction (in/out). This option is a mandatory requirement for the modernized rules processing logic.
When a packet is logged, the headers of the packet are written to the IPL packet logging pseudo-device. Immediately following the log keyword, the following qualifiers may be used (in this order):
body indicates that the first 128 bytes of the packet contents will be logged after the headers.
first If the log keyword is being used in conjunction with a 「keep state」 option, it is recommended that this option is also applied so that only the triggering packet is logged and not every packet which thereafter matches the 「keep state」 information.
The keywords described in this section are used to describe attributes of the packet to be interrogated when determining whether rules match or not. There is a keyword subject, and it has sub-option keywords, one of which has to be selected. The following general-purpose attributes are provided for matching, and must be used in this order:
proto is the subject keyword and must be coded along with one of its corresponding keyword sub-option values. The value allows a specific protocol to be matched against. This option is a mandatory requirement for the modernized rules processing logic.
tcp/udp | udp | tcp | icmp or any protocol names found in /etc/protocols are recognized and may be used. The special protocol keyword tcp/udp may be used to match either a TCP or a UDP packet, and has been added as a convenience to save duplication of otherwise identical rules.
The all keyword is essentially a synonym for 「from any to any」 with no other match parameters.
from src to dst: the from and to keywords are used to match against IP addresses. Rules must specify BOTH source and destination parameters. any is a special keyword that matches any IP address. Examples of use: 「from any to any」 or 「from 0.0.0.0/0 to any」 or “from any to 0.0.0.0/0」 or 「from 0.0.0.0 to any” or 「from any to 0.0.0.0」.
IP addresses may be specified as a dotted IP address numeric form/mask-length, or as single dotted IP address numeric form.
There is no way to match ranges of IP addresses which do not express themselves easily as mask-length. See this web page for help on writing mask-length: http://jodies.de/ipcalc.
If a port match is included, for either or both of source and destination, then it is only applied to TCP and UDP packets. When composing port comparisons, either the service name from /etc/services or an integer port number may be used. When the port appears as part of the from object, it matches the source port number; when it appears as part of the to object, it matches the destination port number. The use of the port option with the to object is a mandatory requirement for the modernized rules processing logic. Example of use: 「from any to any port = 80」
Port comparisons may be done in a number of forms, with a number of comparison operators, or port ranges may be specified.
port "=" | "!=" | "<" | ">" | "<=" | ">=" | "eq" | "ne" | "lt" | "gt" | "le" | "ge".
To specify port ranges, port "<>" | "><"
警告Following the source and destination matching parameters, the following two parameters are mandatory requirements for the modernized rules processing logic.
Flags are only effective for TCP filtering. The letters represents one of the possible flags that can be interrogated in the TCP packet header.
The modernized rules processing logic uses the flags S parameter to identify the tcp session start request.
keep state indicates that on a pass rule, any packets that match the rules selection parameters should activate the stateful filtering facility.
注: This option is a mandatory requirement for the modernized rules processing logic.
Stateful filtering treats traffic as a bi-directional exchange of packets comprising a session conversation. When activated, keep-state dynamically generates internal rules for each anticipated packet being exchanged during the bi-directional session conversation. It has the interrogation abilities to determine if the session conversation between the originating sender and the destination are following the valid procedure of bi-directional packet exchange. Any packets that do not properly fit the session conversation template are automatically rejected as impostors.
Keep state will also allow ICMP packets related to a TCP or UDP session through. So if you get ICMP type 3 code 4 in response to some web surfing allowed out by a keep state rule, they will be automatically allowed in. Any packet that IPF can be certain is part of an active session, even if it is a different protocol, will be let in.
What happens is:
Packets destined to go out the interface connected to the public Internet are first checked against the dynamic state table, if the packet matches the next expected packet comprising in a active session conversation, then it exits the firewall and the state of the session conversation flow is updated in the dynamic state table, the remaining packets get checked against the outbound rule set.
Packets coming in to the interface connected to the public Internet are first checked against the dynamic state table, if the packet matches the next expected packet comprising a active session conversation, then it exits the firewall and the state of the session conversation flow is updated in the dynamic state table, the remaining packets get checked against the inbound rule set.
When the conversation completes it is removed from the dynamic state table.
Stateful filtering allows you to focus on blocking/passing new sessions. If the new session is passed, all its subsequent packets will be allowed through automatically and any impostors automatically rejected. If a new session is blocked, none of its subsequent packets will be allowed through. Stateful filtering has technically advanced interrogation abilities capable of defending against the flood of different attack methods currently employed by attackers.
The following rule set is an example of how to code a very secure inclusive type of firewall. An inclusive firewall only allows services matching pass rules through and blocks all other by default. All firewalls have at the minimum two interfaces which have to have rules to allow the firewall to function.
All UNIX flavored systems including FreeBSD are designed to use interface lo0 and IP address 127.0.0.1 for internal communication within the operating system. The firewall rules must contain rules to allow free unmolested movement of these special internally used packets.
The interface which faces the public Internet is the one where you place your rules to authorize and control access out to the public Internet and access requests arriving from the public Internet. This can be your user PPP tun0 interface or your NIC that is connected to your DSL or cable modem.
In cases where one or more NICs are cabled to private LANs behind the firewall, those interfaces must have a rule coded to allow free unmolested movement of packets originating from those LAN interfaces.
The rules should be first organized into three major sections: all the free unmolested interfaces, the public interface outbound, and the public interface inbound.
The rules in each of the public interface sections should have the most frequently matched rules placed before less commonly matched rules, with the last rule in the section blocking and logging all packets on that interface and direction.
The Outbound section in the following rule set only contains 'pass' rules which contain selection values that uniquely identify the service that is authorized for public Internet access. All the rules have the 'quick', 'on', 'proto', 'port', and 'keep state' option coded. The 'proto tcp' rules have the 'flag' option included to identify the session start request as the triggering packet to activate the stateful facility.
The Inbound section has all the blocking of undesirable packets first, for two different reasons. The first is that these things being blocked may be part of an otherwise valid packet which may be allowed in by the later authorized service rules. The second reason is that by having a rule that explicitly blocks selected packets that I receive on an infrequent basis and that I do not want to see in the log, they will not be caught by the last rule in the section which blocks and logs all packets which have fallen through the rules. The last rule in the section which blocks and logs all packets is how you create the legal evidence needed to prosecute the people who are attacking your system.
Another thing you should take note of, is there is no response returned for any of the undesirable stuff, their packets just get dropped and vanish. This way the attacker has no knowledge if his packets have reached your system. The less the attackers can learn about your system, the more time they must invest before actually doing something bad. The inbound 'nmap OS fingerprint' attempts rule I log the first occurrence because this is something a attacker would do.
Any time you see log messages on a rule with 'log first'. You should do an ipfstat -hio command to see the number of times the rule has been matched so you know if you are being flooded, i.e. under attack.
When you log packets with port numbers you do not recognize, look it up in /etc/services or go to http://www.securitystats.com/tools/portsearch.php and do a port number lookup to find what the purpose of that port number is.
Check out this link for port numbers used by Trojans http://www.simovits.com/trojans/trojans.html.
The following rule set is a complete very secure 'inclusive' type of firewall rule set that I have used on my system. You can not go wrong using this rule set for your own. Just comment out any pass rules for services that you do not want to authorize.
If you see messages in your log that you want to stop seeing just add a block rule in the inbound section.
You have to change the dc0 interface name in every rule to the interface name of the Nic card that connects your system to the public Internet. For user PPP it would be tun0.
Add the following statements to /etc/ipf.rules:
################################################################# # No restrictions on Inside LAN Interface for private network # Not needed unless you have LAN ################################################################# #pass out quick on xl0 all #pass in quick on xl0 all ################################################################# # No restrictions on Loopback Interface ################################################################# pass in quick on lo0 all pass out quick on lo0 all ################################################################# # Interface facing Public Internet (Outbound Section) # Interrogate session start requests originating from behind the # firewall on the private network # or from this gateway server destine for the public Internet. ################################################################# # Allow out access to my ISP's Domain name server. # xxx must be the IP address of your ISP's DNS. # Dup these lines if your ISP has more than one DNS server # Get the IP addresses from /etc/resolv.conf file pass out quick on dc0 proto tcp from any to xxx port = 53 flags S keep state pass out quick on dc0 proto udp from any to xxx port = 53 keep state # Allow out access to my ISP's DHCP server for cable or DSL networks. # This rule is not needed for 'user ppp' type connection to the # public Internet, so you can delete this whole group. # Use the following rule and check log for IP address. # Then put IP address in commented out rule & delete first rule pass out log quick on dc0 proto udp from any to any port = 67 keep state #pass out quick on dc0 proto udp from any to z.z.z.z port = 67 keep state # Allow out non-secure standard www function pass out quick on dc0 proto tcp from any to any port = 80 flags S keep state # Allow out secure www function https over TLS SSL pass out quick on dc0 proto tcp from any to any port = 443 flags S keep state # Allow out send & get email function pass out quick on dc0 proto tcp from any to any port = 110 flags S keep state pass out quick on dc0 proto tcp from any to any port = 25 flags S keep state # Allow out Time pass out quick on dc0 proto tcp from any to any port = 37 flags S keep state # Allow out nntp news pass out quick on dc0 proto tcp from any to any port = 119 flags S keep state # Allow out gateway & LAN users non-secure FTP ( both passive & active modes) # This function uses the IPNAT built in FTP proxy function coded in # the nat rules file to make this single rule function correctly. # If you want to use the pkg_add command to install application packages # on your gateway system you need this rule. pass out quick on dc0 proto tcp from any to any port = 21 flags S keep state # Allow out secure FTP, Telnet, and SCP # This function is using SSH (secure shell) pass out quick on dc0 proto tcp from any to any port = 22 flags S keep state # Allow out non-secure Telnet pass out quick on dc0 proto tcp from any to any port = 23 flags S keep state # Allow out FBSD CVSUP function pass out quick on dc0 proto tcp from any to any port = 5999 flags S keep state # Allow out ping to public Internet pass out quick on dc0 proto icmp from any to any icmp-type 8 keep state # Allow out whois for LAN PC to public Internet pass out quick on dc0 proto tcp from any to any port = 43 flags S keep state # Block and log only the first occurrence of everything # else that's trying to get out. # This rule enforces the block all by default logic. block out log first quick on dc0 all ################################################################# # Interface facing Public Internet (Inbound Section) # Interrogate packets originating from the public Internet # destine for this gateway server or the private network. ################################################################# # Block all inbound traffic from non-routable or reserved address spaces block in quick on dc0 from 192.168.0.0/16 to any #RFC 1918 private IP block in quick on dc0 from 172.16.0.0/12 to any #RFC 1918 private IP block in quick on dc0 from 10.0.0.0/8 to any #RFC 1918 private IP block in quick on dc0 from 127.0.0.0/8 to any #loopback block in quick on dc0 from 0.0.0.0/8 to any #loopback block in quick on dc0 from 169.254.0.0/16 to any #DHCP auto-config block in quick on dc0 from 192.0.2.0/24 to any #reserved for docs block in quick on dc0 from 204.152.64.0/23 to any #Sun cluster interconnect block in quick on dc0 from 224.0.0.0/3 to any #Class D & E multicast ##### Block a bunch of different nasty things. ############ # That I do not want to see in the log # Block frags block in quick on dc0 all with frags # Block short tcp packets block in quick on dc0 proto tcp all with short # block source routed packets block in quick on dc0 all with opt lsrr block in quick on dc0 all with opt ssrr # Block nmap OS fingerprint attempts # Log first occurrence of these so I can get their IP address block in log first quick on dc0 proto tcp from any to any flags FUP # Block anything with special options block in quick on dc0 all with ipopts # Block public pings block in quick on dc0 proto icmp all icmp-type 8 # Block ident block in quick on dc0 proto tcp from any to any port = 113 # Block all Netbios service. 137=name, 138=datagram, 139=session # Netbios is MS/Windows sharing services. # Block MS/Windows hosts2 name server requests 81 block in log first quick on dc0 proto tcp/udp from any to any port = 137 block in log first quick on dc0 proto tcp/udp from any to any port = 138 block in log first quick on dc0 proto tcp/udp from any to any port = 139 block in log first quick on dc0 proto tcp/udp from any to any port = 81 # Allow traffic in from ISP's DHCP server. This rule must contain # the IP address of your ISP's DHCP server as it's the only # authorized source to send this packet type. Only necessary for # cable or DSL configurations. This rule is not needed for # 'user ppp' type connection to the public Internet. # This is the same IP address you captured and # used in the outbound section. pass in quick on dc0 proto udp from z.z.z.z to any port = 68 keep state # Allow in standard www function because I have apache server pass in quick on dc0 proto tcp from any to any port = 80 flags S keep state # Allow in non-secure Telnet session from public Internet # labeled non-secure because ID/PW passed over public Internet as clear text. # Delete this sample group if you do not have telnet server enabled. #pass in quick on dc0 proto tcp from any to any port = 23 flags S keep state # Allow in secure FTP, Telnet, and SCP from public Internet # This function is using SSH (secure shell) pass in quick on dc0 proto tcp from any to any port = 22 flags S keep state # Block and log only first occurrence of all remaining traffic # coming into the firewall. The logging of only the first # occurrence stops a .denial of service. attack targeted # at filling up your log file space. # This rule enforces the block all by default logic. block in log first quick on dc0 all ################### End of rules file #####################################
NAT stands for Network Address Translation. To those familiar with Linux, this concept is called IP Masquerading; NAT and IP Masquerading are the same thing. One of the many things the IPF NAT function enables is the ability to have a private Local Area Network (LAN) behind the firewall sharing a single ISP assigned IP address on the public Internet.
You may ask why would someone want to do this. ISPs normally assign a dynamic IP address to their non-commercial users. Dynamic means that the IP address can be different each time you dial in and log on to your ISP, or for cable and DSL modem users when you power off and then power on your modems you can get assigned a different IP address. This IP address is how you are known to the public Internet.
Now lets say you have five PCs at home and each one needs Internet access. You would have to pay your ISP for an individual Internet account for each PC and have five phone lines.
With NAT you only need a single account with your ISP, then cable your other four PCs to a switch and the switch to the NIC in your FreeBSD system which is going to service your LAN as a gateway. NAT will automatically translate the private LAN IP address for each separate PC on the LAN to the single public IP address as it exits the firewall bound for the public Internet. It also does the reverse translation for returning packets.
NAT is most often accomplished without the approval, or knowledge, of your ISP and in most cases is grounds for your ISP terminating your account if found out. Commercial users pay a lot more for their Internet connection and usually get assigned a block of static IP address which never change. The ISP also expects and consents to their Commercial customers using NAT for their internal private LANs.
There is a special range of IP addresses reserved for NATed private LAN IP address. According to RFC 1918, you can use the following IP ranges for private nets which will never be routed directly to the public Internet:
NAT rules are loaded by using the ipnat command. Typically the NAT rules are stored in /etc/ipnat.rules. See ipnat(1) for details.
When changing the NAT rules after
NAT has been started, make your changes
to the file containing the NAT rules, then run ipnat command with the -CF
flags to delete the internal in use NAT rules and flush the contents of the
translation table of all active entries.
To reload the NAT rules issue a command like this:
# ipnat -CF -f /etc/ipnat.rules
To display some statistics about your NAT, use this command:
# ipnat -s
To list the NAT table's current mappings, use this command:
# ipnat -l
To turn verbose mode on, and display information relating to rule processing and active rules/table entries:
# ipnat -v
NAT rules are very flexible and can accomplish many different things to fit the needs of commercial and home users.
The rule syntax presented here has been simplified to what is most commonly used in a non-commercial environment. For a complete rule syntax description see the ipnat(5) manual page.
The syntax for a NAT rule looks something like this:
map IF LAN_IP_RANGE -> PUBLIC_ADDRESS
The keyword map starts the rule.
Replace IF with the external interface.
The LAN_IP_RANGE is what your internal clients use for IP Addressing, usually this is something like 192.168.1.0/24.
The PUBLIC_ADDRESS can either be the external IP address or the special keyword 0/32, which means to use the IP address assigned to IF.
A packet arrives at the firewall from the LAN with a public destination. It passes through the outbound filter rules, NAT gets his turn at the packet and applies its rules top down, first matching rule wins. NAT tests each of its rules against the packets interface name and source IP address. When a packets interface name matches a NAT rule then the [source IP address, i.e. private LAN IP address] of the packet is checked to see if it falls within the IP address range specified to the left of the arrow symbol on the NAT rule. On a match the packet has its source IP address rewritten with the public IP address obtained by the 0/32 keyword. NAT posts a entry in its internal NAT table so when the packet returns from the public Internet it can be mapped back to its original private IP address and then passed to the filter rules for processing.
To enable IPNAT add these statements to /etc/rc.conf.
To enable your machine to route traffic between interfaces:
gateway_enable="YES"
To start IPNAT automatically each time:
ipnat_enable="YES"
To specify where to load the IPNAT rules from:
ipnat_rules="/etc/ipnat.rules"
For networks that have large numbers of PC's on the LAN or networks with more than a single LAN, the process of funneling all those private IP addresses into a single public IP address becomes a resource problem that may cause problems with the same port numbers being used many times across many NATed LAN PC's, causing collisions. There are two ways to relieve this resource problem.
A normal NAT rule would look like:
map dc0 192.168.1.0/24 -> 0/32
In the above rule the packet's source port is unchanged as the packet passes through IPNAT. By adding the portmap keyword you can tell IPNAT to only use source ports in a range. For example the following rule will tell IPNAT to modify the source port to be within that range:
map dc0 192.168.1.0/24 -> 0/32 portmap tcp/udp 20000:60000
Additionally we can make things even easier by using the auto keyword to tell IPNAT to determine by itself which ports are available to use:
map dc0 192.168.1.0/24 -> 0/32 portmap tcp/udp auto
In very large LANs there comes a point where there are just too many LAN addresses to fit into a single public address. By changing the following rule:
map dc0 192.168.1.0/24 -> 204.134.75.1
Currently this rule maps all connections through 204.134.75.1. This can be changed to specify a range:
map dc0 192.168.1.0/24 -> 204.134.75.1-10
Or a subnet using CIDR notation such as:
map dc0 192.168.1.0/24 -> 204.134.75.0/24
A very common practice is to have a web server, email server, database server and DNS server each segregated to a different PC on the LAN. In this case the traffic from these servers still have to be NATed, but there has to be some way to direct the inbound traffic to the correct LAN PCs. IPNAT has the redirection facilities of NAT to solve this problem. Lets say you have your web server on LAN address 10.0.10.25 and your single public IP address is 20.20.20.5 you would code the rule like this:
rdr dc0 20.20.20.5/32 port 80 -> 10.0.10.25 port 80
or:
rdr dc0 0/32 port 80 -> 10.0.10.25 port 80
or for a LAN DNS Server on LAN address of 10.0.10.33 that needs to receive public DNS requests:
rdr dc0 20.20.20.5/32 port 53 -> 10.0.10.33 port 53 udp
FTP is a dinosaur left over from the time before the Internet as it is known today, when research universities were leased lined together and FTP was used to share files among research Scientists. This was a time when data security was not a consideration. Over the years the FTP protocol became buried into the backbone of the emerging Internet and its username and password being sent in clear text was never changed to address new security concerns. FTP has two flavors, it can run in active mode or passive mode. The difference is in how the data channel is acquired. Passive mode is more secure as the data channel is acquired be the ordinal ftp session requester. For a real good explanation of FTP and the different modes see http://www.slacksite.com/other/ftp.html.
IPNAT has a special built in FTP proxy option which can be specified on the NAT map rule. It can monitor all outbound packet traffic for FTP active or passive start session requests and dynamically create temporary filter rules containing only the port number really in use for the data channel. This eliminates the security risk FTP normally exposes the firewall to from having large ranges of high order port numbers open.
This rule will handle all the traffic for the internal LAN:
map dc0 10.0.10.0/29 -> 0/32 proxy port 21 ftp/tcp
This rule handles the FTP traffic from the gateway:
map dc0 0.0.0.0/0 -> 0/32 proxy port 21 ftp/tcp
This rule handles all non-FTP traffic from the internal LAN:
map dc0 10.0.10.0/29 -> 0/32
The FTP map rule goes before our regular map rule. All packets are tested against the first rule from the top. Matches on interface name, then private LAN source IP address, and then is it a FTP packet. If all that matches then the special FTP proxy creates temp filter rules to let the FTP session packets pass in and out, in addition to also NATing the FTP packets. All LAN packets that are not FTP do not match the first rule and fall through to the third rule and are tested, matching on interface and source IP, then are NATed.
Only one filter rule is needed for FTP if the NAT FTP proxy is used.
Without the FTP Proxy you will need the following three rules:
# Allow out LAN PC client FTP to public Internet # Active and passive modes pass out quick on rl0 proto tcp from any to any port = 21 flags S keep state # Allow out passive mode data channel high order port numbers pass out quick on rl0 proto tcp from any to any port > 1024 flags S keep state # Active mode let data channel in from FTP server pass in quick on rl0 proto tcp from any to any port = 20 flags S keep state
As of FreeBSD 4.9 which includes IPFILTER version 3.4.31 the FTP proxy works as documented during the FTP session until the session is told to close. When the close happens packets returning from the remote FTP server are blocked and logged coming in on port 21. The NAT FTP/proxy appears to remove its temp rules prematurely, before receiving the response from the remote FTP server acknowledging the close. A problem report was posted to the IPF mailing list.
The solution is to add a filter rule to get rid of these unwanted log messages or do nothing and ignore FTP inbound error messages in your log. Most people do not use outbound FTP too often.
block in quick on rl0 proto tcp from any to any port = 21
注: 此一節的內容仍在陸續補充、更新,所以本節內容可能並未完全符合現況。.
The IPFIREWALL (IPFW) is a FreeBSD sponsored firewall software application authored and maintained by FreeBSD volunteer staff members. It uses the legacy stateless rules and a legacy rule coding technique to achieve what is referred to as Simple Stateful logic.
The IPFW sample rule set (found in /etc/rc.firewall) in the standard FreeBSD install is rather simple and it is not expected that it used directly without modifications. The example does not use stateful filtering, which is beneficial in most setups, so it will not be used as base for this section.
The IPFW stateless rule syntax is empowered with technically sophisticated selection capabilities which far surpasses the knowledge level of the customary firewall installer. IPFW is targeted at the professional user or the advanced technical computer hobbyist who have advanced packet selection requirements. A high degree of detailed knowledge into how different protocols use and create their unique packet header information is necessary before the power of the IPFW rules can be unleashed. Providing that level of explanation is out of the scope of this section of the handbook.
IPFW is composed of seven components, the primary component is the kernel firewall filter rule processor and its integrated packet accounting facility, the logging facility, the 'divert' rule which triggers the NAT facility, and the advanced special purpose facilities, the dummynet traffic shaper facilities, the 'fwd rule' forward facility, the bridge facility, and the ipstealth facility.
IPFW is included in the basic FreeBSD install as a separate run time loadable module. The system will dynamically load the kernel module when the rc.conf statement firewall_enable="YES" is used. You do not need to compile IPFW into the FreeBSD kernel unless you want NAT function enabled.
After rebooting your system with firewall_enable="YES" in rc.conf the following white highlighted message is displayed on the screen as part of the boot process:
ipfw2 initialized, divert disabled, rule-based forwarding disabled, default to deny, logging disabled
The loadable module does have logging ability compiled in. To enable logging and set the verbose logging limit, there is a knob you can set in /etc/sysctl.conf by adding these statements, logging will be enabled on future reboots:
net.inet.ip.fw.verbose=1 net.inet.ip.fw.verbose_limit=5
It is not a mandatory requirement that you enable IPFW by compiling the following options into the FreeBSD kernel unless you need NAT function. It is presented here as background information.
options IPFIREWALL
This option enables IPFW as part of the kernel
options IPFIREWALL_VERBOSE
Enables logging of packets that pass through IPFW and have the 'log' keyword specified in the rule set.
options IPFIREWALL_VERBOSE_LIMIT=5
Limits the number of packets logged through syslogd(8) on a per entry basis. You may wish to use this option in hostile environments which you want to log firewall activity. This will close a possible denial of service attack via syslog flooding.
options IPFIREWALL_DEFAULT_TO_ACCEPT
This option will allow everything to pass through the firewall by default, which is a good idea when you are first setting up your firewall.
options IPV6FIREWALL options IPV6FIREWALL_VERBOSE options IPV6FIREWALL_VERBOSE_LIMIT options IPV6FIREWALL_DEFAULT_TO_ACCEPT
These options are exactly the same as the IPv4 options but they are for IPv6. If you do not use IPv6 you might want to use IPV6FIREWALL without any rules to block all IPv6
options IPDIVERT
This enables the use of NAT functionality.
注: If you do not include IPFIREWALL_DEFAULT_TO_ACCEPT or set your rules to allow incoming packets you will block all packets going to and from this machine.
If you do not have IPFW compiled into your kernel you will need to load it with the following statement in your /etc/rc.conf:
firewall_enable="YES"
Set the script to run to activate your rules:
firewall_script="/etc/ipfw.rules"
Enable logging:
firewall_logging="YES"
警告The only thing that the
firewall_logging
variable will do is setting thenet.inet.ip.fw.verbose
sysctl variable to the value of 1 (see µÚ 28.6.1 節). There is no rc.conf variable to set log limitations, but it can be set via sysctl variable, manually or from the /etc/sysctl.conf file:net.inet.ip.fw.verbose_limit=5
If your machine is acting as a gateway, i.e. providing Network Address Translation (NAT) via natd(8), please refer to µÚ 29.9 節 for information regarding the required /etc/rc.conf options.
The ipfw command is the normal vehicle for making manual single rule additions or deletions to the firewall active internal rules while it is running. The problem with using this method is once your system is shutdown or halted all the rules you added or changed or deleted are lost. Writing all your rules in a file and using that file to load the rules at boot time, or to replace in mass the currently running firewall rules with changes you made to the files content is the recommended method used here.
The ipfw command is still a very useful to display the running firewall rules to the console screen. The IPFW accounting facility dynamically creates a counter for each rule that counts each packet that matches the rule. During the process of testing a rule, listing the rule with its counter is the one of the ways of determining if the rule is functioning.
To list all the rules in sequence:
# ipfw list
To list all the rules with a time stamp of when the last time the rule was matched:
# ipfw -t list
To list the accounting information, packet count for matched rules along with the rules themselves. The first column is the rule number, followed by the number of outgoing matched packets, followed by the number of incoming matched packets, and then the rule itself.
# ipfw -a list
List the dynamic rules in addition to the static rules:
# ipfw -d list
Also show the expired dynamic rules:
# ipfw -d -e list
Zero the counters:
# ipfw zero
Zero the counters for just rule NUM:
# ipfw zero NUM
A rule set is a group of ipfw rules coded to allow or deny packets based on the values contained in the packet. The bi-directional exchange of packets between hosts comprises a session conversation. The firewall rule set processes the packet twice: once on its arrival from the public Internet host and again as it leaves for its return trip back to the public Internet host. Each tcp/ip service (i.e. telnet, www, mail, etc.) is predefined by its protocol, and port number. This is the basic selection criteria used to create rules which will allow or deny services.
When a packet enters the firewall it is compared against the first rule in the rule set and progress one rule at a time moving from top to bottom of the set in ascending rule number sequence order. When the packet matches a rule selection parameters, the rules action field value is executed and the search of the rule set terminates for that packet. This is referred to as 「the first match wins」 search method. If the packet does not match any of the rules, it gets caught by the mandatory ipfw default rule, number 65535 which denies all packets and discards them without any reply back to the originating destination.
注: The search continues after count, skipto and tee rules.
The instructions contained here are based on using rules that contain the stateful 'keep state', 'limit', 'in'/'out', and via options. This is the basic framework for coding an inclusive type firewall rule set.
An inclusive firewall only allows services matching the rules through. This way you can control what services can originate behind the firewall destine for the public Internet and also control the services which can originate from the public Internet accessing your private network. Everything else is denied by default design. Inclusive firewalls are much, much more secure than exclusive firewall rule sets and is the only rule set type covered here in.
警告When working with the firewall rules be careful, you can end up locking your self out.
The rule syntax presented here has been simplified to what is necessary to create a standard inclusive type firewall rule set. For a complete rule syntax description see the ipfw(8) manual page.
Rules contain keywords: these keywords have to be coded in a specific order from left to right on the line. Keywords are identified in bold type. Some keywords have sub-options which may be keywords them selves and also include more sub-options.
# is used to mark the start of a comment and may appear at the end of a rule line or on its own lines. Blank lines are ignored.
CMD RULE_NUMBER ACTION LOGGING SELECTION STATEFUL
A rule can be associated with one of the following actions, which will be executed when the packet matches the selection criterion of the rule.
allow | accept | pass | permit
These all mean the same thing which is to allow packets that match the rule to exit the firewall rule processing. The search terminates at this rule.
check-state
Checks the packet against the dynamic rules table. If a match is found, execute the action associated with the rule which generated this dynamic rule, otherwise move to the next rule. The check-state rule does not have selection criterion. If no check-state rule is present in the rule set, the dynamic rules table is checked at the first keep-state or limit rule.
deny | drop
Both words mean the same thing which is to discard packets that match this rule. The search terminates.
log
or logamount
When a packet matches a rule with the log keyword, a message will be logged to syslogd with a facility name of SECURITY. The logging only occurs if the number of packets logged so far for that particular rule does not exceed the logamount parameter. If no logamount is specified, the limit is taken from the sysctl variable net.inet.ip.fw.verbose_limit. In both cases, a value of zero removes the logging limit. Once the limit is reached, logging can be re-enabled by clearing the logging counter or the packet counter for that rule, see the ipfw reset log command.
注: Logging is done after all other packet matching conditions have been successfully verified, and before performing the final action (accept, deny) on the packet. It is up to you to decide which rules you want to enable logging on.
The keywords described in this section are used to describe attributes of the packet to be interrogated when determining whether rules match the packet or not. The following general-purpose attributes are provided for matching, and must be used in this order:
udp | tcp | icmp
or any protocol names found in /etc/protocols are recognized and may be used. The value specified is protocol to be matched against. This is a mandatory requirement.
from src to dst
The from and to keywords are used to match against IP addresses. Rules must specify BOTH source and destination parameters. any is a special keyword that matches any IP address. me is a special keyword that matches any IP address configured on an interface in your FreeBSD system to represent the PC the firewall is running on (i.e. this box) as in 'from me to any' or 'from any to me' or 'from 0.0.0.0/0 to any' or 'from any to 0.0.0.0/0' or 'from 0.0.0.0 to any' or 'from any to 0.0.0.0' or 'from me to 0.0.0.0'. IP addresses are specified as a dotted IP address numeric form/mask-length, or as single dotted IP address numeric form. This is a mandatory requirement. See this link for help on writing mask-lengths. http://jodies.de/ipcalc
port number
For protocols which support port numbers (such as TCP and UDP). It is mandatory that you code the port number of the service you want to match on. Service names (from /etc/services) may be used instead of numeric port values.
in | out
Matches incoming or outgoing packets, respectively. The in and out are keywords and it is mandatory that you code one or the other as part of your rule matching criterion.
via IF
Matches packets going through the interface specified by exact name. The via keyword causes the interface to always be checked as part of the match process.
setup
This is a mandatory keyword that identifies the session start request for TCP packets.
keep-state
This is a mandatory> keyword. Upon a match, the firewall will create a dynamic rule, whose default behavior is to match bidirectional traffic between source and destination IP/port using the same protocol.
limit {src-addr | src-port | dst-addr |
dst-port}
The firewall will only allow N connections with the same set of parameters as specified in the rule. One or more of source and destination addresses and ports can be specified. The 'limit' and 'keep-state' can not be used on same rule. Limit provides the same stateful function as 'keep-state' plus its own functions.
Stateful filtering treats traffic as a bi-directional exchange of packets comprising a session conversation. It has the interrogation abilities to determine if the session conversation between the originating sender and the destination are following the valid procedure of bi-directional packet exchange. Any packets that do not properly fit the session conversation template are automatically rejected as impostors.
'check-state' is used to identify where in the IPFW rules set the packet is to be tested against the dynamic rules facility. On a match the packet exits the firewall to continue on its way and a new rule is dynamic created for the next anticipated packet being exchanged during this bi-directional session conversation. On a no match the packet advances to the next rule in the rule set for testing.
The dynamic rules facility is vulnerable to resource depletion from a SYN-flood attack which would open a huge number of dynamic rules. To counter this attack, FreeBSD version 4.5 added another new option named limit. This option is used to limit the number of simultaneous session conversations by interrogating the rules source or destinations fields as directed by the limit option and using the packet's IP address found there, in a search of the open dynamic rules counting the number of times this rule and IP address combination occurred, if this count is greater that the value specified on the limit option, the packet is discarded.
The benefits of logging are obvious: it provides the ability to review after the fact the rules you activated logging on which provides information like, what packets had been dropped, what addresses they came from, where they were going, giving you a significant edge in tracking down attackers.
Even with the logging facility enabled, IPFW will not generate any rule logging on it's own. The firewall administrator decides what rules in the rule set he wants to log and adds the log verb to those rules. Normally only deny rules are logged, like the deny rule for incoming ICMP pings. It is very customary to duplicate the ipfw default deny everything rule with the log verb included as your last rule in the rule set. This way you get to see all the packets that did not match any of the rules in the rule set.
Logging is a two edged sword, if you are not careful, you can lose yourself in the over abundance of log data and fill your disk up with growing log files. DoS attacks that fill up disk drives is one of the oldest attacks around. These log message are not only written to syslogd, but also are displayed on the root console screen and soon become very annoying.
The IPFIREWALL_VERBOSE_LIMIT=5 kernel option limits the number of consecutive messages sent to the system logger syslogd, concerning the packet matching of a given rule. When this option is enabled in the kernel, the number of consecutive messages concerning a particular rule is capped at the number specified. There is nothing to be gained from 200 log messages saying the same identical thing. For instance, five consecutive messages concerning a particular rule would be logged to syslogd, the remainder identical consecutive messages would be counted and posted to the syslogd with a phrase like this:
last message repeated 45 times
All logged packets messages are written by default to /var/log/security file, which is defined in the /etc/syslog.conf file.
Most experienced IPFW users create a file containing the rules and code them in a manner compatible with running them as a script. The major benefit of doing this is the firewall rules can be refreshed in mass without the need of rebooting the system to activate the new rules. This method is very convenient in testing new rules as the procedure can be executed as many times as needed. Being a script, you can use symbolic substitution to code frequent used values and substitution them in multiple rules. You will see this in the following example.
The script syntax used here is compatible with the 'sh', 'csh', 'tcsh' shells. Symbolic substitution fields are prefixed with a dollar sign $. Symbolic fields do not have the $ prefix. The value to populate the Symbolic field must be enclosed to "double quotes".
Start your rules file like this:
############### start of example ipfw rules script ############# # ipfw -q -f flush # Delete all rules # Set defaults oif="tun0" # out interface odns="192.0.2.11" # ISP's DNS server IP address cmd="ipfw -q add " # build rule prefix ks="keep-state" # just too lazy to key this each time $cmd 00500 check-state $cmd 00502 deny all from any to any frag $cmd 00501 deny tcp from any to any established $cmd 00600 allow tcp from any to any 80 out via $oif setup $ks $cmd 00610 allow tcp from any to $odns 53 out via $oif setup $ks $cmd 00611 allow udp from any to $odns 53 out via $oif $ks ################### End of example ipfw rules script ############
That is all there is to it. The rules are not important in this example, how the Symbolic substitution field are populated and used are.
If the above example was in /etc/ipfw.rules file, you could reload these rules by entering on the command line.
# sh /etc/ipfw.rules
The /etc/ipfw.rules file could be located anywhere you want and the file could be named any thing you would like.
The same thing could also be accomplished by running these commands by hand:
# ipfw -q -f flush # ipfw -q add check-state # ipfw -q add deny all from any to any frag # ipfw -q add deny tcp from any to any established # ipfw -q add allow tcp from any to any 80 out via tun0 setup keep-state # ipfw -q add allow tcp from any to 192.0.2.11 53 out via tun0 setup keep-state # ipfw -q add 00611 allow udp from any to 192.0.2.11 53 out via tun0 keep-state
The following non-NATed rule set is an example of how to code a very secure 'inclusive' type of firewall. An inclusive firewall only allows services matching pass rules through and blocks all other by default. All firewalls have at the minimum two interfaces which have to have rules to allow the firewall to function.
All UNIX flavored operating systems, FreeBSD included, are designed to use interface lo0 and IP address 127.0.0.1 for internal communication with in the operating system. The firewall rules must contain rules to allow free unmolested movement of these special internally used packets.
The interface which faces the public Internet, is the one which you code your rules to authorize and control access out to the public Internet and access requests arriving from the public Internet. This can be your ppp tun0 interface or your NIC that is connected to your DSL or cable modem.
In cases where one or more than one NIC are connected to a private LANs behind the firewall, those interfaces must have rules coded to allow free unmolested movement of packets originating from those LAN interfaces.
The rules should be first organized into three major sections, all the free unmolested interfaces, public interface outbound, and the public interface inbound.
The order of the rules in each of the public interface sections should be in order of the most used rules being placed before less often used rules with the last rule in the section being a block log all packets on that interface and direction.
The Outbound section in the following rule set only contains 'allow' rules which contain selection values that uniquely identify the service that is authorized for public Internet access. All the rules have the, proto, port, in/out, via and keep state option coded. The 'proto tcp' rules have the 'setup' option included to identify the start session request as the trigger packet to be posted to the keep state stateful table.
The Inbound section has all the blocking of undesirable packets first for two different reasons. First is these things being blocked may be part of an otherwise valid packet which may be allowed in by the later authorized service rules. Second reason is that by having a rule that explicitly blocks selected packets that I receive on an infrequent bases and do not want to see in the log, this keeps them from being caught by the last rule in the section which blocks and logs all packets which have fallen through the rules. The last rule in the section which blocks and logs all packets is how you create the legal evidence needed to prosecute the people who are attacking your system.
Another thing you should take note of, is there is no response returned for any of the undesirable stuff, their packets just get dropped and vanish. This way the attackers has no knowledge if his packets have reached your system. The less the attackers can learn about your system the more secure it is. When you log packets with port numbers you do not recognize, look the numbers up in /etc/services/ or go to http://www.securitystats.com/tools/portsearch.php and do a port number lookup to find what the purpose of that port number is. Check out this link for port numbers used by Trojans: http://www.simovits.com/trojans/trojans.html.
The following non-NATed rule set is a complete inclusive type ruleset. You can not go wrong using this rule set for you own. Just comment out any pass rules for services you do not want. If you see messages in your log that you want to stop seeing just add a deny rule in the inbound section. You have to change the 'dc0' interface name in every rule to the interface name of the NIC that connects your system to the public Internet. For user ppp it would be 'tun0'.
You will see a pattern in the usage of these rules.
All statements that are a request to start a session to the public Internet use keep-state.
All the authorized services that originate from the public Internet have the limit option to stop flooding.
All rules use in or out to clarify direction.
All rules use via interface name to specify the interface the packet is traveling over.
The following rules go into /etc/ipfw.rules.
################ Start of IPFW rules file ############################### # Flush out the list before we begin. ipfw -q -f flush # Set rules command prefix cmd="ipfw -q add" pif="dc0" # public interface name of NIC # facing the public Internet ################################################################# # No restrictions on Inside LAN Interface for private network # Not needed unless you have LAN. # Change xl0 to your LAN NIC interface name ################################################################# #$cmd 00005 allow all from any to any via xl0 ################################################################# # No restrictions on Loopback Interface ################################################################# $cmd 00010 allow all from any to any via lo0 ################################################################# # Allow the packet through if it has previous been added to the # the "dynamic" rules table by a allow keep-state statement. ################################################################# $cmd 00015 check-state ################################################################# # Interface facing Public Internet (Outbound Section) # Interrogate session start requests originating from behind the # firewall on the private network or from this gateway server # destine for the public Internet. ################################################################# # Allow out access to my ISP's Domain name server. # x.x.x.x must be the IP address of your ISP.s DNS # Dup these lines if your ISP has more than one DNS server # Get the IP addresses from /etc/resolv.conf file $cmd 00110 allow tcp from any to x.x.x.x 53 out via $pif setup keep-state $cmd 00111 allow udp from any to x.x.x.x 53 out via $pif keep-state # Allow out access to my ISP's DHCP server for cable/DSL configurations. # This rule is not needed for .user ppp. connection to the public Internet. # so you can delete this whole group. # Use the following rule and check log for IP address. # Then put IP address in commented out rule & delete first rule $cmd 00120 allow log udp from any to any 67 out via $pif keep-state #$cmd 00120 allow udp from any to x.x.x.x 67 out via $pif keep-state # Allow out non-secure standard www function $cmd 00200 allow tcp from any to any 80 out via $pif setup keep-state # Allow out secure www function https over TLS SSL $cmd 00220 allow tcp from any to any 443 out via $pif setup keep-state # Allow out send & get email function $cmd 00230 allow tcp from any to any 25 out via $pif setup keep-state $cmd 00231 allow tcp from any to any 110 out via $pif setup keep-state # Allow out FBSD (make install & CVSUP) functions # Basically give user root "GOD" privileges. $cmd 00240 allow tcp from me to any out via $pif setup keep-state uid root # Allow out ping $cmd 00250 allow icmp from any to any out via $pif keep-state # Allow out Time $cmd 00260 allow tcp from any to any 37 out via $pif setup keep-state # Allow out nntp news (i.e. news groups) $cmd 00270 allow tcp from any to any 119 out via $pif setup keep-state # Allow out secure FTP, Telnet, and SCP # This function is using SSH (secure shell) $cmd 00280 allow tcp from any to any 22 out via $pif setup keep-state # Allow out whois $cmd 00290 allow tcp from any to any 43 out via $pif setup keep-state # deny and log everything else that.s trying to get out. # This rule enforces the block all by default logic. $cmd 00299 deny log all from any to any out via $pif ################################################################# # Interface facing Public Internet (Inbound Section) # Interrogate packets originating from the public Internet # destine for this gateway server or the private network. ################################################################# # Deny all inbound traffic from non-routable reserved address spaces $cmd 00300 deny all from 192.168.0.0/16 to any in via $pif #RFC 1918 private IP $cmd 00301 deny all from 172.16.0.0/12 to any in via $pif #RFC 1918 private IP $cmd 00302 deny all from 10.0.0.0/8 to any in via $pif #RFC 1918 private IP $cmd 00303 deny all from 127.0.0.0/8 to any in via $pif #loopback $cmd 00304 deny all from 0.0.0.0/8 to any in via $pif #loopback $cmd 00305 deny all from 169.254.0.0/16 to any in via $pif #DHCP auto-config $cmd 00306 deny all from 192.0.2.0/24 to any in via $pif #reserved for docs $cmd 00307 deny all from 204.152.64.0/23 to any in via $pif #Sun cluster interconnect $cmd 00308 deny all from 224.0.0.0/3 to any in via $pif #Class D & E multicast # Deny public pings $cmd 00310 deny icmp from any to any in via $pif # Deny ident $cmd 00315 deny tcp from any to any 113 in via $pif # Deny all Netbios service. 137=name, 138=datagram, 139=session # Netbios is MS/Windows sharing services. # Block MS/Windows hosts2 name server requests 81 $cmd 00320 deny tcp from any to any 137 in via $pif $cmd 00321 deny tcp from any to any 138 in via $pif $cmd 00322 deny tcp from any to any 139 in via $pif $cmd 00323 deny tcp from any to any 81 in via $pif # Deny any late arriving packets $cmd 00330 deny all from any to any frag in via $pif # Deny ACK packets that did not match the dynamic rule table $cmd 00332 deny tcp from any to any established in via $pif # Allow traffic in from ISP's DHCP server. This rule must contain # the IP address of your ISP.s DHCP server as it.s the only # authorized source to send this packet type. # Only necessary for cable or DSL configurations. # This rule is not needed for .user ppp. type connection to # the public Internet. This is the same IP address you captured # and used in the outbound section. #$cmd 00360 allow udp from any to x.x.x.x 67 in via $pif keep-state # Allow in standard www function because I have apache server $cmd 00400 allow tcp from any to me 80 in via $pif setup limit src-addr 2 # Allow in secure FTP, Telnet, and SCP from public Internet $cmd 00410 allow tcp from any to me 22 in via $pif setup limit src-addr 2 # Allow in non-secure Telnet session from public Internet # labeled non-secure because ID & PW are passed over public # Internet as clear text. # Delete this sample group if you do not have telnet server enabled. $cmd 00420 allow tcp from any to me 23 in via $pif setup limit src-addr 2 # Reject & Log all incoming connections from the outside $cmd 00499 deny log all from any to any in via $pif # Everything else is denied by default # deny and log all packets that fell through to see what they are $cmd 00999 deny log all from any to any ################ End of IPFW rules file ###############################
There are some additional configuration statements that need to be enabled to activate the NAT function of IPFW. The kernel source needs 'option divert' statement added to the other IPFIREWALL statements compiled into a custom kernel.
In addition to the normal IPFW options in /etc/rc.conf, the following are needed.
natd_enable="YES" # Enable NATD function natd_interface="rl0" # interface name of public Internet NIC natd_flags="-dynamic -m" # -m = preserve port numbers if possible
Utilizing stateful rules with divert natd rule (Network Address Translation) greatly complicates the rule set coding logic. The positioning of the check-state, and 'divert natd' rules in the rule set becomes very critical. This is no longer a simple fall-through logic flow. A new action type is used, called 'skipto'. To use the skipto command it is mandatory that you number each rule so you know exactly where the skipto rule number is you are really jumping to.
The following is an uncommented example of one coding method, selected here to explain the sequence of the packet flow through the rule sets.
The processing flow starts with the first rule from the top of the rule file and progress one rule at a time deeper into the file until the end is reach or the packet being tested to the selection criteria matches and the packet is released out of the firewall. It is important to take notice of the location of rule numbers 100 101, 450, 500, and 510. These rules control the translation of the outbound and inbound packets so their entries in the keep-state dynamic table always register the private LAN IP address. Next notice that all the allow and deny rules specified the direction the packet is going (IE outbound or inbound) and the interface. Also notice that all the start outbound session requests all skipto rule 500 for the network address translation.
Lets say a LAN user uses their web browser to get a web page. Web pages use port 80 to communicate over. So the packet enters the firewall, It does not match 100 because it is headed out not in. It passes rule 101 because this is the first packet so it has not been posted to the keep-state dynamic table yet. The packet finally comes to rule 125 a matches. It is outbound through the NIC facing the public Internet. The packet still has it's source IP address as a private LAN IP address. On the match to this rule, two actions take place. The keep-state option will post this rule into the keep-state dynamic rules table and the specified action is executed. The action is part of the info posted to the dynamic table. In this case it is "skipto rule 500". Rule 500 NATs the packet IP address and out it goes. Remember this, this is very important. This packet makes its way to the destination and returns and enters the top of the rule set. This time it does match rule 100 and has it destination IP address mapped back to its corresponding LAN IP address. It then is processed by the check-state rule, it's found in the table as an existing session conversation and released to the LAN. It goes to the LAN PC that sent it and a new packet is sent requesting another segment of the data from the remote server. This time it gets checked by the check-state rule and its outbound entry is found, the associated action, 'skipto 500', is executed. The packet jumps to rule 500 gets NATed and released on it's way out.
On the inbound side, everything coming in that is part of an existing session conversation is being automatically handled by the check-state rule and the properly placed divert natd rules. All we have to address is denying all the bad packets and only allowing in the authorized services. Lets say there is a apache server running on the firewall box and we want people on the public Internet to be able to access the local web site. The new inbound start request packet matches rule 100 and its IP address is mapped to LAN IP for the firewall box. The packet is them matched against all the nasty things we want to check for and finally matches against rule 425. On a match two things occur. The packet rule is posted to the keep-state dynamic table but this time any new session requests originating from that source IP address is limited to 2. This defends against DoS attacks of service running on the specified port number. The action is allow so the packet is released to the LAN. On return the check-state rule recognizes the packet as belonging to an existing session conversation sends it to rule 500 for NATing and released to outbound interface.
Example Ruleset #1:
#!/bin/sh cmd="ipfw -q add" skip="skipto 500" pif=rl0 ks="keep-state" good_tcpo="22,25,37,43,53,80,443,110,119" ipfw -q -f flush $cmd 002 allow all from any to any via xl0 # exclude LAN traffic $cmd 003 allow all from any to any via lo0 # exclude loopback traffic $cmd 100 divert natd ip from any to any in via $pif $cmd 101 check-state # Authorized outbound packets $cmd 120 $skip udp from any to xx.168.240.2 53 out via $pif $ks $cmd 121 $skip udp from any to xx.168.240.5 53 out via $pif $ks $cmd 125 $skip tcp from any to any $good_tcpo out via $pif setup $ks $cmd 130 $skip icmp from any to any out via $pif $ks $cmd 135 $skip udp from any to any 123 out via $pif $ks # Deny all inbound traffic from non-routable reserved address spaces $cmd 300 deny all from 192.168.0.0/16 to any in via $pif #RFC 1918 private IP $cmd 301 deny all from 172.16.0.0/12 to any in via $pif #RFC 1918 private IP $cmd 302 deny all from 10.0.0.0/8 to any in via $pif #RFC 1918 private IP $cmd 303 deny all from 127.0.0.0/8 to any in via $pif #loopback $cmd 304 deny all from 0.0.0.0/8 to any in via $pif #loopback $cmd 305 deny all from 169.254.0.0/16 to any in via $pif #DHCP auto-config $cmd 306 deny all from 192.0.2.0/24 to any in via $pif #reserved for docs $cmd 307 deny all from 204.152.64.0/23 to any in via $pif #Sun cluster $cmd 308 deny all from 224.0.0.0/3 to any in via $pif #Class D & E multicast # Authorized inbound packets $cmd 400 allow udp from xx.70.207.54 to any 68 in $ks $cmd 420 allow tcp from any to me 80 in via $pif setup limit src-addr 1 $cmd 450 deny log ip from any to any # This is skipto location for outbound stateful rules $cmd 500 divert natd ip from any to any out via $pif $cmd 510 allow ip from any to any ######################## end of rules ##################
The following is pretty much the same as above, but uses a self documenting coding style full of description comments to help the inexperienced IPFW rule writer to better understand what the rules are doing.
Example Ruleset #2:
#!/bin/sh ################ Start of IPFW rules file ############################### # Flush out the list before we begin. ipfw -q -f flush # Set rules command prefix cmd="ipfw -q add" skip="skipto 800" pif="rl0" # public interface name of NIC # facing the public Internet ################################################################# # No restrictions on Inside LAN Interface for private network # Change xl0 to your LAN NIC interface name ################################################################# $cmd 005 allow all from any to any via xl0 ################################################################# # No restrictions on Loopback Interface ################################################################# $cmd 010 allow all from any to any via lo0 ################################################################# # check if packet is inbound and nat address if it is ################################################################# $cmd 014 divert natd ip from any to any in via $pif ################################################################# # Allow the packet through if it has previous been added to the # the "dynamic" rules table by a allow keep-state statement. ################################################################# $cmd 015 check-state ################################################################# # Interface facing Public Internet (Outbound Section) # Interrogate session start requests originating from behind the # firewall on the private network or from this gateway server # destine for the public Internet. ################################################################# # Allow out access to my ISP's Domain name server. # x.x.x.x must be the IP address of your ISP's DNS # Dup these lines if your ISP has more than one DNS server # Get the IP addresses from /etc/resolv.conf file $cmd 020 $skip tcp from any to x.x.x.x 53 out via $pif setup keep-state # Allow out access to my ISP's DHCP server for cable/DSL configurations. $cmd 030 $skip udp from any to x.x.x.x 67 out via $pif keep-state # Allow out non-secure standard www function $cmd 040 $skip tcp from any to any 80 out via $pif setup keep-state # Allow out secure www function https over TLS SSL $cmd 050 $skip tcp from any to any 443 out via $pif setup keep-state # Allow out send & get email function $cmd 060 $skip tcp from any to any 25 out via $pif setup keep-state $cmd 061 $skip tcp from any to any 110 out via $pif setup keep-state # Allow out FreeBSD (make install & CVSUP) functions # Basically give user root "GOD" privileges. $cmd 070 $skip tcp from me to any out via $pif setup keep-state uid root # Allow out ping $cmd 080 $skip icmp from any to any out via $pif keep-state # Allow out Time $cmd 090 $skip tcp from any to any 37 out via $pif setup keep-state # Allow out nntp news (i.e. news groups) $cmd 100 $skip tcp from any to any 119 out via $pif setup keep-state # Allow out secure FTP, Telnet, and SCP # This function is using SSH (secure shell) $cmd 110 $skip tcp from any to any 22 out via $pif setup keep-state # Allow out whois $cmd 120 $skip tcp from any to any 43 out via $pif setup keep-state # Allow ntp time server $cmd 130 $skip udp from any to any 123 out via $pif keep-state ################################################################# # Interface facing Public Internet (Inbound Section) # Interrogate packets originating from the public Internet # destine for this gateway server or the private network. ################################################################# # Deny all inbound traffic from non-routable reserved address spaces $cmd 300 deny all from 192.168.0.0/16 to any in via $pif #RFC 1918 private IP $cmd 301 deny all from 172.16.0.0/12 to any in via $pif #RFC 1918 private IP $cmd 302 deny all from 10.0.0.0/8 to any in via $pif #RFC 1918 private IP $cmd 303 deny all from 127.0.0.0/8 to any in via $pif #loopback $cmd 304 deny all from 0.0.0.0/8 to any in via $pif #loopback $cmd 305 deny all from 169.254.0.0/16 to any in via $pif #DHCP auto-config $cmd 306 deny all from 192.0.2.0/24 to any in via $pif #reserved for docs $cmd 307 deny all from 204.152.64.0/23 to any in via $pif #Sun cluster $cmd 308 deny all from 224.0.0.0/3 to any in via $pif #Class D & E multicast # 拒絕 ident $cmd 315 deny tcp from any to any 113 in via $pif # 拒絕所有的 Netbios 服務. 137=name, 138=datagram, 139=session # Netbios 是 MS/Windows 網路分享服務 # 阻擋所有的 MS/Windows 主機名稱伺服器hosts2 name server requests 81 $cmd 320 deny tcp from any to any 137 in via $pif $cmd 321 deny tcp from any to any 138 in via $pif $cmd 322 deny tcp from any to any 139 in via $pif $cmd 323 deny tcp from any to any 81 in via $pif # 拒絕任何的延遲到達之封包 $cmd 330 deny all from any to any frag in via $pif # Deny ACK packets that did not match the dynamic rule table $cmd 332 deny tcp from any to any established in via $pif # Allow traffic in from ISP's DHCP server. This rule must contain # the IP address of your ISP's DHCP server as it's the only # authorized source to send this packet type. # Only necessary for cable or DSL configurations. # This rule is not needed for 'user ppp' type connection to # the public Internet. This is the same IP address you captured # and used in the outbound section. $cmd 360 allow udp from x.x.x.x to any 68 in via $pif keep-state # Allow in standard www function because I have Apache server $cmd 370 allow tcp from any to me 80 in via $pif setup limit src-addr 2 # Allow in secure FTP, Telnet, and SCP from public Internet $cmd 380 allow tcp from any to me 22 in via $pif setup limit src-addr 2 # Allow in non-secure Telnet session from public Internet # labeled non-secure because ID & PW are passed over public # Internet as clear text. # Delete this sample group if you do not have telnet server enabled. $cmd 390 allow tcp from any to me 23 in via $pif setup limit src-addr 2 # Reject & Log all unauthorized incoming connections from the public Internet $cmd 400 deny log all from any to any in via $pif # Reject & Log all unauthorized out going connections to the public Internet $cmd 450 deny log all from any to any out via $pif # This is skipto location for outbound stateful rules $cmd 800 divert natd ip from any to any out via $pif $cmd 801 allow ip from any to any # Everything else is denied by default # deny and log all packets that fell through to see what they are $cmd 999 deny log all from any to any ################ End of IPFW rules file ###############################
本章將介紹一些進階的網路設定主題。
讀完這章,您將了解:
gateway(閘道)及 route(路由)的概念。
如何設定 IEEE 802.11 以及藍芽(Bluetooth®)設備。
如何以 FreeBSD 作為 bridge(橋接)。
如何為無碟系統設定網路開機。
如何設定 NAT(Network Address Translation)。
如何透過 PLIP 方式來連接兩台電腦。
如何在 FreeBSD 內設定 IPv6。
如何設定 ATM。
如何去善用 FreeBSD 的 CARP(Common Access Redundancy Protocol)功能 。
在開始閱讀這章之前,您需要︰
為了讓一部電腦能找到另一部電腦,因此必需要有一種機制, 讓這部電腦知道該怎麼做,這個機制就是路由選擇 (routing)。 一條路由(“route”)是由一對位址所定義的:一個是 “目的地(destination)”以及另一個則是閘道 (“gateway”)。 這對位址表示要送到目的地的封包, 必須經過閘道。 目的地分為三種類型:主機、子網路(subnet)、預設路由( “default route”。 若都沒有其它的路由可以使用, 這時就會使用預設路由,稍後我們會對預設路由作進一步的說明。 此外, 閘道也可分為三種類型:主機、傳輸介面(interface,也稱為 “links”)、乙太網路硬體位址(MAC addresses)。
為了方便說明不同類型的路由選擇(routing),以下使用 netstat 指令的結果作為介紹範例:
% netstat -r Routing tables Destination Gateway Flags Refs Use Netif Expire default outside-gw UGSc 37 418 ppp0 localhost localhost UH 0 181 lo0 test0 0:e0:b5:36:cf:4f UHLW 5 63288 ed0 77 10.20.30.255 link#1 UHLW 1 2421 example.com link#1 UC 0 0 host1 0:e0:a8:37:8:1e UHLW 3 4601 lo0 host2 0:e0:a8:37:8:1e UHLW 0 5 lo0 => host2.example.com link#1 UC 0 0 224 link#1 UC 0 0
The first two lines specify the default route (which we will cover in the next section) and the localhost route.
The interface (Netif column) that this routing table specifies to use for localhost is lo0, also known as the loopback device. This says to keep all traffic for this destination internal, rather than sending it out over the LAN, since it will only end up back where it started.
The next thing that stands out are the addresses beginning with 0:e0:. These are Ethernet hardware addresses, which are also known as MAC addresses. FreeBSD will automatically identify any hosts (test0 in the example) on the local Ethernet and add a route for that host, directly to it over the Ethernet interface, ed0. There is also a timeout (Expire column) associated with this type of route, which is used if we fail to hear from the host in a specific amount of time. When this happens, the route to this host will be automatically deleted. These hosts are identified using a mechanism known as RIP (Routing Information Protocol), which figures out routes to local hosts based upon a shortest path determination.
FreeBSD will also add subnet routes for the local subnet (10.20.30.255 is the broadcast address for the subnet 10.20.30, and example.com is the domain name associated with that subnet). The designation link#1 refers to the first Ethernet card in the machine. You will notice no additional interface is specified for those.
Both of these groups (local network hosts and local subnets) have their routes automatically configured by a daemon called routed. If this is not run, then only routes which are statically defined (i.e. entered explicitly) will exist.
The host1 line refers to our host, which it knows by Ethernet address. Since we are the sending host, FreeBSD knows to use the loopback interface (lo0) rather than sending it out over the Ethernet interface.
The two host2 lines are an example of what happens when we use an ifconfig(8) alias (see the section on Ethernet for reasons why we would do this). The => symbol after the lo0 interface says that not only are we using the loopback (since this address also refers to the local host), but specifically it is an alias. Such routes only show up on the host that supports the alias; all other hosts on the local network will simply have a link#1 line for such routes.
The final line (destination subnet 224) deals with multicasting, which will be covered in another section.
Finally, various attributes of each route can be seen in the Flags column. Below is a short table of some of these flags and their meanings:
U | Up: The route is active. |
H | Host: The route destination is a single host. |
G | Gateway: Send anything for this destination on to this remote system, which will figure out from there where to send it. |
S | Static: This route was configured manually, not automatically generated by the system. |
C | Clone: Generates a new route based upon this route for machines we connect to. This type of route is normally used for local networks. |
W | WasCloned: Indicated a route that was auto-configured based upon a local area network (Clone) route. |
L | Link: Route involves references to Ethernet hardware. |
When the local system needs to make a connection to a remote host, it checks the routing table to determine if a known path exists. If the remote host falls into a subnet that we know how to reach (Cloned routes), then the system checks to see if it can connect along that interface.
If all known paths fail, the system has one last option: the “default” route. This route is a special type of gateway route (usually the only one present in the system), and is always marked with a c in the flags field. For hosts on a local area network, this gateway is set to whatever machine has a direct connection to the outside world (whether via PPP link, DSL, cable modem, T1, or another network interface).
If you are configuring the default route for a machine which itself is functioning as the gateway to the outside world, then the default route will be the gateway machine at your Internet Service Provider's (ISP) site.
Let us look at an example of default routes. This is a common configuration:
The hosts Local1 and Local2 are at your site. Local1 is connected to an ISP via a dial up PPP connection. This PPP server computer is connected through a local area network to another gateway computer through an external interface to the ISPs Internet feed.
The default routes for each of your machines will be:
A common question is “Why (or how) would we set the T1-GW to be the default gateway for Local1, rather than the ISP server it is connected to?”.
Remember, since the PPP interface is using an address on the ISP's local network for your side of the connection, routes for any other machines on the ISP's local network will be automatically generated. Hence, you will already know how to reach the T1-GW machine, so there is no need for the intermediate step of sending traffic to the ISP server.
It is common to use the address X.X.X.1 as the gateway address for your local network. So (using the same example), if your local class-C address space was 10.20.30 and your ISP was using 10.9.9 then the default routes would be:
Host | Default Route |
---|---|
Local2 (10.20.30.2) | Local1 (10.20.30.1) |
Local1 (10.20.30.1, 10.9.9.30) | T1-GW (10.9.9.1) |
You can easily define the default route via the /etc/rc.conf file. In our example, on the Local2 machine, we added the following line in /etc/rc.conf:
defaultrouter="10.20.30.1"
It is also possible to do it directly from the command line with the route(8) command:
# route add default 10.20.30.1
For more information on manual manipulation of network routing tables, consult route(8) manual page.
There is one other type of configuration that we should cover, and that is a host that sits on two different networks. Technically, any machine functioning as a gateway (in the example above, using a PPP connection) counts as a dual-homed host. But the term is really only used to refer to a machine that sits on two local-area networks.
In one case, the machine has two Ethernet cards, each having an address on the separate subnets. Alternately, the machine may only have one Ethernet card, and be using ifconfig(8) aliasing. The former is used if two physically separate Ethernet networks are in use, the latter if there is one physical network segment, but two logically separate subnets.
Either way, routing tables are set up so that each subnet knows that this machine is the defined gateway (inbound route) to the other subnet. This configuration, with the machine acting as a router between the two subnets, is often used when we need to implement packet filtering or firewall security in either or both directions.
If you want this machine to actually forward packets between the two interfaces, you need to tell FreeBSD to enable this ability. See the next section for more details on how to do this.
A network router is simply a system that forwards packets from one interface to another. Internet standards and good engineering practice prevent the FreeBSD Project from enabling this by default in FreeBSD. You can enable this feature by changing the following variable to YES in rc.conf(5):
gateway_enable=YES # Set to YES if this host will be a gateway
This option will set the sysctl(8) variable
net.inet.ip.forwarding
to 1. If you should need to stop routing temporarily, you can
reset this to 0 temporarily.
Your new router will need routes to know where to send the traffic. If your network is simple enough you can use static routes. FreeBSD also comes with the standard BSD routing daemon routed(8), which speaks RIP (both version 1 and version 2) and IRDP. Support for BGP v4, OSPF v2, and other sophisticated routing protocols is available with the net/zebra package. Commercial products such as GateD are also available for more complex network routing solutions.
Let us assume we have a network as follows:
In this scenario, RouterA is our FreeBSD machine that is acting as a router to the rest of the Internet. It has a default route set to 10.0.0.1 which allows it to connect with the outside world. We will assume that RouterB is already configured properly and knows how to get wherever it needs to go. (This is simple in this picture. Just add a default route on RouterB using 192.168.1.1 as the gateway.)
If we look at the routing table for RouterA we would see something like the following:
% netstat -nr Routing tables Internet: Destination Gateway Flags Refs Use Netif Expire default 10.0.0.1 UGS 0 49378 xl0 127.0.0.1 127.0.0.1 UH 0 6 lo0 10.0.0/24 link#1 UC 0 0 xl0 192.168.1/24 link#2 UC 0 0 xl1
With the current routing table RouterA will not be able to reach our Internal Net 2. It does not have a route for 192.168.2.0/24. One way to alleviate this is to manually add the route. The following command would add the Internal Net 2 network to RouterA's routing table using 192.168.1.2 as the next hop:
# route add -net 192.168.2.0/24 192.168.1.2
Now RouterA can reach any hosts on the 192.168.2.0/24 network.
The above example is perfect for configuring a static route on a running system. However, one problem is that the routing information will not persist if you reboot your FreeBSD machine. The way to handle the addition of a static route is to put it in your /etc/rc.conf file:
# Add Internal Net 2 as a static route static_routes="internalnet2" route_internalnet2="-net 192.168.2.0/24 192.168.1.2"
The static_routes configuration variable is a list of strings separated by a space. Each string references to a route name. In our above example we only have one string in static_routes. This string is internalnet2. We then add a configuration variable called route_internalnet2 where we put all of the configuration parameters we would give to the route(8) command. For our example above we would have used the command:
# route add -net 192.168.2.0/24 192.168.1.2
so we need "-net 192.168.2.0/24 192.168.1.2".
As said above, we can have more than one string in static_routes. This allows us to create multiple static routes. The following lines shows an example of adding static routes for the 192.168.0.0/24 and 192.168.1.0/24 networks on an imaginary router:
static_routes="net1 net2" route_net1="-net 192.168.0.0/24 192.168.0.1" route_net2="-net 192.168.1.0/24 192.168.1.1"
We have already talked about how we define our routes to the outside world, but not about how the outside world finds us.
We already know that routing tables can be set up so that all traffic for a particular address space (in our examples, a class-C subnet) can be sent to a particular host on that network, which will forward the packets inbound.
When you get an address space assigned to your site, your service provider will set up their routing tables so that all traffic for your subnet will be sent down your PPP link to your site. But how do sites across the country know to send to your ISP?
There is a system (much like the distributed DNS information) that keeps track of all assigned address-spaces, and defines their point of connection to the Internet Backbone. The “Backbone” are the main trunk lines that carry Internet traffic across the country, and around the world. Each backbone machine has a copy of a master set of tables, which direct traffic for a particular network to a specific backbone carrier, and from there down the chain of service providers until it reaches your network.
It is the task of your service provider to advertise to the backbone sites that they are the point of connection (and thus the path inward) for your site. This is known as route propagation.
Sometimes, there is a problem with routing propagation, and some sites are unable to connect to you. Perhaps the most useful command for trying to figure out where routing is breaking down is the traceroute(8) command. It is equally useful if you cannot seem to make a connection to a remote machine (i.e. ping(8) fails).
The traceroute(8) command is run with the name of the remote host you are trying to connect to. It will show the gateway hosts along the path of the attempt, eventually either reaching the target host, or terminating because of a lack of connection.
For more information, see the manual page for traceroute(8).
FreeBSD supports both multicast applications and multicast routing natively. Multicast applications do not require any special configuration of FreeBSD; applications will generally run out of the box. Multicast routing requires that support be compiled into the kernel:
options MROUTING
In addition, the multicast routing daemon, mrouted(8) must be configured to set up tunnels and DVMRP via /etc/mrouted.conf. More details on multicast configuration may be found in the manual page for mrouted(8).
Most wireless networks are based on the IEEE 802.11 standards. A basic wireless network consists of multiple stations communicating with radios that broadcast in either the 2.4GHz or 5GHz band (though this varies according to the locale and is also changing to enable communication in the 2.3GHz and 4.9GHz ranges).
802.11 networks are organized in two ways: in infrastructure mode one station acts as a master with all the other stations associating to it; the network is known as a BSS and the master station is termed an access point (AP). In a BSS all communication passes through the AP; even when one station wants to communicate with another wireless station messages must go through the AP. In the second form of network there is no master and stations communicate directly. This form of network is termed an IBSS and is commonly known as an ad-hoc network.
