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[RSA]的搜索结果
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VUE
...持多种加密算法,包括RSA、AES等。在文章的情境下,PHP后端使用phpseclib中的Crypt\\AES类来解密由Vue前端加密的数据,实现了前后端之间安全的数据交换。 npm , npm(Node Package Manager)是Node.js的包管理器,用于管理和共享Node.js的开源代码。在本文中,开发者通过运行npm install命令来安装crypto-js插件,以便在Vue前端项目中实现数据加密功能。 Composer , Composer是PHP语言中的一款依赖管理工具,允许用户声明项目所需的依赖关系,并自动解决和安装这些依赖。在本文所述情境中,PHP开发者通过Composer require命令安装phpseclib库,为PHP后端提供AES解密能力。
2023-12-15 17:02:45
141
编程狂人
转载文章
...重要的角色。例如,在RSA公钥加密体系中,就运用了模逆运算,这本质上就是通过扩展欧几里得算法求解同余方程的特例。 2021年,美国国家标准与技术研究院(NIST)宣布了下一代加密标准PQC(Post-Quantum Cryptography)的第四轮候选算法名单,其中多个方案如CRYSTALS-Kyber、NTRU Prime等都基于 lattice-based cryptography(格密码学),而这类密码体制的核心构建部分就涉及到了高效解决特定类型的同余方程问题。 此外,区块链技术中的智能合约验证机制也常利用同余方程与模运算进行安全高效的签名确认。以太坊2.0信标链采用的BLS签名方案,其背后就运用了扩展欧几里得算法来计算密钥对生成和签名验证过程中的关键参数。 因此,深入理解和熟练掌握同余方程以及扩展欧几里得算法不仅能帮助我们在学术研究和算法竞赛中取得优势,更是在未来信息技术安全、数据加密等领域保持竞争力的关键要素。随着量子计算机的发展,对经典密码学构成挑战的同时,也为这些基础数学工具的应用提供了更为广阔的研究空间和实际需求。
2023-02-18 16:22:02
1154
转载
转载文章
...学中,某些加密算法如RSA的实现过程中,就巧妙地运用了补码的思想进行模逆运算,确保数据的安全传输。近日,斯坦福大学的研究团队发表了一项新研究,通过改进补码在密码学算法中的使用方式,成功提升了加密效率和安全性。 总之,掌握二进制补码的概念并了解其在不同场景下的应用,对于计算机科学家、软件工程师乃至信息安全专家都至关重要。而持续关注这一领域的前沿动态和研究成果,将有助于我们在实践中更好地应对复杂问题,提升整体技术水平。
2023-04-09 11:10:16
614
转载
转载文章
...nssl。 1)生成RSA私钥: genrsa -out rsa_private_key.pem 1024 该命令会生成1024位的私钥,生成成功的界面如下: 此时我们就可以在当前路径下看到rsa_private_key.pem文件了。 2)把RSA私钥转换成PKCS8格式 输入命令pkcs8 -topk8 -inform PEM -in rsa_private_key.pem -outform PEM –nocrypt,并回车 得到生成功的结果,这个结果就是PKCS8格式的私钥,如下图: 3) 生成RSA公钥 输入命令rsa -in rsa_private_key.pem -pubout -out rsa_public_key.pem,并回车, 得到生成成功的结果,如下图: 此时,我们可以看到一个文件名为rsa_public_key.pem的文件,打开它,可以看到-----BEGIN PUBLIC KEY-----开头, -----END PUBLIC KEY-----结尾的没有换行的字符串,这个就是公钥。 本篇文章为转载内容。原文链接:https://blog.csdn.net/weixin_33915554/article/details/85830576。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2024-01-18 17:04:03
89
转载
Python
...着广泛应用。例如,在RSA公钥加密算法中,就涉及到大整数的指数运算。而在金融领域,复利计算、风险评估模型等也频繁使用到次方运算,体现出Python在跨学科应用中的灵活性与实用性。 此外,对于初学者而言,理解Python次方运算是掌握更多复杂算法的基础,如快速幂算法在解决大量重复乘法问题时效率极高,能有效提升程序性能。因此,深入探究次方运算并结合实际案例进行实践,将有助于开发者在项目中实现更高效的代码编写与优化。 总的来说,Python次方运算背后蕴含的不仅是基础数学原理,更是现代计算机科学与各行业技术发展的关键支撑。通过持续关注Python的新特性发展与应用场景拓展,我们可以更好地利用这一强大工具,应对未来更复杂的计算挑战。
2023-09-12 16:02:02
130
初心未变
SpringBoot
...q -newkey rsa:2048 -nodes -keyout key.pem -x509 -days 365 -out cert.pem 然后,我们需要在Nginx的配置文件中添加SSL的相关配置。 bash server { listen 443 ssl; server_name example.com; ssl_certificate cert.pem; ssl_certificate_key key.pem; location / { proxy_pass http://127.0.0.1:8080; } } 四、Spring Boot中的请求路径获取 在Spring Boot中,我们可以通过HttpServletRequest对象的getRequestURI()方法来获取请求的完整路径。例如: typescript @RequestMapping("/path") public String handlePath(HttpServletRequest request) { String path = request.getRequestURI(); return "Hello, " + path; } 五、总结 以上就是使用Nginx进行反向代理,并配置SSL证书,以及在Spring Boot中获取请求路径的方法。通过这种方式,我们可以实现一个安全且易于访问的应用程序。 六、参考资料 1. Nginx官方文档 https://nginx.org/en/docs/ 2. Spring Boot官方文档 https://docs.spring.io/spring-boot/docs/current/reference/html/ 感谢您的阅读!如果您有任何问题或建议,欢迎随时联系我。
2024-01-22 11:19:49
386
落叶归根_t
Tomcat
...t -keyalg RSA -keystore /path/to/your/keystore.jks -validity 365 这条命令会生成一个有效期为一年的自签名证书,并将其保存到指定路径的密钥库文件中。搞定这条命令后,你得照着提示填点儿东西,比如名字啦,所属单位啥的。最后,你会被要求输入密钥库的密码。 3. 常见错误及解决方案 接下来,我们来看看在配置过程中可能会遇到的一些常见错误,以及对应的解决方案。 3.1 错误一:找不到密钥库文件 这个问题通常是由于路径配置错误导致的。比如说,你可能会把密钥库文件藏在了某个出乎意料的角落,或者是路径设置里头拼错了字。 解决方案: 1. 确认密钥库文件的实际位置。 2. 检查keystoreFile属性是否正确指向了密钥库文件的位置。 举个例子,假设你的密钥库文件实际位于/home/user/keystore.jks,而你在server.xml中配置的是/path/to/your/keystore.jks,这就导致了找不到密钥库文件的问题。正确的配置应该是: xml keystoreFile="/home/user/keystore.jks" 3.2 错误二:证书密码错误 如果你输入了错误的证书密码,Tomcat将无法读取证书,从而导致配置失败。 解决方案: 1. 确认你使用的密码是否正确。 2. 如果不确定,可以尝试重新生成一个新的证书。 你可以使用以下命令重新生成证书: bash keytool -genkey -alias tomcat -keyalg RSA -keystore /path/to/new/keystore.jks -validity 365 然后,更新server.xml中的keystorePass属性为新的密码。 3.3 错误三:端口冲突 有时候,你可能会发现即使所有配置都正确,Tomcat仍然无法启动HTTPS服务。这时,很有可能是因为某个端口已经被其他应用占用。 解决方案: 1. 使用netstat命令检查当前系统中哪些端口已被占用。 2. 更改server.xml中的端口号。 例如,如果你发现8443端口已被占用,可以改为使用8444端口: xml maxThreads="150" scheme="https" secure="true" clientAuth="false" sslProtocol="TLS" keystoreFile="${catalina.base}/conf/keystore.jks" keystorePass="password"/> 4. 小结 通过这次经历,我深刻体会到配置HTTPS并不是一件简单的事情。虽然这东西能加强网站的安全性,但我们也得花更多时间和精力去搞清楚并解决各种可能出现的麻烦事儿。希望这篇文章能够帮助到那些正在配置Tomcat HTTPS的朋友,让我们一起少走弯路,更快地解决问题!