802.11 networks were first deployed in the 2.4GHz band using protocols defined by the IEEE 802.11 and 802.11b standard. These specifications include the operating frequencies, MAC layer characteristics including framing and transmission rates (communication can be done at various rates). Later the 802.11a standard defined operation in the 5GHz band, including different signalling mechanisms and higher transmission rates. Still later the 802.11g standard was defined to enable use of 802.11a signalling and transmission mechanisms in the 2.4GHz band in such a way as to be backwards compatible with 802.11b networks.
Separate from the underlying transmission techniques 802.11 networks have a variety of security mechanisms. The original 802.11 specifications defined a simple security protocol called WEP. This protocol uses a fixed pre-shared key and the RC4 cryptographic cipher to encode data transmitted on a network. Stations must all agree on the fixed key in order to communicate. This scheme was shown to be easily broken and is now rarely used except to discourage transient users from joining networks. Current security practice is given by the IEEE 802.11i specification that defines new cryptographic ciphers and an additional protocol to authenticate stations to an access point and exchange keys for doing data communication. Further, cryptographic keys are periodically refreshed and there are mechanisms for detecting intrusion attempts (and for countering intrusion attempts). Another security protocol specification commonly used in wireless networks is termed WPA. This was a precursor to 802.11i defined by an industry group as an interim measure while waiting for 802.11i to be ratified. WPA specifies a subset of the requirements found in 802.11i and is designed for implementation on legacy hardware. Specifically WPA requires only the TKIP cipher that is derived from the original WEP cipher. 802.11i permits use of TKIP but also requires support for a stronger cipher, AES-CCM, for encrypting data. (The AES cipher was not required in WPA because it was deemed too computationally costly to be implemented on legacy hardware.)
Other than the above protocol standards the other important standard to be aware of is 802.11e. This defines protocols for deploying multi-media applications such as streaming video and voice over IP (VoIP) in an 802.11 network. Like 802.11i, 802.11e also has a precursor specification termed WME (later renamed WMM) that has been defined by an industry group as a subset of 802.11e that can be deployed now to enable multi-media applications while waiting for the final ratification of 802.11e. The most important thing to know about 802.11e and WME/WMM is that it enables prioritized traffic use of a wireless network through Quality of Service (QoS) protocols and enhanced media access protocols. Proper implementation of these protocols enable high speed bursting of data and prioritized traffic flow.
Since the 6.0 version, FreeBSD supports networks that operate using 802.11a, 802.11b, and 802.11g. The WPA and 802.11i security protocols are likewise supported (in conjunction with any of 11a, 11b, and 11g) and QoS and traffic prioritization required by the WME/WMM protocols are supported for a limited set of wireless devices.
To use wireless networking you need a wireless networking card and to configure the kernel with the appropriate wireless networking support. The latter is separated into multiple modules so that you only need to configure the software you are actually going to use.
The first thing you need is a wireless device. The most commonly used devices are those that use parts made by Atheros. These devices are supported by the ath(4) driver and require the following line to be added to the /boot/loader.conf file:
if_ath_load="YES"
The Atheros driver is split up into three separate pieces: the driver proper (ath(4)), the hardware support layer that handles chip-specific functions (ath_hal(4)), and an algorithm for selecting which of several possible rates for transmitting frames (ath_rate_sample here). When you load this support as modules these dependencies are automatically handled for you. If instead of an Atheros device you had another device you would select the module for that device; e.g.:
if_wi_load="YES"
for devices based on the Intersil Prism parts (wi(4) driver).
注: In the rest of this document, we will use an ath(4) device, the device name in the examples must be changed according to your configuration. A list of available wireless drivers can be found at the beginning of the wlan(4) manual page. If a native FreeBSD driver for your wireless device does not exist, it may be possible to directly use the Windows driver with the help of the NDIS driver wrapper.
With a device driver configured you need to also bring in the 802.11 networking support required by the driver. For the ath(4) driver this is at least the wlan(4) module; this module is automatically loaded with the wireless device driver. With that you will need the modules that implement cryptographic support for the security protocols you intend to use. These are intended to be dynamically loaded on demand by the wlan(4) module but for now they must be manually configured. The following modules are available: wlan_wep(4), wlan_ccmp(4) and wlan_tkip(4). Both wlan_ccmp(4) and wlan_tkip(4) drivers are only needed if you intend to use the WPA and/or 802.11i security protocols. If your network is to run totally open (i.e., with no encryption) then you do not even need the wlan_wep(4) support. To load these modules at boot time, add the following lines to /boot/loader.conf:
wlan_wep_load="YES" wlan_ccmp_load="YES" wlan_tkip_load="YES"
With this information in the system bootstrap configuration file (i.e., /boot/loader.conf), you have to reboot your FreeBSD box. If you do not want to reboot your machine for the moment, you can just load the modules by hand using kldload(8).
注: If you do not want to use modules, it is possible to compile these drivers into the kernel by adding the following lines to your kernel configuration file:
device ath # Atheros IEEE 802.11 wireless network driver device ath_hal # Atheros Hardware Access Layer device ath_rate_sample # John Bicket's SampleRate control algorithm. device wlan # 802.11 support (Required) device wlan_wep # WEP crypto support for 802.11 devices device wlan_ccmp # AES-CCMP crypto support for 802.11 devices device wlan_tkip # TKIP and Michael crypto support for 802.11 devicesWith this information in the kernel configuration file, recompile the kernel and reboot your FreeBSD machine.
When the system is up, we could find some information about the wireless device in the boot messages, like this:
ath0: <Atheros 5212> mem 0xff9f0000-0xff9fffff irq 17 at device 2.0 on pci2 ath0: Ethernet address: 00:11:95:d5:43:62 ath0: mac 7.9 phy 4.5 radio 5.6
The infrastructure mode or BSS mode is the mode that is typically used. In this mode, a number of wireless access points are connected to a wired network. Each wireless network has its own name, this name is called the SSID of the network. Wireless clients connect to the wireless access points.
To scan for networks, use the ifconfig command. This request may take a few moments to complete as it requires that the system switches to each available wireless frequency and probes for available access points. Only the super-user can initiate such a scan:
# ifconfig ath0 up scan SSID BSSID CHAN RATE S:N INT CAPS dlinkap 00:13:46:49:41:76 6 54M 29:0 100 EPS WPA WME freebsdap 00:11:95:c3:0d:ac 1 54M 22:0 100 EPS WPA
注: You must mark the interface
up
before you can scan. Subsequent scan requests do not require you to mark the interface up again.
The output of a scan request lists each BSS/IBSS network found. Beside the name of the network, SSID, we find the BSSID which is the MAC address of the access point. The CAPS field identifies the type of each network and the capabilities of the stations operating there:
Extended Service Set (ESS). Indicates that the station is part of an infrastructure network (in contrast to an IBSS/ad-hoc network).
IBSS/ad-hoc network. Indicates that the station is part of an ad-hoc network (in contrast to an ESS network).
Privacy. Data confidentiality is required for all data frames exchanged within the BSS. This means that this BSS requires the station to use cryptographic means such as WEP, TKIP or AES-CCMP to encrypt/decrypt data frames being exchanged with others.
Short Preamble. Indicates that the network is using short preambles (defined in 802.11b High Rate/DSSS PHY, short preamble utilizes a 56 bit sync field in contrast to a 128 bit field used in long preamble mode).
Short slot time. Indicates that the 802.11g network is using a short slot time because there are no legacy (802.11b) stations present.
One can also display the current list of known networks with:
# ifconfig ath0 list scan
This information may be updated automatically by the adapter or manually with a
scan
request. Old data is automatically removed from
the cache, so over time this list may shrink unless more scans are done.
This section provides a simple example of how to make the wireless network adapter work in FreeBSD without encryption. After you are familiar with these concepts, we strongly recommend using WPA to set up your wireless network.
There are three basic steps to configure a wireless network: selecting an access point, authenticating your station, and configuring an IP address. The following sections discuss each step.
Most of time it is sufficient to let the system choose an access point using the builtin heuristics. This is the default behaviour when you mark an interface up or otherwise configure an interface by listing it in /etc/rc.conf, e.g.:
ifconfig_ath0="DHCP"
If there are multiple access points and you want to select a specific one, you can select it by its SSID:
ifconfig_ath0="ssid your_ssid_here DHCP"
In an environment where there are multiple access points with the same SSID (often done to simplify roaming) it may be necessary to associate to one specific device. In this case you can also specify the BSSID of the access point (you can also leave off the SSID):
ifconfig_ath0="ssid your_ssid_here bssid xx:xx:xx:xx:xx:xx DHCP"
There are other ways to constrain the choice of an access point such as limiting
the set of frequencies the system will scan on. This may be useful if you have a
multi-band wireless card as scanning all the possible channels can be
time-consuming. To limit operation to a specific band you can use the mode
parameter; e.g.:
ifconfig_ath0="mode 11g ssid your_ssid_here DHCP"
will force the card to operate in 802.11g which is defined only for 2.4GHz
frequencies so any 5GHz channels will not be considered. Other ways to do this are
the channel
parameter, to lock operation to one
specific frequency, and the chanlist
parameter, to
specify a list of channels for scanning. More information about these
parameters can be found in the ifconfig(8) manual
page.
Once you have selected an access point your station needs to authenticate before it can pass data. Authentication can happen in several ways. The most common scheme used is termed open authentication and allows any station to join the network and communicate. This is the authentication you should use for test purpose the first time you set up a wireless network. Other schemes require cryptographic handshakes be completed before data traffic can flow; either using pre-shared keys or secrets, or more complex schemes that involve backend services such as RADIUS. Most users will use open authentication which is the default setting. Next most common setup is WPA-PSK, also known as WPA Personal, which is described below.
注: If you have an Apple AirPort® Extreme base station for an access point you may need to configure shared-key authentication together with a WEP key. This can be done in the /etc/rc.conf file or using the wpa_supplicant(8) program. If you have a single AirPort base station you can setup access with something like:
ifconfig_ath0="authmode shared wepmode on weptxkey 1 wepkey 01234567 DHCP"In general shared key authentication is to be avoided because it uses the WEP key material in a highly-constrained manner making it even easier to crack the key. If WEP must be used (e.g., for compatibility with legacy devices) it is better to use WEP with open authentication. More information regarding WEP can be found in the µÚ 29.3.3.1.4 節.
Once you have selected an access point and set the authentication parameters, you will have to get an IP address to communicate. Most of time you will obtain your wireless IP address via DHCP. To achieve that, simply edit /etc/rc.conf and add DHCP to the configuration for your device as shown in various examples above:
ifconfig_ath0="DHCP"
At this point, you are ready to bring up the wireless interface:
# /etc/rc.d/netif start
Once the interface is running, use ifconfig to see the status of the interface ath0:
# ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.1.100 netmask 0xffffff00 broadcast 192.168.1.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (OFDM/54Mbps) status: associated ssid dlinkap channel 6 bssid 00:13:46:49:41:76 authmode OPEN privacy OFF txpowmax 36 protmode CTS bintval 100
The status: associated means you are connected to the wireless network (to the dlinkap network in our case). The bssid 00:13:46:49:41:76 part is the MAC address of your access point; the authmode line informs you that the communication is not encrypted (OPEN).
In the case you cannot obtain an IP address from a DHCP server, you can set a fixed IP address. Replace the DHCP keyword shown above with the address information. Be sure to retain any other parameters you have set up for selecting an access point:
ifconfig_ath0="inet 192.168.1.100 netmask 255.255.255.0 ssid your_ssid_here"
WPA (Wi-Fi Protected Access) is a security protocol used together with 802.11 networks to address the lack of proper authentication and the weakness of WEP. WPA leverages the 802.1X authentication protocol and uses one of several ciphers instead of WEP for data integrity. The only cipher required by WPA is TKIP (Temporary Key Integrity Protocol) which is a cipher that extends the basic RC4 cipher used by WEP by adding integrity checking, tamper detection, and measures for responding to any detected intrusions. TKIP is designed to work on legacy hardware with only software modification; it represents a compromise that improves security but is still not entirely immune to attack. WPA also specifies the AES-CCMP cipher as an alternative to TKIP and that is preferred when possible; for this specification the term WPA2 (or RSN) is commonly used.
WPA defines authentication and encryption protocols. Authentication is most commonly done using one of two techniques: by 802.1X and a backend authentication service such as RADIUS, or by a minimal handshake between the station and the access point using a pre-shared secret. The former is commonly termed WPA Enterprise with the latter known as WPA Personal. Since most people will not set up a RADIUS backend server for wireless network, WPA-PSK is by far the most commonly encountered configuration for WPA.
The control of the wireless connection and the authentication (key negotiation or authentication with a server) is done with the wpa_supplicant(8) utility. This program requires a configuration file, /etc/wpa_supplicant.conf, to run. More information regarding this file can be found in the wpa_supplicant.conf(5) manual page.
WPA-PSK also known as WPA-Personal is based on a pre-shared key (PSK) generated from a given password and that will be used as the master key in the wireless network. This means every wireless user will share the same key. WPA-PSK is intended for small networks where the use of an authentication server is not possible or desired.
警告Always use strong passwords that are sufficiently long and made from a rich alphabet so they will not be guessed and/or attacked.
The first step is the configuration of the /etc/wpa_supplicant.conf file with the SSID and the pre-shared key of your network:
network={ ssid="freebsdap" psk="freebsdmall" }
Then, in /etc/rc.conf, we indicate that the wireless device configuration will be done with WPA and the IP address will be obtained with DHCP:
ifconfig_ath0="WPA DHCP"
Then, we can bring up the interface:
# /etc/rc.d/netif start Starting wpa_supplicant. DHCPDISCOVER on ath0 to 255.255.255.255 port 67 interval 5 DHCPDISCOVER on ath0 to 255.255.255.255 port 67 interval 6 DHCPOFFER from 192.168.0.1 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPACK from 192.168.0.1 bound to 192.168.0.254 -- renewal in 300 seconds. ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.254 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (OFDM/36Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
Or you can try to configure it manually using the same /etc/wpa_supplicant.conf above, and run:
# wpa_supplicant -i ath0 -c /etc/wpa_supplicant.conf Trying to associate with 00:11:95:c3:0d:ac (SSID='freebsdap' freq=2412 MHz) Associated with 00:11:95:c3:0d:ac WPA: Key negotiation completed with 00:11:95:c3:0d:ac [PTK=TKIP GTK=TKIP]
The next operation is the launch of the dhclient command to get the IP address from the DHCP server:
# dhclient ath0 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPACK from 192.168.0.1 bound to 192.168.0.254 -- renewal in 300 seconds. # ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.254 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (OFDM/48Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
注: If the /etc/rc.conf is set up with the line ifconfig_ath0="DHCP" then it is no need to run the dhclient command manually, dhclient will be launched after wpa_supplicant plumbs the keys.
In the case where the use of DHCP is not possible, you can set a static IP address after wpa_supplicant has authenticated the station:
# ifconfig ath0 inet 192.168.0.100 netmask 255.255.255.0 # ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.100 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (OFDM/36Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
When DHCP is not used, you also have to manually set up the default gateway and the nameserver:
# route add default your_default_router # echo "nameserver your_DNS_server" >> /etc/resolv.conf
The second way to use WPA is with an 802.1X backend authentication server, in this case WPA is called WPA-Enterprise to make difference with the less secure WPA-Personal with its pre-shared key. The authentication in WPA-Enterprise is based on EAP (Extensible Authentication Protocol).
EAP does not come with an encryption method, it was decided to embed EAP inside an encrypted tunnel. Many types of EAP authentication methods have been designed, the most common methods are EAP-TLS, EAP-TTLS and EAP-PEAP.
EAP-TLS (EAP with Transport Layer Security) is a very well-supported authentication protocol in the wireless world since it was the first EAP method to be certified by the Wi-Fi alliance. EAP-TLS will require three certificates to run: the CA certificate (installed on all machines), the server certificate for your authentication server, and one client certificate for each wireless client. In this EAP method, both authentication server and wireless client authenticate each other in presenting their respective certificates, and they verify that these certificates were signed by your organization's certificate authority (CA).
As previously, the configuration is done via /etc/wpa_supplicant.conf:
network={ ssid="freebsdap" proto=RSN key_mgmt=WPA-EAP eap=TLS identity="loader" ca_cert="/etc/certs/cacert.pem" client_cert="/etc/certs/clientcert.pem" private_key="/etc/certs/clientkey.pem" private_key_passwd="freebsdmallclient" }
Then add the following line to /etc/rc.conf:
ifconfig_ath0="WPA DHCP"
The next step is to bring up the interface with the help of the rc.d facility:
# /etc/rc.d/netif start Starting wpa_supplicant. DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPACK from 192.168.0.20 bound to 192.168.0.254 -- renewal in 300 seconds. ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.254 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (DS/11Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA2/802.11i privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
As previously shown, it is also possible to bring up the interface manually with both wpa_supplicant and ifconfig commands.
With EAP-TLS both the authentication server and the client need a certificate, with EAP-TTLS (EAP-Tunneled Transport Layer Security) a client certificate is optional. This method is close to what some secure web sites do , where the web server can create a secure SSL tunnel even if the visitors do not have client-side certificates. EAP-TTLS will use the encrypted TLS tunnel for safe transport of the authentication data.
The configuration is done via the /etc/wpa_supplicant.conf file:
network={ ssid="freebsdap" proto=RSN key_mgmt=WPA-EAP eap=TTLS identity="test" password="test" ca_cert="/etc/certs/cacert.pem" phase2="auth=MD5" }
You also have to add the following line to /etc/rc.conf:
ifconfig_ath0="WPA DHCP"
The next step is to bring up the interface:
# /etc/rc.d/netif start Starting wpa_supplicant. DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPACK from 192.168.0.20 bound to 192.168.0.254 -- renewal in 300 seconds. ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.254 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (DS/11Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA2/802.11i privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
PEAP (Protected EAP) has been designed as an alternative to EAP-TTLS. There are two types of PEAP methods, the most common one is PEAPv0/EAP-MSCHAPv2. In the rest of this document, we will use the PEAP term to refer to that EAP method. PEAP is the most used EAP standard after EAP-TLS, in other words if you have a network with mixed OSes, PEAP should be the most supported standard after EAP-TLS.
PEAP is similar to EAP-TTLS: it uses a server-side certificate to authenticate clients by creating an encrypted TLS tunnel between the client and the authentication server, which protects the ensuing exchange of authentication information. In term of security the difference between EAP-TTLS and PEAP is that PEAP authentication broadcasts the username in clear, only the password is sent in the encrypted TLS tunnel. EAP-TTLS will use the TLS tunnel for both username and password.
We have to edit the /etc/wpa_supplicant.conf file and add the EAP-PEAP related settings:
network={ ssid="freebsdap" proto=RSN key_mgmt=WPA-EAP eap=PEAP identity="test" password="test" ca_cert="/etc/certs/cacert.pem" phase1="peaplabel=0" phase2="auth=MSCHAPV2" }
The following must be added to /etc/rc.conf:
ifconfig_ath0="WPA DHCP"
Then, we can bring up the interface:
# /etc/rc.d/netif start Starting wpa_supplicant. DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPREQUEST on ath0 to 255.255.255.255 port 67 DHCPACK from 192.168.0.20 bound to 192.168.0.254 -- renewal in 300 seconds. ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.254 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (DS/11Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA2/802.11i privacy ON deftxkey UNDEF TKIP 2:128-bit txpowmax 36 protmode CTS roaming MANUAL bintval 100
WEP (Wired Equivalent Privacy) is part of the original 802.11 standard. There is no authentication mechanism, only a weak form of access control, and it is easily to be cracked.
WEP can be set up with ifconfig:
# ifconfig ath0 inet 192.168.1.100 netmask 255.255.255.0 ssid my_net \ wepmode on weptxkey 3 wepkey 3:0x3456789012
The weptxkey means which WEP key will be used in the transmission. Here we used the third key. This must match the setting in the access point.
The wepkey means setting the selected WEP key. It should in the format index:key, if the index is not given, key 1 is set. That is to say we need to set the index if we use keys other than the first key.
注: You must replace the 0x3456789012 with the key configured for use on the access point.
You are encouraged to read ifconfig(8) manual page for further information.
The wpa_supplicant facility also can be used to configure your wireless interface with WEP. The example above can be set up by adding the following lines to /etc/wpa_supplicant.conf:
network={ ssid="my_net" key_mgmt=NONE wep_key3=3456789012 wep_tx_keyidx=3 }
Then:
# wpa_supplicant -i ath0 -c /etc/wpa_supplicant.conf Trying to associate with 00:13:46:49:41:76 (SSID='dlinkap' freq=2437 MHz) Associated with 00:13:46:49:41:76
IBSS mode, also called ad-hoc mode, is designed for point to point connections. For example, to establish an ad-hoc network between the machine A and the machine B we will just need to choose two IP adresses and a SSID.
On the box A:
# ifconfig ath0 inet 192.168.0.1 netmask 255.255.255.0 ssid freebsdap mediaopt adhoc # ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 192.168.0.1 netmask 0xffffff00 broadcast 192.168.0.255 inet6 fe80::211:95ff:fec3:dac%ath0 prefixlen 64 scopeid 0x4 ether 00:11:95:c3:0d:ac media: IEEE 802.11 Wireless Ethernet autoselect <adhoc> (autoselect <adhoc>) status: associated ssid freebsdap channel 2 bssid 02:11:95:c3:0d:ac authmode OPEN privacy OFF txpowmax 36 protmode CTS bintval 100
The adhoc parameter indicates the interface is running in the IBSS mode.
On B, we should be able to detect A:
# ifconfig ath0 up scan SSID BSSID CHAN RATE S:N INT CAPS freebsdap 02:11:95:c3:0d:ac 2 54M 19:0 100 IS
The I in the output confirms the machine A is in ad-hoc mode. We just have to configure B with a different IP address:
# ifconfig ath0 inet 192.168.0.2 netmask 255.255.255.0 ssid freebsdap mediaopt adhoc # ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.2 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect <adhoc> (autoselect <adhoc>) status: associated ssid freebsdap channel 2 bssid 02:11:95:c3:0d:ac authmode OPEN privacy OFF txpowmax 36 protmode CTS bintval 100
Both A and B are now ready to exchange informations.
FreeBSD can act as an Access Point (AP) which eliminates the need to buy a hardware AP or run an ad-hoc network. This can be particularly useful when your FreeBSD machine is acting as a gateway to another network (e.g., the Internet).
Before configuring your FreeBSD machine as an AP, the kernel must be configured with the appropriate wireless networking support for your wireless card. You also have to add the support for the security protocols you intend to use. For more details, see µÚ 29.3.2 節.
注: The use of the NDIS driver wrapper and the Windows drivers do not allow currently the AP operation. Only native FreeBSD wireless drivers support AP mode.
Once the wireless networking support is loaded, you can check if your wireless device supports the host-based access point mode (also know as hostap mode):
# ifconfig ath0 list caps ath0=783ed0f<WEP,TKIP,AES,AES_CCM,IBSS,HOSTAP,AHDEMO,TXPMGT,SHSLOT,SHPREAMBLE,MONITOR,TKIPMIC,WPA1,WPA2,BURST,WME>
This output displays the card capabilities; the HOSTAP word confirms this wireless card can act as an Access Point. Various supported ciphers are also mentioned: WEP, TKIP, WPA2, etc., these informations are important to know what security protocols could be set on the Access Point.
The wireless device can now be put into hostap mode and configured with the correct SSID and IP address:
# ifconfig ath0 ssid freebsdap mode 11g mediaopt hostap inet 192.168.0.1 netmask 255.255.255.0
Use again ifconfig to see the status of the ath0 interface:
# ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 192.168.0.1 netmask 0xffffff00 broadcast 192.168.0.255 inet6 fe80::211:95ff:fec3:dac%ath0 prefixlen 64 scopeid 0x4 ether 00:11:95:c3:0d:ac media: IEEE 802.11 Wireless Ethernet autoselect mode 11g <hostap> status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode OPEN privacy OFF txpowmax 38 bmiss 7 protmode CTS burst dtimperiod 1 bintval 100
The hostap parameter indicates the interface is running in the host-based access point mode.
The interface configuration can be done automatically at boot time by adding the following line to /etc/rc.conf:
ifconfig_ath0="ssid freebsdap mode 11g mediaopt hostap inet 192.168.0.1 netmask 255.255.255.0"
Although it is not recommended to run an AP without any authentication or encryption, this is a simple way to check if your AP is working. This configuration is also important for debugging client issues.
Once the AP configured as previously shown, it is possible from another wireless machine to initiate a scan to find the AP:
# ifconfig ath0 up scan SSID BSSID CHAN RATE S:N INT CAPS freebsdap 00:11:95:c3:0d:ac 1 54M 22:1 100 ES
The client machine found the Access Point and can be associated with it:
# ifconfig ath0 ssid freebsdap inet 192.168.0.2 netmask 255.255.255.0 # ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet6 fe80::211:95ff:fed5:4362%ath0 prefixlen 64 scopeid 0x1 inet 192.168.0.2 netmask 0xffffff00 broadcast 192.168.0.255 ether 00:11:95:d5:43:62 media: IEEE 802.11 Wireless Ethernet autoselect (OFDM/54Mbps) status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode OPEN privacy OFF txpowmax 36 protmode CTS bintval 100
This section will focus on setting up FreeBSD Access Point using the WPA security protocol. More details regarding WPA and the configuration of WPA-based wireless clients can be found in the µÚ 29.3.3.1.3 節.
The hostapd daemon is used to deal with client authentication and keys management on the WPA enabled Access Point.
In the following, all the configuration operations will be performed on the FreeBSD machine acting as AP. Once the AP is correctly working, hostapd should be automatically enabled at boot with the following line in /etc/rc.conf:
hostapd_enable="YES"
Before trying to configure hostapd, be sure you have done the basic settings introduced in the µÚ 29.3.5.1 節.
WPA-PSK is intended for small networks where the use of an backend authentication server is not possible or desired.
The configuration is done in the /etc/hostapd.conf file:
interface=ath0 debug=1 ctrl_interface=/var/run/hostapd ctrl_interface_group=wheel ssid=freebsdap wpa=1 wpa_passphrase=freebsdmall wpa_key_mgmt=WPA-PSK wpa_pairwise=CCMP TKIP
警告Always use strong passwords that are sufficiently long and made from a rich alphabet so they will not be guessed and/or attacked.
The next step is to start hostapd:
# /etc/rc.d/hostapd forcestart
# ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 2290 inet 192.168.0.1 netmask 0xffffff00 broadcast 192.168.0.255 inet6 fe80::211:95ff:fec3:dac%ath0 prefixlen 64 scopeid 0x4 ether 00:11:95:c3:0d:ac media: IEEE 802.11 Wireless Ethernet autoselect mode 11g <hostap> status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode WPA2/802.11i privacy MIXED deftxkey 2 TKIP 2:128-bit txpowmax 36 protmode CTS dtimperiod 1 bintval 100
The Access Point is running, the clients can now be associated with it, see µÚ 29.3.3.1.3 節 for more details. It is possible to see the stations associated with the AP using the ifconfig ath0 list sta command.
It is not recommended to use WEP for setting up an Access Point since there is no authentication mechanism and it is easily to be cracked. Some legacy wireless cards only support WEP as security protocol, these cards will only allow to set up AP without authentication or encryption or using the WEP protocol.
The wireless device can now be put into hostap mode and configured with the correct SSID and IP address:
# ifconfig ath0 ssid freebsdap wepmode on weptxkey 3 wepkey 3:0x3456789012 mode 11g mediaopt hostap \ inet 192.168.0.1 netmask 255.255.255.0
The weptxkey means which WEP key will be used in the transmission. Here we used the third key (note that the key numbering starts with 1). This parameter must be specified to really encrypt the data.
The wepkey means setting the selected WEP key. It should in the format index:key, if the index is not given, key 1 is set. That is to say we need to set the index if we use keys other than the first key.
Use again ifconfig to see the status of the ath0 interface:
# ifconfig ath0 ath0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 192.168.0.1 netmask 0xffffff00 broadcast 192.168.0.255 inet6 fe80::211:95ff:fec3:dac%ath0 prefixlen 64 scopeid 0x4 ether 00:11:95:c3:0d:ac media: IEEE 802.11 Wireless Ethernet autoselect mode 11g <hostap> status: associated ssid freebsdap channel 1 bssid 00:11:95:c3:0d:ac authmode OPEN privacy ON deftxkey 3 wepkey 3:40-bit txpowmax 36 protmode CTS dtimperiod 1 bintval 100
From another wireless machine, it is possible to initiate a scan to find the AP:
# ifconfig ath0 up scan SSID BSSID CHAN RATE S:N INT CAPS freebsdap 00:11:95:c3:0d:ac 1 54M 22:1 100 EPS
The client machine found the Access Point and can be associated with it using the correct parameters (key, etc.), see µÚ 29.3.3.1.4 節 for more details.
If you are having trouble with wireless networking, there are a number of steps you can take to help troubleshoot the problem.
If you do not see the access point listed when scanning be sure you have not configured your wireless device to a limited set of channels.
If you cannot associate to an access point verify the configuration of your station matches the one of the access point. This includes the authentication scheme and any security protocols. Simplify your configuration as much as possible. If you are using a security protocol such as WPA or WEP configure the access point for open authentication and no security to see if you can get traffic to pass.
Once you can associate to the access point diagnose any security configuration using simple tools like ping(8).
The wpa_supplicant has much debugging support; try
running it manually with the -dd
option and look at the
system logs.
There are also many lower-level debugging tools. You can enable debugging messages in the 802.11 protocol support layer using the wlandebug program found in /usr/src/tools/tools/net80211. For example:
# wlandebug -i ath0 +scan+auth+debug+assoc net.wlan.0.debug: 0 => 0xc80000<assoc,auth,scan>
can be used to enable console messages related to scanning for access points and doing the 802.11 protocol handshakes required to arrange communication.
There are also many useful statistics maintained by the 802.11 layer; the wlanstats tool will dump these informations. These statistics should identify all errors identified by the 802.11 layer. Beware however that some errors are identified in the device drivers that lie below the 802.11 layer so they may not show up. To diagnose device-specific problems you need to refer to the drivers' documentation.
If the above information does not help to clarify the problem, please submit a problem report and include output from the above tools.
Bluetooth is a wireless technology for creating personal networks operating in the 2.4 GHz unlicensed band, with a range of 10 meters. Networks are usually formed ad-hoc from portable devices such as cellular phones, handhelds and laptops. Unlike the other popular wireless technology, Wi-Fi, Bluetooth offers higher level service profiles, e.g. FTP-like file servers, file pushing, voice transport, serial line emulation, and more.
The Bluetooth stack in FreeBSD is implemented using the Netgraph framework (see netgraph(4)). A broad variety of Bluetooth USB dongles is supported by the ng_ubt(4) driver. The Broadcom BCM2033 chip based Bluetooth devices are supported via the ubtbcmfw(4) and ng_ubt(4) drivers. The 3Com Bluetooth PC Card 3CRWB60-A is supported by the ng_bt3c(4) driver. Serial and UART based Bluetooth devices are supported via sio(4), ng_h4(4) and hcseriald(8). This section describes the use of the USB Bluetooth dongle.
By default Bluetooth device drivers are available as kernel modules. Before attaching a device, you will need to load the driver into the kernel:
# kldload ng_ubt
If the Bluetooth device is present in the system during system startup, load the module from /boot/loader.conf:
ng_ubt_load="YES"
Plug in your USB dongle. The output similar to the following will appear on the console (or in syslog):
ubt0: vendor 0x0a12 product 0x0001, rev 1.10/5.25, addr 2 ubt0: Interface 0 endpoints: interrupt=0x81, bulk-in=0x82, bulk-out=0x2 ubt0: Interface 1 (alt.config 5) endpoints: isoc-in=0x83, isoc-out=0x3, wMaxPacketSize=49, nframes=6, buffer size=294
注: The Bluetooth stack has to be started manually on FreeBSD 6.0, and on FreeBSD 5.X before 5.5. It is done automatically from devd(8) on FreeBSD 5.5, 6.1 and newer.
Copy /usr/share/examples/netgraph/bluetooth/rc.bluetooth into some convenient place, like /etc/rc.bluetooth. This script is used to start and stop the Bluetooth stack. It is a good idea to stop the stack before unplugging the device, but it is not (usually) fatal. When starting the stack, you will receive output similar to the following:
# /etc/rc.bluetooth start ubt0 BD_ADDR: 00:02:72:00:d4:1a Features: 0xff 0xff 0xf 00 00 00 00 00 <3-Slot> <5-Slot> <Encryption> <Slot offset> <Timing accuracy> <Switch> <Hold mode> <Sniff mode> <Park mode> <RSSI> <Channel quality> <SCO link> <HV2 packets> <HV3 packets> <u-law log> <A-law log> <CVSD> <Paging scheme> <Power control> <Transparent SCO data> Max. ACL packet size: 192 bytes Number of ACL packets: 8 Max. SCO packet size: 64 bytes Number of SCO packets: 8
Host Controller Interface (HCI) provides a command interface to the baseband controller and link manager, and access to hardware status and control registers. This interface provides a uniform method of accessing the Bluetooth baseband capabilities. HCI layer on the Host exchanges data and commands with the HCI firmware on the Bluetooth hardware. The Host Controller Transport Layer (i.e. physical bus) driver provides both HCI layers with the ability to exchange information with each other.
A single Netgraph node of type hci is created for a single Bluetooth device. The HCI node is normally connected to the Bluetooth device driver node (downstream) and the L2CAP node (upstream). All HCI operations must be performed on the HCI node and not on the device driver node. Default name for the HCI node is “devicehci”. For more details refer to the ng_hci(4) manual page.
One of the most common tasks is discovery of Bluetooth devices in RF proximity. This operation is called inquiry. Inquiry and other HCI related operations are done with the hccontrol(8) utility. The example below shows how to find out which Bluetooth devices are in range. You should receive the list of devices in a few seconds. Note that a remote device will only answer the inquiry if it put into discoverable mode.
% hccontrol -n ubt0hci inquiry Inquiry result, num_responses=1 Inquiry result #0 BD_ADDR: 00:80:37:29:19:a4 Page Scan Rep. Mode: 0x1 Page Scan Period Mode: 00 Page Scan Mode: 00 Class: 52:02:04 Clock offset: 0x78ef Inquiry complete. Status: No error [00]
BD_ADDR is unique address of a Bluetooth device, similar to MAC addresses of a network card. This address is needed for further communication with a device. It is possible to assign human readable name to a BD_ADDR. The /etc/bluetooth/hosts file contains information regarding the known Bluetooth hosts. The following example shows how to obtain human readable name that was assigned to the remote device:
% hccontrol -n ubt0hci remote_name_request 00:80:37:29:19:a4 BD_ADDR: 00:80:37:29:19:a4 Name: Pav's T39
If you perform an inquiry on a remote Bluetooth device, it will find your computer as “your.host.name (ubt0)”. The name assigned to the local device can be changed at any time.
The Bluetooth system provides a point-to-point connection (only two Bluetooth units involved), or a point-to-multipoint connection. In the point-to-multipoint connection the connection is shared among several Bluetooth devices. The following example shows how to obtain the list of active baseband connections for the local device:
% hccontrol -n ubt0hci read_connection_list Remote BD_ADDR Handle Type Mode Role Encrypt Pending Queue State 00:80:37:29:19:a4 41 ACL 0 MAST NONE 0 0 OPEN
A connection handle is useful when termination of the baseband connection is required. Note, that it is normally not required to do it by hand. The stack will automatically terminate inactive baseband connections.
# hccontrol -n ubt0hci disconnect 41 Connection handle: 41 Reason: Connection terminated by local host [0x16]
Refer to hccontrol help for a complete listing of available HCI commands. Most of the HCI commands do not require superuser privileges.
Logical Link Control and Adaptation Protocol (L2CAP) provides connection-oriented and connectionless data services to upper layer protocols with protocol multiplexing capability and segmentation and reassembly operation. L2CAP permits higher level protocols and applications to transmit and receive L2CAP data packets up to 64 kilobytes in length.
L2CAP is based around the concept of channels. Channel is a logical connection on top of baseband connection. Each channel is bound to a single protocol in a many-to-one fashion. Multiple channels can be bound to the same protocol, but a channel cannot be bound to multiple protocols. Each L2CAP packet received on a channel is directed to the appropriate higher level protocol. Multiple channels can share the same baseband connection.
A single Netgraph node of type l2cap is created for a single Bluetooth device. The L2CAP node is normally connected to the Bluetooth HCI node (downstream) and Bluetooth sockets nodes (upstream). Default name for the L2CAP node is “devicel2cap”. For more details refer to the ng_l2cap(4) manual page.
A useful command is l2ping(8), which can be used to ping other devices. Some Bluetooth implementations might not return all of the data sent to them, so 0 bytes in the following example is normal.
# l2ping -a 00:80:37:29:19:a4 0 bytes from 0:80:37:29:19:a4 seq_no=0 time=48.633 ms result=0 0 bytes from 0:80:37:29:19:a4 seq_no=1 time=37.551 ms result=0 0 bytes from 0:80:37:29:19:a4 seq_no=2 time=28.324 ms result=0 0 bytes from 0:80:37:29:19:a4 seq_no=3 time=46.150 ms result=0
The l2control(8) utility is used to perform various operations on L2CAP nodes. This example shows how to obtain the list of logical connections (channels) and the list of baseband connections for the local device:
% l2control -a 00:02:72:00:d4:1a read_channel_list L2CAP channels: Remote BD_ADDR SCID/ DCID PSM IMTU/ OMTU State 00:07:e0:00:0b:ca 66/ 64 3 132/ 672 OPEN % l2control -a 00:02:72:00:d4:1a read_connection_list L2CAP connections: Remote BD_ADDR Handle Flags Pending State 00:07:e0:00:0b:ca 41 O 0 OPEN
Another diagnostic tool is btsockstat(1). It does a job similar to as netstat(1) does, but for Bluetooth network-related data structures. The example below shows the same logical connection as l2control(8) above.
% btsockstat Active L2CAP sockets PCB Recv-Q Send-Q Local address/PSM Foreign address CID State c2afe900 0 0 00:02:72:00:d4:1a/3 00:07:e0:00:0b:ca 66 OPEN Active RFCOMM sessions L2PCB PCB Flag MTU Out-Q DLCs State c2afe900 c2b53380 1 127 0 Yes OPEN Active RFCOMM sockets PCB Recv-Q Send-Q Local address Foreign address Chan DLCI State c2e8bc80 0 250 00:02:72:00:d4:1a 00:07:e0:00:0b:ca 3 6 OPEN
The RFCOMM protocol provides emulation of serial ports over the L2CAP protocol. The protocol is based on the ETSI standard TS 07.10. RFCOMM is a simple transport protocol, with additional provisions for emulating the 9 circuits of RS-232 (EIATIA-232-E) serial ports. The RFCOMM protocol supports up to 60 simultaneous connections (RFCOMM channels) between two Bluetooth devices.
For the purposes of RFCOMM, a complete communication path involves two applications running on different devices (the communication endpoints) with a communication segment between them. RFCOMM is intended to cover applications that make use of the serial ports of the devices in which they reside. The communication segment is a Bluetooth link from one device to another (direct connect).
RFCOMM is only concerned with the connection between the devices in the direct connect case, or between the device and a modem in the network case. RFCOMM can support other configurations, such as modules that communicate via Bluetooth wireless technology on one side and provide a wired interface on the other side.
In FreeBSD the RFCOMM protocol is implemented at the Bluetooth sockets layer.
By default, Bluetooth communication is not authenticated, and any device can talk to any other device. A Bluetooth device (for example, cellular phone) may choose to require authentication to provide a particular service (for example, Dial-Up service). Bluetooth authentication is normally done with PIN codes. A PIN code is an ASCII string up to 16 characters in length. User is required to enter the same PIN code on both devices. Once user has entered the PIN code, both devices will generate a link key. After that the link key can be stored either in the devices themselves or in a persistent storage. Next time both devices will use previously generated link key. The described above procedure is called pairing. Note that if the link key is lost by any device then pairing must be repeated.
The hcsecd(8) daemon is responsible for handling of all Bluetooth authentication requests. The default configuration file is /etc/bluetooth/hcsecd.conf. An example section for a cellular phone with the PIN code arbitrarily set to “1234” is shown below:
device { bdaddr 00:80:37:29:19:a4; name "Pav's T39"; key nokey; pin "1234"; }
There is no limitation on PIN codes (except length). Some devices (for example
Bluetooth headsets) may have a fixed PIN code built in. The -d
switch forces the hcsecd(8) daemon to
stay in the foreground, so it is easy to see what is happening. Set the remote device to
receive pairing and initiate the Bluetooth connection to the remote device. The remote
device should say that pairing was accepted, and request the PIN code. Enter the same PIN
code as you have in hcsecd.conf. Now your PC and the remote
device are paired. Alternatively, you can initiate pairing on the remote device.
On FreeBSD 5.5, 6.1 and newer, the following line can be added to the /etc/rc.conf file to have hcsecd started automatically on system start:
hcsecd_enable="YES"
The following is a sample of the hcsecd daemon output:
hcsecd[16484]: Got Link_Key_Request event from 'ubt0hci', remote bdaddr 0:80:37:29:19:a4 hcsecd[16484]: Found matching entry, remote bdaddr 0:80:37:29:19:a4, name 'Pav's T39', link key doesn't exist hcsecd[16484]: Sending Link_Key_Negative_Reply to 'ubt0hci' for remote bdaddr 0:80:37:29:19:a4 hcsecd[16484]: Got PIN_Code_Request event from 'ubt0hci', remote bdaddr 0:80:37:29:19:a4 hcsecd[16484]: Found matching entry, remote bdaddr 0:80:37:29:19:a4, name 'Pav's T39', PIN code exists hcsecd[16484]: Sending PIN_Code_Reply to 'ubt0hci' for remote bdaddr 0:80:37:29:19:a4
The Service Discovery Protocol (SDP) provides the means for client applications to discover the existence of services provided by server applications as well as the attributes of those services. The attributes of a service include the type or class of service offered and the mechanism or protocol information needed to utilize the service.
SDP involves communication between a SDP server and a SDP client. The server maintains a list of service records that describe the characteristics of services associated with the server. Each service record contains information about a single service. A client may retrieve information from a service record maintained by the SDP server by issuing a SDP request. If the client, or an application associated with the client, decides to use a service, it must open a separate connection to the service provider in order to utilize the service. SDP provides a mechanism for discovering services and their attributes, but it does not provide a mechanism for utilizing those services.
Normally, a SDP client searches for services based on some desired characteristics of the services. However, there are times when it is desirable to discover which types of services are described by an SDP server's service records without any a priori information about the services. This process of looking for any offered services is called browsing.
The Bluetooth SDP server sdpd(8) and command line client sdpcontrol(8) are included in the standard FreeBSD installation. The following example shows how to perform a SDP browse query.
% sdpcontrol -a 00:01:03:fc:6e:ec browse Record Handle: 00000000 Service Class ID List: Service Discovery Server (0x1000) Protocol Descriptor List: L2CAP (0x0100) Protocol specific parameter #1: u/int/uuid16 1 Protocol specific parameter #2: u/int/uuid16 1 Record Handle: 0x00000001 Service Class ID List: Browse Group Descriptor (0x1001) Record Handle: 0x00000002 Service Class ID List: LAN Access Using PPP (0x1102) Protocol Descriptor List: L2CAP (0x0100) RFCOMM (0x0003) Protocol specific parameter #1: u/int8/bool 1 Bluetooth Profile Descriptor List: LAN Access Using PPP (0x1102) ver. 1.0
... and so on. Note that each service has a list of attributes (RFCOMM channel for example). Depending on the service you might need to make a note of some of the attributes. Some Bluetooth implementations do not support service browsing and may return an empty list. In this case it is possible to search for the specific service. The example below shows how to search for the OBEX Object Push (OPUSH) service:
% sdpcontrol -a 00:01:03:fc:6e:ec search OPUSH
Offering services on FreeBSD to Bluetooth clients is done with the sdpd(8) server. On FreeBSD 5.5, 6.1 and newer, the following line can be added to the /etc/rc.conf file:
sdpd_enable="YES"
Then the sdpd daemon can be started with:
# /etc/rc.d/sdpd start
On FreeBSD 6.0, and on FreeBSD 5.X before 5.5, sdpd is not integrated into the system startup scripts. It has to be started manually with:
# sdpd
The local server application that wants to provide Bluetooth service to the remote clients will register service with the local SDP daemon. The example of such application is rfcomm_pppd(8). Once started it will register Bluetooth LAN service with the local SDP daemon.
The list of services registered with the local SDP server can be obtained by issuing SDP browse query via local control channel:
# sdpcontrol -l browse
The Dial-Up Networking (DUN) profile is mostly used with modems and cellular phones. The scenarios covered by this profile are the following:
use of a cellular phone or modem by a computer as a wireless modem for connecting to a dial-up Internet access server, or using other dial-up services;
use of a cellular phone or modem by a computer to receive data calls.
Network Access with PPP (LAN) profile can be used in the following situations:
LAN access for a single Bluetooth device;
LAN access for multiple Bluetooth devices;
PC to PC (using PPP networking over serial cable emulation).
In FreeBSD both profiles are implemented with ppp(8) and rfcomm_pppd(8) - a wrapper that converts RFCOMM Bluetooth connection into something PPP can operate with. Before any profile can be used, a new PPP label in the /etc/ppp/ppp.conf must be created. Consult rfcomm_pppd(8) manual page for examples.
In the following example rfcomm_pppd(8) will be used to open RFCOMM connection to remote device with BD_ADDR 00:80:37:29:19:a4 on DUN RFCOMM channel. The actual RFCOMM channel number will be obtained from the remote device via SDP. It is possible to specify RFCOMM channel by hand, and in this case rfcomm_pppd(8) will not perform SDP query. Use sdpcontrol(8) to find out RFCOMM channel on the remote device.
# rfcomm_pppd -a 00:80:37:29:19:a4 -c -C dun -l rfcomm-dialup
In order to provide Network Access with PPP (LAN) service the sdpd(8) server must be running. A new entry for LAN clients must be created in the /etc/ppp/ppp.conf file. Consult rfcomm_pppd(8) manual page for examples. Finally, start RFCOMM PPP server on valid RFCOMM channel number. The RFCOMM PPP server will automatically register Bluetooth LAN service with the local SDP daemon. The example below shows how to start RFCOMM PPP server.
# rfcomm_pppd -s -C 7 -l rfcomm-server
OBEX is a widely used protocol for simple file transfers between mobile devices. Its main use is in infrared communication, where it is used for generic file transfers between notebooks or PDAs, and for sending business cards or calendar entries between cellular phones and other devices with PIM applications.
The OBEX server and client are implemented as a third-party package obexapp, which is available as comms/obexapp port.
OBEX client is used to push and/or pull objects from the OBEX server. An object can, for example, be a business card or an appointment. The OBEX client can obtain RFCOMM channel number from the remote device via SDP. This can be done by specifying service name instead of RFCOMM channel number. Supported service names are: IrMC, FTRN and OPUSH. It is possible to specify RFCOMM channel as a number. Below is an example of an OBEX session, where device information object is pulled from the cellular phone, and a new object (business card) is pushed into the phone's directory.
% obexapp -a 00:80:37:29:19:a4 -C IrMC obex> get telecom/devinfo.txt devinfo-t39.txt Success, response: OK, Success (0x20) obex> put new.vcf Success, response: OK, Success (0x20) obex> di Success, response: OK, Success (0x20)
In order to provide OBEX Object Push service, sdpd(8) server must be running. A root folder, where all incoming objects will be stored, must be created. The default path to the root folder is /var/spool/obex. Finally, start OBEX server on valid RFCOMM channel number. The OBEX server will automatically register OBEX Object Push service with the local SDP daemon. The example below shows how to start OBEX server.
# obexapp -s -C 10
The Serial Port Profile (SPP) allows Bluetooth devices to perform RS232 (or similar) serial cable emulation. The scenario covered by this profile deals with legacy applications using Bluetooth as a cable replacement, through a virtual serial port abstraction.
The rfcomm_sppd(1) utility implements the Serial Port profile. A pseudo tty is used as a virtual serial port abstraction. The example below shows how to connect to a remote device Serial Port service. Note that you do not have to specify a RFCOMM channel - rfcomm_sppd(1) can obtain it from the remote device via SDP. If you would like to override this, specify a RFCOMM channel on the command line.
# rfcomm_sppd -a 00:07:E0:00:0B:CA -t /dev/ttyp6 rfcomm_sppd[94692]: Starting on /dev/ttyp6...
Once connected, the pseudo tty can be used as serial port:
# cu -l ttyp6
Some older Bluetooth devices do not support role switching. By default, when FreeBSD is accepting a new connection, it tries to perform a role switch and become master. Devices, which do not support this will not be able to connect. Note that role switching is performed when a new connection is being established, so it is not possible to ask the remote device if it does support role switching. There is a HCI option to disable role switching on the local side:
# hccontrol -n ubt0hci write_node_role_switch 0
Yes, you can. Use the third-party package hcidump, which is available as comms/hcidump port. The hcidump utility is similar to tcpdump(1). It can be used to display the content of the Bluetooth packets on the terminal and to dump the Bluetooth packets to a file.
It is sometimes useful to divide one physical network (such as an Ethernet segment) into two separate network segments without having to create IP subnets and use a router to connect the segments together. A device that connects two networks together in this fashion is called a “bridge”. A FreeBSD system with two network interface cards can act as a bridge.
The bridge works by learning the MAC layer addresses (Ethernet addresses) of the devices on each of its network interfaces. It forwards traffic between two networks only when its source and destination are on different networks.
In many respects, a bridge is like an Ethernet switch with very few ports.
There are many common situations in which a bridge is used today.
The basic operation of a bridge is to join two or more network segments together. There are many reasons to use a host based bridge over plain networking equipment such as cabling constraints, firewalling or connecting pseudo networks such as a Virtual Machine interface. A bridge can also connect a wireless interface running in hostap mode to a wired network and act as an access point.
A common situation is where firewall functionality is needed without routing or network address translation (NAT).
An example is a small company that is connected via DSL or ISDN to their ISP. They have a 13 globally-accessible IP addresses from their ISP and have 10 PCs on their network. In this situation, using a router-based firewall is difficult because of subnetting issues.
A bridge-based firewall can be configured and dropped into the path just downstream of their DSL/ISDN router without any IP numbering issues.
A bridge can join two network segments and be used to inspect all Ethernet frames that pass between them. This can either be from using bpf(4)/tcpdump(1) on the bridge interface or by sending a copy of all frames out an additional interface (span port).
Two Ethernet networks can be joined across an IP link by bridging the networks to an EtherIP tunnel or a tap(4) based solution such as OpenVPN.
A network can be connected together with multiple links and use the Spanning Tree Protocol to block redundant paths. For an Ethernet network to function properly only one active path can exist between two devices, Spanning Tree will detect loops and put the redundant links into a blocked state. Should one of the active links fail then the protocol will calculate a different tree and reenable one of the blocked paths to restore connectivity to all points in the network.
This section covers if_bridge(4) bridge implementation, a netgraph bridging driver is also available, for more information see ng_bridge(4) manual page.
The bridge driver is a kernel module and will be automatically loaded by ifconfig(8) when creating a bridge interface. It is possible to compile the bridge in to the kernel by adding device if_bridge to your kernel configuration file.
Packet filtering can be used with any firewall package that hooks in via the pfil(9) framework. The firewall can be loaded as a module or compiled into the kernel.
The bridge can be used as a traffic shaper with altq(4) or dummynet(4).
The bridge is created using interface cloning. To create a bridge use ifconfig(8), if the bridge driver is not present in the kernel then it will be loaded automatically.
# ifconfig bridge create bridge0 # ifconfig bridge0 bridge0: flags=8802<BROADCAST,SIMPLEX,MULTICAST> metric 0 mtu 1500 ether 96:3d:4b:f1:79:7a id 00:00:00:00:00:00 priority 32768 hellotime 2 fwddelay 15 maxage 20 holdcnt 6 proto rstp maxaddr 100 timeout 1200 root id 00:00:00:00:00:00 priority 0 ifcost 0 port 0
A bridge interface is created and is automatically assigned a randomly generated Ethernet address. The maxaddr and timeout parameters control how many MAC addresses the bridge will keep in its forwarding table and how many seconds before each entry is removed after it is last seen. The other parameters control how Spanning Tree operates.
Add the member network interfaces to the bridge. For the bridge to forward packets all member interfaces and the bridge need to be up:
# ifconfig bridge0 addm fxp0 addm fxp1 up # ifconfig fxp0 up # ifconfig fxp1 up
The bridge is now forwarding Ethernet frames between fxp0 and fxp1. The equivalent configuration in /etc/rc.conf so the bridge is created at startup is:
cloned_interfaces="bridge0" ifconfig_bridge0="addm fxp0 addm fxp1 up" ifconfig_fxp0="up" ifconfig_fxp1="up"
If the bridge host needs an IP address then the correct place to set this is on the bridge interface itself rather than one of the member interfaces. This can be set statically or via DHCP:
# ifconfig bridge0 inet 192.168.0.1/24
It is also possible to assign an IPv6 address to a bridge interface.
When packet filtering is enabled, bridged packets will pass through the filter inbound on the originating interface, on the bridge interface and outbound on the appropriate interfaces. Either stage can be disabled. When direction of the packet flow is important it is best to firewall on the member interfaces rather than the bridge itself.
The bridge has several configurable settings for passing non-IP and ARP packets, and layer2 firewalling with IPFW. See if_bridge(4) for more information.
The bridge driver implements the Rapid Spanning Tree Protocol (RSTP or 802.1w) with backwards compatibility with the legacy Spanning Tree Protocol (STP). Spanning Tree is used to detect and remove loops in a network topology. RSTP provides faster Spanning Tree convergence than legacy STP, the protocol will exchange information with neighbouring switches to quickly transition to forwarding without creating loops.
The following table shows the supported operating modes:
OS Version | STP Modes | Default Mode |
---|---|---|
FreeBSD 5.4——FreeBSD 6.2 | STP | STP |
FreeBSD 6.3+ | RSTP or STP | STP |
FreeBSD 7.0+ | RSTP or STP | RSTP |
Spanning Tree can be enabled on member interfaces using the stp command. For a bridge with fxp0 and fxp1 as the current interfaces, enable STP with the following:
# ifconfig bridge0 stp fxp0 stp fxp1 bridge0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> metric 0 mtu 1500 ether d6:cf:d5:a0:94:6d id 00:01:02:4b:d4:50 priority 32768 hellotime 2 fwddelay 15 maxage 20 holdcnt 6 proto rstp maxaddr 100 timeout 1200 root id 00:01:02:4b:d4:50 priority 32768 ifcost 0 port 0 member: fxp0 flags=1c7<LEARNING,DISCOVER,STP,AUTOEDGE,PTP,AUTOPTP> port 3 priority 128 path cost 200000 proto rstp role designated state forwarding member: fxp1 flags=1c7<LEARNING,DISCOVER,STP,AUTOEDGE,PTP,AUTOPTP> port 4 priority 128 path cost 200000 proto rstp role designated state forwarding
This bridge has a spanning tree ID of 00:01:02:4b:d4:50 and a priority of 32768. As the root id is the same it indicates that this is the root bridge for the tree.
Another bridge on the network also has spanning tree enabled:
bridge0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> metric 0 mtu 1500 ether 96:3d:4b:f1:79:7a id 00:13:d4:9a:06:7a priority 32768 hellotime 2 fwddelay 15 maxage 20 holdcnt 6 proto rstp maxaddr 100 timeout 1200 root id 00:01:02:4b:d4:50 priority 32768 ifcost 400000 port 4 member: fxp0 flags=1c7<LEARNING,DISCOVER,STP,AUTOEDGE,PTP,AUTOPTP> port 4 priority 128 path cost 200000 proto rstp role root state forwarding member: fxp1 flags=1c7<LEARNING,DISCOVER,STP,AUTOEDGE,PTP,AUTOPTP> port 5 priority 128 path cost 200000 proto rstp role designated state forwarding
The line root id 00:01:02:4b:d4:50 priority 32768 ifcost 400000 port 4 shows that the root bridge is 00:01:02:4b:d4:50 as above and has a path cost of 400000 from this bridge, the path to the root bridge is via port 4 which is fxp0.
The bridge supports monitor mode, where the packets are discarded after bpf(4) processing, and are not processed or forwarded further. This can be used to multiplex the input of two or more interfaces into a single bpf(4) stream. This is useful for reconstructing the traffic for network taps that transmit the RX/TX signals out through two separate interfaces.
To read the input from four network interfaces as one stream:
# ifconfig bridge0 addm fxp0 addm fxp1 addm fxp2 addm fxp3 monitor up # tcpdump -i bridge0
A copy of every Ethernet frame received by the bridge will be transmitted out a designated span port. The number of span ports configured on a bridge is unlimited, if an interface is designated as a span port then it may not also be used as a regular bridge port. This is most useful for snooping a bridged network passively on another host connected to one of the span ports of the bridge.
To send a copy of all frames out the interface named fxp4:
# ifconfig bridge0 span fxp4
A private interface does not forward any traffic to any other port that is also a private interface. The traffic is blocked unconditionally so no Ethernet frames will be forwarded, including ARP. If traffic needs to be selectively blocked then a firewall should be used instead.
If a bridge member interface is marked as sticky then dynamically learned address entries are treated at static once entered into the forwarding cache. Sticky entries are never aged out of the cache or replaced, even if the address is seen on a different interface. This gives the benefit of static address entries without the need to pre-populate the forwarding table, clients learnt on a particular segment of the bridge can not roam to another segment.
Another example of using sticky addresses would be to combine the bridge with VLANs to create a router where customer networks are isolated without wasting IP address space. Consider that CustomerA is on vlan100 and CustomerB is on vlan101. The bridge has the address 192.168.0.1 and is also an internet router.
# ifconfig bridge0 addm vlan100 sticky vlan100 addm vlan101 sticky vlan101 # ifconfig bridge0 inet 192.168.0.1/24
Both clients see 192.168.0.1 as their default gateway and since the bridge cache is sticky they can not spoof the MAC address of the other customer to intercept their traffic.
Any communication between the VLANs can be blocked using private interfaces (or a firewall):
# ifconfig bridge0 private vlan100 private vlan101
The customers are completely isolated from each other, the full /24 address range can be allocated without subnetting.
The bridge interface and STP parameters can be monitored via the SNMP daemon which is included in the FreeBSD base system. The exported bridge MIBs conform to the IETF standards so any SNMP client or monitoring package can be used to retrieve the data.
On the bridge machine uncomment the begemotSnmpdModulePath."bridge" = "/usr/lib/snmp_bridge.so" line from /etc/snmp.config and start the bsnmpd daemon. Other configuration such as community names and access lists may need to be modified. See bsnmpd(1) and snmp_bridge(3) for more information.
The following examples use the Net-SNMP software (net-mgmt/net-snmp) to query a bridge, the net-mgmt/bsnmptools port can also be used. From the SNMP client host add to $HOME/.snmp/snmp.conf the following lines to import the bridge MIB definitions in to Net-SNMP:
mibdirs +/usr/share/snmp/mibs mibs +BRIDGE-MIB:RSTP-MIB:BEGEMOT-MIB:BEGEMOT-BRIDGE-MIB
To monitor a single bridge via the IETF BRIDGE-MIB (RFC4188) do
% snmpwalk -v 2c -c public bridge1.example.com mib-2.dot1dBridge BRIDGE-MIB::dot1dBaseBridgeAddress.0 = STRING: 66:fb:9b:6e:5c:44 BRIDGE-MIB::dot1dBaseNumPorts.0 = INTEGER: 1 ports BRIDGE-MIB::dot1dStpTimeSinceTopologyChange.0 = Timeticks: (189959) 0:31:39.59 centi-seconds BRIDGE-MIB::dot1dStpTopChanges.0 = Counter32: 2 BRIDGE-MIB::dot1dStpDesignatedRoot.0 = Hex-STRING: 80 00 00 01 02 4B D4 50 ... BRIDGE-MIB::dot1dStpPortState.3 = INTEGER: forwarding(5) BRIDGE-MIB::dot1dStpPortEnable.3 = INTEGER: enabled(1) BRIDGE-MIB::dot1dStpPortPathCost.3 = INTEGER: 200000 BRIDGE-MIB::dot1dStpPortDesignatedRoot.3 = Hex-STRING: 80 00 00 01 02 4B D4 50 BRIDGE-MIB::dot1dStpPortDesignatedCost.3 = INTEGER: 0 BRIDGE-MIB::dot1dStpPortDesignatedBridge.3 = Hex-STRING: 80 00 00 01 02 4B D4 50 BRIDGE-MIB::dot1dStpPortDesignatedPort.3 = Hex-STRING: 03 80 BRIDGE-MIB::dot1dStpPortForwardTransitions.3 = Counter32: 1 RSTP-MIB::dot1dStpVersion.0 = INTEGER: rstp(2)
The dot1dStpTopChanges.0 value is two which means that the STP bridge topology has changed twice, a topology change means that one or more links in the network have changed or failed and a new tree has been calculated. The dot1dStpTimeSinceTopologyChange.0 value will show when this happened.
To monitor multiple bridge interfaces one may use the private BEGEMOT-BRIDGE-MIB:
% snmpwalk -v 2c -c public bridge1.example.com enterprises.fokus.begemot.begemotBridge BEGEMOT-BRIDGE-MIB::begemotBridgeBaseName."bridge0" = STRING: bridge0 BEGEMOT-BRIDGE-MIB::begemotBridgeBaseName."bridge2" = STRING: bridge2 BEGEMOT-BRIDGE-MIB::begemotBridgeBaseAddress."bridge0" = STRING: e:ce:3b:5a:9e:13 BEGEMOT-BRIDGE-MIB::begemotBridgeBaseAddress."bridge2" = STRING: 12:5e:4d:74:d:fc BEGEMOT-BRIDGE-MIB::begemotBridgeBaseNumPorts."bridge0" = INTEGER: 1 BEGEMOT-BRIDGE-MIB::begemotBridgeBaseNumPorts."bridge2" = INTEGER: 1 ... BEGEMOT-BRIDGE-MIB::begemotBridgeStpTimeSinceTopologyChange."bridge0" = Timeticks: (116927) 0:19:29.27 centi-seconds BEGEMOT-BRIDGE-MIB::begemotBridgeStpTimeSinceTopologyChange."bridge2" = Timeticks: (82773) 0:13:47.73 centi-seconds BEGEMOT-BRIDGE-MIB::begemotBridgeStpTopChanges."bridge0" = Counter32: 1 BEGEMOT-BRIDGE-MIB::begemotBridgeStpTopChanges."bridge2" = Counter32: 1 BEGEMOT-BRIDGE-MIB::begemotBridgeStpDesignatedRoot."bridge0" = Hex-STRING: 80 00 00 40 95 30 5E 31 BEGEMOT-BRIDGE-MIB::begemotBridgeStpDesignatedRoot."bridge2" = Hex-STRING: 80 00 00 50 8B B8 C6 A9
To change the bridge interface being monitored via the mib-2.dot1dBridge subtree do:
% snmpset -v 2c -c private bridge1.example.com BEGEMOT-BRIDGE-MIB::begemotBridgeDefaultBridgeIf.0 s bridge2
The lagg(4) interface allows aggregation of multiple network interfaces as one virtual interface for the purpose of providing fault-tolerance and high-speed links.
Sends and receives traffic only through the master port. If the master port becomes unavailable, the next active port is used. The first interface added is the master port; any interfaces added after that are used as failover devices.
Supports Cisco EtherChannel. This is a static setup and does not negotiate aggregation with the peer or exchange frames to monitor the link, if the switch supports LACP then that should be used instead.
Balances outgoing traffic across the active ports based on hashed protocol header information and accepts incoming traffic from any active port. The hash includes the Ethernet source and destination address, and, if available, the VLAN tag, and the IPv4/IPv6 source and destination address.
Supports the IEEE 802.3ad Link Aggregation Control Protocol (LACP) and the Marker Protocol. LACP will negotiate a set of aggregable links with the peer in to one or more Link Aggregated Groups. Each LAG is composed of ports of the same speed, set to full-duplex operation. The traffic will be balanced across the ports in the LAG with the greatest total speed, in most cases there will only be one LAG which contains all ports. In the event of changes in physical connectivity, Link Aggregation will quickly converge to a new configuration.
Balances outgoing traffic across the active ports based on hashed protocol header information and accepts incoming traffic from any active port. The hash includes the Ethernet source and destination address, and, if available, the VLAN tag, and the IPv4/IPv6 source and destination address.
This is an alias of fec mode.
Distributes outgoing traffic using a round-robin scheduler through all active ports and accepts incoming traffic from any active port. This mode will violate Ethernet frame ordering and should be used with caution.
範例 29-1. LACP aggregation with a Cisco switch
This example connects two interfaces on a FreeBSD machine to the switch as a single load balanced and fault tolerant link. More interfaces can be added to increase throughput and fault tolerance. Since frame ordering is mandatory on Ethernet links then any traffic between two stations always flows over the same physical link limiting the maximum speed to that of one interface. The transmit algorithm attempts to use as much information as it can to distinguish different traffic flows and balance across the available interfaces.
On the Cisco switch add the interfaces to the channel group.
interface FastEthernet0/1 channel-group 1 mode active channel-protocol lacp ! interface FastEthernet0/2 channel-group 1 mode active channel-protocol lacp !
On the FreeBSD machine create the lagg interface.
# ifconfig lagg0 create # ifconfig lagg0 up laggproto lacp laggport fxp0 laggport fxp1
View the interface status from ifconfig; ports marked as ACTIVE are part of the active aggregation group that has been negotiated with the remote switch and traffic will be transmitted and received. Use the verbose output of ifconfig(8) to view the LAG identifiers.
lagg0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> metric 0 mtu 1500 options=8<VLAN_MTU> ether 00:05:5d:71:8d:b8 media: Ethernet autoselect status: active laggproto lacp laggport: fxp1 flags=1c<ACTIVE,COLLECTING,DISTRIBUTING> laggport: fxp0 flags=1c<ACTIVE,COLLECTING,DISTRIBUTING>
The switch will show which ports are active. For more detail use show lacp neighbor detail.
switch# show lacp neighbor Flags: S - Device is requesting Slow LACPDUs F - Device is requesting Fast LACPDUs A - Device is in Active mode P - Device is in Passive mode Channel group 1 neighbors Partner's information: LACP port Oper Port Port Port Flags Priority Dev ID Age Key Number State Fa0/1 SA 32768 0005.5d71.8db8 29s 0x146 0x3 0x3D Fa0/2 SA 32768 0005.5d71.8db8 29s 0x146 0x4 0x3D
範例 29-2. Failover mode
Failover mode can be used to switch over to another interface if the link is lost on the master.
# ifconfig lagg0 create # ifconfig lagg0 up laggproto failover laggport fxp0 laggport fxp1
lagg0: flags=8843<UP,BROADCAST,RUNNING,SIMPLEX,MULTICAST> metric 0 mtu 1500 options=8<VLAN_MTU> ether 00:05:5d:71:8d:b8 media: Ethernet autoselect status: active laggproto failover laggport: fxp1 flags=0<> laggport: fxp0 flags=5<MASTER,ACTIVE>
Traffic will be transmitted and received on fxp0. If the link is lost on fxp0 then fxp1 will become the active link. If the link is restored on the master interface then it will once again become the active link.
A FreeBSD machine can boot over the network and operate without a local disk, using file systems mounted from an NFS server. No system modification is necessary, beyond standard configuration files. Such a system is relatively easy to set up because all the necessary elements are readily available:
There are at least two possible methods to load the kernel over the network:
PXE: The Intel Preboot eXecution Environment system is a form of smart boot ROM built into some networking cards or motherboards. See pxeboot(8) for more details.
The Etherboot port (net/etherboot) produces ROM-able code to boot kernels over the network. The code can be either burnt into a boot PROM on a network card, or loaded from a local floppy (or hard) disk drive, or from a running MS-DOS system. Many network cards are supported.
A sample script (/usr/share/examples/diskless/clone_root) eases the creation and maintenance of the workstation's root file system on the server. The script will probably require a little customization but it will get you started very quickly.
Standard system startup files exist in /etc to detect and support a diskless system startup.
Swapping, if needed, can be done either to an NFS file or to a local disk.
There are many ways to set up diskless workstations. Many elements are involved, and most can be customized to suit local taste. The following will describe variations on the setup of a complete system, emphasizing simplicity and compatibility with the standard FreeBSD startup scripts. The system described has the following characteristics:
The diskless workstations use a shared read-only / file system, and a shared read-only /usr.
The root file system is a copy of a standard FreeBSD root (typically the server's), with some configuration files overridden by ones specific to diskless operation or, possibly, to the workstation they belong to.
The parts of the root which have to be writable are overlaid with md(4) file systems. Any changes will be lost when the system reboots.
The kernel is transferred and loaded either with Etherboot or PXE as some situations may mandate the use of either method.
注意As described, this system is insecure. It should live in a protected area of a network, and be untrusted by other hosts.
All the information in this section has been tested using FreeBSD 5.2.1-RELEASE.
Setting up diskless workstations is both relatively straightforward and prone to errors. These are sometimes difficult to diagnose for a number of reasons. For example:
Compile time options may determine different behaviors at runtime.
Error messages are often cryptic or totally absent.
In this context, having some knowledge of the background mechanisms involved is very useful to solve the problems that may arise.
Several operations need to be performed for a successful bootstrap:
The machine needs to obtain initial parameters such as its IP address, executable filename, server name, root path. This is done using the DHCP or BOOTP protocols. DHCP is a compatible extension of BOOTP, and uses the same port numbers and basic packet format.
It is possible to configure a system to use only BOOTP. The bootpd(8) server program is included in the base FreeBSD system.
However, DHCP has a number of advantages over BOOTP (nicer configuration files, possibility of using PXE, plus many others not directly related to diskless operation), and we will describe mainly a DHCP configuration, with equivalent examples using bootpd(8) when possible. The sample configuration will use the ISC DHCP software package (release 3.0.1.r12 was installed on the test server).
The machine needs to transfer one or several programs to local memory. Either TFTP or NFS are used. The choice between TFTP and NFS is a compile time option in several places. A common source of error is to specify filenames for the wrong protocol: TFTP typically transfers all files from a single directory on the server, and would expect filenames relative to this directory. NFS needs absolute file paths.
The possible intermediate bootstrap programs and the kernel need to be initialized and executed. There are several important variations in this area:
PXE will load pxeboot(8), which is a modified version of the FreeBSD third stage loader. The loader(8) will obtain most parameters necessary to system startup, and leave them in the kernel environment before transferring control. It is possible to use a GENERIC kernel in this case.
Etherboot, will directly load the kernel, with less preparation. You will need to build a kernel with specific options.
PXE and Etherboot work equally well; however, because kernels normally let the loader(8) do more work for them, PXE is the preferred method.
If your BIOS and network cards support PXE, you should probably use it.
Finally, the machine needs to access its file systems. NFS is used in all cases.
See also diskless(8) manual page.
The ISC DHCP server can answer both BOOTP and DHCP requests.
ISC DHCP 3.0 is not part of the base system. You will first need to install the net/isc-dhcp3-server port or the corresponding package.
Once ISC DHCP is installed, it needs a configuration file to run (normally named /usr/local/etc/dhcpd.conf). Here follows a commented example, where host margaux uses Etherboot and host corbieres uses PXE:
default-lease-time 600; max-lease-time 7200; authoritative; option domain-name "example.com"; option domain-name-servers 192.168.4.1; option routers 192.168.4.1; subnet 192.168.4.0 netmask 255.255.255.0 { use-host-decl-names on; option subnet-mask 255.255.255.0; option broadcast-address 192.168.4.255; host margaux { hardware ethernet 01:23:45:67:89:ab; fixed-address margaux.example.com; next-server 192.168.4.4; filename "/data/misc/kernel.diskless"; option root-path "192.168.4.4:/data/misc/diskless"; } host corbieres { hardware ethernet 00:02:b3:27:62:df; fixed-address corbieres.example.com; next-server 192.168.4.4; filename "pxeboot"; option root-path "192.168.4.4:/data/misc/diskless"; } }
Here follows an equivalent bootpd configuration (reduced to one client). This would be found in /etc/bootptab.
Please note that Etherboot must be compiled with the non-default option NO_DHCP_SUPPORT in order to use BOOTP, and that PXE needs DHCP. The only obvious advantage of bootpd is that it exists in the base system.
.def100:\ :hn:ht=1:sa=192.168.4.4:vm=rfc1048:\ :sm=255.255.255.0:\ :ds=192.168.4.1:\ :gw=192.168.4.1:\ :hd="/tftpboot":\ :bf="/kernel.diskless":\ :rp="192.168.4.4:/data/misc/diskless": margaux:ha=0123456789ab:tc=.def100
Etherboot's Web site contains extensive documentation mainly intended for Linux systems, but nonetheless containing useful information. The following will just outline how you would use Etherboot on a FreeBSD system.
You must first install the net/etherboot package or port.
You can change the Etherboot configuration (i.e. to use TFTP instead of NFS) by editing the Config file in the Etherboot source directory.
For our setup, we shall use a boot floppy. For other methods (PROM, or MS-DOS program), please refer to the Etherboot documentation.
To make a boot floppy, insert a floppy in the drive on the machine where you installed Etherboot, then change your current directory to the src directory in the Etherboot tree and type:
# gmake bin32/devicetype.fd0
devicetype depends on the type of the Ethernet card in the diskless workstation. Refer to the NIC file in the same directory to determine the right devicetype.
By default, the pxeboot(8) loader loads the kernel via NFS. It can be compiled to use TFTP instead by specifying the LOADER_TFTP_SUPPORT option in /etc/make.conf. See the comments in /usr/share/examples/etc/make.conf for instructions.
There are two other make.conf options which may be useful for setting up a serial console diskless machine: BOOT_PXELDR_PROBE_KEYBOARD, and BOOT_PXELDR_ALWAYS_SERIAL.
To use PXE when the machine starts, you will usually need to select the Boot from network option in your BIOS setup, or type a function key during the PC initialization.
If you are using PXE or Etherboot configured to use TFTP, you need to enable tftpd on the file server:
Create a directory from which tftpd will serve the files, e.g. /tftpboot.
Add this line to your /etc/inetd.conf:
tftp dgram udp wait root /usr/libexec/tftpd tftpd -l -s /tftpboot
注: It appears that at least some PXE versions want the TCP version of TFTP. In this case, add a second line, replacing dgram udp with stream tcp.
Tell inetd to reread its configuration file. The
inetd_enable="YES"
must be in the /etc/rc.conf file for this command to execute correctly:
# /etc/rc.d/inetd restart
You can place the tftpboot directory anywhere on the server. Make sure that the location is set in both inetd.conf and dhcpd.conf.
In all cases, you also need to enable NFS and export the appropriate file system on the NFS server.
Add this to /etc/rc.conf:
nfs_server_enable="YES"
Export the file system where the diskless root directory is located by adding the following to /etc/exports (adjust the volume mount point and replace margaux corbieres with the names of the diskless workstations):
/data/misc -alldirs -ro margaux corbieres
Tell mountd to reread its configuration file. If you actually needed to enable NFS in /etc/rc.conf at the first step, you probably want to reboot instead.
# /etc/rc.d/mountd restart
If using Etherboot, you need to create a kernel configuration file for the diskless client with the following options (in addition to the usual ones):
options BOOTP # Use BOOTP to obtain IP address/hostname options BOOTP_NFSROOT # NFS mount root file system using BOOTP info
You may also want to use BOOTP_NFSV3, BOOT_COMPAT and BOOTP_WIRED_TO (refer to NOTES).
These option names are historical and slightly misleading as they actually enable indifferent use of DHCP and BOOTP inside the kernel (it is also possible to force strict BOOTP or DHCP use).
Build the kernel (see µÚ 8 章), and copy it to the place specified in dhcpd.conf.
注: When using PXE, building a kernel with the above options is not strictly necessary (though suggested). Enabling them will cause more DHCP requests to be issued during kernel startup, with a small risk of inconsistency between the new values and those retrieved by pxeboot(8) in some special cases. The advantage of using them is that the host name will be set as a side effect. Otherwise you will need to set the host name by another method, for example in a client-specific rc.conf file.
注: In order to be loadable with Etherboot, a kernel needs to have the device hints compiled in. You would typically set the following option in the configuration file (see the NOTES configuration comments file):
hints "GENERIC.hints"
You need to create a root file system for the diskless workstations, in the location listed as root-path in dhcpd.conf.
This method is quick and will install a complete virgin system (not only the root file system) into DESTDIR. All you have to do is simply execute the following script:
#!/bin/sh export DESTDIR=/data/misc/diskless mkdir -p ${DESTDIR} cd /usr/src; make buildworld && make buildkernel cd /usr/src/etc; make distribution
Once done, you may need to customize your /etc/rc.conf and /etc/fstab placed into DESTDIR according to your needs.
If needed, a swap file located on the server can be accessed via NFS.
The kernel does not support enabling NFS swap at boot time. Swap must be enabled by the startup scripts, by mounting a writable file system and creating and enabling a swap file. To create a swap file of appropriate size, you can do like this:
# dd if=/dev/zero of=/path/to/swapfile bs=1k count=1 oseek=100000
To enable it you have to add the following line to your rc.conf:
swapfile=/path/to/swapfile
If the diskless workstation is configured to run X, you will have to adjust the XDM configuration file, which puts the error log on /usr by default.
When the server for the root file system is not running FreeBSD, you will have to create the root file system on a FreeBSD machine, then copy it to its destination, using tar or cpio.
In this situation, there are sometimes problems with the special files in /dev, due to differing major/minor integer sizes. A solution to this problem is to export a directory from the non-FreeBSD server, mount this directory onto a FreeBSD machine, and use devfs(5) to allocate device nodes transparently for the user.
A good resource for information on ISDN technology and hardware is Dan Kegel's ISDN Page.
A quick simple road map to ISDN follows:
If you live in Europe you might want to investigate the ISDN card section.
If you are planning to use ISDN primarily to connect to the Internet with an Internet Provider on a dial-up non-dedicated basis, you might look into Terminal Adapters. This will give you the most flexibility, with the fewest problems, if you change providers.
If you are connecting two LANs together, or connecting to the Internet with a dedicated ISDN connection, you might consider the stand alone router/bridge option.
Cost is a significant factor in determining what solution you will choose. The following options are listed from least expensive to most expensive.
FreeBSD's ISDN implementation supports only the DSS1/Q.931 (or Euro-ISDN) standard using passive cards. Some active cards are supported where the firmware also supports other signaling protocols; this also includes the first supported Primary Rate (PRI) ISDN card.
The isdn4bsd software allows you to connect to other ISDN routers using either IP over raw HDLC or by using synchronous PPP: either by using kernel PPP with isppp, a modified sppp(4) driver, or by using userland ppp(8). By using userland ppp(8), channel bonding of two or more ISDN B-channels is possible. A telephone answering machine application is also available as well as many utilities such as a software 300 Baud modem.
Some growing number of PC ISDN cards are supported under FreeBSD and the reports show that it is successfully used all over Europe and in many other parts of the world.
The passive ISDN cards supported are mostly the ones with the Infineon (formerly Siemens) ISAC/HSCX/IPAC ISDN chipsets, but also ISDN cards with chips from Cologne Chip (ISA bus only), PCI cards with Winbond W6692 chips, some cards with the Tiger300/320/ISAC chipset combinations and some vendor specific chipset based cards such as the AVM Fritz!Card PCI V.1.0 and the AVM Fritz!Card PnP.
Currently the active supported ISDN cards are the AVM B1 (ISA and PCI) BRI cards and the AVM T1 PCI PRI cards.
For documentation on isdn4bsd, have a look at /usr/share/examples/isdn/ directory on your FreeBSD system or at the homepage of isdn4bsd which also has pointers to hints, erratas and much more documentation such as the isdn4bsd handbook.
In case you are interested in adding support for a different ISDN protocol, a
currently unsupported ISDN PC card or otherwise enhancing isdn4bsd, please get in touch with Hellmuth Michaelis <hm@FreeBSD.org>
.
For questions regarding the installation, configuration and troubleshooting isdn4bsd, a freebsd-isdn mailing list is available.
Terminal adapters (TA), are to ISDN what modems are to regular phone lines.
Most TA's use the standard Hayes modem AT command set, and can be used as a drop in replacement for a modem.
A TA will operate basically the same as a modem except connection and throughput speeds will be much faster than your old modem. You will need to configure PPP exactly the same as for a modem setup. Make sure you set your serial speed as high as possible.
The main advantage of using a TA to connect to an Internet Provider is that you can do Dynamic PPP. As IP address space becomes more and more scarce, most providers are not willing to provide you with a static IP anymore. Most stand-alone routers are not able to accommodate dynamic IP allocation.
TA's completely rely on the PPP daemon that you are running for their features and stability of connection. This allows you to upgrade easily from using a modem to ISDN on a FreeBSD machine, if you already have PPP set up. However, at the same time any problems you experienced with the PPP program and are going to persist.
If you want maximum stability, use the kernel PPP option, not the userland PPP.
The following TA's are known to work with FreeBSD:
Motorola BitSurfer and Bitsurfer Pro
Adtran
Most other TA's will probably work as well, TA vendors try to make sure their product can accept most of the standard modem AT command set.
The real problem with external TA's is that, like modems, you need a good serial card in your computer.
You should read the FreeBSD Serial Hardware tutorial for a detailed understanding of serial devices, and the differences between asynchronous and synchronous serial ports.
A TA running off a standard PC serial port (asynchronous) limits you to 115.2 Kbs, even though you have a 128 Kbs connection. To fully utilize the 128 Kbs that ISDN is capable of, you must move the TA to a synchronous serial card.
Do not be fooled into buying an internal TA and thinking you have avoided the synchronous/asynchronous issue. Internal TA's simply have a standard PC serial port chip built into them. All this will do is save you having to buy another serial cable and find another empty electrical socket.
A synchronous card with a TA is at least as fast as a stand-alone router, and with a simple 386 FreeBSD box driving it, probably more flexible.
The choice of synchronous card/TA v.s. stand-alone router is largely a religious issue. There has been some discussion of this in the mailing lists. We suggest you search the archives for the complete discussion.
ISDN bridges or routers are not at all specific to FreeBSD or any other operating system. For a more complete description of routing and bridging technology, please refer to a networking reference book.
In the context of this section, the terms router and bridge will be used interchangeably.
As the cost of low end ISDN routers/bridges comes down, it will likely become a more and more popular choice. An ISDN router is a small box that plugs directly into your local Ethernet network, and manages its own connection to the other bridge/router. It has built in software to communicate via PPP and other popular protocols.
A router will allow you much faster throughput than a standard TA, since it will be using a full synchronous ISDN connection.
The main problem with ISDN routers and bridges is that interoperability between manufacturers can still be a problem. If you are planning to connect to an Internet provider, you should discuss your needs with them.
If you are planning to connect two LAN segments together, such as your home LAN to the office LAN, this is the simplest lowest maintenance solution. Since you are buying the equipment for both sides of the connection you can be assured that the link will work.
For example to connect a home computer or branch office network to a head office network the following setup could be used:
範例 29-3. Branch Office or Home Network
Network uses a bus based topology with 10 base 2 Ethernet (“thinnet”). Connect router to network cable with AUI/10BT transceiver, if necessary.
If your home/branch office is only one computer you can use a twisted pair crossover cable to connect to the stand-alone router directly.
範例 29-4. Head Office or Other LAN
Network uses a star topology with 10 base T Ethernet (“Twisted Pair”).
One large advantage of most routers/bridges is that they allow you to have 2 separate independent PPP connections to 2 separate sites at the same time. This is not supported on most TA's, except for specific (usually expensive) models that have two serial ports. Do not confuse this with channel bonding, MPP, etc.
This can be a very useful feature if, for example, you have an dedicated ISDN connection at your office and would like to tap into it, but do not want to get another ISDN line at work. A router at the office location can manage a dedicated B channel connection (64 Kbps) to the Internet and use the other B channel for a separate data connection. The second B channel can be used for dial-in, dial-out or dynamically bonding (MPP, etc.) with the first B channel for more bandwidth.
An Ethernet bridge will also allow you to transmit more than just IP traffic. You can also send IPX/SPX or whatever other protocols you use.
FreeBSD's Network Address Translation daemon, commonly known as natd(8) is a daemon that accepts incoming raw IP packets, changes the source to the local machine and re-injects these packets back into the outgoing IP packet stream. natd(8) does this by changing the source IP address and port such that when data is received back, it is able to determine the original location of the data and forward it back to its original requester.
The most common use of NAT is to perform what is commonly known as Internet Connection Sharing.
Due to the diminishing IP space in IPv4, and the increased number of users on high-speed consumer lines such as cable or DSL, people are increasingly in need of an Internet Connection Sharing solution. The ability to connect several computers online through one connection and IP address makes natd(8) a reasonable choice.
Most commonly, a user has a machine connected to a cable or DSL line with one IP address and wishes to use this one connected computer to provide Internet access to several more over a LAN.
To do this, the FreeBSD machine on the Internet must act as a gateway. This gateway machine must have two NICs——one for connecting to the Internet router, the other connecting to a LAN. All the machines on the LAN are connected through a hub or switch.
注: There are many ways to get a LAN connected to the Internet through a FreeBSD gateway. This example will only cover a gateway with at least two NICs.
A setup like this is commonly used to share an Internet connection. One of the LAN machines is connected to the Internet. The rest of the machines access the Internet through that “gateway” machine.
The following options must be in the kernel configuration file:
options IPFIREWALL options IPDIVERT
Additionally, at choice, the following may also be suitable:
options IPFIREWALL_DEFAULT_TO_ACCEPT options IPFIREWALL_VERBOSE
The following must be in /etc/rc.conf:
gateway_enable="YES" firewall_enable="YES" firewall_type="OPEN" natd_enable="YES" natd_interface="fxp0" natd_flags=""
Having the previous options defined in /etc/rc.conf would run natd -interface fxp0 at boot. This can also be run manually.
注: It is also possible to use a configuration file for natd(8) when there are too many options to pass. In this case, the configuration file must be defined by adding the following line to /etc/rc.conf:
natd_flags="-f /etc/natd.conf"The /etc/natd.conf file will contain a list of configuration options, one per line. For example the next section case would use the following file:
redirect_port tcp 192.168.0.2:6667 6667 redirect_port tcp 192.168.0.3:80 80For more information about the configuration file, consult the natd(8) manual page about the
-f
option.
Each machine and interface behind the LAN should be assigned IP address numbers in the private network space as defined by RFC 1918 and have a default gateway of the natd machine's internal IP address.
For example, client A and B behind the LAN have IP addresses of 192.168.0.2 and 192.168.0.3, while the natd machine's LAN interface has an IP address of 192.168.0.1. Client A and B's default gateway must be set to that of the natd machine, 192.168.0.1. The natd machine's external, or Internet interface does not require any special modification for natd(8) to work.
The drawback with natd(8) is that the LAN clients are not accessible from the Internet. Clients on the LAN can make outgoing connections to the world but cannot receive incoming ones. This presents a problem if trying to run Internet services on one of the LAN client machines. A simple way around this is to redirect selected Internet ports on the natd machine to a LAN client.
For example, an IRC server runs on client A, and a web server runs on client B. For this to work properly, connections received on ports 6667 (IRC) and 80 (web) must be redirected to the respective machines.
The -redirect_port
must be passed to natd(8) with the
proper options. The syntax is as follows:
-redirect_port proto targetIP:targetPORT[-targetPORT] [aliasIP:]aliasPORT[-aliasPORT] [remoteIP[:remotePORT[-remotePORT]]]
In the above example, the argument should be:
-redirect_port tcp 192.168.0.2:6667 6667 -redirect_port tcp 192.168.0.3:80 80
This will redirect the proper tcp ports to the LAN client machines.
The -redirect_port
argument can be used to indicate port
ranges over individual ports. For example, tcp
192.168.0.2:2000-3000 2000-3000 would redirect all connections received on ports
2000 to 3000 to ports 2000 to 3000 on client A.
These options can be used when directly running natd(8), placed within the natd_flags="" option in /etc/rc.conf, or passed via a configuration file.
For further configuration options, consult natd(8)
Address redirection is useful if several IP addresses are available, yet they must be on one machine. With this, natd(8) can assign each LAN client its own external IP address. natd(8) then rewrites outgoing packets from the LAN clients with the proper external IP address and redirects all traffic incoming on that particular IP address back to the specific LAN client. This is also known as static NAT. For example, the IP addresses 128.1.1.1, 128.1.1.2, and 128.1.1.3 belong to the natd gateway machine. 128.1.1.1 can be used as the natd gateway machine's external IP address, while 128.1.1.2 and 128.1.1.3 are forwarded back to LAN clients A and B.
The -redirect_address
syntax is as follows:
-redirect_address localIP publicIP
localIP | The internal IP address of the LAN client. |
publicIP | The external IP address corresponding to the LAN client. |
In the example, this argument would read:
-redirect_address 192.168.0.2 128.1.1.2 -redirect_address 192.168.0.3 128.1.1.3
Like -redirect_port
, these arguments are also placed
within the natd_flags="" option of /etc/rc.conf, or passed via a configuration file. With address
redirection, there is no need for port redirection since all data received on a
particular IP address is redirected.
The external IP addresses on the natd machine must be active and aliased to the external interface. Look at rc.conf(5) to do so.
PLIP lets us run TCP/IP between parallel ports. It is useful on machines without network cards, or to install on laptops. In this section, we will discuss:
Creating a parallel (laplink) cable.
Connecting two computers with PLIP.
You can purchase a parallel cable at most computer supply stores. If you cannot do that, or you just want to know how it is done, the following table shows how to make one out of a normal parallel printer cable.
表格 29-1. Wiring a Parallel Cable for Networking
A-name | A-End | B-End | Descr. | Post/Bit |
---|---|---|---|---|
DATA0 |
2 |
15 |
Data |
0/0x01 |
DATA1 |
3 |
13 |
Data |
0/0x02 |
DATA2 |
4 |
12 |
Data |
0/0x04 |
DATA3 |
5 |
10 |
Strobe |
0/0x08 |
DATA4 |
6 |
11 |
Data |
0/0x10 |
GND | 18-25 | 18-25 | GND | - |
First, you have to get a laplink cable. Then, confirm that both computers have a kernel with lpt(4) driver support:
# grep lp /var/run/dmesg.boot lpt0: <Printer> on ppbus0 lpt0: Interrupt-driven port
The parallel port must be an interrupt driven port, you should have lines similar to the following in your in the /boot/device.hints file:
hint.ppc.0.at="isa" hint.ppc.0.irq="7"
Then check if the kernel configuration file has a device plip line or if the plip.ko kernel module is loaded. In both cases the parallel networking interface should appear when you use the ifconfig(8) command to display it:
# ifconfig plip0 plip0: flags=8810<POINTOPOINT,SIMPLEX,MULTICAST> mtu 1500
Plug the laplink cable into the parallel interface on both computers.
Configure the network interface parameters on both sites as root. For example, if you want to connect the host host1 with another machine host2:
host1 <-----> host2 IP Address 10.0.0.1 10.0.0.2
Configure the interface on host1 by doing:
# ifconfig plip0 10.0.0.1 10.0.0.2
Configure the interface on host2 by doing:
# ifconfig plip0 10.0.0.2 10.0.0.1
You now should have a working connection. Please read the manual pages lp(4) and lpt(4) for more details.
You should also add both hosts to /etc/hosts:
127.0.0.1 localhost.my.domain localhost 10.0.0.1 host1.my.domain host1 10.0.0.2 host2.my.domain
To confirm the connection works, go to each host and ping the other. For example, on host1:
# ifconfig plip0 plip0: flags=8851<UP,POINTOPOINT,RUNNING,SIMPLEX,MULTICAST> mtu 1500 inet 10.0.0.1 --> 10.0.0.2 netmask 0xff000000 # netstat -r Routing tables Internet: Destination Gateway Flags Refs Use Netif Expire host2 host1 UH 0 0 plip0 # ping -c 4 host2 PING host2 (10.0.0.2): 56 data bytes 64 bytes from 10.0.0.2: icmp_seq=0 ttl=255 time=2.774 ms 64 bytes from 10.0.0.2: icmp_seq=1 ttl=255 time=2.530 ms 64 bytes from 10.0.0.2: icmp_seq=2 ttl=255 time=2.556 ms 64 bytes from 10.0.0.2: icmp_seq=3 ttl=255 time=2.714 ms --- host2 ping statistics --- 4 packets transmitted, 4 packets received, 0% packet loss round-trip min/avg/max/stddev = 2.530/2.643/2.774/0.103 ms
IPv6 (also known as IPng “IP next generation”) is the new version of the well known IP protocol (also known as IPv4). Like the other current *BSD systems, FreeBSD includes the KAME IPv6 reference implementation. So your FreeBSD system comes with all you will need to experiment with IPv6. This section focuses on getting IPv6 configured and running.
In the early 1990s, people became aware of the rapidly diminishing address space of IPv4. Given the expansion rate of the Internet there were two major concerns:
Running out of addresses. Today this is not so much of a concern anymore since RFC1918 private address space (10.0.0.0/8, 172.16.0.0/12, and 192.168.0.0/16) and Network Address Translation (NAT) are being employed.
Router table entries were getting too large. This is still a concern today.
IPv6 deals with these and many other issues:
128 bit address space. In other words theoretically there are 340,282,366,920,938,463,463,374,607,431,768,211,456 addresses available. This means there are approximately 6.67 * 10^27 IPv6 addresses per square meter on our planet.
Routers will only store network aggregation addresses in their routing tables thus reducing the average space of a routing table to 8192 entries.
There are also lots of other useful features of IPv6 such as:
Address autoconfiguration (RFC2462)
Anycast addresses (“one-out-of many”)
Mandatory multicast addresses
IPsec (IP security)
Simplified header structure
Mobile IP
IPv6-to-IPv4 transition mechanisms
For more information see:
IPv6 overview at playground.sun.com
There are different types of IPv6 addresses: Unicast, Anycast and Multicast.
Unicast addresses are the well known addresses. A packet sent to a unicast address arrives exactly at the interface belonging to the address.
Anycast addresses are syntactically indistinguishable from unicast addresses but they address a group of interfaces. The packet destined for an anycast address will arrive at the nearest (in router metric) interface. Anycast addresses may only be used by routers.
Multicast addresses identify a group of interfaces. A packet destined for a multicast address will arrive at all interfaces belonging to the multicast group.
注: The IPv4 broadcast address (usually xxx.xxx.xxx.255) is expressed by multicast addresses in IPv6.
表格 29-2. Reserved IPv6 addresses
IPv6 address | Prefixlength (Bits) | Description | Notes |
---|---|---|---|
:: | 128 bits | unspecified | cf. 0.0.0.0 in IPv4 |
::1 | 128 bits | loopback address | cf. 127.0.0.1 in IPv4 |
::00:xx:xx:xx:xx | 96 bits | embedded IPv4 | The lower 32 bits are the IPv4 address. Also called “IPv4 compatible IPv6 address” |
::ff:xx:xx:xx:xx | 96 bits | IPv4 mapped IPv6 address | The lower 32 bits are the IPv4 address. For hosts which do not support IPv6. |
fe80:: - feb:: | 10 bits | link-local | cf. loopback address in IPv4 |
fec0:: - fef:: | 10 bits | site-local | |
ff:: | 8 bits | multicast | |
001 (base 2) | 3 bits | global unicast | All global unicast addresses are assigned from this pool. The first 3 bits are “001”. |
The canonical form is represented as: x:x:x:x:x:x:x:x, each “x” being a 16 Bit hex value. For example FEBC:A574:382B:23C1:AA49:4592:4EFE:9982
Often an address will have long substrings of all zeros therefore one such substring per address can be abbreviated by “::”. Also up to three leading “0”s per hexquad can be omitted. For example fe80::1 corresponds to the canonical form fe80:0000:0000:0000:0000:0000:0000:0001.
A third form is to write the last 32 Bit part in the well known (decimal) IPv4 style with dots “.” as separators. For example 2002::10.0.0.1 corresponds to the (hexadecimal) canonical representation 2002:0000:0000:0000:0000:0000:0a00:0001 which in turn is equivalent to writing 2002::a00:1.
By now the reader should be able to understand the following:
# ifconfig
rl0: flags=8943<UP,BROADCAST,RUNNING,PROMISC,SIMPLEX,MULTICAST> mtu 1500 inet 10.0.0.10 netmask 0xffffff00 broadcast 10.0.0.255 inet6 fe80::200:21ff:fe03:8e1%rl0 prefixlen 64 scopeid 0x1 ether 00:00:21:03:08:e1 media: Ethernet autoselect (100baseTX ) status: active
fe80::200:21ff:fe03:8e1%rl0 is an auto configured link-local address. It is generated from the MAC address as part of the auto configuration.
For further information on the structure of IPv6 addresses see RFC3513.
Currently there are four ways to connect to other IPv6 hosts and networks:
Getting an IPv6 network from your upstream provider. Talk to your Internet provider for instructions.
Tunnel via 6-to-4 (RFC3068)
Use the net/freenet6 port if you are on a dial-up connection.
There used to be two types of DNS records for IPv6. The IETF has declared A6 records obsolete. AAAA records are the standard now.
Using AAAA records is straightforward. Assign your hostname to the new IPv6 address you just received by adding:
MYHOSTNAME AAAA MYIPv6ADDR
To your primary zone DNS file. In case you do not serve your own DNS zones ask your DNS provider. Current versions of bind (version 8.3 and 9) and dns/djbdns (with the IPv6 patch) support AAAA records.
These settings will help you configure a machine that will be on your LAN and act as a client, not a router. To have rtsol(8) autoconfigure your interface on boot all you need to add is:
ipv6_enable="YES"
To statically assign an IP address such as 2001:471:1f11:251:290:27ff:fee0:2093, to your fxp0 interface, add:
ipv6_ifconfig_fxp0="2001:471:1f11:251:290:27ff:fee0:2093"
To assign a default router of 2001:471:1f11:251::1 add the following to /etc/rc.conf:
ipv6_defaultrouter="2001:471:1f11:251::1"
This will help you take the directions that your tunnel provider has given you and convert it into settings that will persist through reboots. To restore your tunnel on startup use something like the following in /etc/rc.conf:
List the Generic Tunneling interfaces that will be configured, for example gif0:
gif_interfaces="gif0"
To configure the interface with a local endpoint of MY_IPv4_ADDR to a remote endpoint of REMOTE_IPv4_ADDR:
gifconfig_gif0="MY_IPv4_ADDR REMOTE_IPv4_ADDR"
To apply the IPv6 address you have been assigned for use as your IPv6 tunnel endpoint, add:
ipv6_ifconfig_gif0="MY_ASSIGNED_IPv6_TUNNEL_ENDPOINT_ADDR"
Then all you have to do is set the default route for IPv6. This is the other side of the IPv6 tunnel:
ipv6_defaultrouter="MY_IPv6_REMOTE_TUNNEL_ENDPOINT_ADDR"
If the server is to route IPv6 between the rest of your network and the world, the following /etc/rc.conf setting will also be needed:
ipv6_gateway_enable="YES"
This section will help you setup rtadvd(8) to advertise the IPv6 default route.
To enable rtadvd(8) you will need the following in your /etc/rc.conf:
rtadvd_enable="YES"
It is important that you specify the interface on which to do IPv6 router solicitation. For example to tell rtadvd(8) to use fxp0:
rtadvd_interfaces="fxp0"
Now we must create the configuration file, /etc/rtadvd.conf. Here is an example:
fxp0:\ :addrs#1:addr="2001:471:1f11:246::":prefixlen#64:tc=ether:
Replace fxp0 with the interface you are going to be using.
Next, replace 2001:471:1f11:246:: with the prefix of your allocation.
If you are dedicated a /64 subnet you will not need to change anything else. Otherwise, you will need to change the prefixlen# to the correct value.
Classical IP over ATM (CLIP) is the simplest method to use Asynchronous Transfer Mode (ATM) with IP. It can be used with switched connections (SVCs) and with permanent connections (PVCs). This section describes how to set up a network based on PVCs.
The first method to set up a CLIP with PVCs is to connect each machine to each other machine in the network via a dedicated PVC. While this is simple to configure it tends to become impractical for a larger number of machines. The example supposes that we have four machines in the network, each connected to the ATM network with an ATM adapter card. The first step is the planning of the IP addresses and the ATM connections between the machines. We use the following:
To build a fully meshed net we need one ATM connection between each pair of machines:
Machines | VPI.VCI couple |
---|---|
hostA - hostB | 0.100 |
hostA - hostC | 0.101 |
hostA - hostD | 0.102 |
hostB - hostC | 0.103 |
hostB - hostD | 0.104 |
hostC - hostD | 0.105 |
The VPI and VCI values at each end of the connection may of course differ, but for simplicity we assume that they are the same. Next we need to configure the ATM interfaces on each host:
hostA# ifconfig hatm0 192.168.173.1 up hostB# ifconfig hatm0 192.168.173.2 up hostC# ifconfig hatm0 192.168.173.3 up hostD# ifconfig hatm0 192.168.173.4 up
assuming that the ATM interface is hatm0 on all hosts. Now the PVCs need to be configured on hostA (we assume that they are already configured on the ATM switches, you need to consult the manual for the switch on how to do this).
hostA# atmconfig natm add 192.168.173.2 hatm0 0 100 llc/snap ubr hostA# atmconfig natm add 192.168.173.3 hatm0 0 101 llc/snap ubr hostA# atmconfig natm add 192.168.173.4 hatm0 0 102 llc/snap ubr hostB# atmconfig natm add 192.168.173.1 hatm0 0 100 llc/snap ubr hostB# atmconfig natm add 192.168.173.3 hatm0 0 103 llc/snap ubr hostB# atmconfig natm add 192.168.173.4 hatm0 0 104 llc/snap ubr hostC# atmconfig natm add 192.168.173.1 hatm0 0 101 llc/snap ubr hostC# atmconfig natm add 192.168.173.2 hatm0 0 103 llc/snap ubr hostC# atmconfig natm add 192.168.173.4 hatm0 0 105 llc/snap ubr hostD# atmconfig natm add 192.168.173.1 hatm0 0 102 llc/snap ubr hostD# atmconfig natm add 192.168.173.2 hatm0 0 104 llc/snap ubr hostD# atmconfig natm add 192.168.173.3 hatm0 0 105 llc/snap ubr
Of course other traffic contracts than UBR can be used given the ATM adapter supports those. In this case the name of the traffic contract is followed by the parameters of the traffic. Help for the atmconfig(8) tool can be obtained with:
# atmconfig help natm add
or in the atmconfig(8) manual page.
The same configuration can also be done via /etc/rc.conf. For hostA this would look like:
network_interfaces="lo0 hatm0" ifconfig_hatm0="inet 192.168.173.1 up" natm_static_routes="hostB hostC hostD" route_hostB="192.168.173.2 hatm0 0 100 llc/snap ubr" route_hostC="192.168.173.3 hatm0 0 101 llc/snap ubr" route_hostD="192.168.173.4 hatm0 0 102 llc/snap ubr"
The current state of all CLIP routes can be obtained with:
hostA# atmconfig natm show
The Common Access Redundancy Protocol, or CARP allows multiple hosts to share the same IP address. In some configurations, this may be used for availability or load balancing. Hosts may use separate IP addresses as well, as in the example provided here.
To enable support for CARP, the FreeBSD kernel must be rebuilt with the following option:
device carp
CARP functionality should now be available and may be tuned via several sysctl OIDs. Devices themselves may be loaded via the ifconfig command:
# ifconfig carp0 create
In a real environment, these interfaces will need unique identification numbers known as a VHID. This VHID or Virtual Host Identification will be used to distinguish the host on the network.
One use of CARP, as noted above, is for server availability. This example will provide failover support for three hosts, all with unique IP addresses and providing the same web content. These machines will act in conjunction with a Round Robin DNS configuration. The failover machine will have two additional CARP interfaces, one for each of the content server's IPs. When a failure occurs, the failover server should pick up the failed machine's IP address. This means the failure should go completely unnoticed to the user. The failover server requires identical content and services as the other content servers it is expected to pick up load for.
The two machines should be configured identically other than their issued hostnames and VHIDs. This example calls these machines hosta.example.org and hostb.example.org respectively. First, the required lines for a CARP configuration have to be added to rc.conf. For hosta.example.org, the rc.conf file should contain the following lines:
hostname="hosta.example.org" ifconfig_fxp0="inet 192.168.1.3 netmask 255.255.255.0" cloned_interfaces="carp0" ifconfig_carp0="vhid 1 pass testpast 192.168.1.50/24"
On hostb.example.org the following lines should be in rc.conf:
hostname="hostb.example.org" ifconfig_fxp0="inet 192.168.1.4 netmask 255.255.255.0" cloned_interfaces="carp0" ifconfig_carp0="vhid 2 pass testpass 192.168.1.51/24"
注: It is very important that the passwords, specified by the
pass
option to ifconfig, are identical. The carp devices will only listen to and accept advertisements from machines with the correct password. The VHID must also be different for each machine.
The third machine, provider.example.org, should be prepared so that it may handle failover from either host. This machine will require two carp devices, one to handle each host. The appropriate rc.conf configuration lines will be similar to the following:
hostname="provider.example.org" ifconfig_fxp0="inet 192.168.1.5 netmask 255.255.255.0" cloned_interfaces="carp0 carp1" ifconfig_carp0="vhid 1 advskew 100 pass testpass 192.168.1.50/24" ifconfig_carp1="vhid 2 advskew 100 pass testpass 192.168.1.51/24"
Having the two carp devices will allow provider.example.org to notice and pick up the IP address of either machine should it stop responding.
注: The default FreeBSD kernel may have preemption enabled. If so, provider.example.org may not relinquish the IP address back to the original content server. In this case, an administrator may “nudge” the interface. The following command should be issued on provider.example.org:
# ifconfig carp0 down && ifconfig carp0 upThis should be done on the carp interface which corresponds to the correct host.
At this point, CARP should be completely enabled and available for testing. For testing, either networking has to be restarted or the machines need to be rebooted.
More information is always available in the carp(4) manual page.
FreeBSD 盒裝產品(含 FreeBSD 光碟及其他一些軟體、書面文件)的零售業者:
CompUSA
WWW: http://www.compusa.com/
Frys Electronics
WWW: http://www.frys.com/
FreeBSD 光碟(CD 及 DVD)的網路零售業者:
BSD Mall by Daemon News
PO Box 161
Nauvoo, IL 62354
USA
Phone: +1 866 273-6255
Fax: +1 217 453-9956
Email: <sales@bsdmall.com>
WWW: http://www.bsdmall.com/freebsd1.html
BSD-Systems
Email: <info@bsd-systems.co.uk>
WWW: http://www.bsd-systems.co.uk
FreeBSD Mall, Inc.
3623 Sanford Street
Concord, CA 94520-1405
USA
Phone: +1 925 674-0783
Fax: +1 925 674-0821
Email: <info@freebsdmall.com>
WWW: http://www.freebsdmall.com/
Hinner EDV
St. Augustinus-Str. 10
D-81825 München
Germany
Phone: (089) 428 419
WWW: http://www.hinner.de/linux/freebsd.html
Ikarios
22-24 rue Voltaire
92000 Nanterre
France
WWW: http://ikarios.com/form/#freebsd
JMC Software
Ireland
Phone: 353 1 6291282
WWW: http://www.thelinuxmall.com
Linux CD Mall
Private Bag MBE N348
Auckland 1030
New Zealand
Phone: +64 21 866529
WWW: http://www.linuxcdmall.co.nz/
The Linux Emporium
Hilliard House, Lester Way
Wallingford
OX10 9TA
United Kingdom
Phone: +44 1491 837010
Fax: +44 1491 837016
WWW: http://www.linuxemporium.co.uk/products/freebsd/
Linux+ DVD Magazine
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Email: <editors@lpmagazine.org>
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VIC - 3104
Australia
Phone: +61 3 9857 5918
Fax: +61 3 9857 8974
WWW: http://www.lsl.com.au
LinuxCenter.Ru
Galernaya Street, 55
Saint-Petersburg
190000
Russia
Phone: +7-812-3125208
Email: <info@linuxcenter.ru>
WWW: http://linuxcenter.ru/freebsd
若你是區域經銷商,並想代理經銷 FreeBSD 光碟產品的話,請與下列的代理商聯繫:
Cylogistics
809B Cuesta Dr., #2149
Mountain View, CA 94040
USA
Phone: +1 650 694-4949
Fax: +1 650 694-4953
Email: <sales@cylogistics.com>
WWW: http://www.cylogistics.com/
Ingram Micro
1600 E. St. Andrew Place
Santa Ana, CA 92705-4926
USA
Phone: 1 (800)
456-8000
WWW: http://www.ingrammicro.com/
Kudzu, LLC
7375 Washington Ave. S.
Edina, MN 55439
USA
Phone: +1 952 947-0822
Fax: +1 952 947-0876
Email: <sales@kudzuenterprises.com>
LinuxCenter.Ru
Galernaya Street, 55
Saint-Petersburg
190000
Russia
Phone: +7-812-3125208
Email: <info@linuxcenter.ru>
WWW: http://linuxcenter.ru/freebsd
Navarre Corp
7400 49th Ave South
New Hope, MN 55428
USA
Phone: +1 763 535-8333
Fax: +1 763 535-0341
WWW: http://www.navarre.com/
The official sources for FreeBSD are available via anonymous FTP from a worldwide set of mirror sites. The site ftp://ftp.FreeBSD.org/pub/FreeBSD/ is well connected and allows a large number of connections to it, but you are probably better off finding a “closer” mirror site (especially if you decide to set up some sort of mirror site).
The FreeBSD mirror sites database is more accurate than the mirror listing in the Handbook, as it gets its information from the DNS rather than relying on static lists of hosts.
Additionally, FreeBSD is available via anonymous FTP from the following mirror sites. If you choose to obtain FreeBSD via anonymous FTP, please try to use a site near you. The mirror sites listed as “Primary Mirror Sites” typically have the entire FreeBSD archive (all the currently available versions for each of the architectures) but you will probably have faster download times from a site that is in your country or region. The regional sites carry the most recent versions for the most popular architecture(s) but might not carry the entire FreeBSD archive. All sites provide access via anonymous FTP but some sites also provide access via other methods. The access methods available for each site are provided in parentheses after the hostname.
Central Servers, Primary Mirror Sites, Armenia, Australia, Austria, Brazil, Canada, China, Czech Republic, Denmark, Estonia, Finland, France, Germany, Greece, Hong Kong, Iceland, Ireland, Israel, Italy, Japan, Korea, Latvia, Lithuania, Netherlands, New Zealand, Norway, Poland, Portugal, Romania, Russia, Saudi Arabia, Slovak Republic, Slovenia, South Africa, Spain, Sweden, Switzerland, Taiwan, Turkey, Ukraine, United Kingdom, USA.
(as of UTC)
ftp://ftp.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <mirror-admin@FreeBSD.org>
for this
domain.
ftp://ftp4.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
ftp://ftp10.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <hostmaster@am.FreeBSD.org>
for
this domain.
ftp://ftp1.am.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <hostmaster@au.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@at.FreeBSD.org>
for
this domain.
ftp://ftp.at.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <hostmaster@br.FreeBSD.org>
for
this domain.
ftp://ftp3.br.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
ftp5.br.FreeBSD.org
In case of problems, please contact the hostmaster <hostmaster@ca.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@cn.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@cz.FreeBSD.org>
for
this domain.
ftp://ftp.cz.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
In case of problems, please contact the hostmaster <hostmaster@dk.FreeBSD.org>
for
this domain.
ftp://ftp.dk.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <hostmaster@ee.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@fi.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@fr.FreeBSD.org>
for
this domain.
ftp://ftp1.fr.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp4.fr.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
ftp://ftp6.fr.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
In case of problems, please contact the hostmaster <de-bsd-hubs@de.FreeBSD.org>
for
this domain.
ftp://ftp1.de.FreeBSD.org/freebsd/ (ftp / http / rsync)
ftp://ftp2.de.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp4.de.FreeBSD.org/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <hostmaster@gr.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@is.FreeBSD.org>
for
this domain.
ftp://ftp.is.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
In case of problems, please contact the hostmaster <hostmaster@ie.FreeBSD.org>
for
this domain.
ftp://ftp2.ie.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp3.ie.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <hostmaster@il.FreeBSD.org>
for
this domain.
ftp://ftp.il.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6)
In case of problems, please contact the hostmaster <hostmaster@it.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@jp.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@kr.FreeBSD.org>
for
this domain.
ftp://ftp.kr.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
In case of problems, please contact the hostmaster <hostmaster@lv.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@lt.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@nl.FreeBSD.org>
for
this domain.
ftp://ftp.nl.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <hostmaster@no.FreeBSD.org>
for
this domain.
ftp://ftp.no.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
In case of problems, please contact the hostmaster <hostmaster@pl.FreeBSD.org>
for
this domain.
ftp://ftp2.pl.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
In case of problems, please contact the hostmaster <hostmaster@pt.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@ro.FreeBSD.org>
for
this domain.
ftp://ftp1.ro.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <hostmaster@ru.FreeBSD.org>
for
this domain.
ftp://ftp.ru.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp2.ru.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp5.ru.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <ftpadmin@isu.net.sa>
for this
domain.
In case of problems, please contact the hostmaster <hostmaster@sk.FreeBSD.org>
for
this domain.
ftp://ftp.sk.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
ftp://ftp2.sk.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
In case of problems, please contact the hostmaster <hostmaster@si.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@za.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@es.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@se.FreeBSD.org>
for
this domain.
ftp://ftp4.se.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
ftp://ftp5.se.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
In case of problems, please contact the hostmaster <hostmaster@ch.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@tw.FreeBSD.org>
for
this domain.
ftp://ftp.tw.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / rsync / rsyncv6)
ftp://ftp2.tw.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6 / rsync / rsyncv6)
ftp://ftp6.tw.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp.tr.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp://ftp2.tr.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
In case of problems, please contact the hostmaster <hostmaster@uk.FreeBSD.org>
for
this domain.
In case of problems, please contact the hostmaster <hostmaster@us.FreeBSD.org>
for
this domain.
ftp://ftp4.us.FreeBSD.org/pub/FreeBSD/ (ftp / ftpv6 / http / httpv6)
ftp://ftp5.us.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
ftp://ftp7.us.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
ftp9.us.FreeBSD.org
ftp://ftp12.us.FreeBSD.org/pub/FreeBSD/ (ftp / rsync)
ftp://ftp13.us.FreeBSD.org/pub/FreeBSD/ (ftp / http / rsync)
Anonymous CVS (or, as it is otherwise known, anoncvs) is a feature provided by the CVS utilities bundled with FreeBSD for synchronizing with a remote CVS repository. Among other things, it allows users of FreeBSD to perform, with no special privileges, read-only CVS operations against one of the FreeBSD project's official anoncvs servers. To use it, one simply sets the CVSROOT environment variable to point at the appropriate anoncvs server, provides the well-known password “anoncvs” with the cvs login command, and then uses the cvs(1) command to access it like any local repository.
注: The cvs login command, stores the passwords that are used for authenticating to the CVS server in a file called .cvspass in your HOME directory. If this file does not exist, you might get an error when trying to use cvs login for the first time. Just make an empty .cvspass file, and retry to login.
While it can also be said that the CVSup and anoncvs services both perform essentially the same function, there are various trade-offs which can influence the user's choice of synchronization methods. In a nutshell, CVSup is much more efficient in its usage of network resources and is by far the most technically sophisticated of the two, but at a price. To use CVSup, a special client must first be installed and configured before any bits can be grabbed, and then only in the fairly large chunks which CVSup calls collections.
Anoncvs, by contrast, can be used to examine anything from an individual file to a specific program (like ls or grep) by referencing the CVS module name. Of course, anoncvs is also only good for read-only operations on the CVS repository, so if it is your intention to support local development in one repository shared with the FreeBSD project bits then CVSup is really your only option.
Configuring cvs(1) to use an Anonymous CVS repository is a simple matter of setting the CVSROOT environment variable to point to one of the FreeBSD project's anoncvs servers. At the time of this writing, the following servers are available:
Austria(奧地利): :pserver:anoncvs@anoncvs.at.FreeBSD.org:/home/ncvs (Use cvs login and enter any password when prompted.)
France(法國): :pserver:anoncvs@anoncvs.fr.FreeBSD.org:/home/ncvs (pserver (password “anoncvs”), ssh (no password))
Germany(德國): :pserver:anoncvs@anoncvs.de.FreeBSD.org:/home/ncvs (Use cvs login and enter the password “anoncvs” when prompted.)
Germany(德國): :pserver:anoncvs@anoncvs2.de.FreeBSD.org:/home/ncvs (rsh, pserver, ssh, ssh/2022)
Japan(日本): :pserver:anoncvs@anoncvs.jp.FreeBSD.org:/home/ncvs (Use cvs login and enter the password “anoncvs” when prompted.)
USA(美國): freebsdanoncvs@anoncvs.FreeBSD.org:/home/ncvs (ssh only - no password)
SSH HostKey: 1024 a1:e7:46:de:fb:56:ef:05:bc:73:aa:91:09:da:f7:f4 root@sanmateo.ecn.purdue.edu SSH2 HostKey: 1024 52:02:38:1a:2f:a8:71:d3:f5:83:93:8d:aa:00:6f:65 ssh_host_dsa_key.pub
USA(美國): anoncvs@anoncvs1.FreeBSD.org:/home/ncvs (ssh only - no password)
SSH HostKey: 1024 8b:c4:6f:9a:7e:65:8a:eb:50:50:29:7c:a1:47:03:bc root@ender.liquidneon.com SSH2 HostKey: 2048 4d:59:19:7b:ea:9b:76:0b:ca:ee:da:26:e2:3a:83:b8 ssh_host_dsa_key.pub
Since CVS allows one to “check out” virtually any version of the FreeBSD
sources that ever existed (or, in some cases, will exist), you need to be
familiar with the revision (-r
) flag to cvs(1) and what some
of the permissible values for it in the FreeBSD Project repository are.
There are two kinds of tags, revision tags and branch tags. A revision tag refers to a specific revision. Its meaning stays the same from day to day. A branch tag, on the other hand, refers to the latest revision on a given line of development, at any given time. Because a branch tag does not refer to a specific revision, it may mean something different tomorrow than it means today.
µÚ A.7 節 contains revision tags that users might be interested in. Again, none of these are valid for the Ports Collection since the Ports Collection does not have multiple revisions.
When you specify a branch tag, you normally receive the latest versions of the
files on that line of development. If you wish to receive some past version, you
can do so by specifying a date with the -D date
flag.
See the cvs(1) manual page for
more details.
While it really is recommended that you read the manual page for cvs(1) thoroughly before doing anything, here are some quick examples which essentially show how to use Anonymous CVS:
範例 A-1. Checking Out Something from -CURRENT (ls(1)):
% setenv CVSROOT :pserver:anoncvs@anoncvs.jp.FreeBSD.org:/home/ncvs
% cvs login
At the prompt, enter the password “anoncvs”.
% cvs co ls
範例 A-2. Using SSH to check out the src/ tree:
% cvs -d freebsdanoncvs@anoncvs.FreeBSD.org:/home/ncvs co src The authenticity of host 'anoncvs.freebsd.org (128.46.156.46)' can't be established. DSA key fingerprint is 52:02:38:1a:2f:a8:71:d3:f5:83:93:8d:aa:00:6f:65. Are you sure you want to continue connecting (yes/no)? yes Warning: Permanently added 'anoncvs.freebsd.org' (DSA) to the list of known hosts.
範例 A-3. Checking Out the Version of ls(1) in the 6-STABLE Branch:
% setenv CVSROOT :pserver:anoncvs@anoncvs.jp.FreeBSD.org:/home/ncvs
% cvs login
At the prompt, enter the password “anoncvs”.
% cvs co -rRELENG_6 ls
範例 A-4. Creating a List of Changes (as Unified Diffs) to ls(1)
% setenv CVSROOT :pserver:anoncvs@anoncvs.jp.FreeBSD.org:/home/ncvs
% cvs login
At the prompt, enter the password “anoncvs”.
% cvs rdiff -u -rRELENG_5_3_0_RELEASE -rRELENG_5_4_0_RELEASE ls
The following additional resources may be helpful in learning CVS:
CVS Tutorial from Cal Poly.
CVS Home, the CVS development and support community.
CVSweb is the FreeBSD Project web interface for CVS.
CTM is a method for keeping a remote directory tree in sync with a central one. It has been developed for usage with FreeBSD's source trees, though other people may find it useful for other purposes as time goes by. Little, if any, documentation currently exists at this time on the process of creating deltas, so contact the ctm-users mailing list for more information and if you wish to use CTM for other things.
CTM will give you a local copy of the FreeBSD source trees. There are a number of “flavors” of the tree available. Whether you wish to track the entire CVS tree or just one of the branches, CTM can provide you the information. If you are an active developer on FreeBSD, but have lousy or non-existent TCP/IP connectivity, or simply wish to have the changes automatically sent to you, CTM was made for you. You will need to obtain up to three deltas per day for the most active branches. However, you should consider having them sent by automatic email. The sizes of the updates are always kept as small as possible. This is typically less than 5K, with an occasional (one in ten) being 10-50K and every now and then a large 100K+ or more coming around.
You will also need to make yourself aware of the various caveats related to working directly from the development sources rather than a pre-packaged release. This is particularly true if you choose the “current” sources. It is recommended that you read Staying current with FreeBSD.
You will need two things: The CTM program, and the initial deltas to feed it (to get up to “current” levels).
The CTM program has been part of FreeBSD ever since version 2.0 was released, and lives in /usr/src/usr.sbin/ctm if you have a copy of the source available.
The “deltas” you feed CTM can be had two ways, FTP or email. If you have general FTP access to the Internet then the following FTP sites support access to CTM:
ftp://ftp.FreeBSD.org/pub/FreeBSD/CTM/
or see section mirrors.
FTP the relevant directory and fetch the README file, starting from there.
If you wish to get your deltas via email:
Subscribe to one of the CTM distribution lists. ctm-cvs-cur supports the entire CVS tree. ctm-src-cur supports the head of the development branch. ctm-src-4 supports the 4.X release branch, etc.. (If you do not know how to subscribe yourself to a list, click on the list name above or go to http://lists.FreeBSD.org/mailman/listinfo and click on the list that you wish to subscribe to. The list page should contain all of the necessary subscription instructions.)
When you begin receiving your CTM updates in the mail, you may use the ctm_rmail program to unpack and apply them. You can actually use the ctm_rmail program directly from a entry in /etc/aliases if you want to have the process run in a fully automated fashion. Check the ctm_rmail manual page for more details.
注: No matter what method you use to get the CTM deltas, you should subscribe to the ctm-announce mailing list. In the future, this will be the only place where announcements concerning the operations of the CTM system will be posted. Click on the list name above and follow the instructions to subscribe to the list.
Before you can start using CTM deltas, you will need to get to a starting point for the deltas produced subsequently to it.
First you should determine what you already have. Everyone can start from an “empty” directory. You must use an initial “Empty” delta to start off your CTM supported tree. At some point it is intended that one of these “started” deltas be distributed on the CD for your convenience, however, this does not currently happen.
Since the trees are many tens of megabytes, you should prefer to start from something already at hand. If you have a -RELEASE CD, you can copy or extract an initial source from it. This will save a significant transfer of data.
You can recognize these “starter” deltas by the X appended to the number (src-cur.3210XEmpty.gz for instance). The designation following the X corresponds to the origin of your initial “seed”. Empty is an empty directory. As a rule a base transition from Empty is produced every 100 deltas. By the way, they are large! 70 to 80 Megabytes of gzip'd data is common for the XEmpty deltas.
Once you have picked a base delta to start from, you will also need all deltas with higher numbers following it.
To apply the deltas, simply say:
# cd /where/ever/you/want/the/stuff # ctm -v -v /where/you/store/your/deltas/src-xxx.*
CTM understands deltas which have been put through gzip, so you do not need to gunzip them first, this saves disk space.
Unless it feels very secure about the entire process, CTM will not touch your tree. To verify a delta you can
also use the -c
flag and CTM
will not actually touch your tree; it will merely verify the integrity of the delta
and see if it would apply cleanly to your current tree.
There are other options to CTM as well, see the manual pages or look in the sources for more information.
That is really all there is to it. Every time you get a new delta, just run it through CTM to keep your sources up to date.
Do not remove the deltas if they are hard to download again. You just might want to keep them around in case something bad happens. Even if you only have floppy disks, consider using fdwrite to make a copy.
As a developer one would like to experiment with and change files in the source tree. CTM supports local modifications in a limited way: before checking for the presence of a file foo, it first looks for foo.ctm. If this file exists, CTM will operate on it instead of foo.
This behavior gives us a simple way to maintain local changes: simply copy the files you plan to modify to the corresponding file names with a .ctm suffix. Then you can freely hack the code, while CTM keeps the .ctm file up-to-date.
You can determine the list of changes that CTM will
make on your source repository using the -l
option to
CTM.
This is useful if you would like to keep logs of the changes, pre- or post- process the modified files in any manner, or just are feeling a tad paranoid.
Sometimes you may want to backup all the files that would be changed by a CTM update.
Specifying the -B backup-file
option causes CTM to backup all files that would be touched by a given CTM delta to backup-file.
Sometimes you would be interested in restricting the scope of a given CTM update, or may be interested in extracting just a few files from a sequence of deltas.
You can control the list of files that CTM would
operate on by specifying filtering regular expressions using the -e
and -x
options.
For example, to extract an up-to-date copy of lib/libc/Makefile from your collection of saved CTM deltas, run the commands:
# cd /where/ever/you/want/to/extract/it/ # ctm -e '^lib/libc/Makefile' ~ctm/src-xxx.*
For every file specified in a CTM delta, the -e
and -x
options are applied in
the order given on the command line. The file is processed by CTM only if it is marked as eligible after all the -e
and -x
options are applied to
it.
Tons of them:
Use some kind of authentication into the CTM system, so as to allow detection of spoofed CTM updates.
Clean up the options to CTM, they became confusing and counter intuitive.
There is a sequence of deltas for the ports collection too, but interest has not been all that high yet.
CTM/FreeBSD is available via anonymous FTP from the following mirror sites. If you choose to obtain CTM via anonymous FTP, please try to use a site near you.
In case of problems, please contact the ctm-users mailing list.
If you did not find a mirror near to you or the mirror is incomplete, try to use a search engine such as alltheweb.
CVSup is a software package for distributing and updating source trees from a master CVS repository on a remote server host. The FreeBSD sources are maintained in a CVS repository on a central development machine in California. With CVSup, FreeBSD users can easily keep their own source trees up to date.
CVSup uses the so-called pull model of updating. Under the pull model, each client asks the server for updates, if and when they are wanted. The server waits passively for update requests from its clients. Thus all updates are instigated by the client. The server never sends unsolicited updates. Users must either run the CVSup client manually to get an update, or they must set up a cron job to run it automatically on a regular basis.
The term CVSup, capitalized just so, refers to the entire software package. Its main components are the client cvsup which runs on each user's machine, and the server cvsupd which runs at each of the FreeBSD mirror sites.
As you read the FreeBSD documentation and mailing lists, you may see references to sup. Sup was the predecessor of CVSup, and it served a similar purpose. CVSup is used much in the same way as sup and, in fact, uses configuration files which are backward-compatible with sup's. Sup is no longer used in the FreeBSD project, because CVSup is both faster and more flexible.
The easiest way to install CVSup is to use the precompiled net/cvsup package from the FreeBSD packages collection. If you prefer to build CVSup from source, you can use the net/cvsup port instead. But be forewarned: the net/cvsup port depends on the Modula-3 system, which takes a substantial amount of time and disk space to download and build.
注: If you are going to be using CVSup on a machine which will not have XFree86 or Xorg installed, such as a server, be sure to use the port which does not include the CVSup GUI, net/cvsup-without-gui.
CVSup's operation is controlled by a configuration file called the supfile. There are some sample supfiles in the directory /usr/share/examples/cvsup/.
The information in a supfile answers the following questions for CVSup:
In the following sections, we will construct a typical supfile by answering each of these questions in turn. First, we describe the overall structure of a supfile.
A supfile is a text file. Comments begin with # and extend to the end of the line. Lines that are blank and lines that contain only comments are ignored.
Each remaining line describes a set of files that the user wishes to receive. The line begins with the name of a “collection”, a logical grouping of files defined by the server. The name of the collection tells the server which files you want. After the collection name come zero or more fields, separated by white space. These fields answer the questions listed above. There are two types of fields: flag fields and value fields. A flag field consists of a keyword standing alone, e.g., delete or compress. A value field also begins with a keyword, but the keyword is followed without intervening white space by = and a second word. For example, release=cvs is a value field.
A supfile typically specifies more than one collection to receive. One way to structure a supfile is to specify all of the relevant fields explicitly for each collection. However, that tends to make the supfile lines quite long, and it is inconvenient because most fields are the same for all of the collections in a supfile. CVSup provides a defaulting mechanism to avoid these problems. Lines beginning with the special pseudo-collection name *default can be used to set flags and values which will be used as defaults for the subsequent collections in the supfile. A default value can be overridden for an individual collection, by specifying a different value with the collection itself. Defaults can also be changed or augmented in mid-supfile by additional *default lines.
With this background, we will now proceed to construct a supfile for receiving and updating the main source tree of FreeBSD-CURRENT.
Which files do you want to receive?
The files available via CVSup are organized into named groups called “collections”. The collections that are available are described in the following section. In this example, we wish to receive the entire main source tree for the FreeBSD system. There is a single large collection src-all which will give us all of that. As a first step toward constructing our supfile, we simply list the collections, one per line (in this case, only one line):
src-all
Which version(s) of them do you want?
With CVSup, you can receive virtually any version of
the sources that ever existed. That is possible because the cvsupd server works directly from the CVS repository, which
contains all of the versions. You specify which one of them you want using the
tag= and date=
value
fields.
警告Be very careful to specify any tag= fields correctly. Some tags are valid only for certain collections of files. If you specify an incorrect or misspelled tag, CVSup will delete files which you probably do not want deleted. In particular, use only tag=. for the ports-* collections.
The tag= field names a symbolic tag in the repository. There are two kinds of tags, revision tags and branch tags. A revision tag refers to a specific revision. Its meaning stays the same from day to day. A branch tag, on the other hand, refers to the latest revision on a given line of development, at any given time. Because a branch tag does not refer to a specific revision, it may mean something different tomorrow than it means today.
µÚ A.7 節 contains branch tags that users might be interested in. When specifying a tag in CVSup's configuration file, it must be preceded with tag= (RELENG_4 will become tag=RELENG_4). Keep in mind that only the tag=. is relevant for the Ports Collection.
警告Be very careful to type the tag name exactly as shown. CVSup cannot distinguish between valid and invalid tags. If you misspell the tag, CVSup will behave as though you had specified a valid tag which happens to refer to no files at all. It will delete your existing sources in that case.
When you specify a branch tag, you normally receive the latest versions of the
files on that line of development. If you wish to receive some past version, you
can do so by specifying a date with the date=
value
field. The
cvsup(1) manual
page explains how to do that.
For our example, we wish to receive FreeBSD-CURRENT. We add this line at the beginning of our supfile:
*default tag=.
There is an important special case that comes into play if you specify neither a tag= field nor a date= field. In that case, you receive the actual RCS files directly from the server's CVS repository, rather than receiving a particular version. Developers generally prefer this mode of operation. By maintaining a copy of the repository itself on their systems, they gain the ability to browse the revision histories and examine past versions of files. This gain is achieved at a large cost in terms of disk space, however.
Where do you want to get them from?
We use the host= field to tell cvsup where to obtain its updates. Any of the CVSup mirror sites will do, though you should try to select one that is close to you in cyberspace. In this example we will use a fictional FreeBSD distribution site, cvsup99.FreeBSD.org:
*default host=cvsup99.FreeBSD.org
You will need to change the host to one that actually exists before running CVSup. On any particular run of cvsup, you can override the host setting on the command line,
with -h hostname
.
Where do you want to put them on your own machine?
The prefix= field tells cvsup where to put the files it receives. In this example, we will put the source files directly into our main source tree, /usr/src. The src directory is already implicit in the collections we have chosen to receive, so this is the correct specification:
*default prefix=/usr
Where should cvsup maintain its status files?
The CVSup client maintains certain status files in what is called the “base” directory. These files help CVSup to work more efficiently, by keeping track of which updates you have already received. We will use the standard base directory, /var/db:
*default base=/var/db
If your base directory does not already exist, now would be a good time to create it. The cvsup client will refuse to run if the base directory does not exist.
Miscellaneous supfile settings:
There is one more line of boiler plate that normally needs to be present in the supfile:
*default release=cvs delete use-rel-suffix compress
release=cvs indicates that the server should get its information out of the main FreeBSD CVS repository. This is virtually always the case, but there are other possibilities which are beyond the scope of this discussion.
delete gives CVSup permission to delete files. You should always specify this, so that CVSup can keep your source tree fully up-to-date. CVSup is careful to delete only those files for which it is responsible. Any extra files you happen to have will be left strictly alone.
use-rel-suffix is ... arcane. If you really want to know about it, see the cvsup(1) manual page. Otherwise, just specify it and do not worry about it.
compress enables the use of gzip-style compression on the communication channel. If your network link is T1 speed or faster, you probably should not use compression. Otherwise, it helps substantially.
Putting it all together:
Here is the entire supfile for our example:
*default tag=. *default host=cvsup99.FreeBSD.org *default prefix=/usr *default base=/var/db *default release=cvs delete use-rel-suffix compress src-all
As mentioned above, CVSup uses a pull method. Basically, this means that you connect to the CVSup server, and it says, “Here is what you can download from me...”, and your client responds “OK, I will take this, this, this, and this.” In the default configuration, the CVSup client will take every file associated with the collection and tag you chose in the configuration file. However, this is not always what you want, especially if you are synching the doc, ports, or www trees —— most people cannot read four or five languages, and therefore they do not need to download the language-specific files. If you are CVSuping the Ports Collection, you can get around this by specifying each collection individually (e.g., ports-astrology, ports-biology, etc instead of simply saying ports-all). However, since the doc and www trees do not have language-specific collections, you must use one of CVSup's many nifty features: the refuse file.
The refuse file essentially tells CVSup that it should not take every single file from a collection; in other words, it tells the client to refuse certain files from the server. The refuse file can be found (or, if you do not yet have one, should be placed) in base/sup/. base is defined in your supfile; our defined base is /var/db, which means that by default the refuse file is /var/db/sup/refuse.
The refuse file has a very simple format; it simply contains the names of files or directories that you do not wish to download. For example, if you cannot speak any languages other than English and some German, and you do not feel the need to read the German translation of documentation, you can put the following in your refuse file:
doc/bn_* doc/da_* doc/de_* doc/el_* doc/es_* doc/fr_* doc/it_* doc/ja_* doc/nl_* doc/no_* doc/pl_* doc/pt_* doc/ru_* doc/sr_* doc/tr_* doc/zh_*
and so forth for the other languages (you can find the full list by browsing the FreeBSD CVS repository).
With this very useful feature, those users who are on slow links or pay by the minute for their Internet connection will be able to save valuable time as they will no longer need to download files that they will never use. For more information on refuse files and other neat features of CVSup, please view its manual page.
You are now ready to try an update. The command line for doing this is quite simple:
# cvsup supfile
where supfile is of course the name of the supfile you have just created. Assuming you are running under X11, cvsup will display a GUI window with some buttons to do the usual things. Press the
button, and watch it run.Since you are updating your actual /usr/src tree in this example, you will need to run the program as root so that cvsup has the permissions it needs to update your files. Having just created your configuration file, and having never used this program before, that might understandably make you nervous. There is an easy way to do a trial run without touching your precious files. Just create an empty directory somewhere convenient, and name it as an extra argument on the command line:
# mkdir /var/tmp/dest # cvsup supfile /var/tmp/dest
The directory you specify will be used as the destination directory for all file updates. CVSup will examine your usual files in /usr/src, but it will not modify or delete any of them. Any file updates will instead land in /var/tmp/dest/usr/src. CVSup will also leave its base directory status files untouched when run this way. The new versions of those files will be written into the specified directory. As long as you have read access to /usr/src, you do not even need to be root to perform this kind of trial run.
If you are not running X11 or if you just do not like GUIs, you should add a couple of options to the command line when you run cvsup:
# cvsup -g -L 2 supfile
The -g
tells CVSup not to
use its GUI. This is automatic if you are not running X11, but otherwise you have to
specify it.
The -L 2
tells CVSup to
print out the details of all the file updates it is doing. There are three
levels of verbosity, from -L 0
to -L 2
. The default is 0, which means total silence except for
error messages.
There are plenty of other options available. For a brief list of them, type cvsup -H. For more detailed descriptions, see the manual page.
Once you are satisfied with the way updates are working, you can arrange for regular runs of CVSup using cron(8). Obviously, you should not let CVSup use its GUI when running it from cron(8).
The file collections available via CVSup are organized hierarchically. There are a few large collections, and they are divided into smaller sub-collections. Receiving a large collection is equivalent to receiving each of its sub-collections. The hierarchical relationships among collections are reflected by the use of indentation in the list below.