2025-01-04 15:44:17
72
雪域高原
Beego
...5 -newkey rsa:2048 -keyout server.key -out server.crt 其中,-x509表示生成的是X.509类型的证书,-nodes表示不进行密码保护,-days指定证书的有效期(单位为天),-newkey指定密钥类型和大小,-keyout指定生成的密钥文件名,-out指定生成的证书文件名。 五、Beego中HTTPS证书的问题及解决方法 在使用Beego框架开发过程中,有时我们会遇到一些与HTTPS证书相关的问题。以下是常见的几种问题及其解决方法: 1. Beego无法启动,提示缺少SSL证书 解决方法:检查bee.conf文件中的SSL证书路径是否正确,确保证书文件存在并且可读。 2. SSL证书无效或者不受信任 解决方法:可以更换SSL证书,或者在浏览器中增加对该证书的信任。 3. HTTPS请求失败,错误信息显示“SSL Error” 解决方法:可能是因为使用的SSL证书没有正确地安装或者配置,或者是服务器的防火墙阻止了HTTPS请求。在这种情况下,需要仔细检查配置文件和防火墙规则。 六、结论 总的来说,在使用Beego框架开发过程中,处理HTTPS协议下的证书问题是不可避免的一部分。咱们得先把HTTPS协议那个基础原理摸清楚,再来说说如何在Beego框架里头给它配好HTTPS。而且啊,那些常遇到的小插曲、小问题,咱们也得心里有数,手到擒来地解决才行。只有这样,我们才能在实际开发过程中,更加轻松地应对各种证书问题。
2023-09-01 11:29:54
502
青山绿水-t
MyBatis
...ES加密算法,还有如RSA、SM2等公钥加密体系在特定场景下的应用研究。不断跟进并采用更为安全高效的加密算法,是保障数据安全的重要一环。 综上所述,在实际操作中运用Mybatis-plus进行多字段加密只是数据安全领域的一小部分实践,而紧跟行业发展趋势,了解并掌握最新的数据加密技术和法规要求,才能更好地为企业和个人数据安全保驾护航。
2023-07-21 08:07:55
148
飞鸟与鱼_t
Linux
...s/.ssh/id_rsa 3. 探索第二步 公钥部署与authorized_keys文件 - 公钥上传: 在生成私钥的同时,也会生成对应的公钥(通常命名为id_rsa.pub)。咱们得把这个公钥给丢到目标服务器的“~/.ssh/authorized_keys”这个文件里头去。可通过如下命令实现: bash ssh-copy-id -i /path/to/public_key.pem user@remote_host - authorized_keys权限检查: 同样需要确保目标服务器上authorized_keys文件的权限设置正确,例如: bash chmod 600 ~/.ssh/authorized_keys 4. 探索第三步 Jenkins SSH插件配置细节 - 用户名与主机名验证: 在Jenkins的SSH插件配置界面,确保你输入的远程主机名、端口号以及用户名都是正确的。比如: Hostname: remote_host Username: jenkins_user Port: 22 Private Key: /var/lib/jenkins/.ssh/id_rsa - Passphrase考虑: 如果你在生成私钥时设置了passphrase,请确保在Jenkins的SSH插件配置中也提供了该passphrase。 5. 思考与探讨 在这个过程中,我们就像侦探一样,逐个环节去排查可能的问题点。你知道吗,就像解一道复杂的拼图游戏一样,设置Jenkins与远程服务器之间安全的SSH连接也是有它的“小窍门”和“必经之路”的。每一步操作都有它独特的逻辑性和不可或缺的重要性,就像是通关打怪一样,咱们必须一步步地把那些隐藏的小障碍给拿下,才能确保Jenkins能够稳稳当当地用上私钥,成功建立起一条坚不可摧的安全通信通道! 总结起来,面对此类问题,我们首先要确保基础配置的准确性,包括私钥和公钥的权限、路径以及在目标服务器上的部署情况;其次,细致入微地检查Jenkins的SSH插件配置细节。在整个运维技能提升的过程中,其实就跟咱们平时学做饭一样,得多动手实践、不断尝试,犯点错误没关系,关键是从中吸取经验教训。这样一来,我们的运维技能才能像滚雪球一样越滚越大,越来越强。当然啦,千万记得要保持住耐心和乐观劲儿,要知道,“任何的伟大成就,都是从一个勇敢的起步开始孕育的”这句话可是真理呀!
2023-11-22 09:47:35
184
星辰大海_
Tomcat
...~/.ssh/id_rsa.pub user@remote-server 这将把本地的公钥复制到远程服务器的~/.ssh/authorized_keys文件中。 3.2 端口防火墙限制 3.2.1 解决:检查并允许远程访问所需的SSH端口(默认22),以及Tomcat的HTTP或HTTPS端口(如8080)。 3.3 SSL/TLS证书问题 3.3.1 解决:如果使用HTTPS,确保服务器有有效的SSL证书,并在Tomcat的server.xml中配置正确。 xml SSLEnabled="true" keystoreFile="/path/to/keystore.jks" keystorePass="your-password"/> 四、高级连接技巧与安全考量 4.1 使用SSL/TLS加密通信 4.1.1 安装并配置SSL:使用openssl命令行工具生成自签名证书,或者购买受信任的证书。 4.2 使用JMX远程管理 4.2.1 配置Tomcat JMX:在conf/server.xml中添加标签,启用JMX管理。 xml 4.3 最后的安全建议:始终确保你的SSH密钥安全,定期更新和审计服务器配置,以防止潜在的攻击。 五、结语 5.1 远程连接Tomcat虽然复杂,但只要我们理解其工作原理并遵循最佳实践,就能顺利解决问题。记住,安全永远是第一位的,不要忽视任何可能的风险。 希望通过这篇文章,你对Tomcat的远程连接有了更深入的理解,并能在实际工作中灵活运用。如果你在实施过程中遇到更多问题,欢迎继续探索和讨论!