The most commonly used collections are src-all, and ports-all. The other collections are used only by small groups of people for specialized purposes, and some mirror sites may not carry all of them.
The main FreeBSD CVS repository, including the cryptography code.
Files related to the distribution and mirroring of FreeBSD.
Sources for the FreeBSD Handbook and other documentation. This does not include files for the FreeBSD web site.
The FreeBSD Ports Collection.
重要: If you do not want to update the whole of ports-all (the whole ports tree), but use one of the subcollections listed below, make sure that you always update the ports-base subcollection! Whenever something changes in the ports build infrastructure represented by ports-base, it is virtually certain that those changes will be used by “real” ports real soon. Thus, if you only update the “real” ports and they use some of the new features, there is a very high chance that their build will fail with some mysterious error message. The very first thing to do in this case is to make sure that your ports-base subcollection is up to date.
重要: If you are going to be building your own local copy of ports/INDEX, you must accept ports-all (the whole ports tree). Building ports/INDEX with a partial tree is not supported. See the FAQ.
Software to help disabled users.
Arabic language support.
Archiving tools.
Astronomical ports.
Sound support.
The Ports Collection build infrastructure - various files located in the Mk/ and Tools/ subdirectories of /usr/ports.
注: Please see the important warning above: you should always update this subcollection, whenever you update any part of the FreeBSD Ports Collection!
Benchmarks.
Biology.
Computer aided design tools.
Chinese language support.
Communication software.
character code converters.
Databases.
Things that used to be on the desktop before computers were invented.
Development utilities.
DNS related software.
Editors.
Emulators for other operating systems.
Monetary, financial and related applications.
FTP client and server utilities.
Games.
German language support.
Graphics utilities.
Hebrew language support.
Hungarian language support.
Internet Relay Chat utilities.
Japanese language support.
Java utilities.
Korean language support.
Programming languages.
Mail software.
Numerical computation software.
MBone applications.
Miscellaneous utilities.
Multimedia software.
Networking software.
Instant messaging software.
Network management software.
Peer to peer networking.
USENET news software.
Software support for Palm™ series.
Polish language support.
Portuguese language support.
Printing software.
Russian language support.
Science.
Security utilities.
Command line shells.
System utilities.
text processing utilities (does not include desktop publishing).
Ukrainian language support.
Vietnamese language support.
Software related to the World Wide Web.
Ports to support the X window system.
X11 clocks.
X11 file managers.
X11 fonts and font utilities.
X11 toolkits.
X11 servers.
X11 themes.
X11 window managers.
Sources for the FreeBSD projects repository.
The main FreeBSD sources, including the cryptography code.
Miscellaneous files at the top of /usr/src.
User utilities that may be needed in single-user mode (/usr/src/bin).
Utilities and libraries from outside the FreeBSD project, used relatively unmodified (/usr/src/contrib).
Cryptography utilities and libraries from outside the FreeBSD project, used relatively unmodified (/usr/src/crypto).
Kerberos and DES (/usr/src/eBones). Not used in current releases of FreeBSD.
System configuration files (/usr/src/etc).
Games (/usr/src/games).
Utilities covered by the GNU Public License (/usr/src/gnu).
Header files (/usr/src/include).
Kerberos5 security package (/usr/src/kerberos5).
KerberosIV security package (/usr/src/kerberosIV).
Libraries (/usr/src/lib).
System programs normally executed by other programs (/usr/src/libexec).
Files required to produce a FreeBSD release (/usr/src/release).
System utilities for single-user mode (/usr/src/sbin).
Cryptographic libraries and commands (/usr/src/secure).
Files that can be shared across multiple systems (/usr/src/share).
The kernel (/usr/src/sys).
Kernel cryptography code (/usr/src/sys/crypto).
Various tools for the maintenance of FreeBSD (/usr/src/tools).
User utilities (/usr/src/usr.bin).
System utilities (/usr/src/usr.sbin).
The sources for the FreeBSD WWW site.
The CVSup server's own configuration files. Used by CVSup mirror sites.
The GNATS bug-tracking database.
FreeBSD mailing list archive.
The pre-processed FreeBSD WWW site files (not the source files). Used by WWW mirror sites.
For the CVSup FAQ and other information about CVSup, see The CVSup Home Page.
Most FreeBSD-related discussion of CVSup takes place on the FreeBSD technical discussions 郵遞論壇. New versions of the software are announced there, as well as on the FreeBSD announcements 郵遞論壇.
Questions and bug reports should be addressed to the author of the program at
<cvsup-bugs@polstra.com>
.
CVSup servers for FreeBSD are running at the following sites:
Central Servers, Primary Mirror Sites, Armenia, Australia, Austria, Brazil, Canada, China, Costa Rica, Czech Republic, Denmark, Estonia, Finland, France, Germany, Greece, Hungary, Iceland, Ireland, Israel, Italy, Japan, Korea, Kuwait, Kyrgyzstan, Latvia, Lithuania, Netherlands, New Zealand, Norway, Philippines, Poland, Portugal, Romania, Russia, San Marino, Slovak Republic, Slovenia, South Africa, Spain, Sweden, Switzerland, Taiwan, Thailand, Turkey, Ukraine, United Kingdom, USA.
(as of UTC)
cvsup.FreeBSD.org
cvsup1.FreeBSD.org
cvsup2.FreeBSD.org
cvsup3.FreeBSD.org
cvsup4.FreeBSD.org
cvsup5.FreeBSD.org
cvsup6.FreeBSD.org
cvsup7.FreeBSD.org
cvsup8.FreeBSD.org
cvsup9.FreeBSD.org
cvsup10.FreeBSD.org
cvsup11.FreeBSD.org
cvsup12.FreeBSD.org
cvsup13.FreeBSD.org
cvsup14.FreeBSD.org
cvsup15.FreeBSD.org
cvsup16.FreeBSD.org
cvsup18.FreeBSD.org
cvsup1.am.FreeBSD.org
cvsup.au.FreeBSD.org
cvsup.at.FreeBSD.org
cvsup.br.FreeBSD.org
cvsup2.br.FreeBSD.org
cvsup3.br.FreeBSD.org
cvsup4.br.FreeBSD.org
cvsup5.br.FreeBSD.org
cvsup1.ca.FreeBSD.org
cvsup.cn.FreeBSD.org
cvsup2.cn.FreeBSD.org
cvsup1.cr.FreeBSD.org
cvsup.cz.FreeBSD.org
cvsup.dk.FreeBSD.org
cvsup2.dk.FreeBSD.org
cvsup.ee.FreeBSD.org
cvsup.fi.FreeBSD.org
cvsup2.fi.FreeBSD.org
cvsup.fr.FreeBSD.org
cvsup1.fr.FreeBSD.org
cvsup2.fr.FreeBSD.org
cvsup3.fr.FreeBSD.org
cvsup4.fr.FreeBSD.org
cvsup5.fr.FreeBSD.org
cvsup8.fr.FreeBSD.org
cvsup.de.FreeBSD.org
cvsup2.de.FreeBSD.org
cvsup3.de.FreeBSD.org
cvsup4.de.FreeBSD.org
cvsup5.de.FreeBSD.org
cvsup6.de.FreeBSD.org
cvsup7.de.FreeBSD.org
cvsup8.de.FreeBSD.org
cvsup.gr.FreeBSD.org
cvsup2.gr.FreeBSD.org
cvsup.hu.FreeBSD.org
cvsup.is.FreeBSD.org
cvsup.ie.FreeBSD.org
cvsup2.ie.FreeBSD.org
cvsup.il.FreeBSD.org
cvsup.it.FreeBSD.org
cvsup.jp.FreeBSD.org
cvsup2.jp.FreeBSD.org
cvsup3.jp.FreeBSD.org
cvsup4.jp.FreeBSD.org
cvsup5.jp.FreeBSD.org
cvsup6.jp.FreeBSD.org
cvsup.kr.FreeBSD.org
cvsup2.kr.FreeBSD.org
cvsup3.kr.FreeBSD.org
cvsup1.kw.FreeBSD.org
cvsup.kg.FreeBSD.org
cvsup.lv.FreeBSD.org
cvsup2.lv.FreeBSD.org
cvsup.lt.FreeBSD.org
cvsup2.lt.FreeBSD.org
cvsup3.lt.FreeBSD.org
cvsup.nl.FreeBSD.org
cvsup2.nl.FreeBSD.org
cvsup3.nl.FreeBSD.org
cvsup.nz.FreeBSD.org
cvsup.no.FreeBSD.org
cvsup1.ph.FreeBSD.org
cvsup.pl.FreeBSD.org
cvsup2.pl.FreeBSD.org
cvsup3.pl.FreeBSD.org
cvsup.pt.FreeBSD.org
cvsup2.pt.FreeBSD.org
cvsup3.pt.FreeBSD.org
cvsup.ro.FreeBSD.org
cvsup1.ro.FreeBSD.org
cvsup2.ro.FreeBSD.org
cvsup3.ro.FreeBSD.org
cvsup.ru.FreeBSD.org
cvsup2.ru.FreeBSD.org
cvsup3.ru.FreeBSD.org
cvsup4.ru.FreeBSD.org
cvsup5.ru.FreeBSD.org
cvsup6.ru.FreeBSD.org
cvsup7.ru.FreeBSD.org
cvsup.sm.FreeBSD.org
cvsup.sk.FreeBSD.org
cvsup.si.FreeBSD.org
cvsup2.si.FreeBSD.org
cvsup.za.FreeBSD.org
cvsup2.za.FreeBSD.org
cvsup.es.FreeBSD.org
cvsup2.es.FreeBSD.org
cvsup3.es.FreeBSD.org
cvsup.se.FreeBSD.org
cvsup2.se.FreeBSD.org
cvsup.ch.FreeBSD.org
cvsup.tw.FreeBSD.org
cvsup3.tw.FreeBSD.org
cvsup4.tw.FreeBSD.org
cvsup5.tw.FreeBSD.org
cvsup6.tw.FreeBSD.org
cvsup7.tw.FreeBSD.org
cvsup8.tw.FreeBSD.org
cvsup9.tw.FreeBSD.org
cvsup10.tw.FreeBSD.org
cvsup11.tw.FreeBSD.org
cvsup12.tw.FreeBSD.org
cvsup13.tw.FreeBSD.org
cvsup14.tw.FreeBSD.org
cvsup.th.FreeBSD.org
cvsup.tr.FreeBSD.org
cvsup2.tr.FreeBSD.org
cvsup3.ua.FreeBSD.org
cvsup5.ua.FreeBSD.org
cvsup6.ua.FreeBSD.org
cvsup.uk.FreeBSD.org
cvsup2.uk.FreeBSD.org
cvsup3.uk.FreeBSD.org
cvsup4.uk.FreeBSD.org
cvsup1.us.FreeBSD.org
cvsup2.us.FreeBSD.org
cvsup3.us.FreeBSD.org
cvsup4.us.FreeBSD.org
cvsup5.us.FreeBSD.org
cvsup6.us.FreeBSD.org
cvsup7.us.FreeBSD.org
cvsup8.us.FreeBSD.org
cvsup9.us.FreeBSD.org
cvsup10.us.FreeBSD.org
cvsup11.us.FreeBSD.org
cvsup12.us.FreeBSD.org
cvsup13.us.FreeBSD.org
cvsup14.us.FreeBSD.org
cvsup15.us.FreeBSD.org
cvsup16.us.FreeBSD.org
cvsup18.us.FreeBSD.org
Portsnap is a system for securely distributing the FreeBSD ports tree. Approximately once an hour, a “snapshot” of the ports tree is generated, repackaged, and cryptographically signed. The resulting files are then distributed via HTTP.
Like CVSup, Portsnap uses a pull model of updating: The packaged and signed ports trees are placed on a web server which waits passively for clients to request files. Users must either run portsnap(8) manually to download updates or set up a cron(8) job to download updates automatically on a regular basis.
For technical reasons, Portsnap does not update the “live” ports tree in /usr/ports/ directly; instead, it works via a compressed copy of the ports tree stored in /var/db/portsnap/ by default. This compressed copy is then used to update the live ports tree.
注: If Portsnap is installed from the FreeBSD Ports Collection, then the default location for its compressed snapshot will be /usr/local/portsnap/ instead of /var/db/portsnap/.
On FreeBSD 6.0 and more recent versions, Portsnap is contained in the FreeBSD base system. On older versions of FreeBSD, it can be installed using the sysutils/portsnap port.
Portsnap's operation is controlled by the /etc/portsnap.conf configuration file. For most users, the default configuration file will suffice; for more details, consult the portsnap.conf(5) manual page.
注: If Portsnap is installed from the FreeBSD Ports Collection, it will use the configuration file /usr/local/etc/portsnap.conf instead of /etc/portsnap.conf. This configuration file is not created when the port is installed, but a sample configuration file is distributed; to copy it into place, run the following command:
# cd /usr/local/etc && cp portsnap.conf.sample portsnap.conf
The first time portsnap(8) is run, it will need to download a compressed snapshot of the entire ports tree into /var/db/portsnap/ (or /usr/local/portsnap/ if Portsnap was installed from the Ports Collection). For the beginning of 2006 this is approximately a 41 MB download.
# portsnap fetch
Once the compressed snapshot has been downloaded, a “live” copy of the ports tree can be extracted into /usr/ports/. This is necessary even if a ports tree has already been created in that directory (e.g., by using CVSup), since it establishes a baseline from which portsnap can determine which parts of the ports tree need to be updated later.
# portsnap extract
注: In the default installation /usr/ports is not created. If you run FreeBSD 6.0-RELEASE, it should be created before portsnap is used. On more recent versions of FreeBSD or Portsnap, this operation will be done automatically at first use of the portsnap command.
After an initial compressed snapshot of the ports tree has been downloaded and extracted into /usr/ports/, updating the ports tree consists of two steps: fetching updates to the compressed snapshot, and using them to update the live ports tree. These two steps can be specified to portsnap as a single command:
# portsnap fetch update
注: Some older versions of portsnap do not support this syntax; if it fails, try instead the following:
# portsnap fetch # portsnap update
In order to avoid problems with “flash crowds” accessing the Portsnap servers, portsnap fetch will not run from a cron(8) job. Instead, a special portsnap cron command exists, which waits for a random duration up to 3600 seconds before fetching updates.
In addition, it is strongly recommended that portsnap
update not be run from a cron job, since it is liable
to cause major problems if it happens to run at the same time as a port is
being built or installed. However, it is safe to update the ports' INDEX files, and this can be done by passing the -I
flag to portsnap. (Obviously, if
portsnap -I update is run from cron, then it will be necessary to run portsnap update without the -I
flag
at a later time in order to update the rest of the tree.)
Adding the following line to /etc/crontab will cause portsnap to update its compressed snapshot and the INDEX files in /usr/ports/, and will send an email if any installed ports are out of date:
0 3 * * * root portsnap -I cron update && pkg_version -vIL=
注: If the system clock is not set to the local time zone, please replace 3 with a random value between 0 and 23, in order to spread the load on the Portsnap servers more evenly.
注: Some older versions of portsnap do not support listing multiple commands (e.g., cron update) in the same invocation of portsnap. If the line above fails, try replacing portsnap -I cron update with portsnap cron && portsnap -I update.
When obtaining or updating sources using cvs or CVSup, a revision tag must be specified. A revision tag refers to either a particular line of FreeBSD development, or a specific point in time. The first type are called “branch tags”, and the second type are called “release tags”.
All of these, with the exception of HEAD (which is always a valid tag), only apply to the src/ tree. The ports/, doc/, and www/ trees are not branched.
Symbolic name for the main line, or FreeBSD-CURRENT. Also the default when no revision is specified.
In CVSup, this tag is represented by a . (not punctuation, but a literal . character).
注: In CVS, this is the default when no revision tag is specified. It is usually not a good idea to checkout or update to CURRENT sources on a STABLE machine, unless that is your intent.
The line of development for FreeBSD-6.X, also known as FreeBSD 6-STABLE
The release branch for FreeBSD-6.1, used only for security advisories and other critical fixes.
The release branch for FreeBSD-6.0, used only for security advisories and other critical fixes.
The line of development for FreeBSD-5.X, also known as FreeBSD 5-STABLE.
The release branch for FreeBSD-5.5, used only for security advisories and other critical fixes.
The release branch for FreeBSD-5.4, used only for security advisories and other critical fixes.
The release branch for FreeBSD-5.3, used only for security advisories and other critical fixes.
The release branch for FreeBSD-5.2 and FreeBSD-5.2.1, used only for security advisories and other critical fixes.
The release branch for FreeBSD-5.1, used only for security advisories and other critical fixes.
The release branch for FreeBSD-5.0, used only for security advisories and other critical fixes.
The line of development for FreeBSD-4.X, also known as FreeBSD 4-STABLE.
The release branch for FreeBSD-4.11, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.10, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.9, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.8, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.7, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.6 and FreeBSD-4.6.2, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.5, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.4, used only for security advisories and other critical fixes.
The release branch for FreeBSD-4.3, used only for security advisories and other critical fixes.
The line of development for FreeBSD-3.X, also known as 3.X-STABLE.
The line of development for FreeBSD-2.2.X, also known as 2.2-STABLE. This branch is mostly obsolete.
These tags refer to a specific point in time when a particular version of FreeBSD was released. The release engineering process is documented in more detail by the Release Engineering Information and Release Process documents. The src tree uses tag names that start with RELENG_ tags. The ports and doc trees use tags whose names begin with RELEASE tags. Finally, the www tree is not tagged with any special name for releases.
FreeBSD 6.1
FreeBSD 6.0
FreeBSD 5.5
FreeBSD 5.4
FreeBSD 4.11
FreeBSD 5.3
FreeBSD 4.10
FreeBSD 5.2.1
FreeBSD 5.2
FreeBSD 4.9
FreeBSD 5.1
FreeBSD 4.8
FreeBSD 5.0
FreeBSD 4.7
FreeBSD 4.6.2
FreeBSD 4.6.1
FreeBSD 4.6
FreeBSD 4.5
FreeBSD 4.4
FreeBSD 4.3
FreeBSD 4.2
FreeBSD 4.1.1
FreeBSD 4.1
FreeBSD 4.0
FreeBSD-3.5
FreeBSD-3.4
FreeBSD-3.3
FreeBSD-3.2
FreeBSD-3.1
FreeBSD-3.0
FreeBSD-2.2.8
FreeBSD-2.2.7
FreeBSD-2.2.6
FreeBSD-2.2.5
FreeBSD-2.2.2
FreeBSD-2.2.1
FreeBSD-2.2.0
AFS servers for FreeBSD are running at the following sites:
The path to the files are: /afs/stacken.kth.se/ftp/pub/FreeBSD/
stacken.kth.se # Stacken Computer Club, KTH, Sweden 130.237.234.43 #hot.stacken.kth.se 130.237.237.230 #fishburger.stacken.kth.se 130.237.234.3 #milko.stacken.kth.se
Maintainer <ftp@stacken.kth.se>
The following sites make FreeBSD available through the rsync protocol. The rsync utility works in much the same way as the rcp(1) command, but has more options and uses the rsync remote-update protocol which transfers only the differences between two sets of files, thus greatly speeding up the synchronization over the network. This is most useful if you are a mirror site for the FreeBSD FTP server, or the CVS repository. The rsync suite is available for many operating systems, on FreeBSD, see the net/rsync port or use the package.
rsync://ftp.cz.FreeBSD.org/
Available collections:
ftp: A partial mirror of the FreeBSD FTP server.
FreeBSD: A full mirror of the FreeBSD FTP server.
rsync://grappa.unix-ag.uni-kl.de/
Available collections:
freebsd-cvs: The full FreeBSD CVS repository.
This machine also mirrors the CVS repositories of the NetBSD and the OpenBSD projects, among others.
rsync://ftp.nl.FreeBSD.org/
Available collections:
vol/4/freebsd-core: A full mirror of the FreeBSD FTP server.
rsync://rsync.mirror.ac.uk/
Available collections:
ftp.FreeBSD.org: A full mirror of the FreeBSD FTP server.
rsync://ftp-master.FreeBSD.org/
This server may only be used by FreeBSD primary mirror sites.
Available collections:
FreeBSD: The master archive of the FreeBSD FTP server.
acl: The FreeBSD master ACL list.
rsync://ftp13.FreeBSD.org/
Available collections:
FreeBSD: A full mirror of the FreeBSD FTP server.
雖然線上說明(manual pages)有提供 FreeBSD 各個特定部分明確的說明, 但它們卻難免有「小學而大遺」之憾,像是如何讓整個系統運作順暢。 因此, 身邊有 UNIX 系統管理的好書以及好的使用手冊是不可或缺的。
非英語的書籍、雜誌:
FreeBSD 入門與應用(光碟豪華版) (繁體中文), 博碩文化 ,1997。 ISBN 9-578-39435-7
FreeBSD 技術內幕 (FreeBSD Unleashed 簡體中譯版), 機械工業出版社 。 ISBN 7-111-10201-0
FreeBSD 使用大全第一版 (簡體中文), 機械工業出版社。 ISBN 7-111-07482-3
FreeBSD 使用大全第二版 (簡體中文), 機械工業出版社。 ISBN 7-111-10286-X
FreeBSD Handbook 第二版 (簡體中譯版), 人民郵電出版社 。 ISBN 7-115-10541-3
FreeBSD 3.x Internet 高級服務器的架設與管理 (簡體中文), 清華大學出版社 。 ISBN 7-900625-66-6
FreeBSD & Windows 集成組網實務 (簡體中文), 中國鐵道出版社 。 ISBN 7-113-03845-X
FreeBSD 網站架設實務 (簡體中文),中國鐵道出版社 。 ISBN 7-113-03423-3
FreeBSD for PC 98'ers (日文),SHUWA SystemCo, LTD 。 ISBN 4-87966-468-5 C3055 定價 2900 日圓。
FreeBSD (日文),CUTT。 ISBN 4-906391-22-2 C3055 定價 2400 日圓。
Complete Introduction to FreeBSD (日文),Shoeisha Co., Ltd。 ISBN 4-88135-473-6 定價 3600 日圓。
Personal UNIX Starter Kit FreeBSD (日文), ASCII。 ISBN 4-7561-1733-3 定價 3000 日圓。
FreeBSD Handbook (日文譯版), ASCII。 ISBN 4-7561-1580-2 定價 3800 日圓。
FreeBSD mit Methode (德文),Computer und Literatur Verlag/Vertrieb Hanser,1998。 ISBN 3-932311-31-0
FreeBSD 4 - Installieren, Konfigurieren, Administrieren (德文),Computer und Literatur Verlag,2001。 ISBN 3-932311-88-4
FreeBSD 5 - Installieren, Konfigurieren, Administrieren (德文),Computer und Literatur Verlag,2003。 ISBN 3-936546-06-1
FreeBSD de Luxe (德文), Verlag Modere Industrie, 2003。 ISBN 3-8266-1343-0
FreeBSD Install and Utilization Manual (日文),Mainichi Communications Inc. ,1998。 ISBN 4-8399-0112-0
Onno W Purbo, Dodi Maryanto, Syahrial Hubbany, Widjil Widodo Building Internet Server with FreeBSD (印尼文),Elex Media Komputindo。
FreeBSD 完全探索 (Absolute BSD: The Ultimate Guide to FreeBSD 繁體中文譯版),上奇,2003。 ISBN 986-7944-92-5
FreeBSD 6.0架設管理與應用 (繁體中文),博碩,2006。ISBN 9-575-27878-X
英文的書籍、雜誌:
Absolute BSD: The Ultimate Guide to FreeBSD, No Starch Press,2002。 ISBN: 1886411743
The Complete FreeBSD, O'Reilly,2003。 ISBN: 0596005164
The FreeBSD Corporate Networker's Guide, Addison-Wesley,2000。 ISBN: 0201704811
FreeBSD: An Open-Source Operating System for Your Personal Computer,The Bit Tree Press,2001。 ISBN: 0971204500
Teach Yourself FreeBSD in 24 Hours, Sams,2002。 ISBN: 0672324245
FreeBSD 6 Unleashed, Sams,2006。 ISBN: 0672328755
FreeBSD: The Complete Reference, McGrawHill,2003。 ISBN: 0072224096
Computer Systems Research Group, UC Berkeley. 4.4BSD User's Reference Manual. O'Reilly & Associates, Inc., 1994. ISBN 1-56592-075-9
Computer Systems Research Group, UC Berkeley. 4.4BSD User's Supplementary Documents. O'Reilly & Associates, Inc., 1994. ISBN 1-56592-076-7
UNIX in a Nutshell. O'Reilly & Associates, Inc., 1990. ISBN 093717520X
Mui, Linda. What You Need To Know When You Can't Find Your UNIX System Administrator. O'Reilly & Associates, Inc., 1995. ISBN 1-56592-104-6
Ohio State University 有撰寫 UNIX 介紹的課程,並提供 HTML 或 PostScript 兩種格式供人瀏覽。
UNIX 介紹的義大利文翻譯版 ,同時本文件也是 FreeBSD Italian Documentation Project 之一。
Jpman Project, Japan FreeBSD Users Group. FreeBSD User's Reference Manual (日文翻譯)。 Mainichi Communications Inc., 1998. ISBN4-8399-0088-4 P3800E.
Edinburgh University 為 UNIX 新手所撰寫的 Online Guide 指引說明。
Albitz, Paul and Liu, Cricket. DNS and BIND, 4th Ed. O'Reilly & Associates, Inc., 2001. ISBN 1-59600-158-4
Computer Systems Research Group, UC Berkeley. 4.4BSD System Manager's Manual. O'Reilly & Associates, Inc., 1994. ISBN 1-56592-080-5
Costales, Brian, et al. Sendmail, 2nd Ed. O'Reilly & Associates, Inc., 1997. ISBN 1-56592-222-0
Frisch, Æleen. Essential System Administration, 2nd Ed. O'Reilly & Associates, Inc., 1995. ISBN 1-56592-127-5
Hunt, Craig. TCP/IP Network Administration, 2nd Ed. O'Reilly & Associates, Inc., 1997. ISBN 1-56592-322-7
Nemeth, Evi. UNIX System Administration Handbook. 3rd Ed. Prentice Hall, 2000. ISBN 0-13-020601-6
Stern, Hal Managing NFS and NIS O'Reilly & Associates, Inc., 1991. ISBN 0-937175-75-7
Jpman Project, Japan FreeBSD Users Group. FreeBSD System Administrator's Manual (日文翻譯)。 Mainichi Communications Inc., 1998. ISBN4-8399-0109-0 P3300E.
Dreyfus, Emmanuel. Cahiers de l'Admin: BSD 2nd Ed. (法文), Eyrolles, 2004. ISBN 2-212-11463-X
Asente, Paul, Converse, Diana, and Swick, Ralph. X Window System Toolkit. Digital Press, 1998. ISBN 1-55558-178-1
Computer Systems Research Group, UC Berkeley. 4.4BSD Programmer's Reference Manual. O'Reilly & Associates, Inc., 1994. ISBN 1-56592-078-3
Computer Systems Research Group, UC Berkeley. 4.4BSD Programmer's Supplementary Documents. O'Reilly & Associates, Inc., 1994. ISBN 1-56592-079-1
Harbison, Samuel P. and Steele, Guy L. Jr. C: A Reference Manual. 4th ed. Prentice Hall, 1995. ISBN 0-13-326224-3
Kernighan, Brian and Dennis M. Ritchie. The C Programming Language. 2nd Ed. PTR Prentice Hall, 1988. ISBN 0-13-110362-8
Lehey, Greg. Porting UNIX Software. O'Reilly & Associates, Inc., 1995. ISBN 1-56592-126-7
Plauger, P. J. The Standard C Library. Prentice Hall, 1992. ISBN 0-13-131509-9
Spinellis, Diomidis. Code Reading: The Open Source Perspective. Addison-Wesley, 2003. ISBN 0-201-79940-5
Spinellis, Diomidis. Code Quality: The Open Source Perspective. Addison-Wesley, 2006. ISBN 0-321-16607-8
Stevens, W. Richard and Stephen A. Rago. Advanced Programming in the UNIX Environment. 2nd Ed. Reading, Mass. : Addison-Wesley, 2005. ISBN 0-201-43307-9
Stevens, W. Richard. UNIX Network Programming. 2nd Ed, PTR Prentice Hall, 1998. ISBN 0-13-490012-X
Wells, Bill. “Writing Serial Drivers for UNIX”. Dr. Dobb's Journal. 19(15), December 1994. pp68-71, 97-99.
Andleigh, Prabhat K. UNIX System Architecture. Prentice-Hall, Inc., 1990. ISBN 0-13-949843-5
Jolitz, William. “Porting UNIX to the 386”. Dr. Dobb's Journal. January 1991-July 1992.
Leffler, Samuel J., Marshall Kirk McKusick, Michael J Karels and John Quarterman The Design and Implementation of the 4.3BSD UNIX Operating System. Reading, Mass. : Addison-Wesley, 1989. ISBN 0-201-06196-1
Leffler, Samuel J., Marshall Kirk McKusick, The Design and Implementation of the 4.3BSD UNIX Operating System: Answer Book. Reading, Mass. : Addison-Wesley, 1991. ISBN 0-201-54629-9
McKusick, Marshall Kirk, Keith Bostic, Michael J Karels, and John Quarterman. The Design and Implementation of the 4.4BSD Operating System. Reading, Mass. : Addison-Wesley, 1996. ISBN 0-201-54979-4
Marshall Kirk McKusick, George V. Neville-Neil The Design and Implementation of the FreeBSD Operating System. Boston, Mass. : Addison-Wesley, 2004. ISBN 0-201-70245-2
Stevens, W. Richard. TCP/IP Illustrated, Volume 1: The Protocols. Reading, Mass. : Addison-Wesley, 1996. ISBN 0-201-63346-9
Schimmel, Curt. Unix Systems for Modern Architectures. Reading, Mass. : Addison-Wesley, 1994. ISBN 0-201-63338-8
Stevens, W. Richard. TCP/IP Illustrated, Volume 3: TCP for Transactions, HTTP, NNTP and the UNIX Domain Protocols. Reading, Mass. : Addison-Wesley, 1996. ISBN 0-201-63495-3
Vahalia, Uresh. UNIX Internals -- The New Frontiers. Prentice Hall, 1996. ISBN 0-13-101908-2
Wright, Gary R. and W. Richard Stevens. TCP/IP Illustrated, Volume 2: The Implementation. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-63354-X
Cheswick, William R. and Steven M. Bellovin. Firewalls and Internet Security: Repelling the Wily Hacker. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-63357-4
Garfinkel, Simson and Gene Spafford. Practical UNIX & Internet Security. 2nd Ed. O'Reilly & Associates, Inc., 1996. ISBN 1-56592-148-8
Garfinkel, Simson. PGP Pretty Good Privacy O'Reilly & Associates, Inc., 1995. ISBN 1-56592-098-8
Anderson, Don and Tom Shanley. Pentium Processor System Architecture. 2nd Ed. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-40992-5
Ferraro, Richard F. Programmer's Guide to the EGA, VGA, and Super VGA Cards. 3rd ed. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-62490-7
Intel Corporation 通常會以 PDF 格式在 developer web site 網站放他們的 CPU、晶片組、相關標準的規格書文件。
Shanley, Tom. 80486 System Architecture. 3rd ed. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-40994-1
Shanley, Tom. ISA System Architecture. 3rd ed. Reading, Mass. : Addison-Wesley, 1995. ISBN 0-201-40996-8
Shanley, Tom. PCI System Architecture. 4th ed. Reading, Mass. : Addison-Wesley, 1999. ISBN 0-201-30974-2
Van Gilluwe, Frank. The Undocumented PC, 2nd Ed. Reading, Mass: Addison-Wesley Pub. Co., 1996. ISBN 0-201-47950-8
Messmer, Hans-Peter. The Indispensable PC Hardware Book, 4th Ed. Reading, Mass: Addison-Wesley Pub. Co., 2002. ISBN 0-201-59616-4
Lion, John Lion's Commentary on UNIX, 6th Ed. With Source Code. ITP Media Group, 1996. ISBN 1573980137
Raymond, Eric S. The New Hacker's Dictionary, 3rd edition. MIT Press, 1996. ISBN 0-262-68092-0. Also known as the Jargon File
Salus, Peter H. A quarter century of UNIX. Addison-Wesley Publishing Company, Inc., 1994. ISBN 0-201-54777-5
Simon Garfinkel, Daniel Weise, Steven Strassmann. The UNIX-HATERS Handbook. IDG Books Worldwide, Inc., 1994. ISBN 1-56884-203-1. Out of print, but available online.
Don Libes, Sandy Ressler Life with UNIX —— special edition. Prentice-Hall, Inc., 1989. ISBN 0-13-536657-7
BSD 族譜: http://www.FreeBSD.org/cgi/cvsweb.cgi/src/share/misc/bsd-family-tree 或 FreeBSD 機器內的 /usr/share/misc/bsd-family-tree 。
The BSD Release Announcements collection. 1997. http://www.de.FreeBSD.org/de/ftp/releases/
Networked Computer Science Technical Reports Library. http://www.ncstrl.org/
Old BSD releases from the Computer Systems Research group (CSRG). http://www.mckusick.com/csrg/: The 4CD set covers all BSD versions from 1BSD to 4.4BSD and 4.4BSD-Lite2 (but not 2.11BSD, unfortunately). The last disk also holds the final sources plus the SCCS files.
The C/C++ Users Journal. R&D Publications Inc. ISSN 1075-2838
Sys Admin —— The Journal for UNIX System Administrators Miller Freeman, Inc., ISSN 1061-2688
freeX —— Das Magazin für Linux - BSD - UNIX (德文) Computer- und Literaturverlag GmbH, ISSN 1436-7033
進展飛快的 FreeBSD 使得現有的印刷、平面媒體跟不上它的最新進度! 反而數位版本的資源,也許有時並不是最好,但通常是唯一一個跟上最新進展的方式。 正由於 FreeBSD 是來自於許多志工的努力,所以廣大的使用者群也通常扮演著 “IT技術支援部門” 的角色。 只要善用電子郵件和 USENET 新聞群組就可以很快速地聯繫這些社群了。
以下簡介與 FreeBSD 社群搭上線的主要方式。 若你還知道其他這裡沒有列出的資源,請告知 FreeBSD documentation project 郵遞論壇,以便我們更新。
雖然,大部份的 FreeBSD 開發人員都有看 USENET 新聞群組, 我們也不能保證我們永遠可以及時得知您的問題。 尤其是,若您只在 comp.unix.bsd.freebsd.* 其中群組內發問的話。 建議您將問題發到適當的郵遞論壇(mailing list)上,不但可以同時讓 FreeBSD 開發者和其他看倌們知道,通常也可以得到一個較好的(最起碼會比較快)的回應。
本文後面介紹的是各式不同的郵遞論壇、討論規則(charter)。 在訂閱任何 list 之前,請先閱讀討論規則。 訂閱這些 list 的人們現在每天都會收到數百封 FreeBSD 相關信件。 而討論規則的制訂,則有助於提升彼此討論品質。 否則,這些討論 FreeBSD 的 list 終將陷入溝通不良,而失去其原本美意。
對於該在哪個 list 發問覺得很疑惑的時候,就來看看 《如何在 FreeBSD-questions mailing list 上得到正解》 一文吧
在發表問題、回覆到 list 之前,請先讀過 FreeBSD Mailing Lists 常見問答集(FAQ) 一文以學會如何善用 mailing list ,才能避免像是經常重複的月經文、戰文之類的事情發生。
全部的 mailing lists 討論記錄都可以在 FreeBSD WWW主機 上找到。它提供了很棒的關鍵字搜尋功能,可讓您找到常用問答集(FAQ) 。而在 mailing lists 上發問之前,也請先搜尋是否已有解答。
一般論壇: 以下的 list 都是一般性質,而且大家可以自由地參與, 我們也鼓勵大家訂閱:
List 名稱 | 目的 |
---|---|
cvs-all | 所有的 FreeBSD 提交(commit)記錄 |
freebsd-advocacy | FreeBSD 惡魔福音電台 |
freebsd-announce | 公布重要事件、計劃里程碑 |
freebsd-arch | 架構研發討論 |
freebsd-bugbusters | FreeBSD 問題回報(PR)資料庫的維護議題與工具 |
freebsd-bugs | Bug 回報 |
freebsd-chat | 非技術交流的 FreeBSD 社群聊天區 |
freebsd-current | 討論 FreeBSD-CURRENT 版本的 FreeBSD |
freebsd-isp | FreeBSD 的 ISP 業者技術交流區 |
freebsd-jobs | FreeBSD 人力銀行 |
freebsd-policy | FreeBSD Core team 的 policy 方針討論區。這裡文章不多,且只限 core team 才可發言。 |
freebsd-questions | 使用問題及技術支援 |
freebsd-security-notifications | 安全漏洞通知 |
freebsd-stable | 討論 FreeBSD-STABLE 版本的 FreeBSD |
freebsd-test | 論壇新手發表區,這裡可以讓你小試身手 |
技術論壇: 以下 list 主是要以探討技術問題為主, 在加入訂閱及討論之前,請務必仔細閱讀每個 list 的版規(charter), 因為它們的討論內容都有很嚴謹的限制。
List 名稱 | 目的 |
---|---|
freebsd-acpi | ACPI 以及電力管理議題 |
freebsd-afs | 移植 AFS 到 FreeBSD |
freebsd-aic7xxx | 研發 Adaptec AIC 7xxx 的驅動程式 |
freebsd-alpha | 移植 FreeBSD 到 Alpha 系統架構 |
freebsd-amd64 | 移植 FreeBSD 到 AMD64 系統架構 |
freebsd-apache | 探討 Apache 相關的 ports 議題 |
freebsd-arm | 移植 FreeBSD 到 ARM® CPU 架構 |
freebsd-atm | 在 FreeBSD 上使用 ATM 網路 |
freebsd-audit | Source code 的稽核(audit)計劃 |
freebsd-binup | 研發 binary 的升級方式 |
freebsd-bluetooth | 在 FreeBSD 中使用藍芽(Bluetooth)技術 |
freebsd-cluster | 把 FreeBSD 在叢集架構環境(clustered environment)的運用 |
freebsd-cvsweb | CVSweb 的維護 |
freebsd-database | 討論各式資料庫在 FreeBSD 的研發、運用 |
freebsd-doc | 撰寫 FreeBSD 相關文件 |
freebsd-drivers | 撰寫 FreeBSD 用的驅動程式 |
freebsd-eclipse | FreeBSD 的 Eclipse IDE 工具愛用者交流 |
freebsd-emulation | 在 FreeBSD 上模擬其他系統,如:Linux、MS-DOS、Windows |
freebsd-firewire | FreeBSD 的 FireWire® (iLink, IEEE 1394) 方面技術交流 |
freebsd-fs | 檔案系統的探討、研發 |
freebsd-geom | GEOM 議題的探討、研發 |
freebsd-gnome | 移植 GNOME 及 GNOME 相關應用軟體 |
freebsd-hackers | 一般技術議題的探討 |
freebsd-hardware | FreeBSD 上的各式硬體問題交流 |
freebsd-i18n | FreeBSD 的多語化(Internationalization) |
freebsd-ia32 | FreeBSD 在 IA-32 (Intel x86) 平台上的使用探討 |
freebsd-ia64 | 移植 FreeBSD 到 Intel 的未來 IA64 平台架構 |
freebsd-ipfw | 對 ipfw(IP firewall) 的技術探討 |
freebsd-isdn | ISDN 研發 |
freebsd-java | Java 程式開發者以及移植 JDKs 到 FreeBSD 上 |
freebsd-kde | 移植 KDE 以及 KDE 相關應用程式 |
freebsd-lfs | 移植 LFS 到 FreeBSD |
freebsd-libh | 新世代的安裝、打包套件機制 |
freebsd-mips | 移植 FreeBSD 到 MIPS® |
freebsd-mobile | 關於各類 mobile computing(比如:筆記型電腦)的研討 |
freebsd-mozilla | 把 Mozilla 軟體移植到 FreeBSD |
freebsd-multimedia | 各式影音運用、軟體 |
freebsd-new-bus | 各式 bus 架構的技術探討 |
freebsd-net | 網路運用探討與 TCP/IP source code |
freebsd-openoffice | 移植 OpenOffice.org 及 StarOffice 到 FreeBSD |
freebsd-performance | 在高效能/負荷環境下的效能調校(tuning)議題 |
freebsd-perl | 探討 Perl 相關 ports 的維護 |
freebsd-pf | pf(packet filter) 防火牆機制的探討 |
freebsd-platforms | 討論著重於移植 port 到非 Intel 架構平台的議題 |
freebsd-ports | 關於 Ports Collection 的運用、探討 |
freebsd-ports-bugs | ports 相關的 bugs/PRs |
freebsd-ppc | 移植 FreeBSD 到 PowerPC® 系統架構 |
freebsd-proliant | FreeBSD 在 HP ProLiant 主機平台的使用交流 |
freebsd-python | Python 在 FreeBSD 上使用的各式議題。 |
freebsd-qa | QA(Quality Assurance)討論,通常會決定是否已經到達可以 release 的程度 |
freebsd-rc | rc.d 機制的討論、研發 |
freebsd-realtime | FreeBSD 上 realtime extensions 的研發 |
freebsd-scsi | SCSI 方面議題 |
freebsd-security | FreeBSD 安全漏洞議題 |
freebsd-small | 在嵌入式硬體環境的應用、探討 |
freebsd-smp | CPU 對稱多工處理(SMP, [A]Symmetric Multiprocessing)的應用、研討 |
freebsd-sparc64 | 移植 FreeBSD 到 Sparc® 平台架構 |
freebsd-standards | FreeBSD 與 C99 及 POSIX標準的相容議題 |
freebsd-threads | FreeBSD 上的 Threading 運用、探討 |
freebsd-testing | FreeBSD 的效能與穩定性測試 |
freebsd-tokenring | FreeBSD 的 Token Ring 支援的應用、探討 |
freebsd-usb | FreeBSD 的 USB 支援的應用、探討 |
freebsd-vuxml | VuXML 漏洞通報架構的探討 |
freebsd-x11 | X11 在 FreeBSD 的運用 |
有訂閱限制的論壇: 以下的 lists 是針對一些特定要求的讀者而設, 而且並不適合當成是一般的公開討論區。 您最好先在某些技術討論區參與一段時間的討論後,再選擇訂閱這些有限制的論壇。 因為如此一來,您可以了解到在這些討論區發言所須的禮儀。
List 名稱 | 目的 |
---|---|
freebsd-hubs | 映射站台(mirror)的交流討論區 |
freebsd-user-groups | 社群間的協調 |
freebsd-vendors | Vendors pre-release coordination |
freebsd-www | www.FreeBSD.org 的管理維護 |
論壇的摘要版: 上述的各 lists 都有摘要版(digest), 在訂閱 list 之後,就可以先以自己帳號登入,然後個人訂閱選項那邊改為摘要版即可。
CVS lists: 以下的 lists 是提供給想要看各個 tree 的提交(commit)紀錄, 請注意:他們是 唯讀(Read-Only) 性質的 list ,而且不能寄信給這。
List 名稱 | Source 區域 | 本區簡介 (source for) |
---|---|---|
cvs-all | /usr/(CVSROOT|doc|ports|projects|src) | 全部的變更記錄(包括各類 CVS commit) |
cvs-doc | /usr/(doc|www) | doc 及 www trees 的所有變更紀錄 |
cvs-ports | /usr/ports | ports tree 的所有變更紀錄 |
cvs-projects | /usr/projects | projects tree 的所有變更紀錄 |
cvs-src | /usr/src | src tree 的所有變更紀錄 |
要訂閱 list 的話,請以滑鼠按下上述 list 名稱, 或是到 http://lists.FreeBSD.org/mailman/listinfo 然後即可挑選有興趣的 list 來訂閱了, 該網頁會指示你如何進行訂閱的步驟。
To actually post to a given list you simply send mail to <listname@FreeBSD.org>
. It will then
be redistributed to mailing list members world-wide.
To unsubscribe yourself from a list, click on the URL found at the bottom of
every email received from the list. It is also possible to send an email to
<listname-unsubscribe@FreeBSD.org>
to
unsubscribe yourself.
Again, we would like to request that you keep discussion in the technical mailing lists on a technical track. If you are only interested in important announcements then it is suggested that you join the FreeBSD announcements 郵遞論壇, which is intended only for infrequent traffic.
All FreeBSD mailing lists have
certain basic rules which must be adhered to by anyone using them. Failure to comply
with these guidelines will result in two (2) written warnings from the FreeBSD
Postmaster <postmaster@FreeBSD.org>
, after which,
on a third offense, the poster will removed from all FreeBSD mailing lists and
filtered from further posting to them. We regret that such rules and measures are
necessary at all, but today's Internet is a pretty harsh environment, it would seem,
and many fail to appreciate just how fragile some of its mechanisms are.
Rules of the road:
The topic of any posting should adhere to the basic charter of the list it is posted to, e.g. if the list is about technical issues then your posting should contain technical discussion. Ongoing irrelevant chatter or flaming only detracts from the value of the mailing list for everyone on it and will not be tolerated. For free-form discussion on no particular topic, the FreeBSD chat 郵遞論壇 is freely available and should be used instead.
No posting should be made to more than 2 mailing lists, and only to 2 when a clear and obvious need to post to both lists exists. For most lists, there is already a great deal of subscriber overlap and except for the most esoteric mixes (say “-stable & -scsi”), there really is no reason to post to more than one list at a time. If a message is sent to you in such a way that multiple mailing lists appear on the Cc line then the Cc line should also be trimmed before sending it out again. You are still responsible for your own cross-postings, no matter who the originator might have been.
Personal attacks and profanity (in the context of an argument) are not allowed, and that includes users and developers alike. Gross breaches of netiquette, like excerpting or reposting private mail when permission to do so was not and would not be forthcoming, are frowned upon but not specifically enforced. However, there are also very few cases where such content would fit within the charter of a list and it would therefore probably rate a warning (or ban) on that basis alone.
Advertising of non-FreeBSD related products or services is strictly prohibited and will result in an immediate ban if it is clear that the offender is advertising by spam.
Individual list charters:
ACPI and power management development
Andrew File System
This list is for discussion on porting and using AFS from CMU/Transarc
Important events / milestones
This is the mailing list for people interested only in occasional announcements of significant FreeBSD events. This includes announcements about snapshots and other releases. It contains announcements of new FreeBSD capabilities. It may contain calls for volunteers etc. This is a low volume, strictly moderated mailing list.
Architecture and design discussions
This list is for discussion of the FreeBSD architecture. Messages will mostly be kept strictly technical in nature. Examples of suitable topics are:
How to re-vamp the build system to have several customized builds running at the same time.
What needs to be fixed with VFS to make Heidemann layers work.
How do we change the device driver interface to be able to use the same drivers cleanly on many buses and architectures.
How to write a network driver.
Source code audit project
This is the mailing list for the FreeBSD source code audit project. Although this was originally intended for security-related changes, its charter has been expanded to review any code changes.
This list is very heavy on patches, and is probably of no interest to the average FreeBSD user. Security discussions not related to a particular code change are held on freebsd-security. Conversely, all developers are encouraged to send their patches here for review, especially if they touch a part of the system where a bug may adversely affect the integrity of the system.
FreeBSD Binary Update Project
This list exists to provide discussion for the binary update system, or binup. Design issues, implementation details, patches, bug reports, status reports, feature requests, commit logs, and all other things related to binup are fair game.
Bluetooth in FreeBSD
This is the forum where FreeBSD's Bluetooth users congregate. Design issues, implementation details, patches, bug reports, status reports, feature requests, and all matters related to Bluetooth are fair game.
Coordination of the Problem Report handling effort
The purpose of this list is to serve as a coordination and discussion forum for the Bugmeister, his Bugbusters, and any other parties who have a genuine interest in the PR database. This list is not for discussions about specific bugs, patches or PRs.
Bug reports
This is the mailing list for reporting bugs in FreeBSD. Whenever possible, bugs should be submitted using the send-pr(1) command or the WEB interface to it.
Non technical items related to the FreeBSD community
This list contains the overflow from the other lists about non-technical, social information. It includes discussion about whether Jordan looks like a toon ferret or not, whether or not to type in capitals, who is drinking too much coffee, where the best beer is brewed, who is brewing beer in their basement, and so on. Occasional announcements of important events (such as upcoming parties, weddings, births, new jobs, etc) can be made to the technical lists, but the follow ups should be directed to this -chat list.
FreeBSD core team
This is an internal mailing list for use by the core members. Messages can be sent to it when a serious FreeBSD-related matter requires arbitration or high-level scrutiny.
Discussions about the use of FreeBSD-CURRENT
This is the mailing list for users of FreeBSD-CURRENT. It includes warnings about new features coming out in -CURRENT that will affect the users, and instructions on steps that must be taken to remain -CURRENT. Anyone running “CURRENT” must subscribe to this list. This is a technical mailing list for which strictly technical content is expected.
FreeBSD CVSweb Project
Technical discussions about use, development and maintenance of FreeBSD-CVSweb.
Documentation project
This mailing list is for the discussion of issues and projects related to the creation of documentation for FreeBSD. The members of this mailing list are collectively referred to as “The FreeBSD Documentation Project”. It is an open list; feel free to join and contribute!
Writing device drivers for FreeBSD
This is a forum for technical discussions related to device drivers on FreeBSD. It is primarily a place for device driver writers to ask questions about how to write device drivers using the APIs in the FreeBSD kernel.
FreeBSD users of Eclipse IDE, tools, rich client applications and ports.
The intention of this list is to provide mutual support for everything to do with choosing, installing, using, developing and maintaining the Eclipse IDE, tools, rich client applications on the FreeBSD platform and assisting with the porting of Eclipse IDE and plugins to the FreeBSD environment.
The intention is also to facilitate exchange of information between the Eclipse community and the FreeBSD community to the mutual benefit of both.
Although this list is focused primarily on the needs of Eclipse users it will also provide a forum for those who would like to develop FreeBSD specific applications using the Eclipse framework.
Emulation of other systems such as Linux/MS-DOS/Windows
This is a forum for technical discussions related to running programs written for other operating systems on FreeBSD.
FireWire (iLink, IEEE 1394)
This is a mailing list for discussion of the design and implementation of a FireWire (aka IEEE 1394 aka iLink) subsystem for FreeBSD. Relevant topics specifically include the standards, bus devices and their protocols, adapter boards/cards/chips sets, and the architecture and implementation of code for their proper support.
File systems
Discussions concerning FreeBSD file systems. This is a technical mailing list for which strictly technical content is expected.
GEOM
Discussions specific to GEOM and related implementations. This is a technical mailing list for which strictly technical content is expected.
GNOME
Discussions concerning The GNOME Desktop Environment for FreeBSD systems. This is a technical mailing list for which strictly technical content is expected.
IP Firewall
This is the forum for technical discussions concerning the redesign of the IP firewall code in FreeBSD. This is a technical mailing list for which strictly technical content is expected.
Porting FreeBSD to IA64
This is a technical mailing list for individuals actively working on porting FreeBSD to the IA-64 platform from Intel, to bring up problems or discuss alternative solutions. Individuals interested in following the technical discussion are also welcome.
ISDN Communications
This is the mailing list for people discussing the development of ISDN support for FreeBSD.
Java Development
This is the mailing list for people discussing the development of significant Java applications for FreeBSD and the porting and maintenance of JDKs.
Jobs offered and sought
This is a forum for posting employment notices and resumes specifically related to FreeBSD, e.g. if you are seeking FreeBSD-related employment or have a job involving FreeBSD to advertise then this is the right place. This is not a mailing list for general employment issues since adequate forums for that already exist elsewhere.
Note that this list, like other FreeBSD.org mailing lists, is distributed worldwide. Thus, you need to be clear about location and the extent to which telecommuting or assistance with relocation is available.
Email should use open formats only —— preferably plain text, but basic Portable Document Format (PDF), HTML, and a few others are acceptable to many readers. Closed formats such as Microsoft Word (.doc) will be rejected by the mailing list server.
KDE
Discussions concerning KDE on FreeBSD systems. This is a technical mailing list for which strictly technical content is expected.
Technical discussions
This is a forum for technical discussions related to FreeBSD. This is the primary technical mailing list. It is for individuals actively working on FreeBSD, to bring up problems or discuss alternative solutions. Individuals interested in following the technical discussion are also welcome. This is a technical mailing list for which strictly technical content is expected.
General discussion of FreeBSD hardware
General discussion about the types of hardware that FreeBSD runs on, various problems and suggestions concerning what to buy or avoid.
Mirror sites
Announcements and discussion for people who run FreeBSD mirror sites.
Issues for Internet Service Providers
This mailing list is for discussing topics relevant to Internet Service Providers (ISPs) using FreeBSD. This is a technical mailing list for which strictly technical content is expected.
OpenOffice.org
Discussions concerning the porting and maintenance of OpenOffice.org and StarOffice.
Discussions about tuning or speeding up FreeBSD
This mailing list exists to provide a place for hackers, administrators, and/or concerned parties to discuss performance related topics pertaining to FreeBSD. Acceptable topics includes talking about FreeBSD installations that are either under high load, are experiencing performance problems, or are pushing the limits of FreeBSD. Concerned parties that are willing to work toward improving the performance of FreeBSD are highly encouraged to subscribe to this list. This is a highly technical list ideally suited for experienced FreeBSD users, hackers, or administrators interested in keeping FreeBSD fast, robust, and scalable. This list is not a question-and-answer list that replaces reading through documentation, but it is a place to make contributions or inquire about unanswered performance related topics.
Discussion and questions about the packet filter firewall system
Discussion concerning the packet filter (pf) firewall system in terms of FreeBSD. Technical discussion and user questions are both welcome. This list is also a place to discuss the ALTQ QoS framework.
Porting to Non Intel platforms
Cross-platform FreeBSD issues, general discussion and proposals for non Intel FreeBSD ports. This is a technical mailing list for which strictly technical content is expected.
Core team policy decisions
This is a low volume, read-only mailing list for FreeBSD Core Team Policy decisions.
Discussion of “ports”
Discussions concerning FreeBSD's “ports collection” (/usr/ports), ports infrastructure, and general ports coordination efforts. This is a technical mailing list for which strictly technical content is expected.
Discussion of “ports” bugs
Discussions concerning problem reports for FreeBSD's “ports collection” (/usr/ports), proposed ports, or modifications to ports. This is a technical mailing list for which strictly technical content is expected.
Technical discussion of FreeBSD on HP ProLiant server platforms
This mailing list is to be used for the technical discussion of the usage of FreeBSD on HP ProLiant servers, including the discussion of ProLiant-specific drivers, management software, configuration tools, and BIOS updates. As such, this is the primary place to discuss the hpasmd, hpasmcli, and hpacucli modules.
Python on FreeBSD
This is a list for discussions related to improving Python-support on FreeBSD. This is a technical mailing list. It is for individuals working on porting Python, its 3rd party modules and Zope stuff to FreeBSD. Individuals interested in following the technical discussion are also welcome.
User questions
This is the mailing list for questions about FreeBSD. You should not send “how to” questions to the technical lists unless you consider the question to be pretty technical.
SCSI subsystem
This is the mailing list for people working on the SCSI subsystem for FreeBSD. This is a technical mailing list for which strictly technical content is expected.
Security issues
FreeBSD computer security issues (DES, Kerberos, known security holes and fixes, etc). This is a technical mailing list for which strictly technical discussion is expected. Note that this is not a question-and-answer list, but that contributions (BOTH question AND answer) to the FAQ are welcome.
Security Notifications
Notifications of FreeBSD security problems and fixes. This is not a discussion list. The discussion list is FreeBSD-security.
Using FreeBSD in embedded applications
This list discusses topics related to unusually small and embedded FreeBSD installations. This is a technical mailing list for which strictly technical content is expected.
Discussions about the use of FreeBSD-STABLE
This is the mailing list for users of FreeBSD-STABLE. It includes warnings about new features coming out in -STABLE that will affect the users, and instructions on steps that must be taken to remain -STABLE. Anyone running “STABLE” should subscribe to this list. This is a technical mailing list for which strictly technical content is expected.
C99 & POSIX Conformance
This is a forum for technical discussions related to FreeBSD Conformance to the C99 and the POSIX standards.
Discussing FreeBSD support for USB
This is a mailing list for technical discussions related to FreeBSD support for USB.
User Group Coordination List
This is the mailing list for the coordinators from each of the local area Users Groups to discuss matters with each other and a designated individual from the Core Team. This mail list should be limited to meeting synopsis and coordination of projects that span User Groups.
Vendors
Coordination discussions between The FreeBSD Project and Vendors of software and hardware for FreeBSD.
The FreeBSD mailing lists are filtered in multiple ways to avoid the distribution of spam, viruses, and other unwanted emails. The filtering actions described in this section do not include all those used to protect the mailing lists.
Only certain types of attachments are allowed on the mailing lists. All attachments with a MIME content type not found in the list below will be stripped before an email is distributed on the mailing lists.
application/octet-stream
application/pdf
application/pgp-signature
application/x-pkcs7-signature
message/rfc822
multipart/alternative
multipart/related
multipart/signed
text/html
text/plain
text/x-diff
text/x-patch
注: Some of the mailing lists might allow attachments of other MIME content types, but the above list should be applicable for most of the mailing lists.
If an email contains both an HTML and a plain text version, the HTML version will be removed. If an email contains only an HTML version, it will be converted to plain text.
In addition to two FreeBSD specific newsgroups, there are many others in which FreeBSD
is discussed or are otherwise relevant to FreeBSD users. Keyword
searchable archives are available for some of these newsgroups from courtesy of
Warren Toomey <wkt@cs.adfa.edu.au>
.
de.comp.os.unix.bsd (German)
fr.comp.os.bsd (French)
it.comp.os.freebsd (Italian)
Central Servers, Armenia, Australia, Austria, Belgium, Brazil, Canada, China, Costa Rica, Czech Republic, Denmark, Estonia, Finland, France, Germany, Greece, Hong Kong, Hungary, Iceland, Italy, Japan, Korea, Kuwait, Kyrgyzstan, Latvia, Lithuania, Netherlands, Norway, Philippines, Portugal, Romania, Russia, San Marino, Slovak Republic, Slovenia, South Africa, Spain, Sweden, Switzerland, Taiwan, Thailand, Turkey, Ukraine, United Kingdom, USA.
(as of UTC)
Central Servers
Armenia
http://www1.am.FreeBSD.org/ (IPv6)
Australia
Austria
http://www.at.FreeBSD.org/ (IPv6)
Belgium
Brazil
Canada
China
Costa Rica
Czech Republic
http://www.cz.FreeBSD.org/ (IPv6)
Denmark
http://www.dk.FreeBSD.org/ (IPv6)
Estonia
Finland
France
Germany
Greece
Hong Kong
Hungary
Iceland
Italy
Japan
Korea
Kuwait
Kyrgyzstan
Latvia
Lithuania
Netherlands
Norway
Philippines
Portugal
Romania
Russia
San Marino
Slovak Republic
Slovenia
South Africa
Spain
Sweden
Switzerland
http://www.ch.FreeBSD.org/ (IPv6)
http://www2.ch.FreeBSD.org/ (IPv6)
Taiwan
Thailand
Turkey
Ukraine
United Kingdom
USA
The following user groups provide FreeBSD related email addresses for their members. The listed administrator reserves the right to revoke the address if it is abused in any way.
Domain | Facilities | User Group | Administrator |
---|---|---|---|
ukug.uk.FreeBSD.org | Forwarding only | <freebsd-users@uk.FreeBSD.org> |
Lee Johnston <lee@uk.FreeBSD.org> |
The following user groups provide shell accounts for people who are actively supporting the FreeBSD project. The listed administrator reserves the right to cancel the account if it is abused in any way.
Host | Access | Facilities | Administrator |
---|---|---|---|
dogma.freebsd-uk.eu.org | Telnet/FTP/SSH | Email, Web space, Anonymous FTP | Lee Johnston <lee@uk.FreeBSD.org> |
In case you need to verify a signature or send encrypted email to one of the officers or developers a number of keys are provided here for your convenience. A complete keyring of FreeBSD.org users is available for download from http://www.FreeBSD.org/doc/pgpkeyring.txt.
<security-officer@FreeBSD.org>
pub 1024D/CA6CDFB2 2002-08-27 FreeBSD Security Officer <security-officer@FreeBSD.org> Key fingerprint = C374 0FC5 69A6 FBB1 4AED B131 15D6 8804 CA6C DFB2 sub 2048g/A3071809 2002-08-27
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<core-secretary@FreeBSD.org>
pub 2048R/2CA49776 2012-07-23 Key fingerprint = 89F6 C031 B4E3 D472 E4CE 8372 4D58 FDCD 2CA4 9776 uid FreeBSD Core Team Secretary <core-secretary@freebsd.org> sub 2048R/BBAD1C98 2012-07-23
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<portmgr-secretary@FreeBSD.org>
pub 2048R/BBC4D7D5 2012-07-24 Key fingerprint = FB37 45C8 6F15 E8ED AC81 32FC D829 4EC3 BBC4 D7D5 uid FreeBSD Ports Management Team Secretary <portmgr-secretary@FreeBSD.org> sub 2048R/5F65CFE7 2012-07-24
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<tabthorpe@FreeBSD.org>
pub 2048R/A473C990 2010-05-28 Key fingerprint = D883 2D7C EB78 944A 69FC 36A6 D937 1097 A473 C990 uid Thomas Abthorpe (FreeBSD Committer) <tabthorpe@FreeBSD.org> uid Thomas Abthorpe <tabthorpe@abthorpe.org> uid Thomas Abthorpe <tabthorpe@goodking.ca> uid Thomas Abthorpe <tabthorpe@goodking.org> uid Thomas Abthorpe <thomas@goodking.ca> sub 2048R/8CA60EE0 2010-05-28
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<gavin@FreeBSD.org>
pub 1024D/A093262B 2005-02-18 Key fingerprint = 313A A79F 697D 3A5C 216A EDF5 935D EF44 A093 262B uid Gavin Atkinson <gavin@16squared.co.uk> uid Gavin Atkinson (FreeBSD key) <gavin@FreeBSD.org> uid Gavin Atkinson (Work e-mail) <ga9@york.ac.uk> uid Gavin Atkinson <gavin.atkinson@ury.york.ac.uk> sub 2048g/58F40B3D 2005-02-18
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<jhb@FreeBSD.org>
pub 1024R/C10A874D 1999-01-13 John Baldwin <jbaldwin@weather.com> Key fingerprint = 43 33 1D 37 72 B1 EF 5B 9B 5F 39 F8 BD C1 7C B5 uid John Baldwin <john@baldwin.cx> uid John Baldwin <jhb@FreeBSD.org> uid John Baldwin <jobaldwi@vt.edu>
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<kib@FreeBSD.org>
pub 4096R/C1BCAD41 2012-11-17 Key fingerprint = 7DE0 3388 64AC 53C3 7B88 3A79 90C2 B92B C1BC AD41 uid Konstantin Belousov <kib@FreeBSD.org> uid Konstantin Belousov <kostikbel@gmail.com> uid Konstantin Belousov <kib@kib.kiev.ua> sub 4096R/3BBC8F64 2012-11-17
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<theraven@FreeBSD.org>
pub 4096R/65C4F55D 2012-11-28 Key fingerprint = 3E8F 5E9F 7586 F090 AC2C 58C2 BA06 FF14 65C4 F55D uid David Chisnall <theraven@FreeBSD.org> sub 4096R/04B2A21D 2012-11-28
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<hrs@FreeBSD.org>
pub 1024D/2793CF2D 2001-06-12 Key fingerprint = BDB3 443F A5DD B3D0 A530 FFD7 4F2C D3D8 2793 CF2D uid Hiroki Sato <hrs@allbsd.org> uid Hiroki Sato <hrs@eos.ocn.ne.jp> uid Hiroki Sato <hrs@ring.gr.jp> uid Hiroki Sato <hrs@FreeBSD.org> uid Hiroki Sato <hrs@jp.FreeBSD.org> uid Hiroki Sato <hrs@vlsi.ee.noda.tus.ac.jp> uid Hiroki Sato <hrs@jp.NetBSD.org> uid Hiroki Sato <hrs@NetBSD.org> uid Hiroki Sato <hrs@ec.ss.titech.ac.jp> uid Hiroki Sato <hrs@ieee.org> uid Hiroki Sato <hrs@acm.org> sub 1024g/8CD251FF 2001-06-12
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<peter@FreeBSD.org>
pub 1024D/7277717F 2003-12-14 Peter Wemm <peter@wemm.org> Key fingerprint = 622B 2282 E92B 3BAB 57D1 A417 1512 AE52 7277 717F uid Peter Wemm <peter@FreeBSD.ORG> sub 1024g/8B40D9D1 2003-12-14 pub 1024R/D89CE319 1995-04-02 Peter Wemm <peter@netplex.com.au> Key fingerprint = 47 05 04 CA 4C EE F8 93 F6 DB 02 92 6D F5 58 8A uid Peter Wemm <peter@perth.dialix.oz.au> uid Peter Wemm <peter@haywire.dialix.com>
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<miwi@FreeBSD.org>
pub 1024D/B1E6FCE9 2009-01-31 Key fingerprint = C022 7D60 F598 8188 2635 0F6E 74B2 4884 B1E6 FCE9 uid Martin Wilke <miwi@FreeBSD.org> sub 4096g/096DA69D 2009-01-31
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<ariff@FreeBSD.org>
pub 1024D/C5304CDA 2005-10-01 Key fingerprint = 5C7C 6BF4 8293 DE76 27D9 FD57 96BF 9D78 C530 4CDA uid Ariff Abdullah <skywizard@MyBSD.org.my> uid Ariff Abdullah <ariff@MyBSD.org.my> uid Ariff Abdullah <ariff@FreeBSD.org> sub 2048g/8958C1D3 2005-10-01
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<tabthorpe@FreeBSD.org>
pub 2048R/A473C990 2010-05-28 Key fingerprint = D883 2D7C EB78 944A 69FC 36A6 D937 1097 A473 C990 uid Thomas Abthorpe (FreeBSD Committer) <tabthorpe@FreeBSD.org> uid Thomas Abthorpe <tabthorpe@abthorpe.org> uid Thomas Abthorpe <tabthorpe@goodking.ca> uid Thomas Abthorpe <tabthorpe@goodking.org> uid Thomas Abthorpe <thomas@goodking.ca> sub 2048R/8CA60EE0 2010-05-28
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<eadler@FreeBSD.org>
pub 4096R/8FC8196C 2011-02-11 Key fingerprint = 49C7 29DF E09C 0FC7 A1C4 6ECB A338 A6FC 8FC8 196C uid Eitan Adler <lists@eitanadler.com> sub 4096R/18763D51 2011-02-11 sub 4096R/DAB9CF9B 2011-02-11
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<shaun@FreeBSD.org>
pub 1024D/6B387A9A 2001-03-19 Key fingerprint = B506 E6C7 74A1 CC11 9A23 5C13 9268 5D08 6B38 7A9A uid Shaun Amott <shaun@inerd.com> uid Shaun Amott <shaun@FreeBSD.org> sub 2048g/26FA8703 2001-03-19 sub 2048R/7FFF5151 2005-11-06 sub 2048R/27C54137 2005-11-06
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<brix@FreeBSD.org>
pub 1024D/54E278F8 2003-04-09 Key fingerprint = 7B63 EF32 7831 A704 220D 7E61 BFE4 387E 54E2 78F8 uid Henrik Brix Andersen <henrik@brixandersen.dk> uid Henrik Brix Andersen <brix@FreeBSD.org> uid Henrik Brix Andersen <hbn@terma.com> uid Henrik Brix Andersen <brix@osaa.dk> sub 1024g/3B13C209 2003-04-09
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<mandree@FreeBSD.org>
pub 1024D/052E7D95 2003-08-28 Key fingerprint = FDD0 0C43 6E33 07E1 0758 C6A8 BE61 8339 052E 7D95 uid Matthias Andree <mandree@freebsd.org> uid Matthias Andree <matthias.andree@gmx.de> sub 1536g/E65A83DA 2003-08-28
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<will@FreeBSD.org>
pub 1024D/F81672C5 2000-05-22 Will Andrews (Key for official matters) <will@FreeBSD.org> Key fingerprint = 661F BBF7 9F5D 3D02 C862 5F6C 178E E274 F816 72C5 uid Will Andrews <will@physics.purdue.edu> uid Will Andrews <will@puck.firepipe.net> uid Will Andrews <will@c-60.org> uid Will Andrews <will@csociety.org> uid Will Andrews <will@csociety.ecn.purdue.edu> uid Will Andrews <will@telperion.openpackages.org> sub 1024g/55472804 2000-05-22
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<dim@FreeBSD.org>
pub 1024D/2E2096A3 1997-11-17 Key fingerprint = 7AB4 62D2 CE35 FC6D 4239 4FCD B05E A30A 2E20 96A3 uid Dimitry Andric <dimitry@andric.com> uid Dimitry Andric <dim@xs4all.nl> uid Dimitry Andric <dimitry.andric@tomtom.com> uid [jpeg image of size 5132] uid Dimitry Andric <dim@nah6.com> uid Dimitry Andric <dim@FreeBSD.org> sub 4096g/6852A5C5 1997-11-17
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<anholt@FreeBSD.org>
pub 1024D/6CF0EAF7 2003-09-08 Key fingerprint = 76FE 2475 820B B75F DCA4 0F3E 1D47 6F60 6CF0 EAF7 uid Eric Anholt <eta@lclark.edu> uid Eric Anholt <anholt@FreeBSD.org> sub 1024g/80B404C1 2003-09-08
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<mva@FreeBSD.org>
pub 1024D/B267A647 2009-02-14 Key fingerprint = C7CC 1853 D8C5 E580 7795 B654 8BAF 3F12 B267 A647 uid Marcus von Appen <freebsd@sysfault.org> uid Marcus von Appen <mva@freebsd.org> sub 2048g/D34A3BAF 2009-02-14
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<araujo@FreeBSD.org>
pub 1024D/53E4CFA8 2007-04-27 Key fingerprint = 9D6A 2339 925C 4F61 ED88 ED8B A2FC 4977 53E4 CFA8 uid Marcelo Araujo (Ports Committer) <araujo@FreeBSD.org> sub 2048g/63CC012D 2007-04-27
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<mat@FreeBSD.org>
pub 1024D/FE6D850F 2005-04-25 Key fingerprint = 2771 11F4 0A7E 73F9 ADDD A542 26A4 7C6A FE6D 850F uid Mathieu Arnold <mat@FreeBSD.org> uid Mathieu Arnold <mat@mat.cc> uid Mathieu Arnold <mat@cpan.org> uid Mathieu Arnold <m@absolight.fr> uid Mathieu Arnold <m@absolight.net> uid Mathieu Arnold <mat@club-internet.fr> uid Mathieu Arnold <marnold@april.org> uid Mathieu Arnold <paypal@mat.cc> sub 2048g/EAD18BD9 2005-04-25
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<asami@FreeBSD.org>
pub 1024R/1E08D889 1997-07-23 Satoshi Asami <asami@cs.berkeley.edu> Key fingerprint = EB 3C 68 9E FB 6C EB 3F DB 2E 0F 10 8F CE 79 CA uid Satoshi Asami <asami@FreeBSD.ORG>
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<gavin@FreeBSD.org>
pub 1024D/A093262B 2005-02-18 Key fingerprint = 313A A79F 697D 3A5C 216A EDF5 935D EF44 A093 262B uid Gavin Atkinson <gavin@16squared.co.uk> uid Gavin Atkinson (FreeBSD key) <gavin@FreeBSD.org> uid Gavin Atkinson (Work e-mail) <ga9@york.ac.uk> uid Gavin Atkinson <gavin.atkinson@ury.york.ac.uk> sub 2048g/58F40B3D 2005-02-18
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<jsa@FreeBSD.org>
pub 2048R/21AA7B06 2010-07-14 Key fingerprint = 5B38 63B0 9CCA 12BE 3919 9412 CC9D FC84 21AA 7B06 uid Joseph S. Atkinson <jsa@FreeBSD.org> uid Joseph S. Atkinson <jsa.bsd@gmail.com> uid Joseph S. Atkinson <jsa@wickedmachine.net> sub 2048R/5601C3E3 2010-07-14
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<jadawin@FreeBSD.org>
pub 1024D/C835D40E 2005-04-13 Key fingerprint = D090 8C96 3612 15C9 4E3E 7A4A E498 FC2B C835 D40E uid Philippe Audeoud <jadawin@tuxaco.net> uid Philippe Audeoud <philippe@tuxaco.net> uid Philippe Audeoud <philippe.audeoud@sitadelle.com> uid Philippe Audeoud <jadawin@freebsd.org> sub 2048g/EF8EA329 2005-04-13
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<timur@FreeBSD.org>
pub 1024D/60BA1F47 2002-04-27 Key fingerprint = 84BF EAD1 607D 362F 210E 69B3 0BF0 6412 60BA 1F47 uid Timur I. Bakeyev (BaT) <timur@bat.ru> uid Timur I. Bakeyev <timur@gnu.org> uid Timur I. Bakeyev (BaT) <bat@cpan.org> uid Timur I. Bakeyev (BaT) <timur@FreeBSD.org> uid Timur I. Bakeyev (BaT) <timur@gnome.org> uid Timur I. Bakeyev <timur@gnome.org> sub 2048g/8A5B0042 2002-04-27
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<gjb@FreeBSD.org>
pub 2048R/A0B946A3 2010-08-03 [expires: 2017-04-25] Key fingerprint = 78B3 42BA 26C7 B2AC 681E A7BE 524F 0C37 A0B9 46A3 uid Glen Barber <gjb@FreeBSD.org> uid Glen Barber <glen.j.barber@gmail.com> uid Glen Barber <gjb@glenbarber.us> sub 2048R/6C0527E5 2010-08-03
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<snb@FreeBSD.org>
pub 2048R/DDADB9DC 2010-07-27 Key fingerprint = B678 6ECB 303D F580 A050 098F BDFF 4F3D DDAD B9DC uid S. Nicholas Barkas <snb@freebsd.org> sub 2048R/36E181FB 2010-07-27 sub 2048R/BDA4BED3 2010-07-29 sub 2048R/782A8737 2010-07-29
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<barner@FreeBSD.org>
pub 1024D/EBADA82A 2000-11-10 Key fingerprint = 67D1 3562 9A2F 3177 E46A 35ED 0A49 FEFD EBAD A82A uid Simon Barner <barner@FreeBSD.org> uid Simon Barner <barner@in.tum.de> uid Simon Barner <barner@informatik.tu-muenchen.de> uid Simon Barner <barner@gmx.de> sub 2048g/F63052DE 2000-11-10
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<art@FreeBSD.org>
pub 2048R/9ED4C836 2011-03-28 Key fingerprint = 7400 D541 07ED 3DF3 3E97 F2D5 8BDF 101C 9ED4 C836 uid Artem Belevich <artemb@gmail.com> uid Artem Belevich <art@freebsd.org> sub 2048R/55B0E4EB 2011-03-28
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<tobez@FreeBSD.org>
pub 1024D/7A7BA3C0 2000-05-25 Anton Berezin <tobez@catpipe.net> Key fingerprint = CDD8 560C 174B D8E5 0323 83CE 22CA 584C 7A7B A3C0 uid Anton Berezin <tobez@tobez.org> uid Anton Berezin <tobez@FreeBSD.org> sub 1024g/ADC71E87 2000-05-25
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<damien@FreeBSD.org>
pub 2048R/D129F093 2005-03-02 Key fingerprint = D3AB 28C3 1A4A E219 3145 54FE 220A 7486 D129 F093 uid Damien Bergamini <damien.bergamini@free.fr> uid Damien Bergamini <damien@FreeBSD.org> sub 2048R/9FBA73A4 2005-03-02
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<tdb@FreeBSD.org>
pub 1024D/5AE7D984 2000-10-07 Key fingerprint = 1453 086E 9376 1A50 ECF6 AE05 7DCE D659 5AE7 D984 uid Tim Bishop <tim@bishnet.net> uid Tim Bishop <T.D.Bishop@kent.ac.uk> uid Tim Bishop <tdb@i-scream.org> uid Tim Bishop <tdb@FreeBSD.org> sub 4096g/7F886031 2000-10-07
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<gblach@FreeBSD.org>
pub 2048R/D25B0682 2012-11-03 [expires: 2014-11-03] Key fingerprint = 225B 941C A886 05C6 1C87 9C03 DE72 593D D25B 0682 uid Grzegorz Blach <gblach@FreeBSD.org> sub 2048R/5DE28719 2012-11-03 [expires: 2014-11-03]
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<mbr@FreeBSD.org>
pub 1024D/D300551E 2001-12-20 Martin Blapp <mb@imp.ch> Key fingerprint = B434 53FC C87C FE7B 0A18 B84C 8686 EF22 D300 551E sub 1024g/998281C8 2001-12-20
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<wblock@FreeBSD.org>
pub 2048R/A1F360A3 2011-09-14 Key fingerprint = 3A44 4DEC B304 5191 8A41 C317 5117 4BB6 A1F3 60A3 uid Warren Block <wblock@FreeBSD.org> uid Warren Block <wblock@wonkity.com> sub 2048R/51F483F3 2011-09-14
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<bvs@FreeBSD.org>
pub 1024D/B32017F7 2005-10-02 Vitaly Bogdanov <gad@gad.glazov.net> Key fingerprint = 402E B8E4 53CB 22FF BE62 AE35 A0BF B077 B320 17F7 uid Vitaly Bogdanov <bvs@freebsd.org> sub 1024g/0E88C62E 2005-10-02
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<novel@FreeBSD.org>
pub 2048R/08C2226A 2010-12-03 Key fingerprint = 8BA4 DF2A D14F 99B6 37E0 0070 C96D 5FFE 08C2 226A uid Roman Bogorodskiy <bogorodskiy@gmail.com> uid Roman Bogorodskiy <novel@FreeBSD.org> uid Roman Bogorodskiy <rbogorodskiy@apache.org> uid Roman Bogorodskiy <rbogorodskiy@griddynamics.com> sub 2048R/EC4ED237 2010-12-03
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<garga@FreeBSD.org>
pub 4096R/9F625790 2012-11-28 [expires: 2017-11-27] Key fingerprint = E3DA 9B2A 6160 99CB 4B31 7641 F1F0 E7A1 9F62 5790 uid Renato Botelho (FreeBSD) <garga@FreeBSD.org> uid Renato Botelho (Personal) <rbgarga@gmail.com> uid Renato Botelho (FreeBSD) <garga.bsd@gmail.com> sub 4096R/473CC82A 2012-11-28 [expires: 2017-11-27]
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<alexbl@FreeBSD.org>
pub 1024D/12A95A7B 2006-09-13 Key fingerprint = D0C3 47F8 AE87 C829 0613 3586 24DF F52B 12A9 5A7B uid Alexander Botero-Lowry <alexbl@FreeBSD.org> sub 2048g/CA287923 2006-09-13
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<sbz@FreeBSD.org>
pub 1024D/2487E57E 2011-03-15 [expires: 2016-03-14] Key fingerprint = 05BA DC7E F628 DE3F B241 BFBB 7363 51F4 2487 E57E uid Sofian Brabez <sbrabez@gmail.com> uid Sofian Brabez <sbz@FreeBSD.org> uid Sofian Brabez <sbz@6dev.net>
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<ebrandi@FreeBSD.org>
pub 3072R/FFD3035B 2012-11-26 [expires: 2017-11-25] Key fingerprint = 443B 5363 564F 06C3 EA54 9482 209E 9B54 FFD3 035B uid Edson Brandi <ebrandi@FreeBSD.org> uid Edson Brandi <ebrandi@fugspbr.org> uid Edson Brandi <ebrandi@ebrandi.eti.br> uid Edson Brandi <edson.brandi@gmail.com> uid Edson Brandi <ebrandi@primeirospassos.org> uid Edson Brandi <ebrandi@gmail.com> uid Edson Brandi <ebrandi@fug.com.br> uid Edson Brandi <contato@edsonbrandi.com> uid Edson Brandi (Born 1977-08-14 in S. S. DA GRAMA, SP - Brazil) sub 3072R/A34B8175 2012-11-26 [expires: 2013-11-26] sub 3072R/4EB0E0EA 2012-11-26 [expires: 2013-11-26] sub 3072R/89917E73 2012-11-26 [expires: 2013-11-26]
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<harti@FreeBSD.org>
pub 1024D/5920099F 2003-01-29 Hartmut Brandt <brandt@fokus.fraunhofer.de> Key fingerprint = F60D 09A0 76B7 31EE 794B BB91 082F 291D 5920 099F uid Hartmut Brandt <harti@freebsd.org> sub 1024g/21D30205 2003-01-29
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<obraun@FreeBSD.org>
pub 1024D/EF25B1BA 2001-05-06 Oliver Braun <obraun@unsane.org> Key fingerprint = 6A3B 042A 732E 17E4 B6E7 3EAF C0B1 6B7D EF25 B1BA uid Oliver Braun <obraun@obraun.net> uid Oliver Braun <obraun@freebsd.org> uid Oliver Braun <obraun@haskell.org> sub 1024g/09D28582 2001-05-06
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<makc@FreeBSD.org>
pub 1024D/ACB3CD12 2008-08-18 Key fingerprint = 4BAA 200E 720A 0BD1 7BB0 9DFD FBD9 08C2 ACB3 CD12 uid Max Brazhnikov <makc@FreeBSD.org> uid Max Brazhnikov <makc@issp.ac.ru> sub 1024g/5FAA4088 2008-08-18
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<jmb@FreeBSD.org>
pub 1024R/97E638DD 1996-06-05 Jonathan M. Bresler <jmb@Bresler.org> Key fingerprint = 31 57 41 56 06 C1 40 13 C5 1C E3 E5 DC 62 0E FB uid Jonathan M. Bresler <jmb@FreeBSD.ORG> uid Jonathan M. Bresler uid Jonathan M. Bresler <Jonathan.Bresler@USi.net> uid Jonathan M. Bresler <jmb@Frb.GOV>
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<antoine@FreeBSD.org>
pub 1024D/50CC2671 2008-02-03 Key fingerprint = F3F7 72F0 9C4C 9E56 4BE9 44EA 1B80 31F3 50CC 2671 uid Antoine Brodin <antoine@FreeBSD.org> sub 2048g/6F4AFBE5 2008-02-03
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<db@FreeBSD.org>
pub 2048R/8E9CAA7B 2012-05-16 Key fingerprint = 8B08 E022 705D 0083 64C4 5E60 5148 0C74 8E9C AA7B uid Diane Bruce <db@db.net> uid Diane Bruce <db@FreeBSD.org> sub 2048R/932E5985 2012-05-16
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<brueffer@FreeBSD.org>
pub 1024D/A0ED982D 2002-10-14 Christian Brueffer <chris@unixpages.org> Key fingerprint = A5C8 2099 19FF AACA F41B B29B 6C76 178C A0ED 982D uid Christian Brueffer <brueffer@hitnet.rwth-aachen.de> uid Christian Brueffer <brueffer@FreeBSD.org> sub 4096g/1DCC100F 2002-10-14
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<markus@FreeBSD.org>
pub 1024D/78F8A8D4 2002-10-21 Key fingerprint = 3F9B EBE8 F290 E5CC 1447 8760 D48D 1072 78F8 A8D4 uid Markus Brueffer <markus@brueffer.de> uid Markus Brueffer <buff@hitnet.rwth-aachen.de> uid Markus Brueffer <mbrueffer@mi.rwth-aachen.de> uid Markus Brueffer <markus@FreeBSD.org> sub 4096g/B7E5C7B6 2002-10-21
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<sbruno@FreeBSD.org>
pub 2048R/08E81687 2012-10-15 Key fingerprint = B9F9 138F 349C D3B2 2AA4 1398 1909 45DC 08E8 1687 uid Sean Bruno (clusteradm and developer key) <sbruno@freebsd.org> sub 2048R/BCC23981 2012-10-15
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<oleg@FreeBSD.org>
pub 1024D/78CE105F 2004-02-06 Key fingerprint = 98CC 3E66 26DE 50A8 DBC4 EB27 AF22 DCEF 78CE 105F uid Oleg Bulyzhin <oleg@FreeBSD.org> uid Oleg Bulyzhin <oleg@rinet.ru> sub 1024g/F747C159 2004-02-06
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<bushman@FreeBSD.org>
pub 1024D/F694C6E4 2007-03-11 [expires: 2008-03-10] Key fingerprint = 4278 4392 BF6B 2864 C48E 0FA9 7216 C73C F694 C6E4 uid Michael Bushkov <bushman@rsu.ru> uid Michael Bushkov <bushman@freebsd.org> sub 2048g/5A783997 2007-03-11 [expires: 2008-03-10]
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<jchandra@FreeBSD.org>
pub 1024D/3316E465 2010-05-19 Key fingerprint = 320B DB08 4FE3 BCFD 60AF E4DB F486 015F 3316 E465 uid Jayachandran C. <jchandra@freebsd.org> sub 2048g/1F7755F9 2010-05-19
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<jcamou@FreeBSD.org>
pub 1024D/C2161947 2005-03-01 Key fingerprint = 274C B265 48EC 42AE A2CA 47D9 7D98 588A C216 1947 uid Jesus R. Camou <jcamou@FreeBSD.org> sub 2048g/F8D2A8DF 2005-03-01
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<acm@FreeBSD.org>
pub 1024D/9B21BC19 2006-07-18 Key fingerprint = 4156 2EAC A11C 9651 713B 3FC1 195F D4A8 9B21 BC19 uid Jose Alonso Cardenas Marquez <acm@FreeBSD.org> sub 2048g/ADA16C52 2006-07-18
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<gahr@FreeBSD.org>
pub 1024D/9571F78E 2006-05-17 Key fingerprint = 1203 92B5 3919 AF84 9B97 28D6 C0C2 6A98 9571 F78E uid Pietro Cerutti <gahr@gahr.ch> uid Pietro Cerutti (The FreeBSD Project) <gahr@FreeBSD.org> sub 2048g/F24227D5 2006-05-17 [expires: 2011-05-16]
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<dchagin@FreeBSD.org>
pub 1024D/738EFCED 2009-02-27 Key fingerprint = 3F3F 8B87 CE09 9E10 3606 6ACA D2DD 936F 738E FCED uid Dmitry Chagin <dchagin@freebsd.org> uid Dmitry Chagin (dchagin key) <chagin.dmitry@gmail.com> sub 2048g/6A3FDFF9 2009-02-27
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<perky@FreeBSD.org>
pub 1024D/CFDB4BA4 1999-04-23 Hye-Shik Chang <perky@FreeBSD.org> Key fingerprint = 09D9 57D6 58BA 44DD CAEC 71CD 0D65 2C59 CFDB 4BA4 uid Hye-Shik Chang <hyeshik@gmail.com> sub 1024g/A94A8ED1 1999-04-23
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<jon@FreeBSD.org>
pub 1024D/2539468B 1999-10-11 Jonathan Chen <jon@spock.org> Key fingerprint = EE31 CDA1 A105 C8C9 5365 3DB5 C2FC 86AA 2539 468B uid Jonathan Chen <jon@freebsd.org> uid Jonathan Chen <chenj@rpi.edu> uid Jonathan Chen <spock@acm.rpi.edu> uid Jonathan Chen <jon@cs.rpi.edu> sub 3072g/B81EF1DB 1999-10-11
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<jonathan@FreeBSD.org>
pub 1024D/E3BBCA48 2006-06-17 Key fingerprint = D7C6 9096 874F 707E 48F8 FAB7 22A6 6E53 E3BB CA48 uid Jonathan Anderson <jonathan@FreeBSD.org> uid Jonathan Anderson <jonathan.anderson@ieee.org> uid Jonathan Anderson <anderson@engr.mun.ca> uid Jonathan Anderson <jonathan.anderson@mun.ca> sub 2048g/A703650D 2006-06-17
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<loader@FreeBSD.org>
pub 4096R/6BD4DDE6 2012-10-26 Key fingerprint = A33E 88AB D358 DA49 59A6 B263 A9A2 599C 6BD4 DDE6 uid loader <loader@FreeBSD.org> uid loader <loader@FreeBSDMall.com> sub 4096R/1036D26C 2012-10-26
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<luoqi@FreeBSD.org>
pub 1024D/2926F3BE 2002-02-22 Luoqi Chen <luoqi@FreeBSD.org> Key fingerprint = B470 A815 5917 D9F4 37F3 CE2A 4D75 3BD1 2926 F3BE uid Luoqi Chen <luoqi@bricore.com> uid Luoqi Chen <lchen@onetta.com> sub 1024g/5446EB72 2002-02-22
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<ache@FreeBSD.org>
pub 1024D/964474DD 2006-12-26 Key fingerprint = 0F63 1B61 D76D AA23 1591 EA09 560E 582B 9644 74DD uid Andrey Chernov <ache@freebsd.org> uid [jpeg image of size 4092] sub 2048g/08331894 2006-12-26
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<melifaro@FreeBSD.org>
pub 1024D/2675AB69 2008-02-17 Key fingerprint = 00D2 E063 2FB0 2990 C602 50FD C1C2 7889 2675 AB69 uid Alexander V. Chernikov <melifaro@yandex-team.ru> uid Alexander V. Chernikov <melifaro@ipfw.ru> uid Alexander V. Chernikov <melifaro@freebsd.org> sub 4096g/BC64F40C 2008-02-17
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<seanc@FreeBSD.org>
pub 1024D/EE278A28 2004-02-08 Sean Chittenden <sean@chittenden.org> Key fingerprint = E41F F441 7E91 6CBA 1844 65CF B939 3C78 EE27 8A28 sub 2048g/55321853 2004-02-08
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<cjh@FreeBSD.org>
pub 1024D/E60260F5 2002-10-14 CHOI Junho (Work) <cjh@wdb.co.kr> Key fingerprint = 1369 7374 A45F F41A F3C0 07E3 4A01 C020 E602 60F5 uid CHOI Junho (Personal) <cjh@kr.FreeBSD.org> uid CHOI Junho (FreeBSD) <cjh@FreeBSD.org> sub 1024g/04A4FDD8 2002-10-14
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<cjc@FreeBSD.org>
pub 1024D/FE886AD3 2002-01-25 Crist J. Clark <cjclark@jhu.edu> Key fingerprint = F04E CCD7 3834 72C2 707F 0A8F 259F 8F4B FE88 6AD3 uid Crist J. Clark <cjclark@alum.mit.edu> uid Crist J. Clark <cjc@freebsd.org> sub 1024g/9B6BAB99 2002-01-25
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<marcus@FreeBSD.org>
pub 1024D/FE14CF87 2002-03-04 Joe Marcus Clarke (FreeBSD committer address) <marcus@FreeBSD.org> Key fingerprint = CC89 6407 73CC 0286 28E4 AFB9 6F68 8F8A FE14 CF87 uid Joe Marcus Clarke <marcus@marcuscom.com> sub 1024g/B9ACE4D2 2002-03-04
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<nik@FreeBSD.org>
pub 1024D/2C37E375 2000-11-09 Nik Clayton <nik@freebsd.org> Key fingerprint = 15B8 3FFC DDB4 34B0 AA5F 94B7 93A8 0764 2C37 E375 uid Nik Clayton <nik@slashdot.org> uid Nik Clayton <nik@crf-consulting.co.uk> uid Nik Clayton <nik@ngo.org.uk> uid Nik Clayton <nik@bsdi.com> sub 1024g/769E298A 2000-11-09
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<benjsc@FreeBSD.org>
pub 1024D/4842B5B4 2002-04-10 Key fingerprint = F00D C83D 5F7E 5561 DF91 B74D E602 CAA3 4842 B5B4 uid Benjamin Simon Close <Benjamin.Close@clearchain.com> uid Benjamin Simon Close <benjsc@FreeBSD.org> uid Benjamin Simon Close <benjsc@clearchain.com> sub 2048g/3FA8A57E 2002-04-10
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<tijl@FreeBSD.org>
pub 2048D/20A0B62B 2010-07-13 Key fingerprint = 39AA F580 6B44 5161 9F86 ED49 7E80 92D8 20A0 B62B uid Tijl Coosemans <tijl@coosemans.org> uid Tijl Coosemans <tijl@freebsd.org> sub 2048g/7D71BA74 2010-07-13
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<rakuco@FreeBSD.org>
pub 4096R/18DCEED6 2011-10-03 Key fingerprint = 6911 54FE BA6E 6106 5789 7099 8DD0 7D21 18DC EED6 uid Raphael Kubo da Costa (Personal key) <rakuco@FreeBSD.org>
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<brucec@FreeBSD.org>
pub 2048R/6AF6F99E 2010-01-29 Key fingerprint = 9A3C AE57 2706 B0E3 4B8A 8374 5787 A72B 6AF6 F99E uid Bruce Cran <brucec@FreeBSD.org> uid Bruce Cran <bruce@cran.org.uk> sub 2048R/1D665CEE 2010-01-29
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<culot@FreeBSD.org>
pub 1024D/34876C5B 2006-08-26 Key fingerprint = 50EE CE94 E43E BA85 CB67 262B B739 1A26 3487 6C5B uid Frederic Culot <culot@FreeBSD.org> uid Frederic Culot <frederic@culot.org> sub 2048g/F1EF901F 2006-08-26
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<aaron@FreeBSD.org>
pub 1024D/8811D2A4 2006-06-21 [expires: 2011-06-20] Key fingerprint = 8DE0 3CBB 3692 992F 53EF ACC7 BE56 0A4D 8811 D2A4 uid Aaron Dalton <aaron@freebsd.org> sub 2048g/304EE8E5 2006-06-21 [expires: 2011-06-20]
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<bapt@FreeBSD.org>
pub 1024D/49A4E84C 2008-11-19 Key fingerprint = A14B A5FC B860 86DE 73E2 B24C F244 ED31 49A4 E84C uid Baptiste Daroussin <bapt@etoilebsd.net> uid Baptiste Daroussin <baptiste.daroussin@gmail.com> uid Baptiste Daroussin <bapt@FreeBSD.org> sub 2048g/54AB46B4 2008-11-19
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<ceri@FreeBSD.org>
pub 1024D/34B7245F 2002-03-08 Key fingerprint = 9C88 EB05 A908 1058 A4AE 9959 A1C7 DCC1 34B7 245F uid Ceri Davies <ceri@submonkey.net> uid Ceri Davies <ceri@FreeBSD.org> uid Ceri Davies <ceri@opensolaris.org> sub 1024g/0C482CBC 2002-03-08
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<brd@FreeBSD.org>
pub 1024D/ED0A754D 2005-05-14 [expires: 2014-02-21] Key fingerprint = 5DFD D1A6 BEEE A6D4 B3F5 4236 D362 3291 ED0A 754D uid Brad Davis <so14k@so14k.com> uid Brad Davis <brd@FreeBSD.org> sub 2048g/1F29D404 2005-05-14 [expires: 2014-02-21]
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<pjd@FreeBSD.org>
pub 1024D/B1293F34 2004-02-02 Pawel Jakub Dawidek <Pawel@Dawidek.net> Key fingerprint = A3A3 5B4D 9CF9 2312 0783 1B1D 168A EF5D B129 3F34 uid Pawel Jakub Dawidek <pjd@FreeBSD.org> uid Pawel Jakub Dawidek <pjd@FreeBSD.pl> sub 2048g/3EEC50A7 2004-02-02 [expires: 2006-02-01]
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<bsd@FreeBSD.org>
pub 1024D/723BDEE9 2002-01-23 Brian S. Dean <bsd@FreeBSD.org> Key fingerprint = EF49 7ABE 47ED 91B3 FC3D 7EA5 4D90 2FF7 723B DEE9 sub 1024g/4B02F876 2002-01-23
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<carl@FreeBSD.org>
pub 4096R/FB3B5D38 2013-01-15 Key fingerprint = F0E5 3849 C6C3 668B 68A3 BCC7 6031 E963 FB3B 5D38 uid Carl Delsey <carl@FreeBSD.org> sub 4096R/256F29D3 2013-01-15
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<vd@FreeBSD.org>
pub 1024D/F6C1A420 2004-12-08 Key fingerprint = B1D5 04C6 26CC 0D20 9525 14B8 170E 923F F6C1 A420 uid Vasil Dimov <vd@FreeBSD.org> uid Vasil Dimov <vd@datamax.bg> sub 4096g/A0148C94 2004-12-08
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<rdivacky@FreeBSD.org>
pub 1024D/3DC2044C 2006-11-15 Key fingerprint = 6B61 25CA 49BC AAC5 21A9 FA7A 2D51 23E8 3DC2 044C uid Roman Divacky <rdivacky@freebsd.org> sub 2048g/39BDCE16 2006-11-15
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<danfe@FreeBSD.org>
pub 1024D/3C060B44 2004-08-23 Alexey Dokuchaev <danfe@FreeBSD.org> Key fingerprint = D970 08A4 922C 8D63 0C19 8D27 F421 76EE 3C06 0B44 sub 1024g/70BAE967 2004-08-23
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<dd@FreeBSD.org>
pub 1024D/69FAE582 2001-09-04 Key fingerprint = B340 8338 7DA3 4D61 7632 098E 0730 055B 69FA E582 uid Dima Dorfman <dima@trit.org> uid Dima Dorfman <dima@unixfreak.org> uid Dima Dorfman <dd@freebsd.org> sub 2048g/65AF3B89 2003-08-19 [expires: 2005-08-18] sub 2048g/8DB0CF2C 2005-05-29 [expires: 2007-05-29]
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<bdrewery@FreeBSD.org>
pub 4096R/3C9B0CF9 2012-04-06 [expires: 2017-04-05] Key fingerprint = 36FE BE99 2F52 80DF 4811 362A 6E78 2AC0 3C9B 0CF9 uid Bryan Drewery <bryan@shatow.net> uid Bryan Drewery <bdrewery@gmail.com> uid Bryan Drewery <bryan@xzibition.com> uid Bryan Drewery <bdrewery@FreeBSD.org> sub 4096R/9E2CE2D3 2012-04-06 [expires: 2017-04-05]
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<olivierd@FreeBSD.org>
pub 2048R/22431859 2012-05-28 [expires: 2017-05-27] Key fingerprint = C057 112A 4A27 B5F2 CD8F 6C9A FC5A 0167 2243 1859 uid Olivier Duchateau <duchateau.olivier@gmail.com> sub 2048R/63A85BDF 2012-05-28 [expires: 2017-05-27]
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<bruno@FreeBSD.org>
pub 1024D/7F463187 2000-12-29 Key fingerprint = 7B79 E1D6 F5A1 6614 792F D906 899B 4D28 7F46 3187 uid Ducrot Bruno (Poup Master) <ducrot@poupinou.org> sub 1024g/40282874 2000-12-29
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<ale@FreeBSD.org>
pub 1024D/CE5F554D 1999-06-27 Alex Dupre <sysadmin@alexdupre.com> Key fingerprint = DE23 02EA 5927 D5A9 D793 2BA2 8115 E9D8 CE5F 554D uid Alex Dupre <ale@FreeBSD.org> uid [jpeg image of size 5544] uid Alex Dupre <ICQ:5431856> sub 2048g/FD5E2D21 1999-06-27
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<peadar@FreeBSD.org>
pub 1024D/D80B4B3F 2004-03-01 Peter Edwards <peadar@FreeBSD.org> Key fingerprint = 7A8A 9756 903E BEF2 4D9E 3C94 EE52 52F7 D80B 4B3F uid Peter Edwards <pmedwards@eircom.net>
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEBDlWwRBACjdnvu/rCOVEjpYmlmQmmmYZ0hbUdustNozm8dtKpg2w+zED3z 9kHcoXEY2i1jxmJrHd4PPcvMutJB5AuYU4NiBmdMgBgfZvW7yaD+tHfvgozNyEKa 3Gcddamy/ENCFKoSTEuCDxH77zf6DXh/B/Ekjav0sZnGHPqFhUdKzwh21wCg57uM Z3aL0+sIhiNYEJK93yjXt0sD/2F6+T7dj7wjdCPsb3mh5YSTjGeSXjnXHfeFQmmA /dPyOkWOAuTo2uR3AeVRrJ6rslKLqyl773HX+eM5b52gIsFZ+CzSEiHSrHEqOR/o 3jzzGWhZb3Q/dbeWsPrtw32XUOdiijH5h2PyfKQ6reu+lpH8oKTbvOoycguHnsiN 8zt/BACCRoxdjw3f5L4RMfbdxN8/9GLcDzjv27s4Jn17snXuOyNzWxky+hNW5InM wG92m9/a4XtZX6viK4sY8kfFLvAx95vaRiPJOPdUIx6Hk34HHsXdQ6XbUaadlBuG Mxr+aT2o01qzxi+dS8+SWXjCBwT5mRVdOZq7RFYd73I+FrzltLQkUGV0ZXIgRWR3 YXJkcyA8cG1lZHdhcmRzQGVpcmNvbS5uZXQ+iF4EExECAB4FAkBEXVYCGwMGCwkI BwMCAxUCAwMWAgECHgECF4AACgkQ7lJS99gLSz9lewCgtKJX8EySD4x42LoZ8imS gYzQ2AMAnjAlfeFF6q4Lqiv6ikUW7uSGu2WitCJQZXRlciBFZHdhcmRzIDxwZWFk YXJARnJlZUJTRC5vcmc+iGEEExECACECGwMGCwkIBwMCAxUCAwMWAgECHgECF4AF AkBEXiQCGQEACgkQ7lJS99gLSz/1ugCgwj+RyWcUk2WtWZlox7rmTG9ymDsAoJ+r ckrEYUJfPdH0GKonpipJQwL6 =73v6 -----END PGP PUBLIC KEY BLOCK-----
<deischen@FreeBSD.org>
pub 4096R/7D15560B 2012-11-17 Key fingerprint = 0039 2133 69CA 14D3 236A E331 361A 68B2 7D15 560B uid Daniel Eischen <deischen@FreeBSD.org> sub 4096R/A51F81F7 2012-11-17
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<josef@FreeBSD.org>
pub 2048R/A79DB53C 2004-01-04 Josef El-Rayes <josef@FreeBSD.org> Key fingerprint = 58EB F5B7 2AB9 37FE 33C8 716B 59C5 22D9 A79D B53C uid Josef El-Rayes <josef@daemon.li>
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<lme@FreeBSD.org>
pub 1024D/C0F769F8 2004-08-27 Key fingerprint = 17FC 08E1 5E09 BD21 489E 2050 29CE 75DA C0F7 69F8 uid Lars Engels <lars.engels@0x20.net> sub 1024g/8AD5BF9D 2004-08-27
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<ue@FreeBSD.org>
pub 1024R/E74FA871 1994-07-19 Udo Erdelhoff <uer@de.uu.net> Key fingerprint = 8C B1 80 CA 2C 52 73 81 FB A7 B4 03 C5 32 C8 67 uid Udo Erdelhoff <ue@nathan.ruhr.de> uid Udo Erdelhoff <ue@freebsd.org> uid Udo Erdelhoff <uerdelho@eu.uu.net> uid Udo Erdelhoff <uerdelho@uu.net>
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<ru@FreeBSD.org>
pub 1024D/996E145E 2004-06-02 Ruslan Ermilov (FreeBSD) <ru@FreeBSD.org> Key fingerprint = 274E D201 71ED 11F6 9CCB 0194 A917 E9CC 996E 145E uid Ruslan Ermilov (FreeBSD Ukraine) <ru@FreeBSD.org.ua> uid Ruslan Ermilov (IPNet) <ru@ip.net.ua> sub 1024g/557E3390 2004-06-02 [expires: 2007-06-02]
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<le@FreeBSD.org>
pub 1024D/F10D06CB 2000-11-23 Lukas Ertl <le@FreeBSD.org> Key fingerprint = 20CD C5B3 3A1D 974E 065A B524 5588 79A9 F10D 06CB uid Lukas Ertl <a9404849@unet.univie.ac.at> uid Lukas Ertl <l.ertl@univie.ac.at> uid Lukas Ertl <le@univie.ac.at> sub 1024g/5960CE8E 2000-11-23
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<bf@FreeBSD.org>
pub 2048R/9806EBC1 2010-06-08 [expires: 2012-06-07] Key fingerprint = 2075 ADD3 7634 A4F9 5357 D934 08E7 06D9 9806 EBC1 uid b. f. <bf@freebsd.org> sub 2048R/1CD0AD79 2010-06-08 [expires: 2012-06-07]
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<madpilot@FreeBSD.org>
pub 2048R/56CBD293 2012-04-12 Key fingerprint = F317 2057 E17E 4E3A 3DA5 9E1D 1AE6 860E 56CB D293 uid Guido Falsi <madpilot@FreeBSD.org> uid Guido Falsi <mad@madpilot.net> sub 2048R/1F9772C5 2012-04-12
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<rafan@FreeBSD.org>
pub 1024D/86FD8C68 2004-06-04 Key fingerprint = DC9E 5B4D 2DDA D5C7 B6F8 6E69 D78E 1091 86FD 8C68 uid Rong-En Fan <rafan@infor.org> uid Rong-En Fan <rafan@csie.org> uid Rong-En Fan <rafan@FreeBSD.org> sub 2048g/42A8637E 2009-01-25 [expires: 2012-07-08]
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<stefanf@FreeBSD.org>
pub 1024D/8BEFD15F 2004-03-14 Stefan Farfeleder <stefan@fafoe.narf.at> Key fingerprint = 4220 FE60 A4A1 A490 5213 27A6 319F 8B28 8BEF D15F uid Stefan Farfeleder <stefanf@complang.tuwien.ac.at> uid Stefan Farfeleder <stefanf@FreeBSD.org> uid Stefan Farfeleder <stefanf@ten15.org> sub 2048g/418753E9 2004-03-14 [expires: 2007-03-14]
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<farrokhi@FreeBSD.org>
pub 1024D/7C810476 2005-12-22 Key fingerprint = AABD 388F A207 58B4 2EE3 5DFD 4FC1 32C3 7C81 0476 uid Babak Farrokhi <farrokhi@FreeBSD.org> uid Babak Farrokhi <babak@farrokhi.net> sub 2048g/2A5F93C7 2005-12-22
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<jedgar@FreeBSD.org>
pub 1024D/FE817A50 2000-12-20 Chris D. Faulhaber <jedgar@FreeBSD.org> Key fingerprint = A47D A838 9216 F921 A456 54FF 39B6 86E0 FE81 7A50 uid Chris D. Faulhaber <jedgar@fxp.org> sub 2048g/93452698 2000-12-20
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<green@FreeBSD.org>
pub 1024D/41C13DE3 2000-01-11 Brian Fundakowski Feldman <green@FreeBSD.org> Key fingerprint = 6A32 733A 1BF6 E07B 5B8D AE14 CC9D DCA2 41C1 3DE3 sub 1024g/A98B9FCC 2000-01-11 [expires: 2001-01-10] pub 1024D/773905D6 2000-09-02 Brian Fundakowski Feldman <green@FreeBSD.org> Key fingerprint = FE23 7481 91EA 5E58 45EA 6A01 B552 B043 7739 05D6 sub 2048g/D2009B98 2000-09-02
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<lioux@FreeBSD.org>
pub 1024D/75A63712 2006-02-23 [expires: 2007-02-23] Key fingerprint = 42F2 2F74 8EF9 5296 898F C981 E9CF 463B 75A6 3712 uid Mario Sergio Fujikawa Ferreira (lioux) <lioux@FreeBSD.org> uid Mario Sergio Fujikawa Ferreira <lioux@uol.com.br> sub 4096g/BB7D80F2 2006-02-23 [expires: 2007-02-23]
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<mdf@FreeBSD.org>
pub 2048R/A783DAA2 2012-11-22 [expires: 2016-11-22] Key fingerprint = 773F E069 BE98 CE96 4AC6 B8AB 1A1B 255E A783 DAA2 uid Matthew D Fleming <mdf356@gmail.com> uid Matthew D Fleming <mdf@FreeBSD.org> sub 2048R/4015B7AA 2012-11-22 [expires: 2016-11-22]
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<fanf@FreeBSD.org>
pub 1024D/84C71B6E 2002-05-03 Tony Finch <dot@dotat.at> Key fingerprint = 199C F25B 2679 6D04 63C5 2159 FFC0 F14C 84C7 1B6E uid Tony Finch <fanf@FreeBSD.org> uid Tony Finch <fanf@apache.org> uid Tony Finch <fanf2@cam.ac.uk> sub 2048g/FD101E8B 2002-05-03
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<blackend@FreeBSD.org>
pub 1024D/4F8E74E8 2004-12-25 Marc Fonvieille <blackend@FreeBSD.org> Key fingerprint = 55D3 4883 4A04 828A A139 A5CF CD0F 51C0 4F8E 74E8 uid Marc Fonvieille <marc@blackend.org> uid Marc Fonvieille <marc@freebsd-fr.org> sub 1024g/37AD4E7D 2004-12-25
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<petef@FreeBSD.org>
pub 1024D/74B91CFD 2001-01-30 Pete Fritchman <petef@FreeBSD.org> Key fingerprint = 9A9F 8A13 DB0D 7777 8D8E 1CB2 C5C9 A08F 74B9 1CFD uid Pete Fritchman <petef@databits.net> uid Pete Fritchman <petef@csh.rit.edu> sub 1024g/0C02AF0C 2001-01-30
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<decke@FreeBSD.org>
pub 1024D/CF5840D4 2008-01-07 [expires: 2015-05-05] Key fingerprint = 47F6 BDF1 DF9E 81E2 2C54 8A06 E796 7A5A CF58 40D4 uid Bernhard Fr鐬lich <decke@FreeBSD.org> uid Bernhard Fr鐬lich <decke@bluelife.at> sub 2048g/4E51CE79 2008-01-07
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<billf@FreeBSD.org>
pub 1024D/7F868268 2000-12-07 Bill Fumerola (FreeBSD Developer) <billf@FreeBSD.org> Key fingerprint = 5B2D 908E 4C2B F253 DAEB FC01 8436 B70B 7F86 8268 uid Bill Fumerola (Security Yahoo) <fumerola@yahoo-inc.com> sub 1024g/43980DA9 2000-12-07
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<avg@FreeBSD.org>
pub 2048R/A651FE2F 2009-02-16 Key fingerprint = F234 4D58 DEFF 5E3A 4E0F 13BC 74A5 2D27 A651 FE2F uid Andriy Gapon (FreeBSD) <avg@FreeBSD.org> uid Andriy Gapon (FreeBSD) <avg@freebsd.org> uid Andriy Gapon (FreeBSD) <avg@icyb.net.ua> sub 4096R/F9A4D312 2009-02-16
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<beat@FreeBSD.org>
pub 1024D/774249DB 2009-01-28 [expires: 2014-01-27] Key fingerprint = C410 3187 5B29 DD02 745F 0890 40C5 BCF7 7742 49DB uid Beat Gaetzi <beat@FreeBSD.org> sub 2048g/173CFFCA 2009-01-28 [expires: 2014-01-27]
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<danger@FreeBSD.org>
pub 1024D/DA913352 2007-08-30 [expires: 2008-08-29] Key fingerprint = 7372 3F15 F839 AFF5 4052 CAC7 1ADA C204 DA91 3352 uid Daniel Gerzo <gerzo@rulez.sk> uid Daniel Gerzo <danger@rulez.sk> uid Daniel Gerzo (The FreeBSD Project) <danger@FreeBSD.org> uid Daniel Gerzo (Micronet, a.s.) <gerzo@micronet.sk> sub 2048g/C5D57BDC 2007-08-30 [expires: 2008-08-29]
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<sjg@FreeBSD.org>
pub 1024D/B6CC76BF 2002-06-12 Key fingerprint = F3BA D6CB E1F8 02EA 705F BCAD 6125 F840 B6CC 76BF uid Simon J. Gerraty <sjg@crufty.net> uid Simon J. Gerraty <sjg@juniper.net> uid Simon J. Gerraty <sjg@NetBSD.org> uid Simon J. Gerraty <sjg@FreeBSD.org> sub 1024g/D94B72B9 2002-06-12
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<gibbs@FreeBSD.org>
pub 2048R/45A4FC2F 2012-02-10 Key fingerprint = B98A C3AB 412B 094B D6FE E713 FA5A 1E30 45A4 FC2F uid Justin T. Gibbs <gibbs@FreeBSD.org> uid Justin T. Gibbs <gibbs@FreeBSDFoundation.org> uid Justin T. Gibbs <gibbs@scsiguy.com> sub 2048R/AF6927F8 2012-02-10
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<pfg@FreeBSD.org>
pub 2048D/422BDFE4 2011-12-06 Key fingerprint = A12B 7C6B 54C0 921B C64F 7B35 58DF 6813 422B DFE4 uid Pedro Giffuni (FreeBSD key signature) <pfg@FreeBSD.org> sub 2048g/43A91DE0 2011-12-06
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<pgollucci@FreeBSD.org>
pub 1024D/DB9B8C1C 2008-04-15 Key fingerprint = B90B FBC3 A3A1 C71A 8E70 3F8C 75B8 8FFB DB9B 8C1C uid Philip M. Gollucci (FreeBSD Foundation) <pgollucci@freebsd.org> uid Philip M. Gollucci (Riderway Inc.) <pgollucci@riderway.com> uid Philip M. Gollucci <pgollucci@p6m7g8.com> uid Philip M. Gollucci (ASF) <pgollucci@apache.org> sub 2048g/73943732 2008-04-15
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<daichi@FreeBSD.org>
pub 1024D/09EBADD6 2002-09-25 Daichi GOTO <daichi@freebsd.org> Key fingerprint = 620A 9A34 57FB 5E93 0828 28C7 C360 C6ED 09EB ADD6 sub 1024g/F0B1F1CA 2002-09-25
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<mnag@FreeBSD.org>
pub 1024D/CDCC273F 2005-09-15 [expires: 2010-09-14] Key fingerprint = 57F9 DEC1 5BBF 06DE 44A5 9A4A 8BEE 5F3A CDCC 273F uid Marcus Alves Grando <marcus@sbh.eng.br> uid Marcus Alves Grando <marcus@corp.grupos.com.br> uid Marcus Alves Grando <mnag@FreeBSD.org> sub 2048g/698AC00C 2005-09-15 [expires: 2010-09-14]
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<grehan@FreeBSD.org>
pub 1024D/EA45EA7D 2004-07-13 Peter Grehan <grehan@freebsd.org> Key fingerprint = 84AD 73DC 370E 15CA 7556 43C8 F5C8 4450 EA45 EA7D sub 2048g/0E122D70 2004-07-13
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<jamie@FreeBSD.org>
pub 1024D/8832CB7F 2009-01-29 Key fingerprint = 34F8 1E62 C7A5 7CB9 A91F 7864 8C5A F85E 8832 CB7F uid James Gritton <jamie@FreeBSD.org> sub 2048g/94E3594D 2009-01-29
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<bar@FreeBSD.org>
pub 2048R/3DF5F750 2012-11-13 Key fingerprint = D367 F6C8 2A5F 2921 70D2 B446 27DD 6FD6 3DF5 F750 uid Barbara Guida <bar@FreeBSD.org> uid Barbara Guida <barbara.freebsd@gmail.com> sub 2048R/1DF7506C 2012-11-13
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<jmg@FreeBSD.org>
pub 1024D/6D3FA396 2011-03-03 [expires: 2016-03-01] Key fingerprint = 54BA 873B 6515 3F10 9E88 9322 9CB1 8F74 6D3F A396 uid John-Mark Gurney <jmg@FreeBSD.org> uid John-Mark Gurney <jmg@funkthat.com> sub 4096g/0A4C095E 2011-03-03 [expires: 2016-03-01]
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<mjg@FreeBSD.org>
pub 2048R/21489259 2012-06-03 Key fingerprint = 3A9F 25FF ABF6 BB23 5C70 C61B 96D3 5178 2148 9259 uid Mateusz Guzik <mjg@freebsd.org> sub 2048R/EA19FE8D 2012-06-03
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<jhale@FreeBSD.org>
pub 3072D/8F2E5907 2012-09-07 Key fingerprint = 009C 54BF 32D0 F373 8126 C8A1 D8DD 2CA4 8F2E 5907 uid Jason E. Hale <jhale@FreeBSD.org> uid Jason E. Hale <bsdkaffee@gmail.com> sub 4096g/7081A001 2012-09-07
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<dannyboy@FreeBSD.org>
pub 1024D/84D0D7E7 2001-01-15 Daniel Harris <dannyboy@worksforfood.com> Key fingerprint = 3C61 B8A1 3F09 D194 3259 7173 6C63 DA04 84D0 D7E7 uid Daniel Harris <dannyboy@freebsd.org> uid Daniel Harris <dh@askdh.com> uid Daniel Harris <dh@wordassault.com> sub 1024g/9DF0231A 2001-01-15
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<dhartmei@FreeBSD.org>
pub 1024R/6A3A7409 1994-08-15 Daniel Hartmeier <dhartmei@freebsd.org> Key fingerprint = 13 7E 9A F3 36 82 09 FE FD 57 B8 5C 2B 81 7E 1F
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<ohauer@FreeBSD.org>
pub 2048R/5D008F1A 2010-07-26 Key fingerprint = E9EE C9A5 EB4C BD29 74D7 9178 E56E 06B3 5D00 8F1A uid olli hauer <ohauer@FreeBSD.org> uid olli hauer <ohauer@gmx.de> sub 2048R/5E25776E 2010-07-26
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<ehaupt@FreeBSD.org>
pub 3072D/329A273C 2012-11-17 [expires: 2013-11-17] Key fingerprint = 920C A49A 5A23 F9E3 4EB0 4387 AB90 5C56 329A 273C uid Emanuel Haupt <ehaupt@FreeBSD.org> sub 3072g/70183B96 2012-11-17 [expires: 2013-11-17]
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<jhay@FreeBSD.org>
pub 2048R/A9275B93 2000-05-10 John Hay <jhay@icomtek.csir.co.za> Key fingerprint = E7 95 F4 B9 D4 A7 49 6A 83 B9 77 49 28 9E 37 70 uid John Hay <jhay@mikom.csir.co.za> uid Thawte Freemail Member <jhay@mikom.csir.co.za> uid John Hay <jhay@csir.co.za> uid John Hay <jhay@FreeBSD.ORG>
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<sheldonh@FreeBSD.org>
pub 1024D/74A06ACD 2002-06-20 Sheldon Hearn <sheldonh@starjuice.net> Key fingerprint = 01A3 EF91 9C5A 3633 4E01 8085 A462 57F1 74A0 6ACD sub 1536g/C42F8AC8 2002-06-20
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<mikeh@FreeBSD.org>
pub 1024D/CDECBF99 2001-02-02 Michael Heffner <mheffner@novacoxmail.com> Key fingerprint = AFAB CCEB 68C7 573F 5110 9285 1689 1942 CDEC BF99 uid Michael Heffner <mheffner@vt.edu> uid Michael Heffner <mikeh@FreeBSD.org> uid Michael Heffner <spock@techfour.net> uid Michael Heffner (ACM sysadmin) <mheffner@acm.vt.edu> sub 1024g/3FE83FB5 2001-02-02
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQGiBDp6LpYRBACHINF1K2lJiWCFAgY36X+NFDvgbRe9U7BKy2Q8ZPouMOi/GIwW iocDyVwRnK8tC3D1BM3THs3cFW0aPsSOTGngZE8rTs8lm53UWi1UApTUztjH3odp OynMb/Dj3k8SOWkq5mYYzl+38jsz067tRDlij4s4I3EjwcBQJOhnUUWV0wCgpDBc wAx9TBVCSY9H5YLtCrJbnOED/iwQH58xpFLxQO1FDYlUCZgZaASm0luft13HuCrM Zj2oDgJZOcuP2AshoJXnKavDjwBIvgf/p6cPZ9CS0sF8WI+v/LHN/EUQQoXXNzD5 ZujgMh1w35nMvl7fSJRDaie9HggnUx+ODtWimmROpiicDXb849asCrUUEcpU0V3G wYaxA/96OWzf/TCr6CZABFBCLq2VwX3Run3ttBiXOVI69gEDj95mfeDUxPQH4JNt /hI1B61Ab3/yDWmjzrW7Kb2i9URK4OKw/95YjoC2g0t/CFrmFi82UwMsmUp4mIqJ eUrQ202IY2zCqCEtHcTbUdXrP1eFkGmi77s+KzzzknO63+efXbQhTWljaGFlbCBI ZWZmbmVyIDxtaGVmZm5lckB2dC5lZHU+iFcEExECABcFAjp6LpYFCwcKAwQDFQMC AxYCAQIXgAAKCRAWiRlCzey/mTswAJ9uujS3rA/mJcR8TH33q6SRhZSeFgCePzaT lOAkDv2LVm0F+V5CBex2gkqIRgQQEQIABgUCOs49wgAKCRDCpSwr0i8VsUrfAKDi Cffo5C6Ei5xHtWRA0DpHChOoOgCgqwDeqC4zLU/lB/jKYdGX37VPMQO0I01pY2hh ZWwgSGVmZm5lciA8bWlrZWhARnJlZUJTRC5vcmc+iFcEExECABcFAjp/gWcFCwcK AwQDFQMCAxYCAQIXgAAKCRAWiRlCzey/mRbDAJ9BS5FWb+Dj4IHlRYsr6IHCXxet LQCgmpN9GwBWNxzBlbAQEw1O8anp5xiIRgQQEQIABgUCOs491gAKCRDCpSwr0i8V sfQXAKDW4IsDEKGr1rYpO4IIZPMl2hVLJQCcCRUr0Mfce6AXKUYBfjAlZmddN0u0 JE1pY2hhZWwgSGVmZm5lciA8c3BvY2tAdGVjaGZvdXIubmV0PohXBBMRAgAXBQI6 f4GRBQsHCgMEAxUDAgMWAgECF4AACgkQFokZQs3sv5mRMwCffitElKCHTC+tF8hQ R9Tdb87+PH4An3jlIX+TAD/u6CjyAZ9fR8nEXeVUtDRNaWNoYWVsIEhlZmZuZXIg KEFDTSBzeXNhZG1pbikgPG1oZWZmbmVyQGFjbS52dC5lZHU+iFcEExECABcFAjrF NgQFCwcKAwQDFQMCAxYCAQIXgAAKCRAWiRlCzey/mTbAAJsEIOjmXPBxqyrpS0QF lrJtDENffQCgmWgC/5AezMfJwtu+s001BNw7oRmIRgQQEQIABgUCOs493QAKCRDC pSwr0i8VsWB7AKCZe9euDml2vgJAaaPt34ptUl4UHACg4SZK21iSMmLW+cI6L8iw gGvDcPe0Kk1pY2hhZWwgSGVmZm5lciA8bWhlZmZuZXJAbm92YWNveG1haWwuY29t PohXBBMRAgAXBQI7RpsRBQsHCgMEAxUDAgMWAgECF4AACgkQFokZQs3sv5m0ogCf RV9e/JXy1ixgKCVoqzaIQ3j2MBQAoJwtV25V4gpucQxysqRrWTB65Ja+uQENBDp6 LqIQBACFcO+vvM6/ItdzUhX3vIihiKENou4FchXwc/u7uchsLs589+PwaYWXqtPH E9YSjXYo9y87Sl6ciOagBL6rJZ8oNKc/ylRmx42iSTdAdEKCgK355kmXiWgaAm/W CT5YIETaY+D9TrBDD+c+ofB8vhekxAlr30FAnX6VmUJFi5xfrwADBwP+LiUdpsML kdJj0Y8PmbB3Gxle3X9w+6hBkoP8Z0q5dzG3Y3mGYpgLd4Ytf1KEKUm68BDJgcvf 41B2Y6Ptp7mSRAufbymIRihNKH78fleaziWsux2CYJGZvsJzuYrlzgwuTzcLQKL6 MfRXZHPyt+1SwQeV6pIE0DBZLHg9a0Ak5sqIRgQYEQIABgUCOnouogAKCRAWiRlC zey/mfYtAKCVze8DK+0HP1fTQyDajO7o9RTIVACeIwhXBEbRN8cH0BsG/8Qn5sZo 2Q8= =/joR -----END PGP PUBLIC KEY BLOCK-----
<mheinen@FreeBSD.org>
pub 1024D/116C5C85 2002-06-17 Martin Heinen <mheinen@freebsd.org> Key fingerprint = C898 3FCD EEA0 17ED BEA9 564D E5A6 AFF2 116C 5C85 uid Martin Heinen <martin@sumuk.de> sub 1024g/EA67506B 2002-06-17