2024-06-17 11:00:56
264
翡翠梦境
Sqoop
...9 -newkey rsa:2048 -keyout key.pem -out cert.pem -days 3650 -nodes 这个命令将会创建一个名为key.pem的私钥文件和一个名为cert.pem的公钥证书文件。证书的有效期为3650天。 步骤2:修改Sqoop配置文件 接下来,我们需要修改Sqoop的配置文件以使用我们的SSL证书。Sqoop的配置文件通常是/etc/sqoop/conf/sqoop-env.sh。在这个文件中,我们需要添加以下行: export JVM_OPTS="-Djavax.net.ssl.keyStore=/path/to/key.pem -Djavax.net.ssl.trustStore=/path/to/cert.pem" 这行代码将会告诉Java环境使用我们刚刚创建的key.pem文件作为私钥存储位置,以及使用cert.pem文件作为信任存储位置。 步骤3:重启Sqoop服务 最后,我们需要重启Sqoop服务以使新的配置生效。以下是一些常见的操作系统上启动和停止Sqoop服务的方法: Ubuntu/Linux: sudo service sqoop start sudo service sqoop stop CentOS/RHEL: sudo systemctl start sqoop.service sudo systemctl stop sqoop.service 四、总结 在本文中,我们介绍了如何配置Sqoop以使用SSL/TLS加密。你知道吗,就像给自家的保险箱装上密码锁一样,我们可以通过动手制作一个自签名的SSL证书,然后把它塞进Sqoop的配置文件里头。这样一来,就能像防护盾一样,把咱们的数据安全牢牢地守在中间人攻击的外面,让数据的安全性和隐私性蹭蹭地往上涨!虽然一开始可能会觉得有点烧脑,但仔细想想数据的价值,我们确实应该下点功夫,花些时间把这个事情搞定。毕竟,为了保护那些重要的数据,这点小麻烦又算得了什么呢? 当然,这只是基础的配置,如果我们需要更高级的保护,例如双重认证,我们还需要进行更多的设置。不管怎样,咱可得把数据安全当回事儿,要知道,数据可是咱们的宝贝疙瘩,价值连城的东西之一啊!
2023-10-06 10:27:40
184
追梦人-t
转载文章
...keygen -t rsa[postgres@gtm ~] cat ~/.ssh/id_rsa.pub >> ~/.ssh/authorized_keys[postgres@gtm ~] chmod 600 ~/.ssh/authorized_keys 将刚生成的认证文件拷贝到xl1到xl2中,使得gtm节点可以免密码登录xl1~xl2的任意一个节点: [postgres@gtm ~] scp ~/.ssh/authorized_keys postgres@xl1:~/.ssh/[postgres@gtm ~] scp ~/.ssh/authorized_keys postgres@xl2:~/.ssh/ 对所有提示都不要输入,直接enter下一步。直到最后,因为第一次要求输入目标机器的用户密码,输入即可。 下载源码 下载地址:https://www.postgres-xl.org/download/ [root@slave ~] ll postgres-xl-10r1.1.tar.gz-rw-r--r-- 1 root root 28121666 May 30 05:21 postgres-xl-10r1.1.tar.gz 编译、安装Postgres-XL 所有节点都安装,编译需要一点时间,最好同时进行编译。 [root@slave ~] tar xvf postgres-xl-10r1.1.tar.gz[root@slave ~] ./configure --prefix=/home/postgres/pgxl/[root@slave ~] make[root@slave ~] make install[root@slave ~] cd contrib/ --安装必要的工具,在gtm节点上安装即可[root@slave ~] make[root@slave ~] make install 配置环境变量 所有节点都要配置 进入postgres用户,修改其环境变量,开始编辑 [root@gtm ~]su - postgres[postgres@gtm ~]vi .bashrc --不是.bash_profile 在打开的文件末尾,新增如下变量配置: export PGHOME=/home/postgres/pgxlexport LD_LIBRARY_PATH=$PGHOME/lib:$LD_LIBRARY_PATHexport PATH=$PGHOME/bin:$PATH 按住esc,然后输入:wq!保存退出。输入以下命令对更改重启生效。 [postgres@gtm ~] source .bashrc --不是.bash_profile 输入以下语句,如果输出变量结果,代表生效 [postgres@gtm ~] echo $PGHOME 应该输出/home/postgres/pgxl代表生效 配置集群 生成pgxc_ctl.conf配置文件 [postgres@gtm ~] pgxc_ctl prepare/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxl/pgxc_ctl/pgxc_ctl_bash.ERROR: File "/home/postgres/pgxl/pgxc_ctl/pgxc_ctl.conf" not found or not a regular file. No such file or directoryInstalling pgxc_ctl_bash script as /home/postgres/pgxl/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxl/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxl/pgxc_ctl --configuration /home/postgres/pgxl/pgxc_ctl/pgxc_ctl.confFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxl/pgxc_ctl 配置pgxc_ctl.conf 新建/home/postgres/pgxc_ctl/pgxc_ctl.conf文件,编辑如下: 对着模板文件一个一个修改,否则会造成初始化过程出现各种神奇问题。 pgxcInstallDir=$PGHOMEpgxlDATA=$PGHOME/data pgxcOwner=postgres---- GTM Master -----------------------------------------gtmName=gtmgtmMasterServer=gtmgtmMasterPort=6666gtmMasterDir=$pgxlDATA/nodes/gtmgtmSlave=y Specify y if you configure GTM Slave. Otherwise, GTM slave will not be configured and all the following variables will be reset.gtmSlaveName=gtmSlavegtmSlaveServer=gtm value none means GTM slave is not available. Give none if you don't configure GTM Slave.gtmSlavePort=20001 Not used if you don't configure GTM slave.gtmSlaveDir=$pgxlDATA/nodes/gtmSlave Not used if you don't configure GTM slave.---- GTM-Proxy Master -------gtmProxyDir=$pgxlDATA/nodes/gtm_proxygtmProxy=y gtmProxyNames=(gtm_pxy1 gtm_pxy2) gtmProxyServers=(xl1 xl2) gtmProxyPorts=(6666 6666) gtmProxyDirs=($gtmProxyDir $gtmProxyDir) ---- Coordinators ---------coordMasterDir=$pgxlDATA/nodes/coordcoordNames=(coord1 coord2) coordPorts=(5432 5432) poolerPorts=(6667 6667) coordPgHbaEntries=(0.0.0.0/0)coordMasterServers=(xl1 xl2) coordMasterDirs=($coordMasterDir $coordMasterDir)coordMaxWALsernder=0 没设置备份节点,设置为0coordMaxWALSenders=($coordMaxWALsernder $coordMaxWALsernder) 数量保持和coordMasterServers一致coordSlave=n---- Datanodes ----------datanodeMasterDir=$pgxlDATA/nodes/dn_masterprimaryDatanode=xl1 主数据节点datanodeNames=(node1 node2)datanodePorts=(5433 5433) datanodePoolerPorts=(6668 6668) datanodePgHbaEntries=(0.0.0.0/0)datanodeMasterServers=(xl1 xl2)datanodeMasterDirs=($datanodeMasterDir $datanodeMasterDir)datanodeMaxWalSender=4datanodeMaxWALSenders=($datanodeMaxWalSender $datanodeMaxWalSender) 集群初始化,启动,停止 初始化 pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf init all 输出结果: /bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlStopping all the coordinator masters.Stopping coordinator master coord1.Stopping coordinator master coord2.pg_ctl: directory "/home/postgres/pgxc/nodes/coord/coord1" does not existpg_ctl: directory "/home/postgres/pgxc/nodes/coord/coord2" does not existDone.Stopping all the datanode masters.Stopping datanode master datanode1.Stopping datanode master datanode2.pg_ctl: PID file "/home/postgres/pgxc/nodes/datanode/datanode1/postmaster.pid" does not existIs server running?Done.Stop GTM masterwaiting for server to shut down.... doneserver stopped[postgres@gtm ~]$ echo $PGHOME/home/postgres/pgxl[postgres@gtm ~]$ ll /home/postgres/pgxl/pgxc/nodes/gtm/gtm.