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<niels@FreeBSD.org>
pub 1024D/5FE39B80 2004-12-06 Niels Heinen <niels.heinen@ubizen.com> Key fingerprint = 75D8 4100 CF5B 3280 543F 930C 613E 71AA 5FE3 9B80 uid Niels Heinen <niels@defaced.be> uid Niels Heinen <niels@heinen.ws> uid Niels Heinen <niels@FreeBSD.org> sub 2048g/057F4DA7 2004-12-06
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<jh@FreeBSD.org>
pub 1024D/53CCB781 2009-10-01 [expires: 2014-09-30] Key fingerprint = 3AED A2B6 B63D D771 1AFD 25FA DFDF 5B89 53CC B781 uid Jaakko Heinonen (FreeBSD) <jh@FreeBSD.org> sub 4096g/BB97397E 2009-10-01 [expires: 2014-09-30]
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<jgh@FreeBSD.org>
pub 2048R/4150D3DC 2011-12-18 [expires: 2021-12-15] Key fingerprint = 8E0D C457 9A0F C91C 23F3 0454 2059 9A63 4150 D3DC uid Jason Helfman <jgh@FreeBSD.org> sub 2048R/695B1B92 2011-12-18 [expires: 2021-12-15]
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<ghelmer@FreeBSD.org>
pub 2048R/8F1CEBC4 2012-05-22 Key fingerprint = 483E 9E6C C644 2520 C9FE 4E87 9989 CCAF 8F1C EBC4 uid Guy Helmer <guy.helmer@palisadesystems.com> uid Guy Helmer <guy.helmer@gmail.com> uid Guy Helmer <ghelmer@freebsd.org> sub 2048R/2073E3F8 2012-05-22 pub 1024R/35F4ED2D 1997-01-26 Guy G. Helmer <ghelmer@freebsd.org> Key fingerprint = A2 59 4B 92 02 5B 9E B1 B9 4E 2E 03 29 D5 DC 3A uid Guy G. Helmer <ghelmer@cs.iastate.edu> uid Guy G. Helmer <ghelmer@palisadesys.com>
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<mux@FreeBSD.org>
pub 1024D/881D4806 2003-01-09 Maxime Henrion <mux@FreeBSD.org> Key fingerprint = 81F1 BE2D 12F1 184A 77E4 ACD0 5563 7614 881D 4806 sub 2048g/D0B510C0 2003-01-09
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<wen@FreeBSD.org>
pub 2048R/A03F07DA 2012-12-10 Key fingerprint = 0258 F2C7 C123 E627 9E14 B4BA 270F 30AA A03F 07DA uid Wen Heping (wen) <wen@FreeBSD.org> sub 2048R/CFC8D6A9 2012-12-10
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<dhn@FreeBSD.org>
pub 4096R/F7CDCAA1 2012-08-26 Key fingerprint = 0587 E730 68A6 2646 A991 505D CD9B 3A87 F7CD CAA1 uid Dennis 'dhn' Herrmann (Everybody wants to go to heaven, but nobody wants to die) <dhn@FreeBSD.org> sub 4096R/0A6D554F 2012-08-26
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<jhibbits@FreeBSD.org>
pub 2048R/37BE2DB9 2011-12-01 Key fingerprint = 8A12 7064 4F3D 339A 191D AD52 30C7 858E 37BE 2DB9 uid Justin Hibbits <chmeeedalf@gmail.com> uid Justin Hibbits <jhibbits@freebsd.org> uid Justin Hibbits <jrh29@alumni.cwru.edu> sub 2048R/A8DA156F 2011-12-01
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<pho@FreeBSD.org>
pub 1024D/CF244E81 2008-11-17 Key fingerprint = BE9B 32D8 89F1 F285 00E4 E4C5 EF3F B4B5 CF24 4E81 uid Peter Holm <pho@FreeBSD.org> sub 2048g/E20A409F 2008-11-17
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<mich@FreeBSD.org>
pub 1024D/0F55F6BE 2001-08-07 Michael L. Hostbaek <mich@freebsdcluster.org> Key fingerprint = 4D62 9396 B19F 38D3 5C99 1663 7B0A 5212 0F55 F6BE uid Michael L. Hostbaek <mich@freebsdcluster.dk> uid Michael L. Hostbaek <mich@icommerce-france.com> uid Micahel L. Hostbaek <mich@freebsd.dk> uid Michael L. Hostbaek <mich@the-lab.org> uid Michael L. Hostbaek <mich@freebsd.org> sub 1024g/8BE4E30F 2001-08-07
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<sunpoet@FreeBSD.org>
pub 4096R/CC57E36B 2010-09-21 Key fingerprint = 8AD8 68F2 7D2B 0A10 7E9B 8CC0 DC44 247E CC57 E36B uid Po-Chuan Hsieh (FreeBSD) <sunpoet@FreeBSD.org> uid Po-Chuan Hsieh (sunpoet) <sunpoet@sunpoet.net> sub 4096R/ADE9E203 2010-09-21
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<lwhsu@FreeBSD.org>
pub 1024D/2897B228 2005-01-16 Key fingerprint = B6F7 170A 6DC6 5D1A BD4B D86A 416B 0E39 2897 B228 uid Li-wen Hsu <lwhsu@lwhsu.org> uid Li-wen Hsu <lwhsu@lwhsu.ckefgisc.org> uid Li-wen Hsu <lwhsu@lwhsu.csie.net> uid Li-wen Hsu <lwhsu@ckefgisc.org> uid Li-wen Hsu <lwhsu@csie.nctu.edu.tw> uid Li-wen Hsu <lwhsu@ccca.nctu.edu.tw> uid Li-wen Hsu <lwhsu@iis.sinica.edu.tw> uid Li-wen Hsu <lwhsu@cs.nctu.edu.tw> uid Li-Wen Hsu <lwhsu@FreeBSD.org> sub 2048g/16F82238 2005-01-16
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<foxfair@FreeBSD.org>
pub 1024D/4E9BCA59 2003-09-01 Foxfair Hu <foxfair@FreeBSD.org> Key fingerprint = 280C A846 CA1B CAC9 DDCF F4CB D553 4BD5 4E9B CA59 uid Foxfair Hu <foxfair@drago.fomokka.net> uid Howard Hu <howardhu@yahoo-inc.com> sub 1024g/3356D8C1 2003-09-01
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<chinsan@FreeBSD.org>
pub 1024D/350EECFA 2006-10-04 Key fingerprint = 1C4D 0C9E 0E68 DB74 0688 CE43 D2A5 3F82 350E ECFA uid Chin-San Huang (lab) <chinsan@chinsan2.twbbs.org> uid Chin-San Huang (FreeBSD committer) <chinsan@FreeBSD.org> uid Chin-San Huang (Gmail) <chinsan.tw@gmail.com> sub 2048g/35F75A30 2006-10-04
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<davide@FreeBSD.org>
pub 2048R/4CB47484 2012-01-17 Key fingerprint = B5C9 77F5 1E67 D110 8D19 7587 EB95 EA82 4CB4 7484 uid Davide Italiano <davide@FreeBSD.org> sub 2048R/91F7443D 2012-01-17
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<jkh@FreeBSD.org>
pub 1024R/8E542D5D 1996-04-04 Jordan K. Hubbard <jkh@FreeBSD.org> Key fingerprint = 3C F2 27 7E 4A 6C 09 0A 4B C9 47 CD 4F 4D 0B 20
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<versus@FreeBSD.org>
pub 1024D/A01C218A 2008-10-28 Key fingerprint = A805 21DC 859F E941 D2EA 9986 2264 8E5D A01C 218A uid Konrad Jankowski <versus@freebsd.org> sub 2048g/56AE1959 2008-10-28
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<weongyo@FreeBSD.org>
pub 1024D/22354D7A 2007-12-28 Key fingerprint = 138E 7115 A86F AA40 B509 5883 B387 DCE9 2235 4D7A uid Weongyo Jeong <weongyo.jeong@gmail.com> uid Weongyo Jeong <weongyo@freebsd.org> sub 2048g/9AE6DAEE 2007-12-28
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<peterj@FreeBSD.org>
pub 1024D/F00FB887 2005-10-20 Key fingerprint = 0BF7 7A72 5894 EBE6 4F4D 7EEE FE8A 47BF F00F B887 uid Peter Jeremy <peterjeremy@acm.org> uid [jpeg image of size 4413] uid Peter Jeremy <peter.jeremy@auug.org.au> uid Peter Jeremy <peterjeremy@optusnet.com.au> uid Peter Jeremy (preferred) <peter@rulingia.com> uid Peter Jeremy <peterj@freebsd.org> sub 2048g/7E0B423B 2005-10-20
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<jinmei@FreeBSD.org>
pub 1024D/ABA82228 2002-08-15 Key fingerprint = BB70 3050 EE39 BE00 48BB A5F3 5892 F203 ABA8 2228 uid JINMEI Tatuya <jinmei@FreeBSD.org> uid JINMEI Tatuya <jinmei@jinmei.org> uid JINMEI Tatuya (the KAME project) <jinmei@isl.rdc.toshiba.co.jp> sub 1024g/8B43CF66 2002-08-15
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<ahze@FreeBSD.org>
pub 1024D/3C046FD6 2004-10-29 Michael Johnson (FreeBSD key) <ahze@FreeBSD.org> Key fingerprint = 363C 6ABA ED24 C23B 5F0C 3AB4 9F8B AA7D 3C04 6FD6 uid Michael Johnson (pgp key) <ahze@ahze.net> sub 2048g/FA334AE3 2004-10-29
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEGCy1ARBAD/K2SbL6XiTJ3Rn/weuN/L78ROUltIoRGOkZE4971fLcAbtIsf nANWDrpDqbhLgEbZLeCn/EIWOPqrYyKpCGu/IoZ6kx7UPtUH4eooJBarrrQPJVV1 mfW5ktDry3AoiaUH+jL47AxFCb/bh7Rc11vrhLKdnc74wI+nu2cyk2llkwCgwX78 nlN2qTrbXxOEAPpJjMontfsEAL+4sS9DOay7NkZq2B2p9AZnSsXQg6/r8Epqznqj yPQBm489UcIZy2FiBwaUR7w0fMh5xNX0FE3xFiTd4VUTgUJUSqpYtdfI7IHvJXml P/VK14CtgRY2B24wpDPMae32hGBFUwSE9Frb5NiKlxMC4+fR71wZS7MtxTnwJ1v/ MoVaA/9FyoKCAw3Dqnf5W89dj5W5x35jLKSLobEhhUB2S2LPiwBa5A79euMvgtk0 gKeh6IslXKOmCO148ws7HSaErBIBVBDpfOsqcQJTcd5lvEbslp+z2oCKeQK3pgQ5 aEHp8IJ3YgQEHz+YityOF0jCMGNJTFAz18U4RzVxSe55iyT/17QpTWljaGFlbCBK b2huc29uIChwZ3Aga2V5KSA8YWh6ZUBhaHplLm5ldD6IWwQTEQIAGwUCQYLLUAYL CQgHAwIDFQIDAxYCAQIeAQIXgAAKCRCfi6p9PARv1oW2AKC0xjNgjhL1EHPtFOXH kGz24lF4QQCfQxkoJBq0CkLQrYvdA3MLP+IJ6ba0ME1pY2hhZWwgSm9obnNvbiAo RnJlZUJTRCBrZXkpIDxhaHplQEZyZWVCU0Qub3JnPoheBBMRAgAeBQJBgtexAhsD BgsJCAcDAgMVAgMDFgIBAh4BAheAAAoJEJ+Lqn08BG/W4JwAoJaU6MbisTlg4EMF jfE+wNptwO4kAJ46A0W6SiLWbK09gu7YlgfLgdYAmbkCDQRBgstcEAgAvD4PzCsh muLtNkPVKSlk2eZbqlIuyapbuIo6rHk8fo7fkfqVOOrnGOrAT5/sflmnG3H0BLvF 4pkk7tyRtg3hz8qGACCA4SRf48TxRERpIUoW5R2cVBsMBTnpspRaFu8OdBL0dwXs LmH797gxDXCGXzSU5xKBSQN4LfoEuLr1qQmPbuPW+Rdi3hrdk1eGsJ03rU5RExzQ ck+J7a5VWsyghNCSj1Rzuw+0OVGBijJW51FD9QU+Eqb3seL7E19mWC3FMU34RFwn 5lbxolY43iPV0jc0MFcV4POHUSZ8ot9xbQpcAClTyXZh21QEIFzYjJe9ZeVWKOqH UZS1naB4k98G6wADBggAnRlPolzcjJvqvv5Hfv7oDeDARNxqeKTj+fPXIHR0Gh34 8HMfmxsFzS6nsrrVc43Q6Iaso5hbdP4UvE0/HzhPALzCTeZGpZF54pffg9Pqb84U p+D59I+b88RDBvvfwF0OBg6du08Rdkv9JfG3R+QZembK+IhUa5yxhtfbQmI6Y01r phtx4FAKZw4Xp2eb7IBoZWktfcOE99UJcl9hUmBHJXRznQoCHz5OwAKA6a/0b7j7 B3bPxj+tLlQksdmRbEJKVBa3LQm09PkxfZj8iahvQbp23p5VSJDKzNDrgmsqaCpV CFNgMvYLvtxC2xA0uNtaRpdZRLS/11NUj3oJIULv8IhGBBgRAgAGBQJBgstcAAoJ EJ+Lqn08BG/WFK0AnjdWWBxG7slwI8u1W+7uRsuh6NXMAJ9r+6Br6mlEtsoWrMel IlhG1mVq6A== =I7wA -----END PGP PUBLIC KEY BLOCK-----
<markj@FreeBSD.org>
pub 2048R/80A62628 2012-12-19 Key fingerprint = AFEF AD33 1C4E FFE5 141E 0157 05A4 DA8B 80A6 2628 uid Mark Johnston <markj@freebsd.org> sub 2048R/47C7D3C2 2012-12-19
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBFDRQycBCADMNjnbsXUOlvy35VnAJWE3zHAPqmXKqUTh0t0LWEtaD8KaNMHY egadQNWYwJAjzAI07+3grk8xcJLVjbbB+rC45tNPAxjAf9Jd5WZkZO7vKX0tIDLc Kteqp/5UB8SZ+XuhrtzLkObbEccwt66CF8vsUps5hWm1d+Nfxd798sjGmB8uzRJm gO2RrVtrOW7OQG+aFjBwlQvaiYavQ08z/xE2b83Y4Jp7c1FlqneFmK4xWSMO1qEE Qre8+iizDnPkGVabSLGJxE/EjTpHVBSawkXBgs9AOBoUR95fRr2Qc7GtP0NCHiNP FecGq5vCdIVyejUVzWmviYP7y0roG3yE+AppABEBAAG0IU1hcmsgSm9obnN0b24g PG1hcmtqQGZyZWVic2Qub3JnPokBOAQTAQIAIgUCUNFDJwIbAwYLCQgHAwIGFQgC CQoLBBYCAwECHgECF4AACgkQBaTai4CmJihAPwgAn9yH8EQiyS2x2qy5Zecl80Yz sLHSjc0uCBCNyzaLgGnMkqQDljyJzgY8DOL2vCWgSO0uJvb52Zl3nwxNoeMpwA3f rcaurFUUTCNmq4YfAHxjkbi5vQI0uJP7StFcFRPcnBOF/ddi+KUdc++xhqvcKBF9 uHVLK+6MMp4I9ofXNdrenfqXaODDTIaSO3SnL690OFSAAkueDN5hjJRuuEprbZFP qyfzwHAot/Owy6Db7LA9MrE4GQFDszA+wvXrreMDdPIVV8dXXZvuS2oEVV9XoTUY +VkcOdO+UlD1DWyEP1cZYhyzhwJo8G7ZZJO7JpLB6M6c5bdAyMtHW/aAinh+J7kB DQRQ0UMnAQgAxnBvgp1D8Ek07hhV89yhPkucEuxi5Gz8doYedzB6uOUGFdUK8y9B gwo8dSjIY3i4rVpJlarJNvd1XE2Pu3YlwvW1Gyo4pa1M5Q/QeQ8thW4k8F4r+RGN 6qqk085diUKWSwyhjAULOYSWBEbRaPp9L3FNr3uYncrAFhKN3n/o3+18DG2tS++/ DavKZdNgFKnoLEZeTSOAdvwkTjcWV6lRVcI8vsbi1bl5dA7qCbhfRmJJEaMqhCG8 bEIJ6r5JtmDNwOzCnl2wS0UsmsMV2lj5BGiRmyw3xdxDGYTICm0j+YUce9lb2V6H PWcHCil+Jcg1pJ5oKai4uR1Oo97slmoiXQARAQABiQEfBBgBAgAJBQJQ0UMnAhsM AAoJEAWk2ouApiYoo+QH/RLaL2ouB/bxkED60YgdaiOHX+3ZUeXwh5SHapS2cFXU ySUcYmFe3fbsXoyeOi4E1AG2k2PyVk/cA/HDNr8eiqgFO91dQ6RnY+VnbN+DGRGl 9oW7kqY/7kV0ExXpPGSmxdobpeCVkSO3WzY9XKC5VUosc/jCm3+6NqZaCnIIMUNA qUD25P9stIBvEv+QrkRn+9vnSHbyvnQvaHWMLrItMgyjrZdd4LevLQaCo3bc5+eI 4ZhBjHErzC4PmeKgy0ancqWMNfgdZ3fzk8Tcwfy20S+b+TicU0xlQnx8bkPlksCJ h7pRVYuHo9VkueYsh5UoyrMJhYe7DQ4lGbv2fj9KHZ4= =b1OB -----END PGP PUBLIC KEY BLOCK-----
<trevor@FreeBSD.org>
pub 1024D/3A3EA137 2000-04-20 Trevor Johnson <trevor@jpj.net> Key fingerprint = 7ED1 5A92 76C1 FFCB E5E3 A998 F037 5A0B 3A3E A137 sub 1024g/46C24F1E 2000-04-20
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQGiBDj+agARBAC1AfvgGQEVdLwS0dirwaN+pDDWWiaSWBNRNo4T4KKG2vyhhnUi f2PcjPx8rYLvbokJFltoTWos3lS8hD8PZGBDlImOPzffdm/GYEmr1mE8fQvzjdKD iOTqQi5IYYhLZIMmUpBTK7XN2zrM8VrkgCpb5TYtBrQUPheWs/SZ31EvLwCglUPA T54Joolfvk0Y8I6dSGYctpUD/3teZiYwem99CE3b1tsqavQ1MUfjwSPZQq8wjVe8 GZUtwaeExugAxNjXIJeXiaCij7S6JSTS0ytyxZ5/O1QFmBhuD/7zjNFD8yB8nu8x slma7mVhMuhqkwU06hTkp6MNNJ7kRItoVETtLqR5mW+0UUSZyePQFIH9U7TKPG3W vYMIA/9btsMQD/7QA9p/m5OP4sfdVdNCZ32tJ534bMjDYyf/P8k7QzvDWU8f7lbk 3vX5pSmHplws0PwSZITmRarMdEH9ucP+24m06MQ7YmDYyLlUCestT2gAxnB5/X1h fJnmdCLi/Vt19WrVM79ebddbCqCaoz0xv+1qOQmPue/vKXIH87QfVHJldm9yIEpv aG5zb24gPHRyZXZvckBqcGoubmV0PohWBBMRAgAWBQI4/moABAsKBAMDFQMCAxYC AQIXgAAKCRDwN1oLOj6hN4YuAJwOTOURcLpgAx4HT43jNxDYCsT7DACdFdGCwsi4 w5ZiCeoizmoBMFvYTa65AQ0EOP5qIhAEAMAerdyvcs7DOxpsli24gkKJxCwHSq9U 23k283XpZHOp/0eS6WEJMHMyQ7BRrx3X6mkSgBEnHdO6MetBQjOHdjSb8ycotrJa H9eMkZ/Iky6dbiWpPLI4ytS4Q8Z4oEGjUTm7pJiE/pgmaCX/kv0WMs/35En+42sY VoVU9bDI+X+3AAMFA/435RbM6ywO/kL8D3lhwINGEIqmxWpJDlXPPJf2pLiWZZVK MLGkHOTe2kUdd+E6WcoRZdGblOKxLACrlKpJa91aw1ftQT6rt0k8GDCGLT/33FWx 2IRSf5sHmz8IOm6L8TcZU31hdWqpDLmiIj+IjUCx8+eAUjZcVRoj6BYnWc1Z64hG BBgRAgAGBQI4/moiAAoJEPA3Wgs6PqE3PKYAnikfYo//UA7/jrDuTXzqPmi/Un5f AKCFsfcXDbLGfWaAqe2YzeDR2Z55/A== =N4HT -----END PGP PUBLIC KEY BLOCK-----
<tj@FreeBSD.org>
pub 2048R/81E22216 2012-05-27 [expires: 2017-05-26] Key fingerprint = 8EF8 36C8 44A6 9576 6ADB EB0E 4252 33DC 81E2 2216 uid Tom Judge <tom@tomjudge.com> uid Tom Judge <tjudge@sourcefire.com> uid Tom Judge <tj@freebsd.org> sub 2048R/2CA4AA0D 2012-05-27 [expires: 2017-05-26]
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBE/CXmEBCAC8MHbsbti3GMu7pJN9c7MjfHOyY7ZFGZ5KWET7KCgYr2uUydwB ZNaNIZczdNuYTE3Q1o4F7A7EW9bsfD5b8zZZK9usE5kBZJQdZhEnd6mJSKsV2CwM CBwnl+e1+9ITMOxD1CL8rjQ2JhIUi6DADtVO6N5eSB4I1qKE2rd9uyvQkjBWNOjF d8QgfcFEzvXL28zzkBPMoYJuZOQ2RrUZUr2GQZJkLbWi1GZPwEJ8bxuHXyAkvRgp SDQNW9jnM3mhcsSn1rm568JLGJVz17pjxoM7CJLOYm63vl2nJWo5e/VDyIYu3XA2 H+9UXMaoar+2wNSk1bDe4QDSqjQr6bjkiODdABEBAAG0IVRvbSBKdWRnZSA8dGp1 ZGdlQHNvdXJjZWZpcmUuY29tPokBPgQTAQIAKAUCT8JetQIbIwUJCWYBgAYLCQgH AwIGFQgCCQoLBBYCAwECHgECF4AACgkQQlIz3IHiIhaP7gf+OHV0TjB9DAVbiuKM 7itp9AsWvXAtEJaydaYyDJgBkJdncshtG+dzhKTDxoYExGVGaNDCvw6sNld2fINb staofgMYs3ZucuKaGL2V0vcPvAR8y/6a+k2xKfdHW6UE8YCYbJJMNOP6gdGvF7Rx OP169r/YJulOi9fzPkU7YuH7Bc3/mumLK+n7jpd14uEvpQlER5OydA9j4inS/sMH 7yOEJP5jIRmp2RzJid0zJj6Mm4IJo72gjqK8/3OdY0ZspI3VJIZAMLDrKpEMWI2i qkDovYBGI3sCAnyxAf66II44MaZs5Zg99kJ09mUjw8Yzn72lU1W+A0v5DqfpskKf 1u3fubQaVG9tIEp1ZGdlIDx0akBmcmVlYnNkLm9yZz6JAT4EEwECACgFAk/CXqcC GyMFCQlmAYAGCwkIBwMCBhUIAgkKCwQWAgMBAh4BAheAAAoJEEJSM9yB4iIWssIH /1GsA1JAt11mheL4sVZ5g6lrokXsDrpSNQ2QrECJs5ZfDLn1z8Zhi8SdP6vyQ16B /bHwnGFHzwxmbUq5jhDJyhZO16halh+ZQSFVbfjJXAu3T4D1Zxl8HFSf5WccalKW vkFtr9J0dGEH/xOSj5zUtF9/eO7AEMYdgevpzT2tqztY8r8Ka3TFTaK1uV3ZfqV9 qpavwNPzJ7c3Td5fsYHAai45eb5UFFHfWfT3nbo0718TE9NXbP4JGZghdawmQUf6 W8KbQuGmg2qwlO7hpMYXHrf7nv6C05iYwWuJ8j7LLfnlN0s3FiaNw5W0IrKmOxxI jmSO+2dkr5hjidy0hlkHCym0HFRvbSBKdWRnZSA8dG9tQHRvbWp1ZGdlLmNvbT6J AUEEEwECACsCGyMFCQlmAYAGCwkIBwMCBhUIAgkKCwQWAgMBAh4BAheABQJPwl7M AhkBAAoJEEJSM9yB4iIWO7wIAKdLANMK1j4s9FG8qzxnchCeXEwygGYvXy3nfOXa H1vM6641ADlA/8B1Y8JqU7Zg5AyR/8fv3SDLpGAre5wJX5Rxdd8/zn1B6tcbgno5 KtGC1s6Gug3UtFWmLxCNMdM7cFByQc5Yz966j/VxDEDvjXyymqizvGMtEzH430gR UnC9BqZnq7KUeh97qwZr+G5pSBdKRASUcCDgCB48AAknY4cZLoxOJs2GJXzOPlnE /gQsv5ZC/eBS2f9fjQzgP2RDL5yMgdpUQjwZgkXW9q167aIwJwzExkD4zf2hLW2w E/KYi5LRjV7UgIu4kUu7bQZAmfBE44nd//qzp06ikF3jWeCJAT4EEwECACgFAk/C XmECGyMFCQlmAYAGCwkIBwMCBhUIAgkKCwQWAgMBAh4BAheAAAoJEEJSM9yB4iIW HkoH/ib5LvcVNUcwcrrQU5w5W2AbuQG8DmSWgaWWZa6Fd/76hYq8UtUkRX4eXIem Ju1/aAo3YpaiMJ81AnQopWZixbxTgDOM9P7javlMMo36qDwe2N++BcsojfJaCf4H H/vt/dvIahKKLNsy5nDMPAZl+Cb/33uZjjbBkOP9YFvxKJcrkBjoF7rkmT8kewT8 Va6LPVCxLSORAivr5nEo7lr8Of4CuGHChSNBQofZEqlujipVwEUYt4x7rRCE6c3g xG+d7omaNOSYDtT35Wk85UVzE9S09RdLEieJ3rgpaYW0hr/D/19qL72TCUxBoUbs /wASrbtxYEiSHIo5Mp494fSkdd25AQ0ET8JeYQEIAKToUksGvdHmeqiC1nOZWUjF y5GRBue8pDwIKDy7uWMZvS+a+au5YEIFsKl7uusoYYu1mKuAE4qebnPlY9us/PlP EDPFK9YIYVnmk+NAQFMxE46TQpfAXT0QFxPcKYE6MR4YezoDOdvDjd23dqYe5deD sjrbYenlJJleFWRYWwFQ187tgNnMXgwEURCjYUc4jop1d8IBq128v5PW1cuEqKJ0 4YsWp2C1TToxvhw24ZBqKW0BvDMP17omDk7IyD/Q3BnImU1fB/9T8TIYGp7Fp1ey /Abu63bkkixUpJAs9RbNfyZ2dQBFzlYGWuVfcYKleZGNKP9tXdRXKU6FWDyTgyMA EQEAAYkBJQQYAQIADwUCT8JeYQIbDAUJCWYBgAAKCRBCUjPcgeIiFow/CACyVF2z V/2AenlR6b/oEEOHHOrRCUjRFdNdfJyd5xB9tY83RPnxOIN+ImHKTHpCbO8XXPr+ /69y9SyFSbeIXssKpQkoDpBxoLBTLRHWvLxIsMvj1MS3yt3Y45mcKGLYUTUCFoLL ZBfTFUbhV7Inhrw57nKMO+F43JV35wO/2HvgtVXhMyvSOwSuh+rmWyvBI+bbQTeW L/16IV6bqLvKPF64Udc636mr2As1gDyFYYbzoKunXGfs9V2e9tHOg7MhbGh+RGTQ QsYzGa7JqrqvENdXRniOZG9PVQ6okKNPWyaSF93R0dkuJ3nN7j/dcBWcvLKZ5q1M Zm0FKdW5eJP4ewW8 =jKVY -----END PGP PUBLIC KEY BLOCK-----
<kan@FreeBSD.org>
pub 1024D/C9BE5D96 2002-07-01 Key fingerprint = 7474 A847 DBF5 50A5 FC3E F223 43AC F58C C9BE 5D96 uid Alexander Kabaev <kabaev@gmail.com> uid Alexander Kabaev (FreeBSD committer account ID) <kan@FreeBSD.ORG> sub 1024g/534D9E06 2002-07-01
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBD0fyVQRBAC6DXZDVJoFc4CPKODmJmep0t5dD+ObG0hYiMfo4ygDAvsftJPv ZR69EUbKCqVOXPy5InOR1o1xwERvNVXxBGOFwAdoU4eJt/f3ttR6YSLWDG3iHWRQ Fze9mtZ3bCBcdv8V0pXint/w41y9nBmG03F+Ag2toD5mHYqV+9vqH3XTmwCg7Rq9 K/Pk7Z5lAR/XWyJv6Bk8op0D/j6Jef2ate9+NwBAti+9GgIocBGx36X/SpZonGOV xtX5E2MranZGCVnbdW1hXfKLaiRrooSxbGpMnFbjqY+peHZ905pd+3v++L0sGSUA gLbGL+5GFDO/WGay0vTUBs7Bl+1cbsdeQ67+08WuIRfcbDjA9fYxI9LLTb4J+IrD Ni36A/9WBGxkXNJCTrtAqhCoHRgfo1CHNk+U3KiIlwFfvi1WRkqEgFNQ6aLNsPcT DkIoPLj2hqKf0Pfrr1MWGcQF1uYxtW8diFH9FzlZpkwXvHPOBsJSWtH8qcZ7atFC EIwvZzurMbYWaTGNYMEL3kj9aRjKb2OnsKABZ25H1cioFReMx7QnQWxleGFuZGVy IEthYmFldiA8a2FuQGthbi5kbnNhbGlhcy5uZXQ+iEkEMBECAAkFAlCtcHYCHSAA CgkQQ6z1jMm+XZYzSwCgx20s6h6+tB6nj7gs0mHRmXEd9rkAn3PbiVCY7AvRcQKd jzMg1fh609+NiF4EExECAB4FAkLcBooCGyMGCwkIBwMCAxUCAwMWAgECHgECF4AA CgkQQ6z1jMm+XZYJIACePCBQpk+mw0WvLAkE7I5DkeCv4w0An3MKAuq3Acnzxw5J 1U5XsB0nooiStEFBbGV4YW5kZXIgS2FiYWV2IChGcmVlQlNEIGNvbW1pdHRlciBh Y2NvdW50IElEKSA8a2FuQEZyZWVCU0QuT1JHPohZBBMRAgAZBQI9H8lUBAsHAwID FQIDAxYCAQIeAQIXgAAKCRBDrPWMyb5dltYPAKDD2YYKr7ZDEbVKAdyHOyF5dl+h 3wCdFWg9dC8w6dD7nUKvg9b8cq91byy0I0FsZXhhbmRlciBLYWJhZXYgPGthYmFl dkBnbWFpbC5jb20+iF4EExECAB4FAkLcBkICGyMGCwkIBwMCAxUCAwMWAgECHgEC F4AACgkQQ6z1jMm+XZadUgCggxcqTFp+zV2YOM+cDlVtreVZDo0An1kXV2vUaxap 0fQTq2QMfGyMbsG8uQENBD0fyVQQBADOlRurkQxMzKcXE8Wfb9dimYC9gyNso19f yKAJGxD1lgvJeVyf2OR4k/d6ctQAcNuv3qT0al9rE5DQMiI3fC6xLA/xJekqDCu6 LLjdwLYXJtjSq6HyY2qUS4+sdPJSpVadaMKE1jLVEYCtXi/Q1gTfwPDQp0GzSS7i gyouzi3QuwADBQP/d8b4C53pgkrcHQ/xOv4UW5KQrJg5DZMMxZ6gF3IGFGF99kHi d+zBtrzzlq6PmFpDf69LRaISk0qnjDAsrRt/ypnsRnQ6YOmTSSOKK6y7runPTwaP /gSFeDFk+9ZNxjebpcoN6SHFxi3V/4ITVJfXQJIU/BT05A6LeZGYykTdrCOIRgQY EQIABgUCPR/JVAAKCRBDrPWMyb5dlpHKAJ4x+Ltw0UyNi82weZpghm6b02OVvQCb BB6jh/RjnfLoZ/Cq2dke6K5Heok= =4r9K -----END PGP PUBLIC KEY BLOCK-----
<bjk@FreeBSD.org>
pub 4096R/8302FE9F 2011-08-20 [expires: 2013-07-21] Key fingerprint = 9FD9 F966 D914 5101 BE59 FE13 2D29 EEED 8302 FE9F uid Benjamin Kaduk <bjk@FreeBSD.org> sub 4096R/28698ABE 2011-08-20 [expires: 2013-08-19]
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<phk@FreeBSD.org>
pub 1024R/0358FCBD 1995-08-01 Poul-Henning Kamp <phk@FreeBSD.org> Key fingerprint = A3 F3 88 28 2F 9B 99 A2 49 F4 E2 FA 5A 78 8B 3E
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<pluknet@FreeBSD.org>
pub 2048R/10607419 2010-10-04 Key fingerprint = 020B EC25 7E1F 8BC5 C42C 513B 3F4E 97BA 1060 7419 uid Sergey Kandaurov (freebsd) <pluknet@freebsd.org> uid Sergey Kandaurov <pluknet@gmail.com> sub 2048R/5711F73B 2010-10-04
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<cokane@FreeBSD.org>
pub 1024D/C5DAB797 2007-07-22 Key fingerprint = FC09 F326 4318 E714 DE45 6CB0 70C4 B141 C5DA B797 uid Coleman Kane (Personal PGP Key) <cokane@cokane.org> uid Coleman Kane (Personal PGP Key) <cokane@FreeBSD.org> sub 2048g/5C680129 2007-07-22
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<kato@FreeBSD.org>
pub 4096R/3CF9ACE7 2012-10-02 Key fingerprint = 5B72 AEF9 B2F9 069D 54FE CF60 444F 91C8 3CF9 ACE7 uid KATO Takenori <kato@FreeBSD.org> uid KATO Takenori <kato@nendai.nagoya-u.ac.jp> sub 4096R/1C593356 2012-10-02
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<joe@FreeBSD.org>
pub 1024D/E6B15016 2000-10-19 Josef Karthauser <joe@FreeBSD.org> Key fingerprint = 7266 8EAF 82C2 D439 5642 AC26 5D52 1C8C E6B1 5016 uid Josef Karthauser <joe@tao.org.uk> uid Josef Karthauser <joe@uk.FreeBSD.org> uid [revoked] Josef Karthauser <josef@bsdi.com> uid [revoked] Josef Karthauser <joe@pavilion.net> sub 2048g/1178B692 2000-10-19
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<vkashyap@FreeBSD.org>
pub 1024R/04FCCDD3 2004-02-19 Vinod Kashyap (gnupg key) <vkashyap@freebsd.org> Key fingerprint = 9B83 0B55 604F E491 B7D2 759D DF92 DAA0 04FC CDD3
-----BEGIN PGP PUBLIC KEY BLOCK----- mIsEQDQwdAEEANxnThVC8GNO9VXTjWFhJh7XgMLHf9jDd0B1804WUqc3c76r8y/k AXZ8e3kNH1rpa+VJ0rYQnurQg5BeFQny8TzU6PC9QSdqNKSCvhai6B+w3t15sKJK nGZ7DwyoyuShMFNMVF250KS7dEZnYy8yrtopCIWJAWzuzuQQtmUYk4B5AAYptDBW aW5vZCBLYXNoeWFwIChnbnVwZyBrZXkpIDx2a2FzaHlhcEBmcmVlYnNkLm9yZz6I tAQTAQIAHgUCQDQwdAIbAwYLCQgHAwIDFQIDAxYCAQIeAQIXgAAKCRDfktqgBPzN 031cA/9ZuwCRbYhTHWzOhQuT8dm7Bby0wEq+KzkULXd/ExgxCu/54t9M7csD378X /Fg2erLP2J8cYIcVXmdtIJO8AwZRw5GgmVP+h1sEY+KT8jiJNlX2hB/9qCmng3FY ItLBY2t7XVmTPMw8BLANE7PJ1LKT/OoUHEk0OjK53KKGNU2oUA== =VzLE -----END PGP PUBLIC KEY BLOCK-----
<kris@FreeBSD.org>
pub 1024D/68E840A5 2000-01-14 Kris Kennaway <kris@citusc.usc.edu> Key fingerprint = E65D 0E7D 7E16 B212 1BD6 39EE 5ABC B405 68E8 40A5 uid Kris Kennaway <kris@FreeBSD.org> uid Kris Kennaway <kris@obsecurity.org> sub 2048g/03A41C45 2000-01-14 [expires: 2006-01-14]
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQGiBDh+mV0RBADir7YUHYRLlc0EN9H9OwMtvatKsJGA/BSvvbcVGdXxcDZODZb8 5UNUDltKTmfgOxMxz5Agadl9M9TJwAUyhRjkc5Ua9LWskx1HnYlsPx6/saFYU6IZ SLrBcfpX62hvpS5x+GJ8VENoRcIc//YFG/zEA5XRQEWG5mNg3KSL/DZRiwCg/6tF 0f8E7vABNKqDRFx2JEkeERED/32z9UUXbg7y26ziUz6oXaXDknCD9HeUdA1lmyjj Vovy7Hmk67OrbuuD6t3p3SI5vUvxfOnzpqMk0lAPtkZmSCmOhvmyGYqbrpIGLV34 wNlLwcNRTUDtfUGu4JL0PMOtpOQXdxhfXGI09VwV0eavq6Kzg1Ce/CFD7k5xdWzy F0J4A/4/eUoXG6KGd4gCTp9werF9ZnUdrtIMkXCgx3D3mrhEIYEBiQ1jeotLK7wv TCk/u9ki7owWdKgvLkMNI3nLp19+NgivoGWklVvhs7URn8Wxv1gMyvJM8k+ZRl/P RQP7V84s2qDQuOKLR/U0gOJeLmHA9leLLeAjxtN0zr4mjV7u/rQgS3JpcyBLZW5u YXdheSA8a3Jpc0BGcmVlQlNELm9yZz6IRgQQEQIABgUCOfDM9gAKCRAgFTHVhF3+ 3YO7AJ0ZJwzhG6FohqEaSFrg45j/GjS9CgCfanJh6tPlubkjpOSFNnJqJcSef2qJ AJUDBRA58LyFTVYoIXkFDBEBAVrXBACxSj5Ou8meYSixH+tPBUPgdbqTWQ6JgdvG zQSQK7q0OvRt/QbM4ewXEr7DRZlJe4pXlQqMn+CUieETjk0vaOsGYrMOj1NWp5jY Kft2xFg+5HehlkM3h7/tXKrz3Bc5v2romFfR/6RebtbWHyf1mg6CJ8AbIRHjCj91 ca6wEOIBAIhRBBARAgARBQI4fpldBQkB4TOABAsDAQIACgkQWry0BWjoQKUFDACg vnqlh6u1d0xcsPF2B4fbo0sF0MoAoNF7E6y4G47o7oFWoL0HCzaXsRkuiD8DBRA5 IjpBhqlMgi1qJksRAqL+AKDIm4mvwS568j9ZkKqI86XOySm6oACfd6RDWR+crZ1u lKLEkSiQCLlFPDCIPwMFEDn8wmF3zinFj6EuIBEC7GgAnj40RzKQEJK1+Lw40ojV /Eav3C0ZAKC7b4D63pTGOWitAWOtpEGV28Yma4kBHgQQFAMABgUCOjKA2QAKCRC7 7G7kaPPBBCLjA/9RQV0lMtKqHQLag6spTWV6DUADkNPfgs56WX6JsATO9B95oxcl ehhMzeP+mbwZgJjR5GraAdoWXYbnWzpfPaKcztYrt90jtDPDcAuAJis6CHGAmych FKeXoCr2m2OGcaQ9V41NNORNm79dX6v+AMyIL0oxHZC1f51bXHamlbyaCAP7BlZ8 K8TPbpYLzQCiBZrszhTlnuhQ7+gSyY77WH9pJRklFqCeFNxDb5988nxwHL7QioRY OAkbgEFzCIdzjtEWjnlv0ZkhXc0qds07ESnGHaqK2r6P/IrRbtXWwsiiY451R113 Bglm7OF+KP9itMJi9Vg8cLj+T8wieTwPd1Y4wpyIVwQTEQIAFwUCOmFZqQULBwoD BAMVAwIDFgIBAheAAAoJEFq8tAVo6EClvYoAnRmzFfvkql3W2b6TQH+nvi7T6cXW AKC5eJxh21XWyRYiD9ZxIVgONzuZzYhGBBARAgAGBQI6hHsWAAoJEC4gTJuLBr51 YY8Anj5qnIMIoyHAesDA7f/sAIjzQIPBAJ97gyIC8sm+vZssS9yusnyWb/oLgohF BBARAgAGBQI7r66LAAoJEIwyjP8WBtuVA88Al34X1C28UykPaRha+9fqLfmuiyQA nR3vk6YF7kIeq2b96dxIF24/reNqiQEVAwUQO6+u12fCgI8zwWJ7AQHIFQf+NW6I Od9DJWW8jIXYrnwp3B61C1emDRrRbEMdW68s1fng6j013f4NF68SK6RLcl0GzTl1 IjxM4tn6akBjqkvIk5FiPJgs7i8WW0Xq0jGqaSaJnbTONRpemCk9lwJOhKa1LVRi c/wHnXP6IXeEwBjJ57H3YUjFc9AW1smWMpUZ18sRBzCp2BHcfTCACz7fFseDtYdA +UNJ4NWSqIJOct5cOGOsumP781JWLSsDiuRFoghYQqUR/xbk1aKHXuRlUYrTY2gk +Z4yzNB3MMCdK1G9jQOMtsN7LZL7E7T8MFU9d6WFIh4h7/xE63AMNlv5t/m5ps07 /ZDuPaxwCKhCA05L+LQjS3JpcyBLZW5uYXdheSA8a3Jpc0BjaXR1c2MudXNjLmVk dT6IVwQTEQIAFwUCOnIVfwULBwoDBAMVAwIDFgIBAheAAAoJEFq8tAVo6EClTaAA mgLzJd8N1dIgO7yB3oL1+y9egIjqAKD5ZipcQcBa1sOTs1EV7czWAkHvbIhGBBAR AgAGBQI6hHsZAAoJEC4gTJuLBr51aD0AoKVQAAjIJ/ZUeqDXcStPYVEjXbQqAJ9w dU4rJbpmPzrDNxVjA/XsxpCAQLQjS3JpcyBLZW5uYXdheSA8a3Jpc0BvYnNlY3Vy aXR5Lm9yZz6IVwQTEQIAFwUCOnIVKwULBwoDBAMVAwIDFgIBAheAAAoJEFq8tAVo 6ECluiEAn1rxQ3Zytp5ewztR0Nx3WZ0PZ8j0AKCvalnlLFWNZvDg9+WHRU8rSy2r +YhGBBARAgAGBQI6hHsZAAoJEC4gTJuLBr51hQAAn35wVfmGgyJGaK7SymU8I9tI GuDNAKCLXoshUwSFXMKcgnGh2WU54FVLWIhGBBARAgAGBQI7r66jAAoJEIwyjP8W BtuVa94AoIcrbj8nl78EMmq4npDs7k7hdJR5AKCYkC2kiIaCwaNyWFOJYeVfTBfO mIkBFQMFEDuvruhnwoCPM8FiewEBQB0H/AnWue1FzgheVvRhdIIWszOvgamNjkum OxbaWFdTOzYkunMDq7zHEP3Z05ZbP8QnfHaXyH0/Dr0Vz2/6W+EMLlW1PXWKJhrz F6GwxvzZpvPmuZkxmngvS/evDVaibXcLSw35mIgRSu18DPb/LxxfBQ6pjMkEBTco +55cgCISAHjGrtlJUZZA8M33Mpbm1Mn62x6tM9jHG9n2Yhyxx4ME9C0PzjywG5DY XaYT1c1WdcO1HrNMbgFch2E7bo/V8IvSsAu198aRXMgmqgi4ZYQI8Wq4XBVIVmMk TZ7bIRvvj6MHqiSk8eIQQL5fNEioUSuPtx1XhaG8M04Er0OFyn/5psa5Ag0EOH6Z XRAIAPZCV7cIfwgXcqK61qlC8wXo+VMROU+28W65Szgg2gGnVqMU6Y9AVfPQB8bL Q6mUrfdMZIZJ+AyDvWXpF9Sh01D49Vlf3HZSTz09jdvOmeFXklnN/biudE/F/Ha8 g8VHMGHOfMlm/xX5u/2RXscBqtNbno2gpXI61Brwv0YAWCvl9Ij9WE5J280gtJ3k kQc2azNsOA1FHQ98iLMcfFstjvbzySPAQ/ClWxiNjrtVjLhdONM0/XwXV0OjHRhs 3jMhLLUq/zzhsSlAGBGNfISnCnLWhsQDGcgHKXrKlQzZlp+r0ApQmwJG0wg9ZqRd QZ+cfL2JSyIZJrqrol7DVekyCzsAAgIIAJ0sC3USd4/7JuScntlGrqL71IFH0Vj1 r6jMSitZyLrL++eDASLf1rFOPDGJMvOGhrV9CvhUvsyLFI1fwoPmwp6pmZv5BU43 MgSbGKYIgkCZ2pGBYg5sTl4iiy8A8Vp4EqrUQhhk1lk1Hy6+Xy+wB4uFIRKuvRiB wGd4MXjfBtzg9vL4tj31kAG0KZ0R92U9qiWkbmAgBHB2wbw+WV45hYNA2Xuurn+S WjSCHrQr08SP966Cl7j96BiOFFg+gJpfjmQTrvB+WuPe7wT4xEQ4Tv2/vTVgO4q9 c84Bi2/Rc+N75MC0MOp+0BVa00cD8DsQBHMFlwea1GikqzDUIcfQb66ITAQYEQIA DAUCOH6ZXQUJAeEzgAAKCRBavLQFaOhApc4CAJ9ZFjZXo1Lex1rHoXZH+LgxlekQ xQCfdkWHAEkV6UyZ98vsnu/ZlHcDwo6ITAQYEQIADAUCOmFZxAUJBaUnZwAKCRBa vLQFaOhApcsjAKCcLm6aVjFIGQxluSHDt/OT41pPEACg0shCNM43tvfaRfzrgDb5 8fGalkiITAQYEQIADAUCOmM/7AUJC0qoDwAKCRBavLQFaOhApZDuAKDZcYc9bnZl iPF6/kmr9BBQtr2aUQCfb2ycB69cTi+09jXD31k8PffbIis= =nTL1 -----END PGP PUBLIC KEY BLOCK-----
<keramida@FreeBSD.org>
pub 1024D/318603B6 2001-09-21 Key fingerprint = C1EB 0653 DB8B A557 3829 00F9 D60F 941A 3186 03B6 uid Giorgos Keramidas <keramida@FreeBSD.org> uid Giorgos Keramidas <keramida@ceid.upatras.gr> uid Giorgos Keramidas <keramida@hellug.gr> uid Giorgos Keramidas <keramida@linux.gr> uid Giorgos Keramidas <gkeramidas@gmail.com> sub 1024g/50FDBAD1 2001-09-21
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<fjoe@FreeBSD.org>
pub 1024D/6B87E212 2009-02-17 Key fingerprint = 124D EC6C 6365 D41A 497A 9C3E FCF3 8708 6B87 E212 uid Max Khon <fjoe@FreeBSD.org> uid Max Khon <fjoe@samodelkin.net> sub 2048g/CB71491D 2009-02-17
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<manolis@FreeBSD.org>
pub 1024D/6E0FB494 2006-08-22 Key fingerprint = F820 5AAF 7112 2CDD 23D8 3BDF 67F3 311A 6E0F B494 uid Manolis Kiagias <manolis@FreeBSD.org> uid Manolis Kiagias <sonicy@otenet.gr> uid Manolis Kiagias (A.K.A. sonic, sonicy, sonic2000gr) <sonic@diktia.dyndns.org> sub 2048g/EB94B411 2006-08-22
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<jkim@FreeBSD.org>
pub 2048R/D932A1CE 2012-11-19 Key fingerprint = 2202 B5FB 78B7 A303 4919 B7C7 25E9 69B1 D932 A1CE uid Jung-uk Kim <jkim@FreeBSD.org> sub 2048R/41858FC6 2012-11-19
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBFCqm1kBCADdoV45Z2rQ1wOqE1kuEJah67+nsKRI13YlHvg1ILW72ny/Ku+p +CT7E0ZpIxYUwc1P6KmheCXq234wRjmSZ7/krDHdFezT2ZUiwRZlWnnDjEIpzxok m92W18Qi7o8CMTou3iTKtTVq/c2R5TcrcC8y/TACXPFABhpHNngmIbIrQGUsHifE YuJwiETr8s76HhdJwtZIWPGSjFW+Yl817e9X0Pa4A1/Y3bsA/KNmZW+CIkv/zy5k g8wpGomR+JrLdt+5MUziZA8gqCJycZa640RUGAF3QtdMHd2t1/ERQx/wje0LXBdD p+0fG5b9IUH/UBtT4OJr3WjNJr7Lufz2KElPABEBAAG0Hkp1bmctdWsgS2ltIDxq a2ltQEZyZWVCU0Qub3JnPokBOAQTAQIAIgUCUKqbWQIbAwYLCQgHAwIGFQgCCQoL BBYCAwECHgECF4AACgkQJelpsdkyoc6sbwf/YC84nBelpcachGrIhPV4DLcvCA4e T5e1G5WN6WWehpio7yMoM3G4TbTvrDpzrlFIIYxVKEyNRxfRLKeKIDjb4S/vzVbY nH8kuwYSlaVSmHOzu9fwfgiceElKMukVbQRTOBa3e8JLxoRG3A1TCo6AZXMY+PnN 8UIWHbrwjyqOprXlZMC7BLyE5cu7oEHWpiwkXIuy3FJzfs06yzPSxH6DNGJSFZVk oHReo8fUBMs1Imn6w1DrDunepan88WAhRTQjM0kM0MrWI8oEnhtoYwWSm9FMpwK/ mdcdxTMuak4+GqKgZiOj02vMzqRYYEijCrUx4dKsU6SGJ6SMNJd01ETu/YhGBBMR AgAGBQJQqpyZAAoJEJpWstW/ap1TgYcAoM4MdE4GFn11n3b0nrEA+LzYQgDlAJ9j 0YnyI/0Il/zsgOuXLvt8+MeJSrkBDQRQqptZAQgApPIqqTzBVG6NukFvKzak0CrC 4zrsRfUGskoYXQTqdeM+ajRdZ/zMebcFdut/RDwJhPMJ4UV8HfGGwhae0Yy/qWs2 9NoNsmhicj+jrrSZLYsnjrnDqCjJ6wLHOEKhcPd9e/J3QdUlfI3tll+i1eqvr2xW kd+ct6IownrdvEhBzQsEQBgJYKy+pQ0KqAoJ9x5bnRN8dXzdq8o1FoVEN6zXNeGt n7TT9xMDMyJeItlvOOQyDr30Ne0vBBlPKJX7oiqEri/N4CeIDhUS6fd6qk9/ENwI jEThKJB1xJFzXWKpeZ9XsxPVSJn7KpBiiWYhh3Bphs+oitaTntpo3GYWfyzf+QAR AQABiQEfBBgBAgAJBQJQqptZAhsMAAoJECXpabHZMqHO6KkH/R1KWRN+t6zZRJ7h Xkf39iZ7DgentWwnSjKTUryPsUrr2IliFo/z2vef3dlV+RxoTIvK38Tj6hcN8KtS YSdCDuQrmGg6x6JzoO0RnFhZz753JqMVCeWnLKcUZXd2j3fanOAE/vvvYFFS5aq2 KYb99fj3Cf6q9TkRIKpjD4/P1XBcOrmrJLbsWAqNhESCFlTgXdTF0hdsRsoelebw watpgAdCNH6aPbx7DjAyVI6HxNODbWrwFGOxRRJvmP5dyGOD+LuFNJtmjJKwrZK7 ODRzrEZSW7T0Ghor/LWs8r7UDP9HWibxLF5K6Vsgh78ncA9PHxDsXGIMbgkynyfm ONweM/o= =cRAI -----END PGP PUBLIC KEY BLOCK-----
<zack@FreeBSD.org>
pub 1024D/1A725562 2010-11-05 Zack Kirsch <zack@freebsd.org> Key fingerprint = A8CC AA5E FB47 A386 E757 A2B8 BDD2 0684 1A72 5562 sub 1024g/6BFE2C06 2010-11-05
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<jceel@FreeBSD.org>
pub 2048R/2AAEA67D 2011-09-27 Key fingerprint = 40D6 097A 174F 511B 80EB F3A3 0946 4193 2AAE A67D uid Jakub Klama <jceel@FreeBSD.org> sub 2048R/5291BC4D 2011-09-27
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBE6BwQkBCACllA3LvksIethpx05Q3MwzG/bAcPBlclrl/tRlPtPGYqYlSfRc iVWKzOHq7k9+vVkaMmGwCyjj7/AE4vw2MPWCKODX2awW7xG7mcHWUZBYBcK4b+Wp 2kpUrxyeZwSmzdqj3p4t9vSyY9njTNkRaJ3B1ozlEx+8vq3SgFHZFglHjuyyDi0R S8jMIXrHJb3mhnTABRh90vIj0eHHsuq75YwnWdBNyFU8t50zT/mshUCGlX7UWqEX WhsXXlqNqcFRW/AGpqwj8lHcLC7SyrNB8wu37L+duIqcmnTeT6aOjHc57Zle8Jdj EtUVtRoJ4txRnHLQM3B4sZ7ybP3sCTMnPzV/ABEBAAG0H0pha3ViIEtsYW1hIDxq Y2VlbEBGcmVlQlNELm9yZz6JATgEEwECACIFAk6BwQkCGwMGCwkIBwMCBhUIAgkK CwQWAgMBAh4BAheAAAoJEAlGQZMqrqZ9C9wH+gJzw7uvpz5VwJRN3buK4n46v8qU YFQrWwGzVO0R5QMrFcN6x7FzZupLFx3BOih1ak3UPVyJ3fcMCORAHU1QkCnwCBnm IUNRGPwC2WvD0hiBcBXpe6BRbshyeWkvqaclnSvcOWUZP58gmJnLZjCs5ke+se/T gZgSTTuN7mMFCG7MA4EXcvtIX8VWXWVyXufXFdBQnQkuLtboetYE692063YUIslK URw53loB9jonBkZ2lWPkN6Q0HF/34HrP/Bw4ZZnYZ/gzfFhoQdrRxCBaK7R2TrJ2 kF2FSUtsCHJWgLq0cYygf4pCz7oYTt9x5IuubH4SDAjV65JgMic2RKkehE25AQ0E ToHBCQEIAMopCcGmuQPYBVgEcl1bEtwG87mJJzpTNBlOaE7JCUK7KSI+9qE5o5Tu jqFF39mu3Gr1kecsmtNNfCNW+ja9MtTatcnsMWMhZ5uNFUG3y2+Kotp1DEWTAZcM 9TnX9IrnyLQvyLVJT5LI4qEcsAYHrLyJMrCu7c53M+RVigvimniKvW0yBZECxqYv nq/b0BSJovmtdXnO3wHLgz3dDcMnOAgGNsMpBztoRjiC5ssSCEfnCMLXVjmOa6Ji kRL740TTNK1HK00Wk0pfi5NEiTq+XTyFg0ekeMZIIIRQZHkFFA/ThJoEvvOb9pv5 vkxifCjz0NFTecttnpVDSPWq77KYM7UAEQEAAYkBHwQYAQIACQUCToHBCQIbDAAK CRAJRkGTKq6mfXU6B/93a1Us9ESZfzwjg5kd2Rf9GtzJkEUlEKKJWkG7eK/6p3pr Qlrv2S4coikPCbasdxi4INbQbtDP44Hr6LNCRXB4VCeDbOA0W5H4hO4y1kWXbdTN X1pTXBPgj5kFe9lFQK9arHDgJsJaqKtDETlTmH/iI9xc51ZM5aeB4i963KixnPFy KFHjjAynTZSIMd8JXYul+kWpSSP5dckvW4G97PPoqbz4lsDUsgjf5Lg1lhThjlDz Jwm8yXz0fqORkB+wlEj1fsF5itmP+sG0YipncjFXGf/0ToggRucsSlDWBV7l9wBo HeAGT9bpY64DAhB5SLQBDphtBChiit4TJqkWVs/4 =Rt4u -----END PGP PUBLIC KEY BLOCK-----
<andreas@FreeBSD.org>
pub 1024D/6C6F6CBA 2001-01-06 Andreas Klemm <andreas.klemm@eu.didata.com> Key fingerprint = F028 D51A 0D42 DD67 4109 19A3 777A 3E94 6C6F 6CBA uid Andreas Klemm <andreas@klemm.gtn.com> uid Andreas Klemm <andreas@FreeBSD.org> uid Andreas Klemm <andreas@apsfilter.org> sub 2048g/FE23F866 2001-01-06
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<jkois@FreeBSD.org>
pub 1024D/DD61C2D8 2004-06-27 Johann Kois <J.Kois@web.de> Key fingerprint = 8B70 03DB 3C45 E71D 0ED4 4825 FEB0 EBEF DD61 C2D8 uid Johann Kois <jkois@freebsd.org> sub 1024g/568307CB 2004-06-27
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<sergei@FreeBSD.org>
pub 1024D/3BA53401 2003-10-10 Sergei Kolobov <sergei@FreeBSD.org> Key fingerprint = A2F4 5F34 0586 CC9C 493A 347C 14EC 6E69 3BA5 3401 uid Sergei Kolobov <sergei@kolobov.com> sub 2048g/F8243671 2003-10-10
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBD+GP80RBACjmIRFKqJ337zOjW51eExucWRny0pu5fuGaxuJmGSbKaJRAORU 1jx9i/Cxcw7iwrnbR5xeyjWLDb7FIAemPltBItt0tE9H4pQXgP8d8VL3eehguMda o0yfP7WUm3U9uriJEJ8141Yql5IR0e8isQa+YsYbkd2RmDdCMDdC3W0Q9wCgsquv jc1gvAh7ypvhk8VLhflAeZcD/jQclE6S2zLZ1DSP2Q5mmuMS2ouRV6Z+fbWKF9XF TSxdLevWcXmPqvsXFT75cz8pcBIw4c/wVd8OsPU2fd+1LZCFdms1PqLjhUfXgVbP Q1Pl8zCAyriSnR2+BDwUMGzEgidkTjmjlbwhGzPsSJ8rv4i18xYs/JbmkeAV/ZBA e6jrA/wMU3ho5aIJ69KxZb3bmPVHYrqL8Q3n51uYausLxdHDMxVvjL06VAGWbF/h TdiFJ1ngMKfcfzI5/awpKwb9FPbERuNvmT10MDKumFW3xSAJMRzxh7O61u8N7dmc xLdirICQMRN2jPo3v8T2ANsdydVTn89nqdpg4Bo9Rsz/Fdnrm7QjU2VyZ2VpIEtv bG9ib3YgPHNlcmdlaUBrb2xvYm92LmNvbT6IXgQTEQIAHgUCP4Y/zQIbAwYLCQgH AwIDFQIDAxYCAQIeAQIXgAAKCRAU7G5pO6U0ASlRAJ4mnVHx0rA5dhw0scFGOddP cH/w9wCdG6HPWlDpXFB5nkpQalMnGzLAkka0I1NlcmdlaSBLb2xvYm92IDxzZXJn ZWlARnJlZUJTRC5vcmc+iF4EExECAB4FAj+VJGgCGwMGCwkIBwMCAxUCAwMWAgEC HgECF4AACgkQFOxuaTulNAHJ7wCfbcMzZiTmwuTD7wLTxvzC35OQE1YAn3et7KAt aLZuVXYIDROr33RIlfcUuQINBD+GQA4QCACIrLJbs3SkUJpuvYC1N/iykFYGHKPM L+XCCK3A4HL6f+GyCpvajz62cjUfuXv/pkLjcYANnqKKPJu6Bj2rFmOG785R/RPD o2dl+zlZ0fggQAv8zZqIP2KyQRSVa44Pxc/G1V5odcg/QOcKU+FZrkRXoz8SqfDU OEfarQP687+DU+Th0Nwn5M20+0ml7yw0/y9DtggWXzlWyIdYfhU+8HckvzgXnUFA tPdfDUzUxEjvVBUwZ5iHtUlId6sHiiTCS/fbnRzwJA1Pu1E52B2AfsLxFrwV5cRC ASfi7IGhZazGCctqZi4hbWQCB/+ipEVGct+bD9BpW9yS/JiMAxcwE0ubAAMFB/9F k6mZUzBbxQkSbXP4w1VSxf2m/lIV9v9M0LCMwjmcsJzsdLUG/i3Zo+hAjT+GznMU DVzPHq55LiNs2MKC8WKHXgXFCB2uoZvlGu88I2JjucoeibtC7zbKmVOntuY55zTk uiGkGRawIIKC6oqVFV0EGXxrcJ6v3/0vgBQSva08reETZaUFe3ivt0rU0NSbhVJ0 1WiPXk9wFY0ccemUVmdcX4hhC0yyBB0px4qbEBY3+mtHpFVh/r24GXvWXkbLowGd nmKeigX/tlRyYgPHLM2goUHUYe0erbKp2fyeQhockLOWY0DBFcFRK2kSx9HYdtcI N45tvtkBza2O8C7uCtwgiEkEGBECAAkFAj+GQA4CGwwACgkQFOxuaTulNAGwbwCe P3RXUuqmNGYCM0IXPlop9XLZIcQAn1B9zRfHFJm7tgMI0A6Avybs7V8i =EDjf -----END PGP PUBLIC KEY BLOCK-----
<maxim@FreeBSD.org>
pub 1024D/2C172083 2002-05-21 Maxim Konovalov <maxim@FreeBSD.org> Key fingerprint = 6550 6C02 EFC2 50F1 B7A3 D694 ECF0 E90B 2C17 2083 uid Maxim Konovalov <maxim@macomnet.ru> sub 1024g/F305DDCA 2002-05-21
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<taras@FreeBSD.org>
pub 1024D/8ACCC68B 2010-03-30 Key fingerprint = 5128 2A8B 9BC1 A664 21E0 1E61 D838 54D3 8ACC C68B uid Taras Korenko <taras@freebsd.org> uid Taras Korenko <ds@ukrhub.net> uid Taras Korenko <tarasishche@gmail.com> sub 2048g/8D7CC0FA 2010-03-30 [expires: 2015-03-29]
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<jkoshy@FreeBSD.org>
pub 1024D/D93798B6 2001-12-21 Joseph Koshy (FreeBSD) <jkoshy@freebsd.org> Key fingerprint = 0DE3 62F3 EF24 939F 62AA 2E3D ABB8 6ED3 D937 98B6 sub 1024g/43FD68E9 2001-12-21
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<wkoszek@FreeBSD.org>
pub 1024D/C9F25145 2006-02-15 Key fingerprint = 6E56 C571 9D33 D23E 9A61 8E50 623C AD62 C9F2 5145 uid Wojciech A. Koszek <dunstan@FreeBSD.czest.pl> uid Wojciech A. Koszek <wkoszek@FreeBSD.org> sub 4096g/3BBD20A5 2006-02-15
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<ak@FreeBSD.org>
pub 2048R/0D1D29A0 2012-03-01 [expires: 2024-02-27] Key fingerprint = 7774 4FCF 6AC9 126B BD0E DBF3 5EBF 4968 0D1D 29A0 uid Alex Kozlov <ak@freebsd.org> sub 2048R/2DD82C65 2012-03-01 [expires: 2024-02-27]
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<skreuzer@FreeBSD.org>
pub 1024D/E0D6F907 2009-03-16 [expires: 2013-04-25] Key fingerprint = 8D8F 14D6 ED9F 6BD0 7756 7A46 66BA B4B6 E0D6 F907 uid Steven Kreuzer <skreuzer@exit2shell.com> uid Steven Kreuzer <skreuzer@freebsd.org>
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<gabor@FreeBSD.org>
pub 1024D/2373A6B1 2006-12-05 Key fingerprint = A42A 10D6 834B BEC0 26F0 29B1 902D D04F 2373 A6B1 uid Gabor Kovesdan <gabor@FreeBSD.org> sub 2048g/92B0A104 2006-12-05
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<anchie@FreeBSD.org>
pub 2048R/510D23BB 2010-04-18 Key fingerprint = 0A9B 0ABB 0E1C B5A4 3408 398F 778A C3B4 510D 23BB uid Ana Kukec <anchie@FreeBSD.org> sub 2048R/699E4DDA 2010-04-18
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<rik@FreeBSD.org>
pub 1024D/C8550F4C 2005-12-16 [expires: 2008-12-15] Key fingerprint = 25BB 789A 6E07 E654 8E59 0FA9 42B1 937C C855 0F4C uid Roman Kurakin <rik@FreeBSD.org> sub 2048g/D15F2AB6 2005-12-16 [expires: 2008-12-15]
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<rushani@FreeBSD.org>
pub 1024D/439ADC57 2002-03-22 Hideyuki KURASHINA <rushani@bl.mmtr.or.jp> Key fingerprint = A052 6F98 6146 6FE3 91E2 DA6B F2FA 2088 439A DC57 uid Hideyuki KURASHINA <rushani@FreeBSD.org> uid Hideyuki KURASHINA <rushani@jp.FreeBSD.org> sub 1024g/64764D16 2002-03-22
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<kuriyama@FreeBSD.org>
pub 1024D/FE3B59CD 1998-11-23 Jun Kuriyama <kuriyama@imgsrc.co.jp> Key fingerprint = 5219 55CE AC84 C296 3A3B B076 EE3C 4DBB FE3B 59CD uid Jun Kuriyama <kuriyama@FreeBSD.org> uid Jun Kuriyama <kuriyama@jp.FreeBSD.org> sub 2048g/1CF20D27 1998-11-23
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<rene@FreeBSD.org>
pub 4096R/0A3789B7 2012-11-18 Key fingerprint = 101A 716B 162B 00E5 5BED EA05 ADBB F861 0A37 89B7 uid Ren�Ladan <rene@freebsd.org> sub 4096R/B67184C6 2012-11-18
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<jlaffaye@FreeBSD.org>
pub 2048R/6AEBE420 2011-06-06 Key fingerprint = 031A B449 B383 5C3B B618 E2F4 BAD0 0F0E 6AEB E420 uid Julien Laffaye <jlaffaye@FreeBSD.org> sub 2048R/538B8D5B 2011-06-06
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<clement@FreeBSD.org>
pub 1024D/0723BA1D 2003-12-13 Clement Laforet (FreeBSD committer address) <clement@FreeBSD.org> Key fingerprint = 3638 4B14 8463 A67B DC7E 641C B118 5F8F 0723 BA1D uid Clement Laforet <sheepkiller@cultdeadsheep.org> uid Clement Laforet <clement.laforet@cotds.org> sub 2048g/23D57658 2003-12-13
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<mlaier@FreeBSD.org>
pub 1024D/3EB6046D 2004-02-09 Key fingerprint = 917E 7F25 E90F 77A4 F746 2E8D 5F2C 84A1 3EB6 046D uid Max Laier <max@love2party.net> uid Max Laier <max.laier@ira.uka.de> uid Max Laier <mlaier@freebsd.org> uid Max Laier <max.laier@tm.uka.de> sub 4096g/EDD08B9B 2005-06-28
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<erwin@FreeBSD.org>
pub 1024D/15256990 1998-07-03 Key fingerprint = FB58 9797 299A F18E 2D3E 73D6 AB2F 5A5B 1525 6990 uid Erwin Lansing <erwin@lansing.dk> uid Erwin Lansing <erwin@FreeBSD.org> uid Erwin Lansing <erwin@droso.dk> uid Erwin Lansing <erwin@droso.org> uid Erwin Lansing <erwin@aauug.dk> sub 2048g/7C64013D 1998-07-03
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<martymac@FreeBSD.org>
pub 1024D/10B87391 2006-01-13 Key fingerprint = D59D 984D 8988 7BB9 DA37 BA77 757E D5F0 10B8 7391 uid Ganael LAPLANCHE <ganael.laplanche@martymac.org> uid Ganael LAPLANCHE <martymac@martymac.com> uid Ganael LAPLANCHE <ganael.laplanche@martymac.com> uid Ganael LAPLANCHE <martymac@martymac.org> uid Ganael LAPLANCHE <martymac@pasteur.fr> uid Ganael LAPLANCHE <ganael.laplanche@pasteur.fr> uid Ganael LAPLANCHE <martymac@FreeBSD.org> sub 2048g/D65069D5 2006-01-13
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<glarkin@FreeBSD.org>
pub 1024D/1C940290 2003-10-09 Key fingerprint = 8A4A 80AA F26C 8C2C D01B 94C6 D2C4 68B8 1C94 0290 uid Greg Larkin (The FreeBSD Project) <glarkin@FreeBSD.org> uid Gregory C. Larkin (SourceHosting.Net, LLC) <glarkin@sourcehosting.net> uid [jpeg image of size 6695] sub 2048g/47674316 2003-10-09
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<laszlof@FreeBSD.org>
pub 4096R/012360EC 2006-11-06 [expires: 2011-11-05] Key fingerprint = 3D93 21DB B5CC 1339 E4B4 1BC4 AD50 C17C 0123 60EC uid Frank J. Laszlo <laszlof@FreeBSD.org>
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<dru@FreeBSD.org>
pub 1024D/C6AA2E94 2013-01-22 Key fingerprint = 6CC4 2180 F27C 29B6 5A9C EC0D A454 DC05 C6AA 2E94 uid Dru Lavigne <dru@freebsd.org> sub 1024g/7FAC82EA 2013-01-22
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<lawrance@FreeBSD.org>
pub 1024D/32708C59 2003-08-14 Key fingerprint = 1056 2A02 5247 64D4 538D 6975 8851 7134 3270 8C59 uid Sam Lawrance <lawrance@FreeBSD.org> uid Sam Lawrance <boris@brooknet.com.au> sub 2048g/0F9CCF92 2003-08-14
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<njl@FreeBSD.org>
pub 1024D/60E5AC11 2007-02-07 Key fingerprint = 18E2 7E5A FD6A 199B B08B E9FB 73C8 DB67 60E5 AC11 uid Nate Lawson <nate@root.org> sub 2048g/CDBC7E1B 2007-02-07
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<jlh@FreeBSD.org>
pub 2048D/8BF6CF92 2012-04-18 Key fingerprint = 66C9 B361 16CA BFF6 5C07 DA0A 28DE 3702 8BF6 CF92 uid Jeremie Le Hen <jeremie@le-hen.org> uid Jeremie Le Hen <jeremie@lehen.org> uid Jeremie Le Hen <ttz@chchile.org> uid Jeremie Le Hen <jlh@FreeBSD.org> sub 2048g/045479A3 2012-04-18
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<leeym@FreeBSD.org>
pub 1024D/93FA8BD6 2007-05-21 Key fingerprint = DEC4 6E7F 69C0 4AC3 21ED EE65 6C0E 9257 93FA 8BD6 uid Yen-Ming Lee <leeym@leeym.com> sub 2048g/899A3931 2007-05-21
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<sam@FreeBSD.org>
pub 1024D/BD147743 2005-03-28 Key fingerprint = F618 F2FC 176B D201 D91C 67C6 2E33 A957 BD14 7743 uid Samuel J. Leffler <sam@freebsd.org> sub 2048g/8BA91D05 2005-03-28
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<jylefort@FreeBSD.org>
pub 1024D/A3B8006A 2002-09-07 Key fingerprint = CC99 D1B0 8E44 293D 32F7 D92E CB30 FB51 A3B8 006A uid Jean-Yves Lefort <jylefort@FreeBSD.org> uid Jean-Yves Lefort <jylefort@brutele.be> sub 4096g/C9271AFC 2002-09-07
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<netchild@FreeBSD.org>
pub 1024D/72077137 2002-01-31 Key fingerprint = AA3A 8F69 B214 6BBD 5E73 C9A0 C604 3C56 7207 7137 uid Alexander Leidinger <netchild@FreeBSD.org> uid [jpeg image of size 19667] sub 2048g/8C9828D3 2002-01-31
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<ae@FreeBSD.org>
pub 2048R/10C8A17A 2010-05-29 Key fingerprint = E659 1E1B 41DA 1516 F0C9 BC00 01C5 EA04 10C8 A17A uid Andrey V. Elsukov <ae@freebsd.org> uid Andrey V. Elsukov <bu7cher@yandex.ru> sub 2048R/0F6D64C5 2010-05-29
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<lesi@FreeBSD.org>
pub 1024D/96C5221F 2004-08-18 Dejan Lesjak <lesi@FreeBSD.org> Key fingerprint = 2C5C 02EA 1060 1D6D 9982 38C0 1DA7 DBC4 96C5 221F uid Dejan Lesjak <dejan.lesjak@ijs.si> sub 1024g/E0A69278 2004-08-18
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<achim@FreeBSD.org>
pub 2048R/2E15B3C1 2013-01-22 Key fingerprint = 2A48 0317 D477 2A07 2AD9 CF1C 7C1D 832E 2E15 B3C1 uid Achim Leubner <achim@freebsd.org> sub 2048R/E275EF01 2013-01-22
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<cel@FreeBSD.org>
pub 1024D/8FFC2B87 2006-02-13 Key fingerprint = 6872 923F 5012 F88B 394C 2F69 37B4 8171 8FFC 2B87 uid Charles E. Lever <cel@freebsd.org> sub 2048g/9BCE0459 2006-02-13
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<glewis@FreeBSD.org>
pub 1024D/1BB6D9E0 2002-03-05 Greg Lewis (FreeBSD) <glewis@FreeBSD.org> Key fingerprint = 2410 DA6D 5A3C D801 65FE C8DB DEEA 9923 1BB6 D9E0 uid Greg Lewis <glewis@eyesbeyond.com> sub 2048g/45E67D60 2002-03-05
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<delphij@FreeBSD.org>
pub 1024D/CAEEB8C0 2004-01-28 Key fingerprint = 43B8 B703 B8DD 0231 B333 DC28 39FB 93A0 CAEE B8C0 uid Xin LI <delphij@FreeBSD.org> uid Xin LI <delphij@frontfree.net> uid Xin LI <delphij@delphij.net> uid Xin LI <delphij@geekcn.org> pub 1024D/42EA8A4B 2006-01-27 [expired: 2008-01-01] Key fingerprint = F19C 2616 FA97 9C13 2581 C6F3 85C5 1CCE 42EA 8A4B uid Xin LI <delphij@geekcn.org> uid Xin LI <delphij@FreeBSD.org> uid Xin LI <delphij@delphij.net> pub 1024D/18EDEBA0 2008-01-02 [expired: 2010-01-02] Key fingerprint = 79A6 CF42 F917 DDCA F1C2 C926 8BEB DB04 18ED EBA0 uid Xin LI <delphij@geekcn.org> uid Xin LI <delphij@FreeBSD.org> uid Xin LI <delphij@delphij.net> pub 2048R/3FCA37C1 2010-01-10 [expired: 2012-01-10] Key fingerprint = 27EA 5D6C 9398 BA7F B205 8F70 04CE F812 3FCA 37C1 uid Xin LI <delphij@delphij.net> uid Xin LI <delphij@gmail.com> uid Xin LI <delphij@geekcn.org> uid Xin LI <delphij@FreeBSD.org> pub 4096R/2E54AB2C 2011-12-05 Key fingerprint = D95C D3C3 8FA8 25C2 C62B 9FEA 0887 6D93 2E54 AB2C uid Xin Li <delphij@geekcn.org> uid Xin Li <delphij@delphij.net> uid Xin Li <delphij@FreeBSD.org> sub 4096R/7832B740 2011-12-05 sub 2048R/BC50FBB3 2011-12-05 [expires: 2013-12-05] sub 2048R/C894647D 2011-12-05 [expires: 2013-12-05]
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<avatar@FreeBSD.org>
pub 1024R/F4013AB1 1998-05-13 Tai-hwa Liang <avatar@FreeBSD.org> Key fingerprint = 5B 05 1D 37 7F 35 31 4E 5D 38 BD 07 10 32 B9 D0 uid Tai-hwa Liang <avatar@mmlab.cse.yzu.edu.tw>
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<ijliao@FreeBSD.org>
pub 1024D/11C02382 2001-01-09 Ying-Chieh Liao <ijliao@CCCA.NCTU.edu.tw> Key fingerprint = 4E98 55CC 2866 7A90 EFD7 9DA5 ACC6 0165 11C0 2382 uid Ying-Chieh Liao <ijliao@FreeBSD.org> uid Ying-Chieh Liao <ijliao@csie.nctu.edu.tw> uid Ying-Chieh Liao <ijliao@dragon2.net> uid Ying-Chieh Liao <ijliao@tw.FreeBSD.org> sub 4096g/C1E16E89 2001-01-09
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<lulf@FreeBSD.org>
pub 1024D/ADE1B837 2009-08-19 [expires: 2014-08-18] Key fingerprint = 3822 B4E6 6D1C 6F71 4AA8 7A27 ADDF C400 ADE1 B837 uid Ulf Lilleengen <ulf.lilleengen@gmail.com> uid Ulf Lilleengen <lulf@pvv.ntnu.no> uid Ulf Lilleengen <lulf@stud.ntnu.no> uid Ulf Lilleengen <lulf@FreeBSD.org> uid Ulf Lilleengen <lulf@idi.ntnu.no> sub 2048g/B5409122 2009-08-19 [expires: 2014-08-18]
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<clive@FreeBSD.org>
pub 1024D/A008C03E 2001-07-30 Clive Lin <clive@tongi.org> Key fingerprint = FA3F 20B6 A77A 6CEC 1856 09B0 7455 2805 A008 C03E uid Clive Lin <clive@CirX.ORG> uid Clive Lin <clive@FreeBSD.org> sub 1024g/03C2DC87 2001-07-30 [expires: 2005-08-25]
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<pclin@FreeBSD.org>
pub 4096R/865C427F 2013-02-05 Key fingerprint = CF3B AB13 4C94 6388 B047 B599 8B28 1692 865C 427F uid Po-Chien Lin <pclin@FreeBSD.org> uid Po-Chien Lin <linpc@cs.nctu.edu.tw> sub 4096R/F31280BA 2013-02-05
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<yzlin@FreeBSD.org>
pub 2048R/A34C6A8A 2009-07-20 Key fingerprint = 7E3A E981 BB7C 5D73 9534 ED39 0222 04D3 A34C 6A8A uid Yi-Jheng Lin (FreeBSD) <yzlin@FreeBSD.org> sub 2048R/B4D776FE 2009-07-20
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<linimon@FreeBSD.org>
pub 1024D/84C83473 2003-10-09 Key fingerprint = 8D43 1B55 D127 0BFC 842E 1C96 803C 5A34 84C8 3473 uid Mark Linimon <linimon@FreeBSD.org> uid Mark Linimon <linimon@lonesome.com> sub 1024g/24BFF840 2003-10-09
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<arved@FreeBSD.org>
pub 1024D/807AC53A 2002-06-03 [expires: 2013-09-07] Key fingerprint = A92F 344F 31A8 B8DE DDFA 7FB4 7C22 C39F 807A C53A uid Tilman Keskin繹z <arved@arved.at> uid Tilman Keskin繹z <arved@FreeBSD.org> sub 1024g/FA351986 2002-06-03 [expires: 2013-09-07]
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<dryice@FreeBSD.org>
pub 1024D/77B67874 2005-01-28 Key fingerprint = 8D7C F82D D28D 07E5 EF7F CD25 6B5B 78A8 77B6 7874 uid Dryice Dong Liu (Dryice) <dryice@FreeBSD.org> uid Dryice Dong Liu (Dryice) <dryice@liu.com.cn> uid Dryice Dong Liu (Dryice) <dryice@hotpop.com> uid Dryice Dong Liu (Dryice) <dryiceliu@gmail.com> uid Dryice Dong Liu (Dryice) <dryice@dryice.name> sub 2048g/ECFA49E4 2005-01-28
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<nemoliu@FreeBSD.org>
pub 1024D/ECC7C907 2007-07-10 Key fingerprint = B62E 3109 896B B283 E2FA 60FE A1BA F92E ECC7 C907 uid Tong LIU <nemoliu@FreeBSD.org> sub 4096g/B6D7B15D 2007-07-10
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<zml@FreeBSD.org>
pub 1024D/4D65492D 2009-05-26 Key fingerprint = E513 4AE9 5D6D 8BF9 1CD3 4389 4860 D79B 4D65 492D uid Zachary Loafman <zml@FreeBSD.org> sub 2048g/1AD659F0 2009-05-26
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<nox@FreeBSD.org>
pub 1024D/1B6BFBFD 2006-12-22 Key fingerprint = 33A7 7FAE 51AF 00BC F0D3 ECCE FAFD 34C1 1B6B FBFD uid Juergen Lock <nox@FreeBSD.org> sub 2048g/251229D1 2006-12-22
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<remko@FreeBSD.org>
pub 4096R/3F774079 2012-11-11 [expires: 2016-11-11] Key fingerprint = 7EE4 C4AF DCA3 E0B4 479B A344 7135 8ED6 3F77 4079 uid Remko Lodder <remko@FreeBSD.org> sub 4096R/59F38CB0 2012-11-11 [expires: 2016-11-11]
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<avl@FreeBSD.org>
pub 1024D/1C47D5C0 2009-05-28 Key fingerprint = 8B5F 880A 382B 075E E707 9DB2 E135 4176 1C47 D5C0 uid Alexander Logvinov <alexander@logvinov.com> uid Alexander Logvinov (FreeBSD Ports Committer) <avl@FreeBSD.org> uid Alexander Logvinov <ports@logvinov.com> uid Alexander Logvinov <logvinov@gmail.com> uid Alexander Logvinov <logvinov@yandex.ru> sub 2048g/60BDD4BB 2009-05-28
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<issyl0@FreeBSD.org>
pub 4096R/EB83C2BD 2009-09-26 Key fingerprint = D55A 42E7 0974 EFD9 3939 56B9 6E6B E425 EB83 C2BD uid Isabell Long <isabell@issyl0.co.uk> uid Isabell Long <me@issyl0.co.uk> uid Isabell Long <isabell121@gmail.com> uid Isabell Long (BitFolk Ltd.) <isabell@bitfolk.com> uid Isabell Long (College) <IL18685@woking.ac.uk> uid Isabell Long (The Open University) <il948@my.open.ac.uk> uid Isabell Long (Mailing lists address.) <lists@issyl0.co.uk> uid Isabell Long (YRS) <isabell@youngrewiredstate.org> uid Isabell Long (FreeBSD) <issyl0@FreeBSD.org>
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<scottl@FreeBSD.org>
pub 1024D/017C5EBF 2003-01-18 Scott A. Long (This is my official FreeBSD key) <scottl@freebsd.org> Key fingerprint = 34EA BD06 44F7 F8C3 22BC B52C 1D3A F6D1 017C 5EBF sub 1024g/F61C8F91 2003-01-18
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<rmacklem@FreeBSD.org>
pub 1024D/7FB9C5F1 2009-04-05 Key fingerprint = B9EA 767A F6F3 3786 E0C7 434A 05C6 70D6 7FB9 C5F1 uid Rick Macklem <rmacklem@freebsd.org> sub 1024g/D0B20E8A 2009-04-05
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEnY+RIRBAClGSwgcIr4i7G4CYEa2cBHRC2UOB75/AXFqxmzAOcype8WInbX f4xLBa63VMoM7eis27BouVRcHI64oREIL9yvvMPwRD2ZINY5UD/zkls7fw9F2NyJ AgntQEPRDkk14AEiIX5uvB3l+JyKmbMNpJuhrKpbxc5qvaDTgD02y9TurwCgguAy pMVQu2mtVccXkSb7WEh95SkD/0jTFzDTcuowbxALrPgQtlGEXo7RYLPIFxTI748F h8Tgra3flWp2QPAnWBJEzrz+9rl8wqQ2ddb9IydwtY49BjKIrXhj2Lh+8l/1oDKr RXzRbNH/lGHhmphW42DgM9mOCCoSWugUEu458I89FjuoncdBiDdi7HUxPy/rZ5MA tnRRBACWL22M5MPfD9dl9SHvnoBz47nwlBeg0Oxl22oNfiyTQdJ1q+g/wGpDPAll eqs3Svky7gj+f5375K/DEYaeFSRynXeetpdqpkBDlp4mRdDGcpd/4ImAx6deQTXo EraidVlZ0Fjr5cP+mFzoI41LAhTJa/VUoUkMxq+gJAsXsSF39LQjUmljayBNYWNr bGVtIDxybWFja2xlbUBmcmVlYnNkLm9yZz6IWQQTEQIAGQUCSdj5EgQLBwMCAxUC AwMWAgECHgECF4AACgkQBcZw1n+5xfFFBQCfbFJpzSEXUgmoEl4RBgoPNzu9SOgA mwW8fBCx0RDGfho/8S/PjZLQ38JCuQENBEnY+RYQBADMlW1YS4ZhBh4PCOXTJsjT Vda2DEn1W+2BzZw9j/DFAFjm0U05rlEsfz584Y/SLlPNbCZ979//3K7XxicRw7zm E1Mzahy2jrmGGJv2GfAZ+YyJPGA/xndNA3/ocT1x03LMWNbZwFBe4Kk5ShoqPgl3 cO28w3TJUnrUZyo+h3WhpwAEDQQAkwVB18LmtI0CW4H0/jMgiz5B0z3yZdlinbif +EEFHhhdp1tXtxA/jyp3FsW7hOlGXQi/tACcxJ2UBcYAZh03+x7bUMnJpisPDnJ3 UilCuwk5cAkQmGeAQ7ukNNBwVhJ0ZfW7p2lZ2RwW7zSjPK7RMW1EL4Scwpey/ojb Tv9fVXmIRgQYEQIABgUCSdj5FgAKCRAFxnDWf7nF8WUfAJ0TTs+DTEkwHeE4mHAA CqfpXJXMhACggkoKIIAH+lHNqv3Uy9q5RFd8t3I= =F39a -----END PGP PUBLIC KEY BLOCK-----
<bmah@FreeBSD.org>
pub 1024D/5BA052C3 1997-12-08 Key fingerprint = F829 B805 207D 14C7 7197 7832 D8CA 3171 5BA0 52C3 uid Bruce A. Mah <bmah@acm.org> uid Bruce A. Mah <bmah@ca.sandia.gov> uid Bruce A. Mah <bmah@ieee.org> uid Bruce A. Mah <bmah@cisco.com> uid Bruce A. Mah <bmah@employees.org> uid Bruce A. Mah <bmah@freebsd.org> uid Bruce A. Mah <bmah@packetdesign.com> uid Bruce A. Mah <bmah@kitchenlab.org> sub 2048g/B4E60EA1 1997-12-08
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<rm@FreeBSD.org>
pub 2048R/F60D756F 2011-11-10 Key fingerprint = 9D18 8A88 304C B78B 8003 0379 4574 0BAF F60D 756F uid Ruslan Mahmatkhanov <rm@FreeBSD.org> sub 2048R/B658C269 2011-11-10
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBE67bzoBCAC/blN8XOxBx7pBlsAAwFJgxYOSYCw4fTFMoyoUBWEHuq0LcNIn BO4CqVyCiWcwMl/cLIh/1OHLjpU9orNrMSnJGdCvB2FAFYNm204ZMi3guRMe5xXZ zvxSa0v6zQtTRCEs5ny44XryxbZkPE5GGgyd4+sZVAcW65SX8hbmoIvL3v33Fq1w eom0nYBxU1EDIwZMl09FWaL02vBvlbSh3CYvmDTS6WD2t1ItDxhUG06+zoJs2YCb 6f+iUk3ZLYon06aX3VB3lmT6ffSdAEX6uT4V5NJ0B60xhQP7WAEmSm9ScbnFIme2 jpZcun5TKywwm7OSyOk36Z3EQyyxOSHRNJ3nABEBAAG0JFJ1c2xhbiBNYWhtYXRr aGFub3YgPHJtQEZyZWVCU0Qub3JnPokBOAQTAQIAIgUCTrtvOgIbAwYLCQgHAwIG FQgCCQoLBBYCAwECHgECF4AACgkQRXQLr/YNdW96jgf+Kyc7hvCTNlkisTOAYZ9+ 9n85WGcPLO+vyZJ6xlP41V02opzCjCVrddz3t4sq7eCFw7DTSIFovC6Cw7rAWgx5 pa2idb6fhk/DMUwpd9I9CG9dm41WBWVkxRV3KMYyF2TYwH7VgL8KdvX1C7ZkD39V NKWHcSPwWxCEnrvfcGZz+wOHeZytSeC4Gpd4sEnAVj0HjulLXmF4YHN/cNy9Zl52 +Pt1iSzjV5WJ9ywbruhOxQ7B8q9DQDveWdtSMbaZNzW8JHlj+gy8Ww/UvdsesjQu NE6Tc+QPIigBsx+MTbAwByDY6xj9OOCGNPeAxQFjNpz+iRS3Yuz04VxMy+z3cD5t YrkBDQROu286AQgA5FORCn/VS3x+aUO0zAHm/WmTJZFRxrmdkDexFZgxuHjidGUU fbGzvyu/1fRtft/3Np/M4aRpSI96qbYXLyCeJgQjNp36YRKqJkBiPBDQ9QLZpP6L nJn/NzF6/5pKLt+Sg3SdOV1x/4t+tkmcMa2+Y+yEjd9YWE67Cc5RevfO1As4B00v jFTl5LWxOc2kzVoB4OxxOLCdj/2zkIyxEPe4z/KswGDQsmsAfivHVcT1Kpas6Jr+ sxCwZhSNy/BSuYtwHqGV8xw8vZlJkrOIn25StwW7hVf1oNYQnwTSBRwGnU8WVsqH /2VfIatSzoJ9L5EzoVjkgNxQ+9T5xrqf8G2ddQARAQABiQEfBBgBAgAJBQJOu286 AhsMAAoJEEV0C6/2DXVvDjcH/1/sV6J33aR2Wk4fT8ChWWuUl3Dx7CnDUuCvKo/v oppP/bW473lbV+AlbG8WUpsCUqKy5WkU4uHjSfp3F1UAPDBTU0lgcj30jr13sGLH n4+WReFFZfDIwIBWNHqbLmPHEG2jItF7ssxL/nsYqTo1UWsI+3fToJX98Irz0PXL mX0e8pWdDe+pR34OcYDRB6Fe17cKE/5wpVSvd3+YZ7AYuq5wxfwvZVdOhcXSnWS0 ksMRQMkG5A6BEY0ZpAZWNwRO1TcVqEJC4L6ujls1/sZEOIKSDj9UU1OC4tQYAsx2 /yW99HFkq/4I+yL4zFzmqPug4j3GXKkNGqFNmExVys5uXv4= =Ykam -----END PGP PUBLIC KEY BLOCK-----
<mtm@FreeBSD.org>
pub 1024D/7CD41F55 2004-02-06 Michael Telahun Makonnen <mtm@FreeBSD.Org> Key fingerprint = AC7B 5672 2D11 F4D0 EBF8 5279 5359 2B82 7CD4 1F55 uid Michael Telahun Makonnen <mtm@tmsa-inc.com> uid Mike Makonnen <mtm@identd.net> uid Michael Telahun Makonnen <mtm@acs-et.com> sub 2048g/E7DC936B 2004-02-06
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEAj2wYRBACHexVRaQ9QldEPYx/ukn2dcSi1H0ZFByRZvdB4ukm+z4FxfhWt mw9gaq88mWLySchgnv7tkJDVGeZa4PLxDTdOpnEC1dDcjOCJiHAlo6gmBKGSP4hn h5XfpEvyS8EQqbMD47CBAYstj9upnLYwpGYfU8x72tUUaJv9+mww9MC1gwCg5xYP /iBwPb87nkOdB93/pQnxLW8D/iGeIKt0Zw602CTQvNnFjB/0RcO3JpwU7wn0ptCr 5/1OAKWEyYGfHGt6DZtNPzRLJBXmLmlYpCXDn7ZB48sz4Xgrf+05j0/lPHsAdrPK OKCz/CJR/aGIPPTLQNTbMWg3pL47F+cfFhDwgQ8yzzYdQZlyDSv3ANPm+YZQKXKr LhwLA/4mX5+hW2ntcnPXUOfnya6/KIufDBqjl620heB6cbrFLv9IcqVvDiVfICYH jluYx+wqtKMVLa35fs5nF1Qv+wLelLjay+YdlYpeCCG5MzA3w5WJOK28vk5uAaDi 1rSep5ePi5ENmhiWRprvx4qPZef7MDWQ6rTR88781J/ENdV2JLQrTWljaGFlbCBU ZWxhaHVuIE1ha29ubmVuIDxtdG1AdG1zYS1pbmMuY29tPoheBBMRAgAeBQJAI/Zg AhsDBgsJCAcDAgMVAgMDFgIBAh4BAheAAAoJEFNZK4J81B9V7aQAn1mBnIqieZIE T0IJd3Lk168oZKodAKDVaBuIZerbQDHPIPaJUSrUAe1NUrQqTWljaGFlbCBUZWxh aHVuIE1ha29ubmVuIDxtdG1ARnJlZUJTRC5Pcmc+iGEEExECACECGwMGCwkIBwMC AxUCAwMWAgECHgECF4AFAkAj9w0CGQEACgkQU1krgnzUH1VdiQCfcLWbaIY470p+ h04RXpg+xQm4I5cAni9caDZovhablGxWXnMYcYADz7W/tB5NaWtlIE1ha29ubmVu IDxtdG1AaWRlbnRkLm5ldD6IXgQTEQIAHgUCQCP1xwIbAwYLCQgHAwIDFQIDAxYC AQIeAQIXgAAKCRBTWSuCfNQfVXYXAJ96JaLB3DA9YSZU6Aan4Sej2jb8NwCfTw0e Q3zx1z4ckf84ZHO6+U5tGeO0KU1pY2hhZWwgVGVsYWh1biBNYWtvbm5lbiA8bXRt QGFjcy1ldC5jb20+iF4EExECAB4FAkAj9jMCGwMGCwkIBwMCAxUCAwMWAgECHgEC F4AACgkQU1krgnzUH1VKpACdGThHL9XMCCm+XANPFsq8JJL7uPIAmQFoL7uMxJFX ZkmGhFi9jN2DadQsuQINBEAj2xEQCACtWPMKOwphtmOC82oyZf3PQRcyhd0BtDl3 P8EJg3fonvnZIKkiIdo5QMnFlCUd33lqkiLaduwk64SYBHHHkMGCtaViRC+1ukcA ehJuv7QaybNCpPUdXXA8MUm1MqSflIKI164OpoFNFHIC2aWG65QNaMOkbHLcAu17 5czXYMN9d5iXeZSur9DSrCLz0vRxjaWZ2ksr0jvijFasXsfydiCB0MXE3reZ8Yln koRIMCsLcPOGZVi/7Gn3FRWpCd0H9Z3UUVRAHLDfNySwI3+NqZWdUwk2gu/jZ7at 3b/PmGR12zHj2sL0OPg+f7rDSfOZfeR7YnM38McGhhd/XXg2+4yvAAMFCACSzNxE ibtE9JfVIBhA3UD4qE8jFug5Uy13/NM672gDr7lnPY3d3pZeVKWnWEqQQhrKF8Tl G6vOT/noCeTLO1Mcz+JeUY2WlTj5AGktehT2bLgV6PAGIUUP0zifqR47kx32b8qA ZSwTUqus1QFD9YIbSfqbZu17FLk4AN8BSeUfM6Ktq5nR26+5v8WqMsGfXPvZSGRG GqwTN94sW2B2GV2ep4OghClycSdl9CBfhawpaR1NjNXadtEWv0Ww8ctGfojR8Qoo SVWPeXcmMGIF84gnmzeCOdAZU2psqBJ5XCus9HArm09enyVReMxrWAgcKxroRK6V KzjDkeYkYI7PySStiEkEGBECAAkFAkAj2xECGwwACgkQU1krgnzUH1WPyACggAOh k3grQGtqSllXt/GlhTaCdogAn24UzgrsnW6yzrpNeoWcmyDFJ4nR =TuyI -----END PGP PUBLIC KEY BLOCK-----
<dwmalone@FreeBSD.org>
pub 512/40378991 1994/04/21 David Malone <dwmalone@maths.tcd.ie> Key fingerprint = 86 A7 F4 86 39 2C 47 2C C1 C2 35 78 8E 2F B8 F5
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<amdmi3@FreeBSD.org>
pub 1024D/F9D2F77D 2008-06-15 [expires: 2010-06-15] Key fingerprint = 55B5 0596 FF1E 8D84 5F56 9510 D35A 80DD F9D2 F77D uid Dmitry Marakasov <amdmi3@amdmi3.ru> uid Dmitry Marakasov <amdmi3@FreeBSD.org> sub 2048g/2042CDD8 2008-06-15
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEhVTssRBADF9Mfvn18A7k1V8XOzgZGrqf2jbzWMklD5IgPtziN2vla1gTk4 OuvL3aR52ZGE95LjD4iy52jNpAijefBhR/vmgF3IAuLTLXYJTFR5qck9nXNhO2hK OtS2yuzoUVEHUSENuj3WFieQJJGyyLZv88iAv85VSyhFqYWG4apkKMnJtwCgmMkC DWhsfLPvVSd+pDVGE7A38nED/3b4xN3fhfbmoa84s80GsVVRZaYLWmb+aWgTJatS y362CQkLjTAzO6G/6hVyEDJpJCJs81uEq61QZAiGBmru+vK16JNhQ0Ic5l2GBI+a VPcXm7O56Na8G1CVF32L0HePwflxl3hB+t6wR4OUj/Vy17Sz1+qjb2ixEUoaGw7r hagVBADCu8vNQkg/lplaSj5gz+aoaf8qyE9teS6yq9nZjHGWKa106NJlWtFIYJin X2FGpXJ8HCPMU10jDLFmgrYw6y1Tdb+hUhwd2MXXyvWZ5wY+j9PSN1p9Nii/N4Ak tu0impFfhzGPD2Fnn04xQ0BMtulqT/tNvirVZBraAiGcZXlzhrQlRG1pdHJ5IE1h cmFrYXNvdiA8YW1kbWkzQEZyZWVCU0Qub3JnPohmBBMRAgAmAhsDBgsJCAcDAgQV AggDBBYCAwECHgECF4AFAkhVYGkFCQPCeJ4ACgkQ01qA3fnS930PKQCeLA7oB70W N3cHh9wXFsa49it52mMAoJS21FFsCD2BkEyMiBPZ0dGF7yo7iGAEExECACAFAkhV T6sCGwMGCwkIBwMCBBUCCAMEFgIDAQIeAQIXgAAKCRDTWoDd+dL3fcmrAJkBW8ne ngKYN3trV8KemDfCdzbOJACfbGHkP1as9MXV4CfPKBOxLirwT1OIZgQTEQIAJgIb AwYLCQgHAwIEFQIIAwQWAgMBAh4BAheABQJIVVwVBQkFo6fKAAoJENNagN350vd9 JhkAnjJ33/8+hUAx//V6LfbBQKOTQI45AKCD5f3aw8qIijQTBfdcnI6cpga3SYhg BBMRAgAgAhsDBgsJCAcDAgQVAggDBBYCAwECHgECF4AFAkhVXOkACgkQ01qA3fnS 931VNQCfeOrFql3/Fn/ipRBXS2BaP2orubwAniIwTnODjmBSEa+NPXbA+WHUTVR5 tCNEbWl0cnkgTWFyYWthc292IDxhbWRtaTNAYW1kbWkzLnJ1PohpBBMRAgApAhsD BgsJCAcDAgQVAggDBBYCAwECHgECF4AFCQPCeJ4FAkhVYMwCGQEACgkQ01qA3fnS 933XmQCeOCTQYuvEkbBZBRmxqqqtjwTD1pMAoIbdfbVz52in24ws8rR3aqKEwcLc iGAEExECACAFAkhVTssCGwMGCwkIBwMCBBUCCAMEFgIDAQIeAQIXgAAKCRDTWoDd +dL3fd8aAJ0ZeDCt4wLmXKwmUReY18i73YkkowCfcNljbcOGtI+36MlO8uwC1Xhf g/2IZgQTEQIAJgIbAwYLCQgHAwIEFQIIAwQWAgMBAh4BAheABQJIVVwkBQkFo6fK AAoJENNagN350vd9XSEAnj5MNrTagKZ6x+tPpVybpg1m1JRkAJ4yjqDpLITy239m 4YdPgEpJDxlCNohgBBMRAgAgAhsDBgsJCAcDAgQVAggDBBYCAwECHgECF4AFAkhV XN0ACgkQ01qA3fnS931rwgCglmXVTHyg3qrLjNqWr8Rnv9BfGAUAn12fqUCfYaun jvLwWDxuk2vFkms6uQINBEhVTssQCADL4G5MUKbIROpcZnDNjMHsDKI78U01JOpR RVzN4v0rvECH0KsrR0zg0XI9/ljSC4KdqrOZyI1f4gTZ07XGMkaXRET4bfvcJE4d TUcYzGNdx6+uICWf7PJt/wc4SpdzK+SlskZO/MmgClUXl0YeuADBTXolnB0BTpAA dUM4Hy0jgXJoOZ5xj95+ejQU2BhrKEr6aSBrbCcZ9ToWLRAMAJwc239cOlQfX0ba dBu+FF9rPdsvi2cSy1ALis5fmjBkTDsNCOanxB4GMTdkIkNztNVnnuHyJplOoArD SdZJlps+McfLxPHKM6aN+iJY/ndL82bISlohJRxfv9K67ur+OKmXAAMFB/9hqaE0 vONs13OVlZMJGWYZND+WcVc4Q/WtiPBPy+8ZH+Fh1P60sZsJup/vcl5esdbrtaMd YASOh5nPhBRsSQ3Yr2F/acuXhTA2NT7ubbpYi1/PV10BgYvz4ijgnknNVGoRZOeR IlZE4ZmpYIXk56IbhjHFhOCHefNGNDVMF9xMwMcwO+nii+GfhfvaiSG34SnCRYyR SxcEudqunMPOJQdGqdRTlQLE3i+xDJk15VKWjUF4ZGIxVhG0aVepEDKXXFdFx5s0 ax7k+B7SQyP17+7sL8gGNjUpQYEdJLpxaB9gs0jF31Yh0tGHY2Yk4kb7U91gszAI m8q4owrHaOzUC4RViEkEGBECAAkFAkhVTssCGwwACgkQ01qA3fnS931r1wCfajgY wFcbQu8CJvmbDXSYZi5aFfwAoILimrxBtjaW0XbsHY9YfjAST2Q2 =6qxA -----END PGP PUBLIC KEY BLOCK-----
<kwm@FreeBSD.org>
pub 1024D/F95426DA 2004-09-10 Koop Mast <kwm@rainbow-runner.nl> Key fingerprint = C66F 1835 0548 3440 8576 0FFE 6879 B7CD F954 26DA uid Koop Mast <kwm@FreeBSD.org> sub 1024g/A782EEDD 2004-09-10
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.2.6 (FreeBSD) mQGiBEFCGHYRBACI9ERMi5j2009Juy2kpXS860i9tJJ10mM9TNuCZVYcPRRTiSWe Q+YySmBtR9TA3OZfd6BA9EqusEgcwUJpxjZ8zjGzirj/OjcPtKwM9ZO6dadeMNaE wT32bJDUw//2ky2xflJCsjg+TSO7PxQi3g/YEWfau6Istg8PKfzHQan0EwCgxwrV 6JijZQ85jIgQoceJjkwBLHsD+gKeeSUG7g2CO+NJf2d0tBj+l22QzmeAtlnuUskd nHKDAzzty80e4HXkUYw8IMueR7Fe2Tjx20OvVSkzMwiZYqevIJHVhiouCFZxYpSa JQHPYLpMXMVZ1X8d17tjbFRBXWmNrDcEhb4m3WoDKfQD/qbMCwBErsQ0t15dddnQ BVyqA/93dSzMYRC+Zm6Hzfk5Dz2MsvsxEE30ysSwFjIZ06RtYPKlN0x3ABCGba8f o5H0P6+gobJRLTQfK4xDS4J3G/d7TWO1bZGk9MPEzCJDexTt5yfKsY2jZRVRrikE fIbdSUgLnczBdUno5qC9IyMhGNa8O92GsjleDm7D+p+wkkoyCrQbS29vcCBNYXN0 IDxrd21ARnJlZUJTRC5vcmc+iF4EExECAB4FAkFCGHYCGwMGCwkIBwMCAxUCAwMW AgECHgECF4AACgkQaHm3zflUJtqlWgCfWKIRLzsvZjBjuck31Ep8sEDP0GgAn17m X0hYq8W+2gbHbmYeqIFefHs9tCFLb29wIE1hc3QgPGt3bUByYWluYm93LXJ1bm5l ci5ubD6IXgQTEQIAHgUCQUK9MgIbAwYLCQgHAwIDFQIDAxYCAQIeAQIXgAAKCRBo ebfN+VQm2sH2AKCnwIQ3C8+62/uQh05mqXqdzAaU8gCdEkRN+L9HY1OwFlSDi6Tc OAWLTPG5AQ0EQUIYdxAEAItGBQMO4f4rHYh9zc4fd62RhBfMHJpY1ex6HeiHt3pb i6KfBUai1zRYxgq9F+8qR9WgBLF1VhA4O0nCU9/FKOChc19W7xKa2auvE22Kq1ta xjCszahtPTDGIBs4K8u0fH/Gx4VSikQcfIGNd3IK4vALbLfH+iK/1RJNXPzQ9A4H AAMFA/4+UBNqZPucstZgmEwVB2H1Bt671fQqODpWj2eOMIYJWXKraUxdIjUqzm9K QhC7LBj9ihsn+LRsO49oWIAv5bks4zC0STACJ+Lx+FMb1i5ayAp/03DoZyrjRnGb SIY8Dtqonut2nic0NQ4XD5uqTkx2t7xlKJay/n4Nop2uqwajOYhJBBgRAgAJBQJB Qhh3AhsMAAoJEGh5t835VCbaOZEAn3wkQ7xISlGUox1/aiPU1CafRrZyAKCXgDLa wlCa23ftqh2DPxkAXtCnEA== =FIQv -----END PGP PUBLIC KEY BLOCK-----
<emaste@FreeBSD.org>
pub 2048R/50A17BF4 2012-12-18 Key fingerprint = 0C08 ECC9 3A0A 8500 AB95 B553 49C4 7851 50A1 7BF4 uid Ed Maste <emaste@freebsd.org> sub 2048R/08FA5F72 2012-12-18
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBFDQkJMBCADPPfZXZY16ONN40Z6afHF3hxGZsczwVUQ7qlNQzjfvUk5MJV7H VeKpLAN9pHLk9tg2xTXzcMbGe/baBQrw4kt23SwvQ1Q034nRcolio6rx4sq/E7EH vxRmwCgn4n/g1b/S8xzcXqFeDpdhY1RAbWdpQwscaj4hSCEAo2KrJ3tlsZqVRu35 wKAW5eVlrPZghi3jTPQxzdz4QNqLFR5aQdp5MrxhKcm6rnC7JeyuLAFruWoHBoqg 5P8dKjEMNPBzIJdWC2iEWqsiVOrJZ5YbCpZtbPlM82oGCUoC1QmW4kip3BJSBAJK wZlwRvHiMbjhjDGJaliHVx8G8NiJPrdDZlMdABEBAAG0HUVkIE1hc3RlIDxlbWFz dGVAZnJlZWJzZC5vcmc+iQE4BBMBAgAiBQJQ0JCTAhsDBgsJCAcDAgYVCAIJCgsE FgIDAQIeAQIXgAAKCRBJxHhRUKF79BotCADC09bvfZqcpiFH3HeQbH2SKeK6vNpI v1Uoib443EBajOKw19JkjOmPzwnFrKF1WSXrKYpp1iwUlvNgR1C+nMeGPOQCtLzU g49uuoC5q6FdMJIdYKjbVziga96UZme6kuSUUdv5/aumEuOfVvHewZQNWUdq1zbj RuBBesSKWULmUW4K7cBRGGvmAqIpWLL2lmZheT3WHzmLIwwqE4Xs8sgfijxxXrzz tAi7NVVEbOtDxlKZYINKXGXm4xfomuY4eAg+pCH58kEwgEudEspNQP+axJ0Bovh5 yq7cVm7zHbmrxSWSzLjAfprs84m3XIoX9wzlit2tydUbQxlALqcqpDffuQENBFDQ kJMBCADODYSrW+MNgYsqOZpg7hQL+oWPak+DJW+mAe93D0T6iS7g7ZDX7XSSl+LE R/9bLa6alA7qXDJFf41yl9Gw7vP7k5SFAT0mukffR4wiXqsTKcdGj8LxV8JllAQT h3r38gNhZRDr4UQ1MZxWseeZx6myj8vskCiv4Rd0qEOlOE7AgiJdUdUoVLnjZkDE o+UbOhqSfSCWEQNItJ7dRGsmxGAUH4pIZcdu4NIYINt2yNIQCO/NTDFj80dpIWxt Q1BNqL45ZkWG0B3J1j4tsze7dGvWnXZfJQyvTeNeSg6WteyqQSQ98WgvFQkWceUv 1ooA5bHG0xAtg2OI4L2ZvzLINfrRABEBAAGJAR8EGAECAAkFAlDQkJMCGwwACgkQ ScR4UVChe/RV3wf9F+TfpN7DC7m7+5aACXpDB86xCSGG4COtSyU8Gs0tgS84aE/b KUCdRZOwvz5dHAQUaPcgRNuNYscu2aAN4DYdPWrU59tn1s6+xYvWpgkzt+GGsni3 gsz7vot3vUEzf7kOMV+NgdBEEIKgUT3TuIU5wQ/fevYGN1gdMeXiYSJ+PSfaZWnr Eee3zGU6TtR1WUgjQLoSdvDPzsFaNYSbCGYKXwSQOw7ysp1tY6Wai3teMb1Q9YNe BpQCsjEhGSuocr1R34+Nvmo6OcOpSeqEN3XRlz4PIGcXUY9Jp9gtGBSeFLasihfC SDQa/FThS6824wFQfaya638NZbjhCzrtxx4gdA== =aAkV -----END PGP PUBLIC KEY BLOCK-----
<cherry@FreeBSD.org>
pub 2048R/2D066FE1 2007-05-22 Key fingerprint = FBF1 89FF 81BB E1C7 6C1B 378D 3438 20E9 2D06 6FE1 uid Cherry G. Mathew (FreeBSD email) <cherry@FreeBSD.org> uid "Cherry G. Mathew" (NetBSD email) <cherry@NetBSD.org> sub 2048R/7B2C4166 2007-05-22
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<matusita@FreeBSD.org>
pub 1024D/20544576 1999-04-18 Key fingerprint = 71B6 13BF B262 2DD8 2B7C 6CD0 EB2D 4147 2054 4576 uid Makoto Matsushita <matusita@matatabi.or.jp> uid Makoto Matsushita <matusita@FreeBSD.org> uid Makoto Matsushita <matusita@jp.FreeBSD.ORG> uid Makoto Matsushita <matusita@ist.osaka-u.ac.jp> sub 1024g/F1F3C94D 1999-04-18
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<mm@FreeBSD.org>
pub 1024D/4261B0D1 2007-02-05 Key fingerprint = 17C4 3F32 B3DE 3ED7 E84E 5592 A76B 8B03 4261 B0D1 uid Martin Matuska <martin@matuska.org> uid Martin Matuska <mm@FreeBSD.org> uid Martin Matuska <martin.matuska@wu-wien.ac.at> sub 2048g/3AC9A5A6 2007-02-05
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<sem@FreeBSD.org>
pub 1024D/B71F605D 1999-10-13 Key fingerprint = 4704 F374 DB28 BEC6 51C8 1322 4DC9 4BD8 B71F 605D uid Sergey Matveychuk <sem@FreeBSD.org> uid Sergey Matveychuk <sem@ciam.ru> uid Sergey Matveychuk <sem@core.inec.ru> sub 2048g/DEAF9D91 1999-10-13
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<tmclaugh@FreeBSD.org>
pub 1024D/E2F7B3D8 2005-05-24 Key fingerprint = 7692 B222 8D23 CF94 1993 0138 E339 E225 E2F7 B3D8 uid Tom McLaughlin (Personal email address) <tmclaugh@sdf.lonestar.org> uid Tom McLaughlin (Work email address) <tmclaughlin@meditech.com> uid Tom McLaughlin (FreeBSD email address) <tmclaugh@FreeBSD.org> sub 2048g/16838F62 2005-05-24
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<jmelo@FreeBSD.org>
pub 1024D/AA5114BF 2006-03-03 Key fingerprint = 826D C2AA 6CF2 E29A EBE7 4776 D38A AB83 AA51 14BF uid Jean Milanez Melo <jmelo@FreeBSD.org> uid Jean Milanez Melo <jmelo@freebsdbrasil.com.br> sub 4096g/E9E1CBD9 2006-03-03
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<ken@FreeBSD.org>
pub 1024D/54C745B5 2000-05-15 Kenneth D. Merry <ken@FreeBSD.org> Key fingerprint = D25E EBC5 F17A 9E52 84B4 BF14 9248 F0DA 54C7 45B5 uid Kenneth D. Merry <ken@kdm.org> sub 2048g/89D0F797 2000-05-15 pub 1024R/2FA0A505 1995-10-30 Kenneth D. Merry <ken@plutotech.com> Key fingerprint = FD FA 85 85 95 C4 8E E8 98 1A CA 18 56 F0 00 1F
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<dinoex@FreeBSD.org>
pub 1024R/331CDA5D 1995-06-04 Dirk Meyer <dinoex@FreeBSD.org> Key fingerprint = 44 16 EC 0A D3 3A 4F 28 8A 8A 47 93 F1 CF 2F 12 uid Dirk Meyer <dirk.meyer@dinoex.sub.org> uid Dirk Meyer <dirk.meyer@guug.de>
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<sanpei@FreeBSD.org>
pub 1024R/391C5D69 1996-11-21 sanpei@SEAPLE.ICC.NE.JP Key fingerprint = EC 04 30 24 B0 6C 1E 63 5F 5D 25 59 3E 83 64 51 uid MIHIRA Yoshiro <sanpei@sanpei.org> uid Yoshiro MIHIRA <sanpei@FreeBSD.org> uid MIHIRA Yoshiro <sanpei@yy.cs.keio.ac.jp> uid MIHIRA Yoshiro <sanpei@cc.keio.ac.jp> uid MIHIRA Yoshiro <sanpei@educ.cc.keio.ac.jp> uid MIHIRA Yoshiro <sanpei@st.keio.ac.jp>
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<rmh@FreeBSD.org>
pub 4096R/DEA2C38E 2009-08-14 Key fingerprint = A537 F029 AAAE 0E9C 39A7 C22C BB9D 98D9 DEA2 C38E uid Robert Millan <rmh@debian.org> uid Robert Millan <rmh@freebsd.org> uid Robert Millan <rmh@gnu.org> sub 4096R/65A0A9CE 2009-08-14 sub 4096R/41F37946 2009-08-14
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<stephen@FreeBSD.org>
pub 2048R/9A92D807 2011-06-14 Key fingerprint = 2B61 D82E 168E F08B 6E08 712E 2DF1 2BD1 9A92 D807 uid Stephen Montgomery-Smith <stephen@freebsd.org> sub 2048R/A4BA6560 2011-06-14
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<marcel@FreeBSD.org>
pub 1024D/61EE89F6 2002-02-09 Marcel Moolenaar <marcel@xcllnt.net> Key fingerprint = 68BB E2B7 49AA FF69 CA3A DF71 A605 A52D 61EE 89F6 sub 1024g/6EAAB456 2002-02-09
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<kmoore@FreeBSD.org>
pub 1024D/6294612C 2009-05-26 Key fingerprint = 8B70 9876 346F 1F97 5687 6950 4C92 D789 6294 612C uid Kris Moore <kmoore@freebsd.org> sub 2048g/A7FFE8FB 2009-05-26
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<marck@FreeBSD.org>
pub 1024D/6B691B03 2001-07-20 Key fingerprint = 39AC E336 F03D C0F8 5305 B725 85D4 5045 6B69 1B03 uid Dmitry Morozovsky <marck@rinet.ru> uid Dmitry Morozovsky <marck@FreeBSD.org> sub 2048g/44D656F8 2001-07-20
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<mav@FreeBSD.org>
pub 1024D/0577BACA 2007-04-20 [expires: 2012-04-18] Key fingerprint = 0E84 B263 E97D 3E48 161B 98A2 D240 A09E 0577 BACA uid Alexander Motin <mav@freebsd.org> uid Alexander Motin <mav@mavhome.dp.ua> uid Alexander Motin <mav@alkar.net> sub 2048g/4D59D1C2 2007-04-20 [expires: 2012-04-18]
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<lippe@FreeBSD.org>
pub 1024D/F2CF7DAE 2008-09-02 [expires: 2010-09-02] Key fingerprint = 0532 A900 286D DAFD 099D 394D 231B AF20 F2CF 7DAE uid Felippe de Meirelles Motta (FreeBSD Ports Committer) <lippe@FreeBSD.org> sub 2048g/38E8EEF3 2008-09-02 [expires: 2010-09-02]
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<rich@FreeBSD.org>
pub 1024R/583443A9 1995-03-31 Rich Murphey <rich@lamprey.utmb.edu> Key fingerprint = AF A0 60 C4 84 D6 0C 73 D1 EF C0 E9 9D 21 DB E4
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<knu@FreeBSD.org>
pub 1024D/9FD9E1EE 2000-03-21 Akinori MUSHA <knu@and.or.jp> Key fingerprint = 081D 099C 1705 861D 4B70 B04A 920B EFC7 9FD9 E1EE uid Akinori MUSHA <knu@FreeBSD.org> uid Akinori MUSHA <knu@idaemons.org> uid Akinori MUSHA <knu@ruby-lang.org> sub 1024g/71BA9D45 2000-03-21
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<tmm@FreeBSD.org>
pub 1024D/419C776C 2000-11-28 Thomas Moestl <tmm@FreeBSD.org> Key fingerprint = 1C97 A604 2BD0 E492 51D0 9C0F 1FE6 4F1D 419C 776C uid Thomas Moestl <tmoestl@gmx.net> uid Thomas Moestl <t.moestl@tu-bs.de> sub 2048g/ECE63CE6 2000-11-28
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<max@FreeBSD.org>
pub 1024D/CE356B59 2000-02-19 Masafumi NAKANE <max@wide.ad.jp> Key fingerprint = EB40 BCAB 4CE5 0764 9942 378C 9596 159E CE35 6B59 uid Masafumi NAKANE <max@FreeBSD.org> uid Masafumi NAKANE <max@accessibility.org> uid Masafumi NAKANE <kd5pdi@qsl.net> sub 1024g/FA9BD48B 2000-02-19
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<maho@FreeBSD.org>
pub 1024D/F28B4069 2009-02-09 Key fingerprint = 3FE4 99A9 6F41 8161 4F5F 240C 8615 A60C F28B 4069 uid Maho NAKATA (NAKATA's FreeBSD.org alias) <maho@FreeBSD.org> sub 2048g/6B49098E 2009-02-09
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<yoichi@FreeBSD.org>
pub 1024D/E0788E46 2000-12-28 Yoichi NAKAYAMA <yoichi@assist.media.nagoya-u.ac.jp> Key fingerprint = 1550 2662 46B3 096C 0460 BC03 800D 0C8A E078 8E46 uid Yoichi NAKAYAMA <yoichi@eken.phys.nagoya-u.ac.jp> uid Yoichi NAKAYAMA <yoichi@FreeBSD.org> sub 1024g/B987A394 2000-12-28
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<trasz@FreeBSD.org>
pub 1024D/8E53F00E 2007-04-13 Key fingerprint = DD8F 91B0 12D9 6237 42D9 DBE1 AFC8 CDE9 8E53 F00E uid Edward Tomasz Napierala <trasz@FreeBSD.org> sub 2048g/7C1F5D67 2007-04-13
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<dbn@FreeBSD.org>
pub 1024D/FF6916B2 2008-04-09 Key fingerprint = 6540 B47C 54AA 3EBA B23B 58AC 51A6 8580 FF69 16B2 uid David Naylor <dbn@freebsd.org> uid David Naylor <naylor.b.david@gmail.com> sub 4096g/77FA885C 2008-04-09
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<bland@FreeBSD.org>
pub 1024D/D004116C 2003-08-14 Alexander Nedotsukov <bland@FreeBSD.org> Key fingerprint = 35E2 5020 55FC 2071 4ADD 1A4A 86B6 8A5D D004 116C sub 1024g/1CCA8D46 2003-08-14
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<gnn@FreeBSD.org>
pub 1024D/440A33D2 2002-09-17 Key fingerprint = AF66 410F CC8D 1FC9 17DB 6225 61D8 76C1 440A 33D2 uid George V. Neville-Neil <gnn@freebsd.org> uid George V. Neville-Neil <gnn@neville-neil.com> sub 2048g/95A74F6E 2002-09-17
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<simon@FreeBSD.org>
pub 1024D/FF7490AB 2007-01-14 Key fingerprint = 4E92 BA8D E45E 85E2 0380 B264 049C 7480 FF74 90AB uid Simon L. Nielsen <simon@FreeBSD.org> uid Simon L. Nielsen <simon@nitro.dk> sub 2048g/E3F5A76E 2007-01-14
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<rnoland@FreeBSD.org>
pub 1024D/8A9F44E3 2007-07-24 Key fingerprint = 107A 0C87 E9D0 E581 677B 2A28 3384 EB43 8A9F 44E3 uid Robert C. Noland III <rnoland@FreeBSD.org> uid Robert C. Noland III (Personal Key) <rnoland@2hip.net> sub 2048g/76C3CF00 2007-07-24
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<anders@FreeBSD.org>
pub 1024D/00835956 2000-08-13 Anders Nordby <anders@fix.no> Key fingerprint = 1E0F C53C D8DF 6A8F EAAD 19C5 D12A BC9F 0083 5956 uid Anders Nordby <anders@FreeBSD.org> sub 2048g/4B160901 2000-08-13
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<lofi@FreeBSD.org>
pub 1024D/6B2974B0 2002-06-06 Michael Nottebrock <michaelnottebrock@gmx.net> Key fingerprint = 1079 3C72 0726 F300 B8EC 60F9 5E17 3AF1 6B29 74B0 uid Michael Nottebrock <lofi@freebsd.org> uid Michael Nottebrock <lofi@tigress.com> uid Michael Nottebrock <lofi@lofi.dyndns.org> uid Michael Nottebrock <michaelnottebrock@web.de> uid Michael Nottebrock <michaelnottebrock@meitner.wh.uni-dortmund.de> sub 1024g/EF652E04 2002-06-06 [expires: 2004-06-15]
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<obrien@FreeBSD.org>
pub 1024R/34F9F9D5 1995-04-23 David E. O'Brien <defunct - obrien@Sea.Legent.com> Key fingerprint = B7 4D 3E E9 11 39 5F A3 90 76 5D 69 58 D9 98 7A uid David E. O'Brien <obrien@NUXI.com> uid deobrien@ucdavis.edu uid David E. O'Brien <whois Do38> uid David E. O'Brien <obrien@FreeBSD.org> uid David E. O'Brien <dobrien@seas.gwu.edu> uid David E. O'Brien <obrien@cs.ucdavis.edu> uid David E. O'Brien <defunct - obrien@media.sra.com> uid David E. O'Brien <obrien@elsewhere.roanoke.va.us> uid David E. O'Brien <obrien@Nuxi.com> pub 1024D/7F9A9BA2 1998-06-10 "David E. O'Brien" <obrien@cs.ucdavis.edu> Key fingerprint = 02FD 495F D03C 9AF2 5DB7 F496 6FC8 DABD 7F9A 9BA2 uid "David E. O'Brien" <obrien@NUXI.com> uid "David E. O'Brien" <obrien@FreeBSD.org> sub 3072g/BA32C20D 1998-06-10
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<olgeni@FreeBSD.org>
pub 2048R/6450AE47 2012-11-01 Key fingerprint = 7133 AB4D DFC8 0A0D F891 B0D2 90B7 A98E 6450 AE47 uid Giacomo Olgeni <olgeni@olgeni.com> uid Jimmy Olgeni <olgeni@FreeBSD.org> uid Giacomo Olgeni <olgeni@moviereading.com> uid Giacomo Olgeni <olgeni@unimaccess.com> uid Giacomo Olgeni <olgeni@colby.it> uid Giacomo Olgeni <olgeni@colby.eu> uid Giacomo Olgeni <olgeni@colby.tv> sub 2048R/1988BB4B 2012-11-01
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<philip@FreeBSD.org>
pub 4096R/C5D34D05 2006-10-22 Key fingerprint = 356B AE02 4763 F739 2FA2 E438 2649 E628 C5D3 4D05 uid Philip Paeps <philip@paeps.cx> uid Philip Paeps <philip@nixsys.be> uid Philip Paeps <philip@fosdem.org> uid Philip Paeps <philip@freebsd.org> uid Philip Paeps <philip@pub.telenet.be> sub 1024D/035EFC58 2006-10-22 [expires: 2010-10-13] sub 2048g/6E5FD7D6 2006-10-22 [expires: 2010-10-14]
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<jpaetzel@FreeBSD.org>
pub 2048D/F6F63F01 2012-09-21 Key fingerprint = 1D8D 506E B58C BD10 DC8C 97E1 D6AD 8621 F6F6 3F01 uid Josh Paetzel <josh@tcbug.org> uid Josh Paetzel <josh@ixsystems.com> uid Josh Paetzel <jpaetzel@FreeBSD.org> sub 2048R/F32EF801 2012-09-21 sub 2048R/51F1335D 2012-09-21 sub 2048g/9BC280CD 2012-09-21 sub 2048g/CC793500 2012-09-21
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<pgj@FreeBSD.org>
pub 1024D/9E3F9BE6 2008-04-17 [expires: 2013-04-16] Key fingerprint = DA0B 2143 0FC8 EE5F E211 D329 7D4B 6E18 9E3F 9BE6 uid Gabor PALI <pgj@FreeBSD.org> uid P簇I G墎or J嫕os <pali.gabor@gmail.com> sub 2048g/A780C60B 2008-04-17 [expires: 2013-04-16]
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<hmp@FreeBSD.org>
pub 1024D/938CACA8 2004-02-13 Hiten Pandya (FreeBSD) <hmp@FreeBSD.org> Key fingerprint = 84EB C75E C75A 50ED 304E E446 D974 7842 938C ACA8 uid Hiten Pandya <hmp@backplane.com> sub 2048g/783874B5 2004-02-13
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<fluffy@FreeBSD.org>
pub 1024D/93E3B018 2006-11-08 Key fingerprint = C73E 2B72 1FFD 61BD E206 1234 A626 76ED 93E3 B018 uid Dima Panov (FreeBSD.ORG Committer) <fluffy@FreeBSD.ORG> uid Dima Panov (at home) <Fluffy@Fluffy.Khv.RU> uid Dima Panov (at home) <fluffy.khv@gmail.com> sub 2048g/89047419 2006-11-08 pub 4096R/D5398F29 2009-08-09 Key fingerprint = 2D30 2CCB 9984 130C 6F87 BAFC FB8B A09D D539 8F29 uid Dima Panov (FreeBSD.ORG Committer) <fluffy@FreeBSD.ORG> uid Dima Panov (at Home) <fluffy@Fluffy.Khv.RU> uid Dima Panov (at GMail) <fluffy.khv@gmail.com> sub 4096R/915A7785 2009-08-09
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<sat@FreeBSD.org>
pub 1024D/6F38A569 2006-05-06 Key fingerprint = 4E94 994A C2EF CB86 C144 3B04 3381 67C0 6F38 A569 uid Andrew Pantyukhin <infofarmer@gubkin.ru> uid Andrew Pantyukhin <sat@FreeBSD.org> uid Andrew Pantyukhin <infofarmer@gmail.com> uid Andrew Pantyukhin <infofarmer@mail.ru> sub 2048g/5BD4D469 2006-05-06
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<np@FreeBSD.org>
pub 1024D/ACAB8812 2009-06-08 Key fingerprint = C897 7AFB AFC0 4DA9 7B76 D991 CAB2 2B93 ACAB 8812 uid Navdeep Parhar <np@FreeBSD.org> sub 2048g/AB61D2DC 2009-06-08
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<rpaulo@FreeBSD.org>
pub 4096R/39CB4153 2010-02-03 Key fingerprint = ABE8 8465 DE8F F04D E9C8 3FF6 AF89 B2E6 39CB 4153 uid Rui Paulo <rpaulo@FreeBSD.org> uid Rui Paulo <rpaulo@gmail.com> sub 4096R/F87D2F34 2010-02-03
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<mp@FreeBSD.org>
pub 1024D/330D4D01 2002-01-27 Mark Peek <mp@FreeBSD.org> Key fingerprint = 510C 96EE B4FB 1B0A 2CF8 A0AF 74B0 0B0E 330D 4D01 sub 1024g/9C6CAC09 2002-01-27
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<roam@FreeBSD.org>
pub 1024D/16194553 2002-02-01 Key fingerprint = FDBA FD79 C26F 3C51 C95E DF9E ED18 B68D 1619 4553 uid Peter Pentchev <roam@ringlet.net> uid Peter Pentchev <roam@cnsys.bg> uid Peter Pentchev <roam@sbnd.net> uid Peter Pentchev <roam@online.bg> uid Peter Pentchev <roam@orbitel.bg> uid Peter Pentchev <roam@FreeBSD.org> uid Peter Pentchev <roam@techlab.office1.bg> uid Peter Pentchev <roam@hoster.bg> uid Peter Pentchev <roam@space.bg> sub 1024g/7074473C 2002-02-01 pub 4096R/2527DF13 2009-10-16 Key fingerprint = 2EE7 A7A5 17FC 124C F115 C354 651E EFB0 2527 DF13 uid Peter Pentchev <roam@ringlet.net> uid Peter Pentchev <roamer@users.sourceforge.net> uid Peter Pentchev <roam@cpan.org> uid Peter Pentchev <roam@cnsys.bg> uid Peter Pentchev <roam@sbnd.net> uid Peter Pentchev <roam@online.bg> uid Peter Pentchev <roam@orbitel.bg> uid Peter Pentchev <roam@FreeBSD.org> uid Peter Pentchev <roam@techlab.office1.bg> uid Peter Pentchev <roam@hoster.bg> uid Peter Pentchev <roam@space.bg> uid Peter Pentchev <roam-guest@alioth.debian.org> uid Peter Pentchev <ppentchev@alumni.princeton.edu> sub 4096R/D0B337AA 2009-10-16
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<den@FreeBSD.org>
pub 1024D/485DDDF5 2003-09-11 Denis Peplin <den@FreeBSD.org> Key fingerprint = 495D 158C 8EC9 C2C1 80F5 EA96 6F72 7C1C 485D DDF5 sub 1024g/E70BA158 2003-09-11
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<csjp@FreeBSD.org>
pub 1024D/033FA33C 2009-05-16 Key fingerprint = 74AA 6040 89A7 936E D970 DDC0 CC71 6954 033F A33C uid Christian S.J. Peron <csjp@FreeBSD.ORG> sub 2048g/856B194A 2009-05-16
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBEoO/iURBAC3FVq7xH4uRIEWRvmPzD1azqtwlQE3zipCf4K9B4EjKidksgP0 56qAkWMvngWG7OW9YNCtZYgDNAINOGdw2pZYioERq7U+cdIPKSZrIP5WrpORdi8A 4i3VmRKh19ztJEGb8jvthYDlEyvoABXmz/Bi3YHDkfjT0py02SnkcjikxwCgkGkL rNwWGviRd6hsBZZEeximSKcD/0OAthVoMmk4bMByWPoEWf5i3I3JHDeC4g3oEgYp 7dxMaxboqjFmiTZ2xMwdR9wlpwE0ITSeVj5pMtswr8q3ghLdlXOpd4wn/vLu51/G ra7cFgNex3kCb+5tLfqZQCiK/Y8fQ6TJdowaxN0xtrdGbTtUR0BJMi7/AhNF1GxW HeE6A/4n/K5Z8EDq7e5HZ5S0lx3MAKy1QgS1tnO0aaHK3v+DtD4xbe9aV2ls39sh 2Xu+z5QGkrx7q3HOSnC/DzMSYDG5I45GGNdDoBVmJ6IfvNICzXgM4hDh8KgIXNZZ PEkHN+uwTWCnIj1yhothpk86XBvyiEAbCTwQ5jWBmZkvLI2GdrQnQ2hyaXN0aWFu IFMuSi4gUGVyb24gPGNzanBARnJlZUJTRC5PUkc+iGAEExECACAFAkoO/iUCGwMG CwkIBwMCBBUCCAMEFgIDAQIeAQIXgAAKCRDMcWlUAz+jPOYNAJ9WfWDy0ZlOC7q7 KUyrq7e49no1SgCeO4nUcK5nLZKkyGXxTbnghFZegGS5Ag0ESg7+JRAIAM8UbDPn dVBYrvJqBwdWQA17XN6jycQC2smWLnJ6geaQfBgXAff5/Hn1LtPPG58k048yF6QF xOCzPOTrkjaL8GlyKGLK9jfctyC+zRl5FvNyJIBIgFRsJjBB9K3FpZEsxWltSyqc 5mxf4D8VwJeDfWdgeqVgORapBruHm3MAf5B13PfBN8lV2Yqbo520U6ZWUtdTscsL 2QLTZcrIN5aq5Wsuy4r8H90h3JYcOUK4PJTBNLmlmLEuTlENbv8E5YVvvgx/ZJ9H lX9FWz+w/hrEQIR2xnF8MJeAaOR3Q6cKgvFrH7PUHwvYxAXkXGWv6xsJ4VEA7a3g IOytL1l/8Zo0fiMAAwYH/3Sn6JzdbiF7peLiQ3SqbNSQV3aKxNP+PuGvuALiHKKd WgF5xjrBfgSjJbybwm4YtNfqLU/x8SEtEXVkyMozgWSMn2K/vFrgwURjG92IhDXJ bOzEDyx86/iJosMn2glcb9eBYGrmz92H+9a1Q1xMyuk7uD/+nFcJOj3GqnuFK54L //A6ott10Ddgg8JB3jehrzrOeg8/IdPifhT845X9q24b3kG0orzCIOk0/xyUyps+ 9A3j54Fp/atyVmHFPRedjGMwYPIqKQvFnzYuaoN/NT1yJZEFbyud/h1Kpi4+Z2/C Te9glz71eqlUSond5WFnLSd7GSuUxXprwC0bGQ61tASISQQYEQIACQUCSg7+JQIb DAAKCRDMcWlUAz+jPNDzAJ4lJdUYDs8aONEFRW/TpLMiepzPqACeN0HmbLJjwaVk tI1h5vM9MqGGVwo= =p6fK -----END PGP PUBLIC KEY BLOCK-----
<gerald@FreeBSD.org>
pub 1024D/745C015A 1999-11-09 Gerald Pfeifer <gerald@pfeifer.com> Key fingerprint = B215 C163 3BCA 0477 615F 1B35 A5B3 A004 745C 015A uid Gerald Pfeifer <Gerald.Pfeifer@vibe.at> uid Gerald Pfeifer <pfeifer@dbai.tuwien.ac.at> uid Gerald Pfeifer <gerald@pfeifer.at> uid Gerald Pfeifer <gerald@FreeBSD.org> sub 1536g/F0156927 1999-11-09
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<jacula@FreeBSD.org>
pub 4096R/8B9F4B8B 2006-03-08 Key fingerprint = 31AD 73AE 0EC0 16E5 4108 8391 D942 5F20 8B9F 4B8B uid Giuseppe Pilichi (Jacula Modyun) <jacula@FreeBSD.org> uid Giuseppe Pilichi (Jacula Modyun) <jaculamodyun@gmail.com> uid Giuseppe Pilichi (Jacula Modyun) <gpilch@gmail.com> uid Giuseppe Pilichi (Jacula Modyun) <jacula@gmail.com> sub 4096R/FB4D05A3 2006-03-08
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<jdp@FreeBSD.org>
pub 1024R/BFBCF449 1997-02-14 John D. Polstra <jdp@polstra.com> Key fingerprint = 54 3A 90 59 6B A4 9D 61 BF 1D 03 09 35 8D F6 0D
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQCNAzMElMEAAAEEALizp6ZW9QifQgWoFmG3cXhzQ1+Gt+a4S1adC/TdHdBvw1M/ I6Ok7TC0dKF8blW3VRgeHo4F3XhGn+n9MqIdboh4HJC5Iiy63m98sVLJSwyGO4oM dkEGyyCLxqP6h/DU/tzNBdqFzetGtYvU4ftt3RO0a506cr2CHcdm8Q+/vPRJAAUR tCFKb2huIEQuIFBvbHN0cmEgPGpkcEBwb2xzdHJhLmNvbT6JAJUDBRAzBNBE9RVb +45ULV0BAWgiA/0WWO3+c3qlptPCHJ3DFm6gG/qNKsY94agL/mHOr0fxMP5l2qKX O6a1bWkvGoYq0EwoKGFfn0QeHiCl6jVi3CdBX+W7bObMcoi+foqZ6zluOWBC1Jdk WQ5/DeqQGYXqbYjqO8voCScTAPge3XlMwVpMZTv24u+nYxtLkE0ZcwtY9IkAlQMF EDMEt/DHZvEPv7z0SQEBXh8D/2egM5ckIRpGz9kcFTDClgdWWtlgwC1iI2p9gEhq aufy+FUJlZS4GSQLWB0BlrTmDC9HuyQ+KZqKFRbVZLyzkH7WFs4zDmwQryLV5wkN C4BRRBXZfWy8s4+zT2WQD1aPO+ZsgRauYLkJgTvXTPU2JCN62Nsd8R7bJS5tuHEm 7HGmiQCVAwUQMwSvHB9/qQgDWPy9AQFAhAQAgJ1AlbKITrEoJ0+pLIsov3eQ348m SVHEBGIkU3Xznjr8NzT9aYtq4TIzt8jplqP3QoV1ka1yYpZf0NjvfZ+ffYp/sIaU wPbEpgtmHnVWJAebMbNs/Ad1w8GDvxEt9IaCbMJGZnHmfnEqOBIxF7VBDPHHoJxM V31K/PIoYsHAy5w= =cHFa -----END PGP PUBLIC KEY BLOCK-----
<krion@FreeBSD.org>
pub 1024D/AEB426E5 2002-04-07 Key fingerprint = 58E7 B953 57A2 D9DD 4960 2A2D 402D 46E9 AEB4 26E5 uid Kirill Ponomarew <krion@voodoo.bawue.com> uid Kirill Ponomarew <krion@guug.de> uid Kirill Ponomarew <krion@FreeBSD.org> sub 1024D/05AC7CA0 2006-01-30 [expires: 2008-01-30] sub 2048g/C3EE5537 2006-01-30 [expires: 2008-01-30]
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<sepotvin@FreeBSD.org>
pub 1024D/3097FE7B 2002-08-06 Key fingerprint = 6B56 62FA ADE1 6F46 BB62 8B1C 99D3 97B5 3097 FE7B uid Stephane E. Potvin <sepotvin@videotron.ca> uid Stephane E. Potvin <stephane.potvin@telcobridges.com> uid Stephane E. Potvin <stephane_potvin@telcobridges.com> uid Stephane E. Potvin <sepotvin@FreeBSD.org> sub 2048g/0C427BC9 2002-08-06
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<markp@FreeBSD.org>
pub 1024D/182C368F 2000-05-10 Mark Pulford <markp@FreeBSD.org> Key fingerprint = 58C9 C9BF C758 D8D4 7022 8EF5 559F 7F7B 182C 368F uid Mark Pulford <mark@kyne.com.au> sub 2048g/380573E8 2000-05-10
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<alepulver@FreeBSD.org>
pub 1024D/945C3F61 2005-11-13 Key fingerprint = 085F E8A2 4896 4B19 42A4 4179 895D 3912 945C 3F61 uid Alejandro Pulver (Ale's GPG key pair) <alepulver@FreeBSD.org> uid Alejandro Pulver (Ale's GPG key pair) <alejandro@varnet.biz> sub 2048g/6890C6CA 2005-11-13
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<thomas@FreeBSD.org>
pub 1024D/393D2469 1999-09-23 Thomas Quinot <thomas@cuivre.fr.eu.org> Empreinte de la cl�= 4737 A0AD E596 6D30 4356 29B8 004D 54B8 393D 2469 uid Thomas Quinot <thomas@debian.org> uid Thomas Quinot <thomas@FreeBSD.org> sub 1024g/8DE13BB2 1999-09-23
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<hq@FreeBSD.org>
pub 1024D/85AC8A80 2004-07-22 Herve Quiroz <hq@FreeBSD.org> Key fingerprint = 14F5 BC56 D736 102D 41AF A07B 1D97 CE6C 85AC 8A80 uid Herve Quiroz <herve.quiroz@esil.univ-mrs.fr> sub 1024g/8ECCAFED 2004-07-22
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<dfr@FreeBSD.org>
pub 1024D/59F57821 2004-02-07 Key fingerprint = 9451 C4FE 1A7E 117B B95F 1F8F B123 456E 59F5 7821 uid Doug Rabson <dfr@nlsystems.com> sub 1024g/6207AA32 2004-02-07
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<lbr@FreeBSD.org>
pub 1024D/9EF6F27F 2006-04-30 Key fingerprint = F251 28B7 897C 293E 04F8 71EE 4697 F477 9EF6 F27F uid Lars Balker Rasmussen <lbr@FreeBSD.org> sub 2048g/A8C1CFD4 2006-04-30
-----BEGIN PGP PUBLIC KEY BLOCK----- mQGiBERUw7QRBADJY85JY9QB4nxv3rXAPnlW59gLmWzuuVNnKBrQsoD5jq6WrDEs fqqU2h/JwHB06RZMm/VUSH9MnsrxpGGKbIuJ9bRn9zA4qbgP0kPCMoyb9AmyGEYx bIp0N1PeYni64IQH3XGaycloWNhNDDLv6o+c6e+wNnRfUv1qygKhM8vf5wCgyN3/ KgxrTIo27FnrLDatjxYgHeMEAKtOpeyGk8VhkxXX7t6/sD1HPvDiuYLfM/14VKWB ZXaWcOzhytZRFbu/DDG2sMiMFdK8Xu7a1Zsfa683kmpgqHkG0FYcS14Y8yHDU1IM GpCRz18v8tZwW4N1npJ/vthpL1B4Hx0SUhGo2HgE85pRHdsDbhp0S6pZW2ff25wZ ljhABACI2/zM6SbfibbyRsvJcyW/TOfnEOxHUFfqT3SFYAP79hRBsqCN8v4fSR54 Tf+jHv7uYVH2lK3zED3sXn2VCgjD3jJNLkeGB6qY/WnWYCB63YwUXk2igOqGijJq XEVplNG6ExaQIco5vilOseqWuW5ONJKMM+iEi5TpfV1cPGFpAbQnTGFycyBCYWxr ZXIgUmFzbXVzc2VuIDxsYnJARnJlZUJTRC5vcmc+iGAEExECACAFAkRUw7QCGwMG CwkIBwMCBBUCCAMEFgIDAQIeAQIXgAAKCRBGl/R3nvbyf/xeAJ98F2AdELJxK6Po 3rTPUqnJK+GZawCfX/0jvc82JWnGwbDcpyp0+xUJ/xe5Ag0ERFTEKxAIAP2AWduS +WfuTAqZlD2aIzyvzZPOJ7a8ZDmUtBDxbxuBetLMqC3oFMoZ1/857wV3J7Jvxx7u LFbpdYS/0zXTjyKE/NWqeHIuGH9fDOIDuUKT1ZkEh+OzfWQaUihYTib330LwWP1s 9J8zLCJM1SdQSHVDOG9m+28JXH4ITmK3LkR3zdb/QYEOyFmHfhSqVQpZ/KEBYZ1K Kn0gItwqDILuk4v8BvR3ioWF1Ywod6JEMAgJvwypyDlyglvVVvav8UcOYIYfyv2i 6g2EjIqmCpzaEa3m/RumCWaCLIIeZUqpM+rIfQyKcjgU8J254dFMqFYFIX7iFGnO FVhT8tyNXolkKWMAAwYIAPrna0LxXoNVdwCyAW6pcNR9LkWsalQ+cCTS15jnguq5 V6HmMHsbAIwcXqZn6benX5g6Gx68gIrSS/c3iBMS3jiauIu/bjvhdTMLr0v/jXpp 7HjdOkgwfdE184hxVzsO0w3UeWFVhmb6sW/Wb9OtdRTj160mHj5UsCycg7Q75R20 2sBke5vP6o22CCNOZQxM615oFDgotYO/D5I8h/x08IQHlyxzgG2VXFbb/vvibOVs iFA246TaRzxYjo4pJ7apRKhXWX9Bm6Tl/X3X41idqbkZXXcdOV8i1jjJ+8hvmUXX BTrU4DyOHeRrKD2GRBGMn8WxhPL0DN+w2zBRpRdM7sWISQQYEQIACQUCRFTEKwIb DAAKCRBGl/R3nvbyfw7kAKCnpl/jNh5Hx0mkJ6BEDWlmGzuvMACeM95BWxxghmcn J6BmOEuZ+TPmHxc= =6byw -----END PGP PUBLIC KEY BLOCK-----
<crees@FreeBSD.org>
pub 2048R/1E12E96A 2012-08-26 Key fingerprint = 8C57 BE3B D320 5FFC C4C3 C0B0 900F 45A6 1E12 E96A uid Chris Rees <crees@FreeBSD.org> sub 2048R/C10740CD 2012-08-26 [expires: 2013-08-26]
-----BEGIN PGP PUBLIC KEY BLOCK----- mQENBFA55DwBCADLmiSSORwcGwNoCi2X02jPmS2lcZXWp5uCtzx0ybPM65tIQAII L5e8QzyrV+r/yyNdGJIKtl4ty69aVodQ6n6Xf2BGqmm/x6jlvg2BrJgNHYfAjkIV tugkbwsMQxHkNmOlB+fURVPJk9xub4pz9kRRdtXJ3DiImQRw5XVe2ZvBXZuu2nOz jw2zArEaBSLbjo1MlXWJvvuyA2ktaKcAjFyfz/VJ8M/RDbJdfYDB9Q78jrr4uwIM lyWSWUD8RxAvbWw0My2tr1Nu9FDvsydbKygGnZ+7oo4zvqncGZ+0am6D3XSsOcaf /bzB8pIGJ1hsSe9JHvYpLvnWCwP+AJtKTPwFABEBAAG0HkNocmlzIFJlZXMgPGNy ZWVzQEZyZWVCU0Qub3JnPokBOAQTAQIAIgUCUDnkPAIbAwYLCQgHAwIGFQgCCQoL BBYCAwECHgECF4AACgkQkA9Fph4S6WoK/gf/eghgBaGoxfXXbNZwZNIC0NUhISas XVYnKNpKCojFl80ZGzI5mPAFUiQm6aMh3fSrzTIB1uxxd9T9A3KN5ghf9jjtOmpU +uYEm1aW4wHYSWzKDfgfV3QlFOROBn02V8xc1XPaZr0pqBCSJ18BDVwsI8UG9odw /vPrrcE/Gm3psKJRwaHVGTtvJYPZYB5dQM5XD0shvj7DDSdut5l7DGDGUhp6Q8R3 2iMkCSTbaJEQNMzUqoIIw/oPrgsVeNxG7zFrkxbdl4YLmuzy9nZhRPLZ7lWpoRrf 3lsvo7WktMEXiW+uAX23wKH3P0gSypcsJ/jbb0nfV1r13/8O8plXwo5Z9LkBDQRQ OeTHAQgA5GzHZKoE3obEg4Ey/hW5xp/OvyQr9hruwwd5CSxendMJWlmwT9V4QTDl RNtn6n37n70wJxjUHdDrr34ItKhWN0AGy71LKcGBrfMenSW2IugB06/kSik3ti2m fVI9TJ/gTT4uSppM2MTMmRPw1YR9VOGvO3CED4NfVa4EajCUtMMoEVaFCk6hPhzs pSLcnvN+DUVR00RwGQJveHObRCDR10olA0PrLn7hqU2XAlnCAnclSPLjj3pLH9hi vWkoeXr8PKNC50yWqclyuTKo+HsUkanDLgfC9kq+ffLvebUayaYfGyYpBKcxzcBs uLEJhbh26NBqVfp1q7fTnxvNMVMUnwARAQABiQElBBgBAgAPBQJQOeTHAhsMBQkB 4TOAAAoJEJAPRaYeEulqcrIH/iO/VQq5gLquEQfzFdIl0I2HIyey/bNpkhDLiLNv xPVpflymH9c90fdEXUYrI1HSbYKuACRsiXhu+SaQ0uvfBZuPDQZ7XWweuPB8y+fe s86MmAyFXGs8gLisYREnGyltNK3goX+FiZeXdMkE7u+FfFSgMgP02/Ki85F2hj7B nFAyaERP9vCeK20dUKSXn+y7+xqbTZBg7Ic9krSNsi77IyuAQ11BMe+vQVVoEhGO TdjgE2VJzDiS1FXcvFWh93f3AQ9yAUqkstHMzKAfkwqm4y3SFYCS1xK5YUszImAa 2T9qZkw+R7dFEM20OWtNiz6P80+BRw/KAL0PwDFCyU4MoC4= =QoyM -----END PGP PUBLIC KEY BLOCK-----
<rees@FreeBSD.org>
pub 512/B623C791 1995/02/21 Jim Rees <rees@umich.edu> Key fingerprint = 02 5F 1B 15 B4 6E F1 3E F1 C5 E0 1D EA CC 17 88
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<bcr@FreeBSD.org>
pub 1024D/4A819348 2009-05-24 Key fingerprint = 2D8C BDF9 30FA 75A5 A0DF D724 4D26 502E 4A81 9348 uid Benedict Reuschling <bcr@FreeBSD.org> sub 2048g/8DA16EDD 2009-05-24
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<trhodes@FreeBSD.org>
pub 1024D/FB7D88E1 2008-05-07 Key fingerprint = 8279 3100 2DF2 F00E 7FDD AC2C 5776 23AB FB7D 88E1 uid Tom Rhodes (trhodes) <trhodes@FreeBSD.org> sub 4096g/7B0CD79F 2008-05-07
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<benno@FreeBSD.org>
pub 1024D/87C59909 2002-01-16 Benno Rice <benno@FreeBSD.org> Key fingerprint = CE27 DADA 08E3 FAA3 88F1 5B31 5E34 705A 87C5 9909 uid Benno Rice <benno@jeamland.net> sub 1024g/4F7C2BAD 2002-01-16 [expires: 2007-01-15]
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<beech@FreeBSD.org>
pub 1024D/ECBFDC44 2011-08-29 Key fingerprint = 6921 47CC 8B61 7C02 70EF 4D00 16B4 EAB7 ECBF DC44 uid Beech Rintoul <beech@freebsd.org> sub 1024g/F1FD1C3D 2011-08-29
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<matteo@FreeBSD.org>
pub 1024D/1EC56BEC 2003-01-05 [expires: 2009-09-07] Key fingerprint = F0F3 1B43 035D 65B1 08E9 4D66 D8CA 78A5 1EC5 6BEC uid Matteo Riondato (Rionda) <matteo@FreeBSD.ORG> uid Matteo Riondato (Rionda) <rionda@riondabsd.net> uid Matteo Riondato (Rionda) <rionda@gufi.org> uid Matteo Riondato (Rionda) <matteo@riondato.com> uid Matteo Riondato (Rionda) <rionda@riondato.com> uid Matteo Riondato (Rionda) <rionda@FreeSBIE.ORG> uid Matteo Riondato (Rionda) <rionda@autistici.org> sub 2048g/87C44A55 2008-09-23 [expires: 2009-09-23]
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<roberto@FreeBSD.org>
pub 1024D/7DCAE9D3 1997-08-21 Key fingerprint = 2945 61E7 D4E5 1D32 C100 DBEC A04F FB1B 7DCA E9D3 uid Ollivier Robert <roberto@keltia.freenix.fr> uid Ollivier Robert <roberto@FreeBSD.org> sub 2048g/C267084D 1997-08-21
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<rodrigc@FreeBSD.org>
pub 1024D/3998479D 2005-05-20 Key fingerprint = F01F EBE6 F5C8 6DC2 954F 098F D20A 8A2A 3998 479D uid Craig Rodrigues <rodrigc@freebsd.org> uid Craig Rodrigues <rodrigc@crodrigues.org> sub 2048g/AA77E09B 2005-05-20
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<guido@FreeBSD.org>
pub 1024R/599F323D 1996-05-18 Guido van Rooij <guido@gvr.org> Key fingerprint = 16 79 09 F3 C0 E4 28 A7 32 62 FA F6 60 31 C0 ED uid Guido van Rooij <guido@gvr.win.tue.nl> pub 1024D/A95102C1 2000-10-25 Guido van Rooij <guido@madison-gurkha.nl> Key fingerprint = 5B3E 51B7 0E7A D170 0574 1E51 2471 117F A951 02C1 uid Guido van Rooij <guido@madison-gurkha.com> sub 1024g/A5F20553 2000-10-25
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<rea@FreeBSD.org>
pub 3072D/8152ECFB 2010-10-27 Key fingerprint = 82FE 06BC D497 C0DE 49EC 4FF0 16AF 9EAE 8152 ECFB uid Eygene Ryabinkin <rea-fbsd@codelabs.ru> uid Eygene Ryabinkin <rea@freebsd.org> uid Eygene Ryabinkin <rea@codelabs.ru> sub 3072g/5FC03749 2010-10-27
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<ray@FreeBSD.org>
pub 2048R/4B7B7A4E 2011-05-24 Key fingerprint = BB9F D01D 7327 0B33 B2F5 6C72 EC49 E6ED 4B7B 7A4E uid Aleksandr Rybalko (Aleksandr Rybalko FreeBSD project identification) <ray@freebsd.org> sub 2048R/99F9F9EF 2011-05-24
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<niklas@FreeBSD.org>
pub 1024D/C822A476 2004-03-09 Niklas Saers <niklas@saers.com> Key fingerprint = C41E F734 AF0E 3D21 7499 9EB1 9A31 2E7E C822 A476 sub 1024g/81E2FF36 2004-03-09
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<bsam@FreeBSD.org>
pub 1024D/ADFD5C9A 2006-06-21 Key fingerprint = 81AA FED0 6050 208C 0303 4007 6C03 7263 ADFD 5C9A uid Boris Samorodov (FreeBSD) <bsam@freebsd.org> sub 2048g/7753A3F1 2006-06-21
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<marks@FreeBSD.org>
pub 1024D/DBE7EB8E 2005-03-08 Key fingerprint = C0F0 44F3 3F15 520F 6E32 186B BE0A BA42 DBE7 EB8E uid Mark Santcroos <marks@ripe.net> uid Mark Santcroos <mark@santcroos.net> uid Mark Santcroos <marks@freebsd.org> sub 2048g/FFF80F85 2005-03-08
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<bschmidt@FreeBSD.org>
pub 1024D/5F754FBC 2009-06-15 Key fingerprint = 6B87 C8A9 6BA5 6B18 11CF 8C38 A1B7 0731 5F75 4FBC uid Bernhard Schmidt <bschmidt@FreeBSD.org> uid Bernhard Schmidt <bschmidt@techwires.net> sub 1024g/1945DC1D 2009-06-15
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<wosch@FreeBSD.org>
Type Bits/KeyID Date User ID pub 1024/2B7181AD 1997/08/09 Wolfram Schneider <wosch@FreeBSD.org> Key fingerprint = CA 16 91 D9 75 33 F1 07 1B F0 B4 9F 3E 95 B6 09
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<ed@FreeBSD.org>
pub 4096R/3491A2BB 2011-03-12 [expires: 2016-03-10] Key fingerprint = A110 5982 A887 74A2 F4B1 D70A 6E5E D8FE 3491 A2BB uid Ed Schouten (The FreeBSD Project) <ed@FreeBSD.org> uid Ed Schouten <ed@80386.nl> sub 4096R/81BB41E6 2011-03-12 [expires: 2016-03-10]
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<das@FreeBSD.org>
pub 1024D/BE848B57 2001-07-19 David Schultz <das@FreeBSD.ORG> Key fingerprint = 0C12 797B A9CB 19D9 FDAF 2A39 2D76 A2DB BE84 8B57 uid David Schultz <dschultz@uclink.Berkeley.EDU> uid David Schultz <das@FreeBSD.ORG> sub 2048g/69206E8E 2001-07-19
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<scheidell@FreeBSD.org>
pub 2048R/34622C1D 2011-11-16 Key fingerprint = 0A0C 9ECA 18EC 47AC C715 2187 91B9 F9FE 3462 2C1D uid Michael Scheidell <scheidell@freebsd.org> sub 2048R/8F241971 2011-11-16
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<schweikh@FreeBSD.org>