^C[postgres@gtm ~]$ pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf init all/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlInitialize GTM masterERROR: target directory (/home/postgres/pgxc/nodes/gtm) exists and not empty. Skip GTM initilializationDone.Start GTM masterserver startingInitialize all the coordinator masters.Initialize coordinator master coord1.ERROR: target coordinator master coord1 is running now. Skip initilialization.Initialize coordinator master coord2.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/coord/coord2 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.Done.Starting coordinator master.Starting coordinator master coord1ERROR: target coordinator master coord1 is already running now. Skip initialization.Starting coordinator master coord22019-05-30 21:09:25.562 EDT [2148] LOG: listening on IPv4 address "0.0.0.0", port 54322019-05-30 21:09:25.562 EDT [2148] LOG: listening on IPv6 address "::", port 54322019-05-30 21:09:25.563 EDT [2148] LOG: listening on Unix socket "/tmp/.s.PGSQL.5432"2019-05-30 21:09:25.601 EDT [2149] LOG: database system was shut down at 2019-05-30 21:09:22 EDT2019-05-30 21:09:25.605 EDT [2148] LOG: database system is ready to accept connections2019-05-30 21:09:25.612 EDT [2156] LOG: cluster monitor startedDone.Initialize all the datanode masters.Initialize the datanode master datanode1.Initialize the datanode master datanode2.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/datanode/datanode1 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/datanode/datanode2 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.Done.Starting all the datanode masters.Starting datanode master datanode1.WARNING: datanode master datanode1 is running now. Skipping.Starting datanode master datanode2.2019-05-30 21:09:33.352 EDT [2404] LOG: listening on IPv4 address "0.0.0.0", port 154322019-05-30 21:09:33.352 EDT [2404] LOG: listening on IPv6 address "::", port 154322019-05-30 21:09:33.355 EDT [2404] LOG: listening on Unix socket "/tmp/.s.PGSQL.15432"2019-05-30 21:09:33.392 EDT [2404] LOG: redirecting log output to logging collector process2019-05-30 21:09:33.392 EDT [2404] HINT: Future log output will appear in directory "pg_log".Done.psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"Done.psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"Done.[postgres@gtm ~]$ pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf stop all/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlStopping all the coordinator masters.Stopping coordinator master coord1.Stopping coordinator master coord2.pg_ctl: directory "/home/postgres/pgxc/nodes/coord/coord1" does not existDone.Stopping all the datanode masters.Stopping datanode master datanode1.Stopping datanode master datanode2.pg_ctl: PID file "/home/postgres/pgxc/nodes/datanode/datanode1/postmaster.pid" does not existIs server running?Done.Stop GTM masterwaiting for server to shut down.... doneserver stopped[postgres@gtm ~]$ pgxc_ctl/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlPGXC monitor allNot running: gtm masterRunning: coordinator master coord1Not running: coordinator master coord2Running: datanode master datanode1Not running: datanode master datanode2PGXC stop coordinator master coord1Stopping coordinator master coord1.pg_ctl: directory "/home/postgres/pgxc/nodes/coord/coord1" does not existDone.PGXC stop datanode master datanode1Stopping datanode master datanode1.pg_ctl: PID file "/home/postgres/pgxc/nodes/datanode/datanode1/postmaster.pid" does not existIs server running?Done.PGXC monitor allNot running: gtm masterRunning: coordinator master coord1Not running: coordinator master coord2Running: datanode master datanode1Not running: datanode master datanode2PGXC monitor allNot running: gtm masterNot running: coordinator master coord1Not running: coordinator master coord2Not running: datanode master datanode1Not running: datanode master datanode2PGXC exit[postgres@gtm ~]$ pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf init all/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlInitialize GTM masterERROR: target directory (/home/postgres/pgxc/nodes/gtm) exists and not empty. Skip GTM initilializationDone.Start GTM masterserver startingInitialize all the coordinator masters.Initialize coordinator master coord1.Initialize coordinator master coord2.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/coord/coord1 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/coord/coord2 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.Done.Starting coordinator master.Starting coordinator master coord1Starting coordinator master coord22019-05-30 21:13:03.998 EDT [25137] LOG: listening on IPv4 address "0.0.0.0", port 54322019-05-30 21:13:03.998 EDT [25137] LOG: listening on IPv6 address "::", port 54322019-05-30 21:13:04.000 EDT [25137] LOG: listening on Unix socket "/tmp/.s.PGSQL.5432"2019-05-30 21:13:04.038 EDT [25138] LOG: database system was shut down at 2019-05-30 21:13:00 EDT2019-05-30 21:13:04.042 EDT [25137] LOG: database system is ready to accept connections2019-05-30 21:13:04.049 EDT [25145] LOG: cluster monitor started2019-05-30 21:13:04.020 EDT [2730] LOG: listening on IPv4 address "0.0.0.0", port 54322019-05-30 21:13:04.020 EDT [2730] LOG: listening on IPv6 address "::", port 54322019-05-30 21:13:04.021 EDT [2730] LOG: listening on Unix socket "/tmp/.s.PGSQL.5432"2019-05-30 21:13:04.057 EDT [2731] LOG: database system was shut down at 2019-05-30 21:13:00 EDT2019-05-30 21:13:04.061 EDT [2730] LOG: database system is ready to accept connections2019-05-30 21:13:04.062 EDT [2738] LOG: cluster monitor startedDone.Initialize all the datanode masters.Initialize the datanode master datanode1.Initialize the datanode master datanode2.