pub 1024D/0FF231FD 2002-01-27 Jens Schweikhardt <schweikh@FreeBSD.org> Key fingerprint = 3F35 E705 F02F 35A1 A23E 330E 16FE EA33 0FF2 31FD uid Jens Schweikhardt <schweikh@schweikhardt.net> sub 1024g/6E93CACC 2002-01-27 [expires: 2005-01-26]
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<matthew@FreeBSD.org>
pub 1024D/60AE908C 2005-12-17 [expires: 2012-03-21] Key fingerprint = B555 2A96 274E D248 5734 0EB4 F0C8 E4E7 60AE 908C uid Matthew Seaman <m.seaman@infracaninophile.co.uk> uid Matthew Seaman <m.seaman@black-earth.co.uk> uid Matthew Seaman <matthew@freebsd.org> sub 2048g/58BFDA29 2005-12-17 [expires: 2012-03-21] sub 1024D/9B19F956 2006-12-18 [expires: 2012-03-21]
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<stas@FreeBSD.org>
pub 4096R/092FD9F0 2009-05-23 Key fingerprint = B83A B15D 929A 364A D8BC B3F9 BF25 A231 092F D9F0 uid Stanislav Sedov <stas@FreeBSD.org> uid Stanislav Sedov <stas@SpringDaemons.com> uid Stanislav Sedov (Corporate email) <stas@deglitch.com> uid Stanislav Sedov (Corporate email) <stas@ht-systems.ru> uid Stanislav Sedov (Corporate email) <ssedov@3playnet.com> uid Stanislav Sedov <ssedov@mbsd.msk.ru> uid Stanislav Sedov (Corporate email) <ssedov@swifttest.com> sub 4096R/6FD2025F 2009-05-23
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<johans@FreeBSD.org>
pub 4096R/D3AE8D3A 2009-09-01 Key fingerprint = 31C8 D089 DDB6 96C6 F3C1 29C0 A9C8 6C8D D3AE 8D3A uid Johan van Selst uid Johan van Selst <johans@gletsjer.net> uid Johan van Selst <johans@stack.nl> uid Johan van Selst <johans@FreeBSD.org> uid Johan van Selst (GSWoT:NL50) <johans@gswot.org> sub 2048R/B002E38C 2009-09-01 sub 2048R/1EBCAECB 2009-09-01 sub 2048R/639A1446 2009-09-01 sub 3072D/6F2708F4 2009-09-01 sub 4096g/D6F89E83 2009-09-01
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<bakul@FreeBSD.org>
pub 1024D/86AEE4CB 2006-04-20 Key fingerprint = 0389 26E8 381C 6980 AEC0 10A5 E540 A157 86AE E4CB uid Bakul Shah <bakul@freebsd.org> sub 2048g/5C3DCC24 2006-04-20
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<gshapiro@FreeBSD.org>
pub 1024R/4FBE2ADD 2000-10-13 Gregory Neil Shapiro <gshapiro@gshapiro.net> Key fingerprint = 56 D5 FF A7 A6 54 A6 B5 59 10 00 B9 5F 5F 20 09 uid Gregory Neil Shapiro <gshapiro@FreeBSD.org> pub 1024D/F76A9BF5 2001-11-14 Gregory Neil Shapiro <gshapiro@FreeBSD.org> Key fingerprint = 3B5E DAF1 4B04 97BA EE20 F841 21F9 C5BC F76A 9BF5 uid Gregory Neil Shapiro <gshapiro@gshapiro.net> sub 2048g/935657DC 2001-11-14 pub 1024D/FCE56561 2000-10-14 Gregory Neil Shapiro <gshapiro@FreeBSD.org> Key fingerprint = 42C4 A87A FD85 C34F E77F 5EA1 88E1 7B1D FCE5 6561 uid Gregory Neil Shapiro <gshapiro@gshapiro.net> sub 1024g/285DC8A0 2000-10-14 [expires: 2001-10-14]
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<arun@FreeBSD.org>
pub 1024D/7D112181 2003-03-06 Arun Sharma <arun@sharma-home.net> Key fingerprint = A074 41D6 8537 C7D5 070E 0F78 0247 1AE2 7D11 2181 uid Arun Sharma <arun@freebsd.org> uid Arun Sharma <arun.sharma@intel.com> sub 1024g/ACAD98DA 2003-03-06 [expires: 2005-03-05]
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<wxs@FreeBSD.org>
pub 1024D/17F0AA37 2007-12-27 Key fingerprint = 96D1 2E6B F61C 2F3D 83EF 8F0B BE54 310C 17F0 AA37 uid Wesley Shields <wxs@FreeBSD.org> uid Wesley Shields <wxs@atarininja.org> sub 2048g/2EDA1BB8 2007-12-27
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<nork@FreeBSD.org>
pub 1024D/7104EA4E 2005-02-14 Key fingerprint = 9580 60A3 B58A 0864 79CB 779A 6FAE 229B 7104 EA4E uid Norikatsu Shigemura <nork@cityfujisawa.ne.jp> uid Norikatsu Shigemura <nork@ninth-nine.com> uid Norikatsu Shigemura <nork@FreeBSD.org> sub 4096g/EF56997E 2005-02-14
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<syrinx@FreeBSD.org>
pub 1024D/1C139BC5 2006-10-07 Key fingerprint = B83D 2451 27AB B767 504F CB85 4FB1 C88B 1C13 9BC5 uid Shteryana Shopova (syrinx) <shteryana@FreeBSD.org> sub 2048g/6D2E9C98 2006-10-07
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<vanilla@FreeBSD.org>
pub 1024D/ACE75853 2001-11-20 Vanilla I. Shu <vanilla@FreeBSD.org> Key fingerprint = 290F 9DB8 42A3 6257 5D9A 5585 B25A 909E ACE7 5853 sub 1024g/CE695D0E 2001-11-20
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<ashish@FreeBSD.org>
pub 4096R/E74FA4B0 2010-04-13 Key fingerprint = F682 CDCC 39DC 0FEA E116 20B6 C746 CFA9 E74F A4B0 uid Ashish SHUKLA <wahjava@gmail.com> uid Ashish SHUKLA <wahjava@googlemail.com> uid Ashish SHUKLA <wahjava.ml@gmail.com> uid Ashish SHUKLA <wahjava@members.fsf.org> uid Ashish SHUKLA <wahjava@perl.org.in> uid Ashish SHUKLA <wahjava@users.sourceforge.net> uid Ashish SHUKLA <wah.java@yahoo.com> uid Ashish SHUKLA <wah_java@hotmail.com> uid Ashish SHUKLA <ashish.shukla@airtelmail.in> uid Ashish SHUKLA <wahjava@member.fsf.org> uid [jpeg image of size 4655] uid Ashish SHUKLA (FreeBSD Committer Address) <ashish@FreeBSD.ORG> sub 4096R/F20D202D 2010-04-13
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<bms@FreeBSD.org>
pub 1024D/860DB53B 2003-08-06 Bruce M Simpson <bms@freebsd.org> Key fingerprint = 0D5F 1571 44DF 51B7 8B12 041E B9E5 2901 860D B53B sub 2048g/A2A32D8B 2003-08-06 [expires: 2006-08-05]
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<demon@FreeBSD.org>
pub 1024D/13D5DF80 2002-03-18 Dmitry Sivachenko <mitya@cavia.pp.ru> Key fingerprint = 72A9 12C9 BB02 46D4 4B13 E5FE 1194 9963 13D5 DF80 uid Dmitry S. Sivachenko <demon@FreeBSD.org> sub 1024g/060F6DBD 2002-03-18
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQGiBDyVYkARBAC2Z/8odq3zwRIQZ9XOF4ZoQ8ITJRrTUwwYjwOf4Kz6gTH+zIGt Q57m5w1Scse3J/fDdIZzw0gJgH0XRpKOonWi23di4B3Oyvrdr1Zm6OlqUjoty8CC 7jo5WlLF/05Vai2HCUmFeqiukCN0mfm3Fd8S+hf1IpE1gaIxCKNvYaf14wCgpoVG Tqi+lIMCktV/vxUf3h7KgOsD/3nBeANz3U+Izr9g/AsF/FnHXeawl2m7USaIB7b1 4CFrQp8FDl6TCAtPHQyQ6pdnh0HZ3h+7cfPB1poRaXUvDimQZR9KHZO9uIilpC2n MdBjbkXmvVQ5FhOJz49cXw51Lck11n/+OuP4N4TcIHdt0DQJoUrGIB6X6Op9aOrP Ob70A/sFsFfebYdfH8loLsJkHU8VbB2Y0KZBXSnhysQ9muvj1HqT+n66o/3SliCE R3cNVMgg51pqxzUC0o6qTVKJbfOrI5b2tbYjvx87ejugQwafhKu8t1liDuUYQK0Q S549pzLKUr/NUvJaYU//6QlFIPNSzwB6x4wjrWAKBv6Vn+x0c7QoRG1pdHJ5IFMu IFNpdmFjaGVua28gPGRlbW9uQEZyZWVCU0Qub3JnPohXBBMRAgAXBQI8lWJABQsH CgMEAxUDAgMWAgECF4AACgkQEZSZYxPV34DFVgCfREoIUfpKaEeGyzl0zKThVC7J XccAnjiB85SwuNAxMraQuGDJXojukUfwtCVEbWl0cnkgU2l2YWNoZW5rbyA8bWl0 eWFAY2F2aWEucHAucnU+iFcEExECABcFAjyVY4cFCwcKAwQDFQMCAxYCAQIXgAAK CRARlJljE9XfgA6GAJ9RFwXlNqYap2SI14IPRjX9ZAzvjACeOC/Elh0HkwQ2HZMT edpgzOuknUK5AQ0EPJViRRAEAO4VdFfYGd/amgG2MDGqD269Kb5vTFbS5mDczgjM 6gXZgOjhbvj3x2auo+Pfos6M/bOtHuIk7QFOeOEJ1wcg8wgE3L3kFQPeEPeOgKBk /eA1ExIW3hiPeuwNxT3iWEv0GF/rvCSeSK3nuuDBNmkSpJ4LHIyO8Kf5YJNp8+6D yJ8rAAMFA/4jaulRHxSsWlFIm3gpBR9aiXGGX1pZTuJpXqjAQcRzDa9cuVatiSJS H9wzfE8R4353s5HpaY3AkVRjY6s9AB8bygGdUCQjuIuifTS4+tG/wmaXNgyqBqaB 6V9gTgfW/7XqcJUGeLLMUpccSRZhlQvHd18aTfPWPB49xu2+arw6P4hGBBgRAgAG BQI8lWJFAAoJEBGUmWMT1d+AYlgAoKZWZs7rDLdQbn2d0CVwmWb6hQLhAJ9E/r8N n3jf2PI8Psl2wtgvWazpaA== =mkxU -----END PGP PUBLIC KEY BLOCK-----
<jesper@FreeBSD.org>
pub 1024D/F9561C31 2001-03-09 Jesper Skriver <jesper@FreeBSD.org> Key fingerprint = 6B88 9CE8 66E9 E631 C9C5 5EB4 22AB F0EC F956 1C31 uid Jesper Skriver <jesper@skriver.dk> uid Jesper Skriver <jesper@wheel.dk> sub 1024g/777C378C 2001-03-09
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<scop@FreeBSD.org>
pub 1024D/BCD241CB 2002-04-07 Ville Skytt�<ville.skytta@iki.fi> Key fingerprint = 4E0D EBAB 3106 F1FA 3FA9 B875 D98C D635 BCD2 41CB uid Ville Skytt�<ville.skytta@xemacs.org> uid Ville Skytt�<scop@FreeBSD.org> sub 2048g/9426F4D1 2002-04-07
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<anray@FreeBSD.org>
pub 1024D/AE7B5418 2005-12-12 Key fingerprint = DE70 C24B 55A0 4A06 68A1 D425 3C59 9A9B AE7B 5418 uid Andrey Slusar <anray@ext.by> uid Andrey Slusar <anrays@gmail.com> uid Andrey Slusar <anray@FreeBSD.org> sub 2048g/7D0EB77D 2005-12-12
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<flo@FreeBSD.org>
pub 1024D/C942BF09 2008-10-24 Key fingerprint = 54BB 157B 8DB2 9E46 4A3C 69AB 6A9A 3C3F C942 BF09 uid Florian Smeets <flo@smeets.im> uid Florian Smeets <flo@kasimir.com> uid Florian Smeets <flo@FreeBSD.org> sub 2048g/4AAF040E 2008-10-24
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<glebius@FreeBSD.org>
pub 2048D/6C7E5E82 2013-01-30 [expires: 2023-08-25] Key fingerprint = 6E06 7260 B83D CF2C A93C 566F 5185 0968 6C7E 5E82 uid Gleb Smirnoff <glebius@FreeBSD.org> sub 2048g/11E89DCE 2013-01-30 [expires: 2023-08-25]
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<kensmith@FreeBSD.org>
pub 1024D/29AEA7F6 2003-12-02 Ken Smith <kensmith@cse.buffalo.edu> Key fingerprint = 4AB7 D302 0753 8215 31E7 F1AD FC6D 7855 29AE A7F6 uid Ken Smith <kensmith@freebsd.org> sub 1024g/0D509C6C 2003-12-02
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<ben@FreeBSD.org>
pub 1024D/2CEF442C 2001-07-11 Ben Smithurst <ben@LSRfm.com> Key fingerprint = 355D 0FFF B83A 90A9 D648 E409 6CFC C9FB 2CEF 442C uid Ben Smithurst <ben@vinosystems.com> uid Ben Smithurst <ben@smithurst.org> uid Ben Smithurst <ben@FreeBSD.org> uid Ben Smithurst <csxbcs@comp.leeds.ac.uk> uid Ben Smithurst <ben@scientia.demon.co.uk> sub 1024g/347071FF 2001-07-11
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<des@FreeBSD.org>
pub 4096R/F94E87B2 2013-02-15 [expires: 2015-01-01] Key fingerprint = 578A 3F4F 9E04 9FCF 3576 BF82 BB9B 471B F94E 87B2 uid Dag-Erling Sm繪rgrav <des@usit.uio.no> uid Dag-Erling Sm繪rgrav <des@des.no> uid Dag-Erling Sm繪rgrav <des@freebsd.org> uid [jpeg image of size 4779] sub 4096R/F4DE87F5 2013-02-15 [expires: 2015-01-01]
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<sobomax@FreeBSD.org>
pub 1024D/888205AF 2001-11-21 Maxim Sobolev <sobomax@FreeBSD.org> Key fingerprint = 85C9 DCB0 6828 087C C977 3034 A0DB B9B7 8882 05AF uid Maxim Sobolev <sobomax@mail.ru> uid Maxim Sobolev <sobomax@altavista.net> uid Maxim Sobolev <vegacap@i.com.ua> pub 1024D/468EE6D8 2003-03-21 Maxim Sobolev <sobomax@portaone.com> Key fingerprint = 711B D315 3360 A58F 9A0E 89DB 6D40 2558 468E E6D8 uid Maxim Sobolev <sobomax@FreeBSD.org> uid Maxim Sobolev <sobomax@mail.ru> uid Maxim Sobolev <vegacap@i.com.ua> pub 1024D/6BEC980A 2004-02-13 Maxim Sobolev <sobomax@portaone.com> Key fingerprint = 09D5 47B4 8D23 626F B643 76EB DFEE 3794 6BEC 980A uid Maxim Sobolev <sobomax@FreeBSD.org> uid Maksym Sobolyev (It's how they call me in official documents. Pretty lame...) <sobomax@portaone.com> uid Maksym Sobolyev (It's how they call me in official documents. Pretty lame...) <sobomax@FreeBSD.org> sub 2048g/16D049AB 2004-02-13 [expires: 2005-02-12]
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<brian@FreeBSD.org>
pub 1024R/666A7421 1997-04-30 Brian Somers <brian@freebsd-services.com> Key fingerprint = 2D 91 BD C2 94 2C 46 8F 8F 09 C4 FC AD 12 3B 21 uid Brian Somers <brian@awfulhak.org> uid Brian Somers <brian@FreeBSD.org> uid Brian Somers <brian@OpenBSD.org> uid Brian Somers <brian@uk.FreeBSD.org> uid Brian Somers <brian@uk.OpenBSD.org>
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<sson@FreeBSD.org>
pub 1024D/CE8319F3 2008-07-08 Key fingerprint = 64C7 8D92 C1DF B940 1171 5ED3 186A 758A CE83 19F3 uid Stacey Son <sson@FreeBSD.org> uid Stacey Son <stacey@son.org> uid Stacey Son <sson@byu.net> uid Stacey Son <sson@secure.net> uid Stacey Son <sson@dev-random.com> sub 2048g/0F724E52 2008-07-08
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<nsouch@FreeBSD.org>
pub 1024D/C744F18B 2002-02-13 Nicholas Souchu <nsouch@freebsd.org> Key fingerprint = 992A 144F AC0F 40BA 55AE DE6D 752D 0A6C C744 F18B sub 1024g/90BD3231 2002-02-13
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<ssouhlal@FreeBSD.org>
pub 1024D/2EA50469 2004-07-24 Suleiman Souhlal <ssouhlal@FreeBSD.org> Key fingerprint = DACF 89DB 54C7 DA1D 37AF 9A94 EB55 E272 2EA5 0469 sub 2048g/0CDCC535 2004-07-24
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<uqs@FreeBSD.org>
pub 2048R/4AAF82CE 2010-01-27 [expires: 2015-01-26] Key fingerprint = 08DF A6A0 B1EB 98A5 EDDA 9005 A3A6 9864 4AAF 82CE uid Ulrich Sp繹rlein <uqs@spoerlein.net> uid Ulrich Spoerlein <uspoerlein@gmail.com> uid Ulrich Sp繹rlein (The FreeBSD Project) <uqs@FreeBSD.org> uid Ulrich Sp繹rlein <ulrich.spoerlein@web.de> sub 2048R/162E8BD2 2010-01-27 [expires: 2015-01-26]
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<rink@FreeBSD.org>
pub 1024D/ECEDBFFF 2003-09-19 Key fingerprint = A8BE 9C82 9B81 4289 A905 418D 6F73 BAD2 ECED BFFF uid Rink Springer <rink@il.fontys.nl> uid Rink Springer (FreeBSD Project) <rink@FreeBSD.org> uid Rink Springer <rink@stack.nl> sub 2048g/3BC3E67E 2003-09-19
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<vsevolod@FreeBSD.org>
pub 4096R/90081437 2012-05-16 [expires: 2017-05-15] Key fingerprint = DD9A 126C E675 1EA5 2A97 04A3 0764 7B67 9008 1437 uid Vsevolod Stakhov <vsevolod@FreeBSD.org> sub 4096R/4A5A0B54 2012-05-16 [expires: 2017-05-15]
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<zi@FreeBSD.org>
pub 1024D/7AD7FAF2 2004-01-21 Key fingerprint = EF36 D45A 5CA9 28B1 A550 18CD A43C D111 7AD7 FAF2 uid Ryan Steinmetz <zi@FreeBSD.org> uid Ryan Steinmetz <rpsfa@rit.edu> uid Ryan Steinmetz <zi@zi0r.com> sub 1024g/058BC057 2004-01-21 sub 4096g/0EB108D2 2006-02-27 sub 1024D/FEF36DD7 2006-02-27
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<rrs@FreeBSD.org>
pub 1024D/0373B8B2 2006-09-01 Key fingerprint = 74A6 810E 6DEA D69B 6496 5FA9 8AEF 4166 0373 B8B2 uid Randall R Stewart <randall@lakerest.net> uid Randall R Stewart <rrs@cisco.com> uid Randall R Stewart <rrs@FreeBSD.org> sub 2048g/88027C0B 2006-09-01
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<murray@FreeBSD.org>
pub 1024D/0E451F7D 2001-02-12 Murray Stokely <murray@freebsd.org> Key fingerprint = E2CA 411D DD44 53FD BB4B 3CB5 B4D7 10A2 0E45 1F7D sub 1024g/965A770C 2001-02-12
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<vs@FreeBSD.org>
pub 1024R/3FD1B6B5 1998-06-16 Volker Stolz <vs@freebsd.org> Key fingerprint = 69 6F BD A0 2E FE 19 66 CF B9 68 6E 41 7D F9 B9 uid Volker Stolz <stolz@i2.informatik.rwth-aachen.de> (LSK) uid Volker Stolz <vs@foldr.org>
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<rstone@FreeBSD.org>
pub 1024D/3141B73A 2010-04-13 Key fingerprint = 4A6D DC04 DDC5 0822 2687 A086 FD3F 16CB 3141 B73A uid Ryan Stone (FreeBSD) <rstone@freebsd.org> sub 2048g/A8500B5F 2010-04-13
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<xride@FreeBSD.org>
pub 1024D/E683AD40 2006-09-28 Key fingerprint = 8A0E 7E57 144B BC25 24A9 EC1A 0DBC 3408 E683 AD40 uid Soeren Straarup <xride@xride.dk> uid Soeren Straarup <xride@FreeBSD.org> uid Soeren Straarup <xride@x12.dk> sub 2048g/2B18B3B8 2006-09-28
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<marius@FreeBSD.org>
pub 1024D/E0AC6F8D 2004-04-16 Key fingerprint = 3A6C 4FB1 8BB9 4F2E BDDC 4AB6 D035 799C E0AC 6F8D uid Marius Strobl <marius@FreeBSD.org> uid Marius Strobl <marius@alchemy.franken.de> sub 1024g/08BBD875 2004-04-16
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<cs@FreeBSD.org>
pub 3072R/D06F0BD7 2012-11-25 [expires: 2017-11-24] Key fingerprint = 61A4 F2B8 2A6C B81E 5557 0798 78E7 DE70 D06F 0BD7 uid Carlo Strub <cs@carlostrub.ch> uid Carlo Strub <cs@FreeBSD.org> sub 3072R/71C75997 2012-11-25 [expires: 2017-11-24] sub 3072R/318AEB16 2012-11-25 [expires: 2017-11-24]
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<clsung@FreeBSD.org>
pub 1024D/956E8BC1 2003-09-12 Cheng-Lung Sung <clsung@FreeBSD.org> Key fingerprint = E0BC 57F9 F44B 46C6 DB53 8462 F807 89F3 956E 8BC1 uid Cheng-Lung Sung (Software Engineer) <clsung@dragon2.net> uid Cheng-Lung Sung (Alumnus of CSIE, NCTU, Taiwan) <clsung@sungsung.csie.nctu.edu.tw> uid Cheng-Lung Sung (AlanSung) <clsung@tiger2.net> uid Cheng-Lung Sung (FreeBSD@Taiwan) <clsung@freebsd.csie.nctu.edu.tw> uid Cheng-Lung Sung (Ph.D. Student of NTU.EECS) <d92921016@ntu.edu.tw> uid Cheng-Lung Sung (FreeBSD Freshman) <clsung@tw.freebsd.org> uid Cheng-Lung Sung (ports committer) <clsung@FreeBSD.org> sub 1024g/1FB800C2 2003-09-12
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<gsutter@FreeBSD.org>
pub 1024D/845DFEDD 2000-10-10 Gregory S. Sutter <gsutter@zer0.org> Key fingerprint = D161 E4EA 4BFA 2427 F3F9 5B1F 2015 31D5 845D FEDD uid Gregory S. Sutter <gsutter@freebsd.org> uid Gregory S. Sutter <gsutter@daemonnews.org> uid Gregory S. Sutter <gsutter@pobox.com> sub 2048g/0A37BBCE 2000-10-10
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<metal@FreeBSD.org>
pub 1024D/AE562682 2004-05-23 SUZUKI Koichi <metal@FreeBSD.org> Key fingerprint = 92B9 A202 B5AB 8CB6 89FC 6DD1 5737 C702 AE56 2682 sub 4096g/730E604B 2004-05-23
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<ryusuke@FreeBSD.org>
pub 1024D/63D29724 2009-12-18 Key fingerprint = B108 7109 2E62 BECB 0F78 FE65 1B9A D1BE 63D2 9724 uid Ryusuke SUZUKI <ryusuke@FreeBSD.org> uid Ryusuke SUZUKI <ryusuke@jp.FreeBSD.org> sub 1024g/5E4DD044 2009-12-18
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<garys@FreeBSD.org>
pub 1024D/FAA48AD5 2005-08-22 [expires: 2007-08-22] Key fingerprint = 8292 CC3E 81B5 E54F E3DD F987 FA52 E643 FAA4 8AD5 uid Gary W. Swearingen <garys@freebsd.org> sub 2048g/E34C3CA0 2005-08-22 [expires: 2007-08-22]
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<nyan@FreeBSD.org>
pub 4096R/6624859E 2012-11-18 Key fingerprint = 1CA5 445E 7ABD BC21 AEC0 7B89 47D7 4EFF 6624 859E uid Yoshihiro TAKAHASHI <nyan@furiru.org> uid Yoshihiro TAKAHASHI <nyan@FreeBSD.org> uid Yoshihiro TAKAHASHI <nyan@jp.FreeBSD.org> sub 4096R/362726EA 2012-11-18
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<sahil@FreeBSD.org>
pub 2048R/C016D977 2010-04-08 Key fingerprint = 6AD2 BA99 8E3A 8DA6 DFC1 53CF DBD0 6001 C016 D977 uid Sahil Tandon <sahil@tandon.net> uid Sahil Tandon <sahil@FreeBSD.org> sub 2048R/F7776FBC 2010-04-08
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<tota@FreeBSD.org>
pub 1024D/67F58F29 2009-05-17 Key fingerprint = 6940 B575 FC4A FA26 C094 279A 4B9B 6326 67F5 8F29 uid TAKATSU Tomonari <tota@FreeBSD.org> sub 2048g/18B112CD 2009-05-17
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<romain@FreeBSD.org>
pub 3072R/5112336F 2010-04-09 Key fingerprint = 8234 9A78 E7C0 B807 0B59 80FF BA4D 1D95 5112 336F uid Romain Tarti癡re <romain@blogreen.org> uid Romain Tarti癡re (FreeBSD) <romain@FreeBSD.org> sub 3072R/C1B2B656 2010-04-09 sub 3072R/8F8125F4 2010-04-09
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<sylvio@FreeBSD.org>
pub 2048R/AA7395A1 2009-10-28 Key fingerprint = B319 6AAF 0016 4308 6D93 E652 3C5F 21A2 AA73 95A1 uid Sylvio Cesar Teixeira (My key) <sylvio@FreeBSD.org> sub 2048R/F758F556 2009-10-28
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<itetcu@FreeBSD.org>
pub 4096R/F0808380 2012-11-19 [expires: 2014-11-19] Key fingerprint = BAEC BFED 67D8 7529 5B53 C636 C922 F9F4 F080 8380 uid Ion-Mihai "IOnut" Tetcu <itetcu@FreeBSD.org> sub 4096R/54B3FFA0 2012-11-19 [expires: 2014-11-19]
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<mi@FreeBSD.org>
pub 1024R/3FC71479 1995-09-08 Mikhail Teterin <mi@aldan.star89.galstar.com> Key fingerprint = 5F 15 EA 78 A5 40 6A 0F 14 D7 D9 EA 6E 2B DA A4
-----BEGIN PGP PUBLIC KEY BLOCK----- Version: GnuPG v1.0.6 (FreeBSD) Comment: For info see http://www.gnupg.org mQCNAzBPh/0AAAEEAKiF0rNVbbuQue8Mo+knlGKtZJXWkLOhmdzE+FPxTSRv3TOS OHOfFbEbTlcuplvYv1US6o4liAyyx6vGLGa7ZW0zLFAtTOJTfwW3GPmcMTieOIK3 wwzJtjH+wi7VeXIQCU/mOcLC9A8QaLqhJ86e3m9FODSFMIluSoucrgI/xxR5AAUR tC1NaWtoYWlsIFRldGVyaW4gPG1pQGFsZGFuLnN0YXI4OS5nYWxzdGFyLmNvbT6J AJUDBRAwT4kMH2ldntvsCqUBAVAcA/4x53VCfOx5Bm+BtneQNEvHgV8aqWW0tM4r 31KtsSjMwuHF3kl7PJtCfVk4OpRvog4u9V5G7gtUhUIOi/Qfuia2YHvvxIh3sx7Z Gg22e4FxNzNob3qV+YiPOr+Aa6EoYfHB45eHSLFXryCBS60a0CfZies+CSzcHBy9 /Zu51dCtnQ== =f57V -----END PGP PUBLIC KEY BLOCK-----
<gordon@FreeBSD.org>
pub 1024D/357D65FB 2002-05-14 Gordon Tetlow <gordont@gnf.org> Key fingerprint = 34EF AD12 10AF 560E C3AE CE55 46ED ADF4 357D 65FB uid Gordon Tetlow <gordon@FreeBSD.org> sub 1024g/243694AB 2002-05-14
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<lth@FreeBSD.org>
pub 1024D/56B0CA08 2004-05-31 Lars Thegler <lth@FreeBSD.org> Key fingerprint = ABAE F98C EA78 1C8D 6FDD CB27 1CA9 5A63 56B0 CA08 uid Lars Thegler <lars@thegler.dk> sub 1024g/E8C58EF3 2004-05-31
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<jase@FreeBSD.org>
pub 3072R/3EEAF1EB 2012-05-30 Key fingerprint = F5FB 959F CF1B 6550 054E 2819 A484 BCDB 3EEA F1EB uid Jase Thew (FreeBSD) <jase@FreeBSD.org> uid Jase Thew <freebsd@beardz.net>
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<lx@FreeBSD.org>
pub 1024D/A887A9B4 2006-11-30 [expires: 2011-11-29] Key fingerprint = F08F 6A12 738F C9DF 51AC 8C62 1E30 7CBE A887 A9B4 uid David Thiel <lx@FreeBSD.org> sub 2048g/B9BD92C5 2006-11-30 [expires: 2011-11-29]
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<fabient@FreeBSD.org>
pub 1024D/07745930 2009-03-16 Key fingerprint = D8AC EFA2 2FBD 7788 9628 4E8D 3F35 3B88 0774 5930 uid Fabien Thomas <fabient@FreeBSD.org> sub 2048g/BC173395 2009-03-16
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<thierry@FreeBSD.org>
pub 1024D/C71405A2 1997-10-11 Key fingerprint = 3BB8 F358 C2F1 776C 65C9 AE51 73DE 698C C714 05A2 uid Thierry Thomas <thierry@pompo.net> uid Thierry Thomas <tthomas@mail.dotcom.fr> uid Thierry Thomas (FreeBSD committer) <thierry@FreeBSD.org> sub 1024R/C5529925 2003-11-26 sub 2048g/05CF3992 2008-02-05
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<thompsa@FreeBSD.org>
pub 1024D/BC6B839B 2005-05-05 Key fingerprint = DE74 3F49 B97C A170 C8F1 8423 CAB6 9D57 BC6B 839B uid Andrew Thompson <thompsa@freebsd.org> uid Andrew Thompson <andy@fud.org.nz> sub 2048g/92E370FB 2005-05-05
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<flz@FreeBSD.org>
pub 1024D/5147DCF4 2004-12-04 Key fingerprint = D203 AF5F F31A 63E2 BFD5 742B 3311 246D 5147 DCF4 uid Florent Thoumie (FreeBSD committer address) <flz@FreeBSD.org> uid Florent Thoumie (flz) <florent@thoumie.net> uid Florent Thoumie (flz) <flz@xbsd.org> uid [jpeg image of size 1796] sub 2048g/15D930B9 2004-12-04
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<jilles@FreeBSD.org>
pub 4096R/D5AE6220 2011-07-02 Key fingerprint = 4AF5 F1CC BDD7 700B F005 79A4 A2C4 C4D4 D5AE 6220 uid Jilles Tjoelker <jilles@stack.nl> uid Jilles Tjoelker <tjoelker@zonnet.nl> uid Jilles Tjoelker (FreeBSD) <jilles@FreeBSD.org> sub 4096R/14CB5775 2011-07-02
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<ganbold@FreeBSD.org>
pub 1024D/78F6425E 2008-02-26 [expires: 2013-02-24] Key fingerprint = 9B8E DC41 D3F4 F7FC D8EA 417C D4F7 2AEF 78F6 425E uid Ganbold <ganbold@freebsd.org> sub 2048g/716FCBF9 2008-02-26 [expires: 2013-02-24]
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<tuexen@FreeBSD.org>
pub 1024D/04EEDABE 2009-06-08 Key fingerprint = 493A CCB8 60E6 5510 A01D 360E 8497 B854 04EE DABE uid Michael Tuexen <tuexen@FreeBSD.org> sub 2048g/F653AA03 2009-06-08
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<andrew@FreeBSD.org>
pub 2048R/31B31614 2010-07-01 Key fingerprint = 08AC 2C57 F14F FDD1 2232 B5CD AA16 EFB8 31B3 1614 uid Andrew Turner <andrew@freebsd.org> uid Andrew Turner <andrew@fubar.geek.nz> sub 2048R/9ACBF138 2010-07-01
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<ume@FreeBSD.org>
pub 1024D/BF9071FE 2005-03-17 Key fingerprint = 1F00 0B9E 2164 70FC 6DC5 BF5F 04E9 F086 BF90 71FE uid Hajimu UMEMOTO <ume@mahoroba.org> uid Hajimu UMEMOTO <ume@FreeBSD.org> uid Hajimu UMEMOTO <ume@jp.FreeBSD.org> sub 2048g/748DB3B0 2005-03-17
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<ups@FreeBSD.org>
pub 2048R/D684B04A 2004-10-06 Stephan Uphoff <ups@freebsd.org> Key fingerprint = B5D2 04AE CA8F 7055 7474 3C85 F908 7F55 D684 B04A uid Stephan Uphoff <ups@tree.com> sub 2048R/A15F921B 2004-10-06
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<bryanv@FreeBSD.org>
pub 4096R/E97DB7DB 2012-11-05 Key fingerprint = 0F8F 11EF F4D2 EDCA ECEA CB16 744C BF25 E97D B7DB uid Bryan Venteicher (DITC) <bryanv@daemoninthecloset.org> uid Bryan Venteicher (FreeBSD) <bryanv@freebsd.org> sub 4096R/2EBC1A46 2012-11-05
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<nectar@FreeBSD.org>
pub 2048R/33C1627B 2001-07-05 Jacques A. Vidrine <nectar@celabo.org> Key fingerprint = CB CE 7D A0 6E 01 DC 61 E5 91 0A BE 79 17 D3 82 uid Jacques A. Vidrine <jvidrine@verio.net> uid Jacques A. Vidrine <n@nectar.com> uid Jacques A. Vidrine <jacques@vidrine.cc> uid Jacques A. Vidrine <nectar@FreeBSD.org> uid Jacques A. Vidrine <n@nectar.cc> pub 1024D/1606DB95 2001-07-05 Jacques A. Vidrine <nectar@celabo.org> Key fingerprint = 46BC EA5B F70A CC81 5332 0832 8C32 8CFF 1606 DB95 uid Jacques A. Vidrine <jvidrine@verio.net> uid Jacques A. Vidrine <n@nectar.com> uid Jacques A. Vidrine <jacques@vidrine.cc> uid Jacques A. Vidrine <nectar@FreeBSD.org> uid Jacques A. Vidrine <n@nectar.cc> sub 2048g/57EDEA6F 2001-07-05
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<avilla@FreeBSD.org>
pub 1024R/44350A8B 2010-01-24 Key fingerprint = F740 CE4E EDDD DA9B 4A1B 1445 DF18 82EA 4435 0A8B uid Alberto Villa <avilla@FreeBSD.org> sub 1024R/F7C8254C 2010-01-24
-----BEGIN PGP PUBLIC KEY BLOCK----- mI0ES1vM6gEEAMBJJFEzIesoeff/XaJ5baSLJwdZ87H26x51KPodOiCK4pvhSOvA 1Cl+/moYBVOqhqzfNw2pX+EPWJpwRHToqZMba0rxALNhRaQgQAVk29V3bqsQhwBS yfwQirouhXGNaUGbdYh4ay0ZoyY0FUtKsj4GxhpWdHlKrjsHAliHM6U3ABEBAAG0 IkFsYmVydG8gVmlsbGEgPGF2aWxsYUBGcmVlQlNELm9yZz6IuAQTAQIAIgUCS1vM 6gIbAwYLCQgHAwIGFQgCCQoLBBYCAwECHgECF4AACgkQ3xiC6kQ1CoucYwP+N72o Hafp9Oj0004/rsgDKSLSfru89cusN7G7FyBYICjFQXJfwRAr3Mqo+4JwMVHPbQ6z ReRiMKN362M3e2cA5GMhtYqDTq7FSJzsWBUyfMhJmKOcP5rtQlm7sIt+XFGvOxRx 6HXoduhiDmqmDUrxVxBYQTU5qGqkOXsIA/lITJ+4jQRLW8zqAQQA2HR/E+7JRr4r 6WkpHb5WVe8w6ipuOpVRh9KjLOeDtxlCCuZ61asE6dVTYxhLrxhmzXcz7WQLJb++ 89DaQj5bSAFy3BfujeO+HUik9qB9Dv+t6eNh8SlPByxObyNx+NNNP6k5xiyx0cMC AMfUJbbZ91SN4gh+21yf2VqlS5uAlWUAEQEAAYifBBgBAgAJBQJLW8zqAhsMAAoJ EN8YgupENQqLLXUD/3qVTKnHAvQqu7EcdV4SEMbXtxHauN6tushMAbTiSI1tCz+3 2nThTiXvLp4mQfwdH8uTQL+n3Yf3xZATAXe6Y/7Q+TvUp/Em3/5QOzdTEHirQDDe Cpks3VK9i/ud2nOl/TD1sy/5ad2aBKE2sAYgtILxAsdnxh4Cn4oBYc8Obg0N =UkFd -----END PGP PUBLIC KEY BLOCK-----
<nivit@FreeBSD.org>
pub 1024D/F11699E5 2006-12-05 Key fingerprint = 2C17 C591 2C6D 82BD F3DB F1BF 8FC9 6763 F116 99E5 uid Nicola Vitale (Public key for nivit@FreeBSD.org) <nivit@FreeBSD.org> sub 2048g/4C90805D 2006-12-05
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<ivoras@FreeBSD.org>
pub 1024D/569C05C8 2000-05-24 Key fingerprint = AB9A A555 C47C B61D BF83 154C 95D9 C041 569C 05C8 uid Ivan Voras <ivoras@fer.hr> uid Ivan Voras <ivan.voras@fer.hr> uid Ivan Voras <ivoras@geri.cc.fer.hr> uid [jpeg image of size 4567] uid Ivan Voras <ivoras@sharanet.org> uid Ivan Voras <ivoras@gmail.com> uid Ivan Voras <ivoras@yahoo.com> uid Ivan Voras <ivoras@freebsd.org> uid Ivan Voras <ivan.voras@zg.t-com.hr> sub 1536g/149FDD60 2000-05-24
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<stefan@FreeBSD.org>
pub 3072R/12B9E0B3 2003-03-06 Key fingerprint = 85D8 6A49 22C7 6CD9 B011 5D6A 5691 111B 12B9 E0B3 uid Stefan Walter <stefan@freebsd.org> uid Stefan Walter <sw@gegenunendlich.de> sub 3072R/6D35457A 2003-03-06
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<kaiw@FreeBSD.org>
pub 1024D/AEB910EB 2006-09-27 Key fingerprint = 3534 10A3 F143 B760 EF3E BEDF 8509 6A06 AEB9 10EB uid Kai Wang <kaiw@FreeBSD.org> uid Kai Wang <kaiw@student.chalmers.se> uid Kai Wang <kaiwang27@gmail.com> uid Kai Wang <kaiw27@gmail.com> sub 2048g/1D5AA4DD 2006-09-27
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<adamw@FreeBSD.org>
pub 2048D/C57CF3A8 2012-11-15 Key fingerprint = CCD9 F28A BD1D 50A1 8D08 18A7 F48B B195 C57C F3A8 uid Adam Weinberger (FreeBSD) <adamw@FreeBSD.org> uid Adam Weinberger (adamw.org) <adamw@adamw.org> sub 2048g/9C6D0E30 2012-11-15
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<peter@FreeBSD.org>
pub 1024D/7277717F 2003-12-14 Peter Wemm <peter@wemm.org> Key fingerprint = 622B 2282 E92B 3BAB 57D1 A417 1512 AE52 7277 717F uid Peter Wemm <peter@FreeBSD.ORG> sub 1024g/8B40D9D1 2003-12-14 pub 1024R/D89CE319 1995-04-02 Peter Wemm <peter@netplex.com.au> Key fingerprint = 47 05 04 CA 4C EE F8 93 F6 DB 02 92 6D F5 58 8A uid Peter Wemm <peter@perth.dialix.oz.au> uid Peter Wemm <peter@haywire.dialix.com>
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<nwhitehorn@FreeBSD.org>
pub 1024D/FC118258 2008-07-03 Key fingerprint = A399 BEA0 8D2B 63B3 47B5 056D 8513 5B96 FC11 8258 uid Nathan Whitehorn <nwhitehorn@freebsd.org> uid Nathan Whitehorn <nwhitehorn@icecube.wisc.edu> uid Nathan Whitehorn <nwhitehorn@physics.wisc.edu> uid Nathan Whitehorn <whitehorn@wisc.edu> sub 2048g/EDB55363 2008-07-03
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<miwi@FreeBSD.org>
pub 1024D/B1E6FCE9 2009-01-31 Key fingerprint = C022 7D60 F598 8188 2635 0F6E 74B2 4884 B1E6 FCE9 uid Martin Wilke <miwi@FreeBSD.org> sub 4096g/096DA69D 2009-01-31
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<nate@FreeBSD.org>
pub 1024D/C2AC6BA4 2002-01-28 Nate Williams (FreeBSD) <nate@FreeBSD.org> Key fingerprint = 8EE8 5E72 8A94 51FA EA68 E001 FFF9 8AA9 C2AC 6BA4 sub 1024g/03EE46D2 2002-01-28
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<swills@FreeBSD.org>
pub 2048R/207B1BA1 2010-09-02 [expires: 2011-09-02] Key fingerprint = 98FA 414A 5C2A 0EF9 CFD0 AD0D F5CF 62B3 207B 1BA1 uid Steve Wills <swills@freebsd.org> uid Steve Wills <steve@mouf.net> sub 2048R/E9B254FD 2010-09-02 [expires: 2011-09-02]
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<twinterg@FreeBSD.org>
pub 1024D/C45CB978 2006-01-08 Key fingerprint = 04EE 8114 7C6D 22CE CDC8 D7F8 112D 01DB C45C B978 uid Thomas Wintergerst <twinterg@gmx.de> uid Thomas Wintergerst <twinterg@freebsd.org> uid Thomas Wintergerst uid Thomas Wintergerst <thomas.wintergerst@nord-com.net> uid Thomas Wintergerst <thomas.wintergerst@materna.de> sub 2048g/3BEBEF8A 2006-01-08 sub 1024D/8F631374 2006-01-08 sub 2048g/34F631DC 2006-01-08
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<wollman@FreeBSD.org>
pub 1024D/0B92FAEA 2000-01-20 Garrett Wollman <wollman@FreeBSD.org> Key fingerprint = 4627 19AF 4649 31BF DE2E 3C66 3ECF 741B 0B92 FAEA sub 1024g/90D5EBC2 2000-01-20
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<joerg@FreeBSD.org>
pub 1024D/69A85873 2001-12-11 Joerg Wunsch <j@uriah.heep.sax.de> Key fingerprint = 5E84 F980 C3CA FD4B B584 1070 F48C A81B 69A8 5873 pub 1024D/69A85873 2001-12-11 Joerg Wunsch <j@uriah.heep.sax.de> uid Joerg Wunsch <joerg_wunsch@interface-systems.de> uid Joerg Wunsch <joerg@FreeBSD.org> uid Joerg Wunsch <j@ida.interface-business.de> sub 1024g/21DC9924 2001-12-11
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<davidxu@FreeBSD.org>
pub 1024D/48F2BDAB 2006-07-13 [expires: 2009-07-12] Key fingerprint = 7182 434F 8809 A4AF 9AE8 F1B5 12F6 3390 48F2 BDAB uid David Xu <davidxu@freebsd.org> sub 4096g/ED7DB38A 2006-07-13 [expires: 2009-07-12]
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<emax@FreeBSD.org>
pub 1024D/F050D2DD 2003-10-01 Maksim Yevmenkin <m_evmenkin@yahoo.com> Key fingerprint = 8F3F D359 E318 5641 8C81 34AD 791D 53F5 F050 D2DD
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<bz@FreeBSD.org>
pub 1024D/3CCF1842 2007-02-20 Key fingerprint = 1400 3F19 8FEF A3E7 7207 EE8D 2B58 B8F8 3CCF 1842 uid Bjoern A. Zeeb <bz@zabbadoz.net> uid Bjoern A. Zeeb <bzeeb@zabbadoz.net> uid Bjoern A. Zeeb <bz@FreeBSD.org> uid Bjoern A. Zeeb <bzeeb-lists@lists.zabbadoz.net> sub 4096g/F36BDC5D 2007-02-20
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<zeising@FreeBSD.org>
pub 4096R/EA4BF1EC 2012-11-28 [expires: 2013-12-31] Key fingerprint = A8DE D126 D346 E9CB 6176 AECB 0401 4392 EA4B F1EC uid Niclas Zeising <zeising@daemonic.se> uid Niclas Zeising (FreeBSD Project) <zeising@freebsd.org> uid Niclas Zeising (Lysator ACS) <zeising@lysator.liu.se> sub 4096R/BB8B5551 2012-11-29 [expires: 2013-12-31] sub 4096R/B8D43CD2 2012-11-29 [expires: 2013-12-31]
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<phantom@FreeBSD.org>
pub 1024D/9196B7D9 2002-01-28 Alexey Zelkin <phantom@FreeBSD.org> Key fingerprint = 4465 F2A4 28C1 C2E4 BB95 1EA0 C70D 4964 9196 B7D9 sub 1024g/E590ABA4 2002-01-28
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<sephe@FreeBSD.org>
pub 2048R/3E51FB42 2005-10-21 Key fingerprint = 5F47 3861 7ABA 8773 9E32 0474 5C33 841C 3E51 FB42 uid Sepherosa Ziehau (freebsd) <sephe@freebsd.org> uid Sepherosa Ziehau (sephe) <sepherosa@gmail.com> sub 2048R/7AA31321 2005-10-21
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<zont@FreeBSD.org>
pub 2048R/E8A68B1C 2012-08-17 [expires: 2016-08-17] Key fingerprint = 3DFF AA2F C10A A979 2FB9 A764 F145 4BB6 E8A6 8B1C uid Andrey Zonov <zont@FreeBSD.org> uid Andrey Zonov <andrey@zonov.org> sub 2048R/57FC2BD3 2012-08-17 [expires: 2016-08-17]
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<syuu@FreeBSD.org>
pub 2048R/43788F78 2012-11-21 Key fingerprint = 31CE 242E 6F4F F24F EEF4 D9BB 0890 2C5F 4378 8F78 uid Takuya ASADA <syuu@freebsd.org> sub 2048R/A87B0906 2012-11-21
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This glossary contains terms and acronyms used within the FreeBSD community and documentation.
Pseudocode, interpreted by a virtual machine within an ACPI-compliant operating system, providing a layer between the underlying hardware and the documented interface presented to the OS.
The programming language AML is written in.
A specification which provides an abstraction of the interface the hardware presents to the operating system, so that the operating system should need to know nothing about the underlying hardware to make the most of it. ACPI evolves and supercedes the functionality provided previously by APM, PNPBIOS and other technologies, and provides facilities for controlling power consumption, machine suspension, device enabling and disabling, etc.
A set of procedures, protocols and tools that specify the canonical interaction of one or more program parts; how, when and why they do work together, and what data they share or operate on.
A daemon that automatically mounts a filesystem when a file or directory within that filesystem is accessed.
The definition of BIOS depends a bit on the context. Some people refer to it as the ROM chip with a basic set of routines to provide an interface between software and hardware. Others refer to it as the set of routines contained in the chip that help in bootstrapping the system. Some might also refer to it as the screen used to configure the boostrapping process. The BIOS is PC-specific but other systems have something similar.
An implementation of the DNS protocols.
這是由 U.C. Berkeley 的 Computer Systems Research Group(CSRG) 選來當作他們所改良、修改過的 AT&T's 32V UNIX 名稱。FreeBSD 則是由 CSRG 的這個心血衍生出來。
A phenomenon whereby many people will give an opinion on an uncomplicated topic, whilst a complex topic receives little or no discussion. See the FAQ for the origin of the term.
參見: Carrier Detect
參見: Clear To Send
An RS232C signal indicating that a carrier has been detected.
Also known as the processor. This is the brain of the computer where all calculations take place. There are a number of different architectures with different instruction sets. Among the more well-known are the Intel-x86 and derivatives, Sun SPARC, PowerPC, and Alpha.
An RS232C signal giving the remote system permission to send data.
參見: Debugger
參見: Data Set Ready
The system that converts humanly readable hostnames (i.e., mail.example.net) to Internet addresses and vice versa.
A protocol that dynamically assigns IP addresses to a computer (host) when it requests one from the server. The address assignment is called a “lease”.
參見: Extended COFF
The name of a mutual exclusion mechanism (a sleep mutex) that protects a large set of kernel resources. Although a simple locking mechanism was adequate in the days where a machine might have only a few dozen processes, one networking card, and certainly only one processor, in current times it is an unacceptable performance bottleneck. FreeBSD developers are actively working to replace it with locks that protect individual resources, which will allow a much greater degree of parallelism for both single-processor and multi-processor machines.
A system where the user and computer interact with graphics.
參見: HangUp
The markup language used to create web pages.
參見: Input/Output
參見: IP Firewall
參見: IP Version 4
參見: IP Version 6
The IP protocol version 4, which uses 32 bits for addressing. This version is still the most widely used, but it is slowly being replaced with IPv6.
另參見: IP Version 6.
The new IP protocol. Invented because the address space in IPv4 is running out. Uses 128 bits for addressing.
Intel’s compiler for converting ASL into AML.
The packet transmitting protocol that is the basic protocol on the Internet. Originally developed at the U.S. Department of Defense and an extremly important part of the TCP/IP stack. Without the Internet Protocol, the Internet would not have become what it is today. For more information, see RFC 791.
A company that provides access to the Internet.
Japanese for “turtle”, the term KAME is used in computing circles to refer to the KAME Project, who work on an implementation of IPv6.
A kernel-supported threading system. See the project home page for further details.
Used to measure bandwith (how much data can pass a given point at a specified amount of time). Alternates to the Kilo prefix include Mega, Giga, Tera, and so forth.
A network used on a local area, e.g. office, home, or so forth.
The FreeBSD kernel uses a number of resource locks to arbitrate contention for those resources. A run-time lock diagnostic system found in FreeBSD-CURRENT kernels (but removed for releases), called witness(4), detects the potential for deadlocks due to locking errors. (witness(4) is actually slightly conservative, so it is possible to get false positives.) A true positive report indicates that “if you were unlucky, a deadlock would have happened here”.
True positive LORs tend to get fixed quickly, so check http://lists.FreeBSD.org/mailman/listinfo/freebsd-current and the LORs Seen page before posting to the mailing lists.
參見: Mail User Agent
An application used to transfer email. An MTA has traditionally been part of the BSD base system. Today Sendmail is included in the base system, but there are many other MTAs, such as postfix, qmail and Exim.
An application used by users to display and write email.
MFC 是一個縮寫,它代表了 “Merged From -CURRENT” ,這字眼會在 CVS logs 中常見, 以表示這是從 -CURRENT 中整合進其他分支(通常是 -STABLE)的 patch 或功能。
To merge functionality or a patch from the Perforce repository to the -CURRENT branch.
另參見: Perforce.
In the normal course of FreeBSD development, a change will be committed to the -CURRENT branch for testing before being merged to -STABLE. On rare occasions, a change will go into -STABLE first and then be merged to -CURRENT.
This term is also used when a patch is merged from -STABLE to a security branch.
另參見: Merge From Current.
A message, usually shown on login, often used to distribute information to users of the system.
參見: Project Evil
A filesystem developed by Microsoft and available in its “New Technology” operating systems, such as Windows 2000, Windows NT and Windows XP.
參見: Operating System
A set of programs, libraries and tools that provide access to the hardware resources of a computer. Operating systems range today from simplistic designs that support only one program running at a time, accessing only one device to fully multi-user, multi-tasking and multi-process systems that can serve thousands of users simultaneously, each of them running dozens of different applications.
Indicates a suggested change (such as a Problem Report or a feature request) which is no longer relevant or applicable due to such things as later changes to FreeBSD, changes in networking standards, the affected hardware having since become obsolete, and so forth.
參見: Perforce
參見: Process ID
參見: PPP over ATM
參見: Problem Report
A source code control product made by Perforce Software which is more advanced than CVS. Although not open source, it use is free of charge to open-source projects such as FreeBSD.
Some FreeBSD developers use a Perforce repository as a staging area for code that is considered too experimental for the -CURRENT branch.
A method of enabling access to up to 64 GB of RAM on systems which only physically have a 32-bit wide address space (and would therefore be limited to 4 GB without PAE).
A mythical piece of headgear, much like a dunce cap, awarded to any FreeBSD committer who breaks the build, makes revision numbers go backwards, or creates any other kind of havoc in the source base. Any committer worth his or her salt will soon accumulate a large collection. The usage is (almost always?) humorous.
在 FreeBSD 的發展過程中,任何的改變幅度,都不該讓使用者習慣感到不適。 舉例來說:若任意調動 /etc/defaults/rc.conf 中的系統啟動順序, 就是違背 POLA 原則的精神。任何開發人員,都該在做出重大改變前, 先三思是否會與 POLA 原則有所違背。
A description of some kind of problem that has been found in either the FreeBSD source or documentation. See Writing FreeBSD Problem Reports.
A number, unique to a particular process on a system, which identifies it and allows actions to be taken against it.
The working title for the NDISulator, written by Bill Paul, who named it referring to how awful it is (from a philosophical standpoint) to need to have something like this in the first place. The NDISulator is a special compatibility module to allow Microsoft Windows™ NDIS miniport network drivers to be used with FreeBSD/i386. This is usually the only way to use cards where the driver is closed-source. See src/sys/compat/ndis/subr_ndis.c.
參見: Received Data
參見: Request To Send
A standard for communications between serial devices.
參見: Repository Copy
repocopy(“repository copy” 的縮寫) 就是直接從 CVS repository 中複製檔案。
若不用 repocopy 的方式,那麼若要在 repository 內複製、移動檔案的話, committer 就必須執行 cvs add 來把檔案放到新位置, 並且還要執行 cvs rm 來刪除舊檔。
剛剛講的這種方式的缺點在於,該檔的之前相關紀錄 (比如在 CVS logs 中的相關項目)並不會隨之而複製到新地方去。 而 FreeBSD 計劃中認為這些歷史記錄都是相當有用的, 所以會經常採用 repository copy 的方式。 這也就是為何 repository 管理員會直接在 repository 內複製檔案的方式, 而非採取 cvs(1) 程式來進行 cvs add、 cvs rm之類的動作。
A set of documents defining Internet standards, protocols, and so forth. See www.rfc-editor.org.
Also used as a general term when someone has a suggested change and wants feedback.
參見: Signal Ground
參見: Secure Shell
參見: Suspend To RAM
An RS232 pin or wire that is the ground reference for the signal.
參見: Transmitted Data
參見: Trivial FTP
A profiling counter internal to modern Pentium processors that counts core frequency clock ticks.
A protocol that sits on top of (e.g.) the IP protocol and guarantees that packets are delivered in a reliable, ordered, fashion.
The term for the combination of the TCP protocol running over the IP protocol. Much of the Internet runs over TCP/IP.
參見: User ID
A unique number assigned to each user of a computer, by which the resources and permissions assigned to that user can be identified.
This book is the combined work of hundreds of contributors to “The FreeBSD Documentation Project”. The text is authored in SGML according to the DocBook DTD and is formatted from SGML into many different presentation formats using Jade, an open source DSSSL engine. Norm Walsh's DSSSL stylesheets were used with an additional customization layer to provide the presentation instructions for Jade. The printed version of this document would not be possible without Donald Knuth's TeX typesetting language, Leslie Lamport's LaTeX, or Sebastian Rahtz's JadeTeX macro package.
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這就是 i386 的意義。 注意即使您不是在 Intel 的 386 處理器上執行 FreeBSD ,一樣是i386。 這不是指你的處理器的型號,這裡顯示的是你處理器的“架構” |
[2] |
這些啟動的 script 是在開機的時候 FreeBSD 會自動執行的程式。 他們主要的功能是將所有該執行的東西設定好, 並將您設定成背景執行的服務啟動。 |
[3] |
在 syscons(4)、atkbd(4)、vidcontrol(1)、以及 kbdcontrol(1)等 manual page 中,對於 FreeBSD 的 console 及鍵盤驅動程式有詳細的技術說明。 我們在這裡不討論細節, 有興趣的讀者隨時可以在 manual pages 中查到關於運作方式的更詳細且完整的解釋。 |
[4] |
不完全正確——還是有少數東西不能被中斷。 例如有個程序正在從網路上的別的電腦讀一個檔案, 而那部電腦因為某些理由連不到 (機器被關掉,或是網路爛掉了), 那這個程序我們就說他是一個“不能中斷的”程序。 通常在經過兩分鐘左右之後這個程序會逾時。 當發生逾時的時候這個程序就會被結束掉了。 |
[5] |
譯註:Karbon14 是向量繪圖軟體,以前叫 Kontour,更早之前稱為 Killustrator。 |
[6] |
譯註:你必須透過 sane-frontends 或 xsane 來掃描 |
[7] |
譯註:臺灣正體中文使用者為 zh-TW。 |
[8] |
The auto-tuning algorithm sets maxusers equal to the amount of memory in the system, with a minimum of 32, and a maximum of 384. |
[9] |
Well..除非您連接 multiple terminals,這種情況我們會在 µÚ 24 章 講到。 |
[10] |
UID/GID 最大可使用至 4294967295,但這樣的 ID 可能會對已假設範圍的軟體造成嚴重問題。 |
[11] |
Under FreeBSD the standard login password may be up to 128 characters in length. |
[12] |
FreeBSD 6.0(含) 之後就不需這步驟。 |
[13] |
Other conditions may produce different failures. For instance, the file may not be owned by the user attempting to relabel the object, the object may not exist or may be read only. A mandatory policy will not allow the process to relabel the file, maybe because of a property of the file, a property of the process, or a property of the proposed new label value. For example: a user running at low integrity tries to change the label of a high integrity file. Or perhaps a user running at low integrity tries to change the label of a low integrity file to a high integrity label. |
[14] |
Due to a bug the security.mac.portacl.enabled sysctl variable will not work on FreeBSD 5.2.1 or previous releases. |
[15] |
譯註:雖然有些設備沒有『碟片』,例如 USB 隨身碟, 不過在此仍把 Disk 譯為『碟片裝置』。此外,為方便起見, 後文所有的 Disk 都譯為『磁碟』。 |
[16] |
譯註:基於相同的理由, 現在 BSD partition 常稱為 BSD label,或簡稱 label。 |
[17] |
譯註:老實說我看不懂這句指的是什麼?原文是 sysinstall Label editor favors the e partition for non-root, non-swap partitions. |
[18] |
譯註:如果您自始至終都不打算將這個磁碟用於 FreeBSD 之外的作業系統,那可以算是個好理由。不過就算如此, 用 slice 模式也沒什麼壞處就是了:-)。 |
[19] |
譯註:da 是 direct access (disk) 的縮寫; ad 是 ata disk 的縮寫。 |
[20] |
譯註:我對這句的意思沒什麼信心,原文是 IBM's OS/2 however, will “appropriate” any partition it finds which it does not understand. |
[21] |
譯註:原文這裡是用「和」,但要視實際使用方式而定。 例如用 RAID-0 就不會增加穩定度 :)。 |
[22] |
譯註:例如按 F1 可以進入控制卡 BIOS 之類的資訊。 |
[23] |
For tips on how to select a secure passphrase that is easy to remember, see the Diceware Passphrase website. |
[24] |
請注意,將 fstab 的 swap file 那行註解起來,通常表示:您得用別的方法來重建 swap。詳情請參考 µÚ 11.14 節。 |
[25] |
RAID stands for Redundant Array of Inexpensive Disks and offers various forms of fault tolerance, though the latter term is somewhat misleading: it provides no redundancy. |
[26] |
然而,這也不一定是正確,我們不可能永遠支援 FreeBSD 昔日的各種發行版本,儘管每個發行版發佈之後,都仍會持續支援數年之久。 若欲瞭解 FreeBSD 目前對於舊版的支援政策細節,請參閱 http://www.FreeBSD.org/security/ 。 |
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