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/datanode/datanode1 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.The files belonging to this database system will be owned by user "postgres".This user must also own the server process.The database cluster will be initialized with locale "en_US.UTF-8".The default database encoding has accordingly been set to "UTF8".The default text search configuration will be set to "english".Data page checksums are disabled.fixing permissions on existing directory /home/postgres/pgxc/nodes/datanode/datanode2 ... okcreating subdirectories ... okselecting default max_connections ... 100selecting default shared_buffers ... 128MBselecting dynamic shared memory implementation ... posixcreating configuration files ... okrunning bootstrap script ... okperforming post-bootstrap initialization ... creating cluster information ... oksyncing data to disk ... okfreezing database template0 ... okfreezing database template1 ... okfreezing database postgres ... okWARNING: enabling "trust" authentication for local connectionsYou can change this by editing pg_hba.conf or using the option -A, or--auth-local and --auth-host, the next time you run initdb.Success.Done.Starting all the datanode masters.Starting datanode master datanode1.Starting datanode master datanode2.2019-05-30 21:13:12.077 EDT [25392] LOG: listening on IPv4 address "0.0.0.0", port 154322019-05-30 21:13:12.077 EDT [25392] LOG: listening on IPv6 address "::", port 154322019-05-30 21:13:12.079 EDT [25392] LOG: listening on Unix socket "/tmp/.s.PGSQL.15432"2019-05-30 21:13:12.114 EDT [25392] LOG: redirecting log output to logging collector process2019-05-30 21:13:12.114 EDT [25392] HINT: Future log output will appear in directory "pg_log".2019-05-30 21:13:12.079 EDT [2985] LOG: listening on IPv4 address "0.0.0.0", port 154322019-05-30 21:13:12.079 EDT [2985] LOG: listening on IPv6 address "::", port 154322019-05-30 21:13:12.081 EDT [2985] LOG: listening on Unix socket "/tmp/.s.PGSQL.15432"2019-05-30 21:13:12.117 EDT [2985] LOG: redirecting log output to logging collector process2019-05-30 21:13:12.117 EDT [2985] HINT: Future log output will appear in directory "pg_log".Done.psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"Done.psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"psql: FATAL: no pg_hba.conf entry for host "192.168.20.132", user "postgres", database "postgres"Done. 启动 pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf start all 关闭 pgxc_ctl -c /home/postgres/pgxc_ctl/pgxc_ctl.conf stop all 查看集群状态 [postgres@gtm ~]$ pgxc_ctl monitor all/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.conf/home/postgres/pgxc_ctl/pgxc_ctl.conf: line 189: $coordExtraConfig: ambiguous redirectFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlRunning: gtm masterRunning: coordinator master coord1Running: coordinator master coord2Running: datanode master datanode1Running: datanode master datanode2 配置集群信息 分别在数据节点、协调器节点上分别执行以下命令: 注:本节点只执行修改操作即可(alert node),其他节点执行创建命令(create node)。因为本节点已经包含本节点的信息。 create node coord1 with (type=coordinator,host=xl1, port=5432);create node coord2 with (type=coordinator,host=xl2, port=5432);alter node coord1 with (type=coordinator,host=xl1, port=5432);alter node coord2 with (type=coordinator,host=xl2, port=5432);create node datanode1 with (type=datanode, host=xl1,port=15432,primary=true,PREFERRED);create node datanode2 with (type=datanode, host=xl2,port=15432);alter node datanode1 with (type=datanode, host=xl1,port=15432,primary=true,PREFERRED);alter node datanode2 with (type=datanode, host=xl2,port=15432);select pgxc_pool_reload(); 分别登陆数据节点、协调器节点验证 postgres= select from pgxc_node;node_name | node_type | node_port | node_host | nodeis_primary | nodeis_preferred | node_id-----------+-----------+-----------+-----------+----------------+------------------+-------------coord1 | C | 5432 | xl1 | f | f | 1885696643coord2 | C | 5432 | xl2 | f | f | -1197102633datanode2 | D | 15432 | xl2 | f | f | -905831925datanode1 | D | 15432 | xl1 | t | f | 888802358(4 rows) 测试 插入数据 在数据节点1,执行相关操作。 通过协调器端口登录PG [postgres@xl1 ~]$ psql -p 5432psql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= create database lei;CREATE DATABASEpostgres= \c lei;You are now connected to database "lei" as user "postgres".lei= create table test1(id int,name text);CREATE TABLElei= insert into test1(id,name) select generate_series(1,8),'测试';INSERT 0 8lei= select from test1;id | name----+------1 | 测试2 | 测试5 | 测试6 | 测试8 | 测试3 | 测试4 | 测试7 | 测试(8 rows) 注:默认创建的表为分布式表,也就是每个数据节点值存储表的部分数据。关于表类型具体说明,下面有说明。 通过15432端口登录数据节点,查看数据 有5条数据 [postgres@xl1 ~]$ psql -p 15432psql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= \c lei;You are now connected to database "lei" as user "postgres".lei= select from test1;id | name----+------1 | 测试2 | 测试5 | 测试6 | 测试8 | 测试(5 rows) 登录到节点2,查看数据 有3条数据 [postgres@xl2 ~]$ psql -p15432psql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= \c lei;You are now connected to database "lei" as user "postgres".lei= select from test1;id | name----+------3 | 测试4 | 测试7 | 测试(3 rows) 两个节点的数据加起来整个8条,没有问题。 至此Postgre-XL集群搭建完成。 创建数据库、表时可能会出现以下错误: ERROR: Failed to get pooled connections 是因为pg_hba.conf配置不对,所有节点加上host all all 192.168.20.0/0 trust并重启集群即可。 ERROR: No Datanode defined in cluster 首先确认是否创建了数据节点,也就是create node相关的命令。如果创建了则执行select pgxc_pool_reload();使其生效即可。 集群管理与应用 表类型说明 REPLICATION表:各个datanode节点中,表的数据完全相同,也就是说,插入数据时,会分别在每个datanode节点插入相同数据。读数据时,只需要读任意一个datanode节点上的数据。 建表语法: CREATE TABLE repltab (col1 int, col2 int) DISTRIBUTE BY REPLICATION; DISTRIBUTE :会将插入的数据,按照拆分规则,分配到不同的datanode节点中存储,也就是sharding技术。每个datanode节点只保存了部分数据,通过coordinate节点可以查询完整的数据视图。 CREATE TABLE disttab(col1 int, col2 int, col3 text) DISTRIBUTE BY HASH(col1); 模拟数据插入 任意登录一个coordinate节点进行建表操作 [postgres@gtm ~]$ psql -h xl1 -p 5432 -U postgrespostgres= INSERT INTO disttab SELECT generate_series(1,100), generate_series(101, 200), 'foo';INSERT 0 100postgres= INSERT INTO repltab SELECT generate_series(1,100), generate_series(101, 200);INSERT 0 100 查看数据分布结果: DISTRIBUTE表分布结果 postgres= SELECT xc_node_id, count() FROM disttab GROUP BY xc_node_id;xc_node_id | count ------------+-------1148549230 | 42-927910690 | 58(2 rows) REPLICATION表分布结果 postgres= SELECT count() FROM repltab;count -------100(1 row) 查看另一个datanode2中repltab表结果 [postgres@datanode2 pgxl9.5]$ psql -p 15432psql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= SELECT count() FROM repltab;count -------100(1 row) 结论:REPLICATION表中,datanode1,datanode2中表是全部数据,一模一样。而DISTRIBUTE表,数据散落近乎平均分配到了datanode1,datanode2节点中。 新增数据节点与数据重分布 在线新增节点、并重新分布数据。 新增datanode节点 在gtm集群管理节点上执行pgxc_ctl命令 [postgres@gtm ~]$ pgxc_ctl/bin/bashInstalling pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Installing pgxc_ctl_bash script as /home/postgres/pgxc_ctl/pgxc_ctl_bash.Reading configuration using /home/postgres/pgxc_ctl/pgxc_ctl_bash --home /home/postgres/pgxc_ctl --configuration /home/postgres/pgxc_ctl/pgxc_ctl.confFinished reading configuration. PGXC_CTL START Current directory: /home/postgres/pgxc_ctlPGXC 在服务器xl3上,新增一个master角色的datanode节点,名称是datanode3 端口号暂定5430,pool master暂定6669 ,指定好数据目录位置,从两个节点升级到3个节点,之后要写3个none none应该是datanodeSpecificExtraConfig或者datanodeSpecificExtraPgHba配置PGXC add datanode master datanode3 xl3 15432 6671 /home/postgres/pgxc/nodes/datanode/datanode3 none none none 等待新增完成后,查询集群节点状态: postgres= select from pgxc_node;node_name | node_type | node_port | node_host | nodeis_primary | nodeis_preferred | node_id-----------+-----------+-----------+-----------+----------------+------------------+-------------datanode1 | D | 15432 | xl1 | t | f | 888802358datanode2 | D | 15432 | xl2 | f | f | -905831925datanode3 | D | 15432 | xl3 | f | f | -705831925coord1 | C | 5432 | xl1 | f | f | 1885696643coord2 | C | 5432 | xl2 | f | f | -1197102633(4 rows) 节点新增完毕 数据重新分布 由于新增节点后无法自动完成数据重新分布,需要手动操作。 DISTRIBUTE表分布在了node1,node2节点上,如下: postgres= SELECT xc_node_id, count() FROM disttab GROUP BY xc_node_id;xc_node_id | count ------------+-------1148549230 | 42-927910690 | 58(2 rows) 新增一个节点后,将sharding表数据重新分配到三个节点上,将repl表复制到新节点 重分布sharding表postgres= ALTER TABLE disttab ADD NODE (datanode3);ALTER TABLE 复制数据到新节点postgres= ALTER TABLE repltab ADD NODE (datanode3);ALTER TABLE 查看新的数据分布: postgres= SELECT xc_node_id, count() FROM disttab GROUP BY xc_node_id;xc_node_id | count ------------+--------700122826 | 36-927910690 | 321148549230 | 32(3 rows) 登录datanode3(新增的时候,放在了xl3服务器上,端口15432)节点查看数据: [postgres@gtm ~]$ psql -h xl3 -p 15432 -U postgrespsql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= select count() from repltab;count -------100(1 row) 很明显,通过 ALTER TABLE tt ADD NODE (dn)命令,可以将DISTRIBUTE表数据重新分布到新节点,重分布过程中会中断所有事务。可以将REPLICATION表数据复制到新节点。 从datanode节点中回收数据 postgres= ALTER TABLE disttab DELETE NODE (datanode3);ALTER TABLEpostgres= ALTER TABLE repltab DELETE NODE (datanode3);ALTER TABLE 删除数据节点 Postgresql-XL并没有检查将被删除的datanode节点是否有replicated/distributed表的数据,为了数据安全,在删除之前需要检查下被删除节点上的数据,有数据的话,要回收掉分配到其他节点,然后才能安全删除。删除数据节点分为四步骤: 1.查询要删除节点dn3的oid postgres= SELECT oid, FROM pgxc_node;oid | node_name | node_type | node_port | node_host | nodeis_primary | nodeis_preferred | node_id -------+-----------+-----------+-----------+-----------+----------------+------------------+-------------11819 | coord1 | C | 5432 | datanode1 | f | f | 188569664316384 | coord2 | C | 5432 | datanode2 | f | f | -119710263316385 | node1 | D | 5433 | datanode1 | f | t | 114854923016386 | node2 | D | 5433 | datanode2 | f | f | -92791069016397 | dn3 | D | 5430 | datanode1 | f | f | -700122826(5 rows) 2.查询dn3对应的oid中是否有数据 testdb= SELECT FROM pgxc_class WHERE nodeoids::integer[] @> ARRAY[16397];pcrelid | pclocatortype | pcattnum | pchashalgorithm | pchashbuckets | nodeoids ---------+---------------+----------+-----------------+---------------+-------------------16388 | H | 1 | 1 | 4096 | 16397 16385 1638616394 | R | 0 | 0 | 0 | 16397 16385 16386(2 rows) 3.有数据的先回收数据 postgres= ALTER TABLE disttab DELETE NODE (dn3);ALTER TABLEpostgres= ALTER TABLE repltab DELETE NODE (dn3);ALTER TABLEpostgres= SELECT FROM pgxc_class WHERE nodeoids::integer[] @> ARRAY[16397];pcrelid | pclocatortype | pcattnum | pchashalgorithm | pchashbuckets | nodeoids ---------+---------------+----------+-----------------+---------------+----------(0 rows) 4.安全删除dn3 PGXC$ remove datanode master dn3 clean 故障节点FAILOVER 1.查看当前集群状态 [postgres@gtm ~]$ psql -h xl1 -p 5432psql (PGXL 10r1.1, based on PG 10.6 (Postgres-XL 10r1.1))Type "help" for help.postgres= SELECT oid, FROM pgxc_node;oid | node_name | node_type | node_port | node_host | nodeis_primary | nodeis_preferred | node_id-------+-----------+-----------+-----------+-----------+----------------+------------------+-------------11739 | coord1 | C | 5432 | xl1 | f | f | 188569664316384 | coord2 | C | 5432 | xl2 | f | f | -119710263316387 | datanode2 | D | 15432 | xl2 | f | f | -90583192516388 | datanode1 | D | 15432 | xl1 | t | t | 888802358(4 rows) 2.模拟datanode1节点故障 直接关闭即可 PGXC stop -m immediate datanode master datanode1Stopping datanode master datanode1.Done. 3.测试查询 只要查询涉及到datanode1上的数据,那么该查询就会报错 postgres= SELECT xc_node_id, count() FROM disttab GROUP BY xc_node_id;WARNING: failed to receive file descriptors for connectionsERROR: Failed to get pooled connectionsHINT: This may happen because one or more nodes are currently unreachable, either because of node or network failure.Its also possible that the target node may have hit the connection limit or the pooler is configured with low connections.Please check if all nodes are running fine and also review max_connections and max_pool_size configuration parameterspostgres= SELECT xc_node_id, FROM disttab WHERE col1 = 3;xc_node_id | col1 | col2 | col3------------+------+------+-------905831925 | 3 | 103 | foo(1 row) 测试发现,查询范围如果涉及到故障的node1节点,会报错,而查询的数据范围不在node1上的话,仍然可以查询。 4.手动切换 要想切换,必须要提前配置slave节点。 PGXC$ failover datanode node1 切换完成后,查询集群 postgres= SELECT oid, FROM pgxc_node;oid | node_name | node_type | node_port | node_host | nodeis_primary | nodeis_preferred | node_id -------+-----------+-----------+-----------+-----------+----------------+------------------+-------------11819 | coord1 | C | 5432 | datanode1 | f | f | 188569664316384 | coord2 | C | 5432 | datanode2 | f | f | -119710263316386 | node2 | D | 15432 | datanode2 | f | f | -92791069016385 | node1 | D | 15433 | datanode2 | f | t | 1148549230(4 rows) 发现datanode1节点的ip和端口都已经替换为配置的slave了。 本篇文章为转载内容。原文链接:https://blog.csdn.net/qianglei6077/article/details/94379331。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-01-30 11:09:03
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...~/.ssh/id_rsa.pub mykey openstack flavor list openstack image list openstack network list openstack server create --flavor tiny --image cirros --nic net-id=27616098-0374-4ab4-95a8-b5bf4839dcf8 --key-name mykey provider-instance 网络配置 python /usr/lib/python2.7/site-packages/networking_odl/cmd/set_ovs_hostconfigs.py --ovs_hostconfigs='{ "ODL L2": { "allowed_network_types": [ "flat", "vlan", "vxlan" ], "bridge_mappings": { "provider": "br-int" }, "supported_vnic_types": [ { "vnic_type": "normal", "vif_type": "ovs", "vif_details": {} } ] }, "ODL L3": {} }' ovs-vsctl list open . [2019/1/16 19:09] 高正伟: ovs-vsctl set Open_vSwitch . other_config:local_ip=hostip ovs-vsctl set Open_vSwitch . other_config:local_ip=192.168.56.122 ovs-vsctl set Open_vSwitch . other_config:remote_ip=192.168.56.122 ovs-vsctl remove interface tunca7b782f232 options remote_ip ovs-vsctl set Open_vSwitch . other_config:provider_mappings=provider:br-ex ovs-vsctl set Open_vSwitch . external_ids:provider_mappings="{\"provider\": \"br-ex\"}" 清空 ovs-vsctl clear Open_vSwitch . external_ids ovs-vsctl set-manager tcp:10.13.80.34:6640 ovs-vsctl set-controller br-ex tcp:10.13.80.34:6640 ovs-vsctl del-controller br-ex sudo neutron-odl-ovs-hostconfig ovs-vsctl show ovs-vsctl add-port <bridge name> <port name> ovs-vsctl add-port br-ex enp0s10 ovs-vsctl del-port br-ex phy-br-ex ovs-vsctl del-port br-ex tun2ad7e9e91e4 重启odl后 systemctl restart openvswitch.service systemctl restart neutron-server.service systemctl stop neutron-server.service 创建虚机 openstack network create --share --external --provider-physical-network provider --provider-network-type flat provider openstack subnet create --network provider --allocation-pool start=192.168.56.2,end=192.168.56.100 --dns-nameserver 8.8.8.8 --gateway 192.168.56.1 --subnet-range 192.168.56.0/24 provider nova boot --image cirros --flavor tiny --nic net-id= --availability-zone nova:rcontroller01 vm-01 openstack server create --flavor tiny --image cirros --nic net-id= --key-name mykey test nova boot --image cirros --flavor tiny --nic net-id=0fe983c2-8178-403b-a00e-e8561580b210 --availability-zone nova:rcontroller01 vm-01 虚机可以学习到mac但是ping不通 抓包,先在虚机网卡上抓包, 然后在br-int上抓包 发现虚拟网卡上是发送了icmp请求报文的,但是br-int上没有 查看报文情况 [root@rcontroller01 ~] ovs-appctl dpif/dump-flows br-int recirc_id(0),tunnel(tun_id=0x0,src=192.168.56.102,dst=192.168.56.122,flags(-df-csum+key)),in_port(4),eth(),eth_type(0x0800),ipv4(proto=17,frag=no),udp(dst=3784), packets:266436, bytes:17584776, used:0.591s, actions:userspace(pid=4294962063,slow_path(bfd)) recirc_id(0xa0),in_port(5),ct_state(+new-est-rel-inv+trk),ct_mark(0/0x1),eth(),eth_type(0x0800),ipv4(frag=no), packets:148165, bytes:14520170, used:0.566s, actions:drop recirc_id(0),in_port(3),eth(),eth_type(0x0806), packets:1, bytes:60, used:5.228s, actions:drop recirc_id(0),tunnel(tun_id=0xb,src=192.168.56.102,dst=192.168.56.122,flags(-df-csum+key)),in_port(4),eth(dst=fa:16:3e:ab:ba:7e),eth_type(0x0806), packets:0, bytes:0, used:never, actions:5 recirc_id(0),in_port(5),eth(src=fa:16:3e:ab:ba:7e),eth_type(0x0800),ipv4(src=192.168.0.16,proto=1,frag=no), packets:148165, bytes:14520170, used:0.566s, actions:ct(zone=5004),recirc(0xa0) recirc_id(0),in_port(3),eth(),eth_type(0x0800),ipv4(frag=no), packets:886646, bytes:316947183, used:0.210s, flags:SFPR., actions:drop recirc_id(0),in_port(5),eth(src=fa:16:3e:ab:ba:7e,dst=fa:16:3e:7d:95:75),eth_type(0x0806),arp(sip=192.168.0.16,tip=192.168.0.5,op=1/0xff,sha=fa:16:3e:ab:ba:7e), packets:0, bytes:0, used:never, actions:userspace(pid=4294961925,controller(reason=4,dont_send=0,continuation=0,recirc_id=4618,rule_cookie=0x822002d,controller_id=0,max_len=65535)),set(tunnel(tun_id=0xb,src=192.168.56.122,dst=192.168.56.102,ttl=64,tp_dst=4789,flags(df|key))),4 安全组设置 openstack security group rule create --proto tcp 2e19a748-9086-49f8-9498-01abc1a964fe openstack security group rule create --proto tcp 6095293d-c2cd-433d-8a8f-e77ecb03609e openstack security group rule create --proto udp 2e19a748-9086-49f8-9498-01abc1a964fe openstack security group rule create --proto udp 6095293d-c2cd-433d-8a8f-e77ecb03609e ovs-vsctl add-port br-ex "ex-patch-int" ovs-vsctl set interface "ex-patch-int" type=patch ovs-vsctl set interface "ex-patch-int" options:peer=int-patch-ex ovs-vsctl add-port br-int "int-patch-ex" ovs-vsctl set interface "int-patch-ex" type=patch ovs-vsctl set interface "int-patch-ex" options:peer=ex-patch-int ovs-vsctl del-port br-ex "ex-patch-int" ovs-vsctl del-port br-int "int-patch-ex" ovs-vsctl del-port br-ex enp0s9 ovs-vsctl add-port br-int enp0s9 ovs-appctl ofproto/trace 重要命令 sudo ovs-ofctl -O OpenFlow13 show br-int sudo ovs-appctl ofproto/trace br-int "in_port=5,ip,nw_src=192.168.0.16,nw_dst=192.168.0.5" ovs-appctl dpctl/dump-conntrack 11.查看接口id等 ovs-appctl dpif/show 12.查看接口统计 ovs-ofctl dump-ports br-int 查看接口 sudo ovs-ofctl show br-int -O OpenFlow13 ovs常用命令 控制管理类 1.查看网桥和端口 ovs-vsctl show 1 2.创建一个网桥 ovs-vsctl add-br br0 ovs-vsctl set bridge br0 datapath_type=netdev 1 2 3.添加/删除一个端口 for system interfaces ovs-vsctl add-port br0 eth1 ovs-vsctl del-port br0 eth1 for DPDK ovs-vsctl add-port br0 dpdk1 -- set interface dpdk1 type=dpdk options:dpdk-devargs=0000:01:00.0 for DPDK bonds ovs-vsctl add-bond br0 dpdkbond0 dpdk1 dpdk2 \ -- set interface dpdk1 type=dpdk options:dpdk-devargs=0000:01:00.0 \ -- set interface dpdk2 type=dpdk options:dpdk-devargs=0000:02:00.0 1 2 3 4 5 6 7 8 9 4.设置/清除网桥的openflow协议版本 ovs-vsctl set bridge br0 protocols=OpenFlow13 ovs-vsctl clear bridge br0 protocols 1 2 5.查看某网桥当前流表 ovs-ofctl dump-flows br0 ovs-ofctl -O OpenFlow13 dump-flows br0 ovs-appctl bridge/dump-flows br0 1 2 3 6.设置/删除控制器 ovs-vsctl set-controller br0 tcp:1.2.3.4:6633 ovs-vsctl del-controller br0 1 2 7.查看控制器列表 ovs-vsctl list controller 1 8.设置/删除被动连接控制器 ovs-vsctl set-manager tcp:1.2.3.4:6640 ovs-vsctl get-manager ovs-vsctl del-manager 1 2 3 9.设置/移除可选选项 ovs-vsctl set Interface eth0 options:link_speed=1G ovs-vsctl remove Interface eth0 options link_speed 1 2 10.设置fail模式,支持standalone或者secure standalone(default):清除所有控制器下发的流表,ovs自己接管 secure:按照原来流表继续转发 ovs-vsctl del-fail-mode br0 ovs-vsctl set-fail-mode br0 secure ovs-vsctl get-fail-mode br0 1 2 3 11.查看接口id等 ovs-appctl dpif/show 1 12.查看接口统计 ovs-ofctl dump-ports br0 1 流表类 流表操作 1.添加普通流表 ovs-ofctl add-flow br0 in_port=1,actions=output:2 1 2.删除所有流表 ovs-ofctl del-flows br0 1 3.按匹配项来删除流表 ovs-ofctl del-flows br0 "in_port=1" 1 匹配项 1.匹配vlan tag,范围为0-4095 ovs-ofctl add-flow br0 priority=401,in_port=1,dl_vlan=777,actions=output:2 1 2.匹配vlan pcp,范围为0-7 ovs-ofctl add-flow br0 priority=401,in_port=1,dl_vlan_pcp=7,actions=output:2 1 3.匹配源/目的MAC ovs-ofctl add-flow br0 in_port=1,dl_src=00:00:00:00:00:01/00:00:00:00:00:01,actions=output:2 ovs-ofctl add-flow br0 in_port=1,dl_dst=00:00:00:00:00:01/00:00:00:00:00:01,actions=output:2 1 2 4.匹配以太网类型,范围为0-65535 ovs-ofctl add-flow br0 in_port=1,dl_type=0x0806,actions=output:2 1 5.匹配源/目的IP 条件:指定dl_type=0x0800,或者ip/tcp ovs-ofctl add-flow br0 ip,in_port=1,nw_src=10.10.0.0/16,actions=output:2 ovs-ofctl add-flow br0 ip,in_port=1,nw_dst=10.20.0.0/16,actions=output:2 1 2 6.匹配协议号,范围为0-255 条件:指定dl_type=0x0800或者ip ICMP ovs-ofctl add-flow br0 ip,in_port=1,nw_proto=1,actions=output:2 7.匹配IP ToS/DSCP,tos范围为0-255,DSCP范围为0-63 条件:指定dl_type=0x0800/0x86dd,并且ToS低2位会被忽略(DSCP值为ToS的高6位,并且低2位为预留位) ovs-ofctl add-flow br0 ip,in_port=1,nw_tos=68,actions=output:2 ovs-ofctl add-flow br0 ip,in_port=1,ip_dscp=62,actions=output:2 8.匹配IP ecn位,范围为0-3 条件:指定dl_type=0x0800/0x86dd ovs-ofctl add-flow br0 ip,in_port=1,ip_ecn=2,actions=output:2 9.匹配IP TTL,范围为0-255 ovs-ofctl add-flow br0 ip,in_port=1,nw_ttl=128,actions=output:2 10.匹配tcp/udp,源/目的端口,范围为0-65535 匹配源tcp端口179 ovs-ofctl add-flow br0 tcp,tcp_src=179/0xfff0,actions=output:2 匹配目的tcp端口179 ovs-ofctl add-flow br0 tcp,tcp_dst=179/0xfff0,actions=output:2 匹配源udp端口1234 ovs-ofctl add-flow br0 udp,udp_src=1234/0xfff0,actions=output:2 匹配目的udp端口1234 ovs-ofctl add-flow br0 udp,udp_dst=1234/0xfff0,actions=output:2 11.匹配tcp flags tcp flags=fin,syn,rst,psh,ack,urg,ece,cwr,ns ovs-ofctl add-flow br0 tcp,tcp_flags=ack,actions=output:2 12.匹配icmp code,范围为0-255 条件:指定icmp ovs-ofctl add-flow br0 icmp,icmp_code=2,actions=output:2 13.匹配vlan TCI TCI低12位为vlan id,高3位为priority,例如tci=0xf123则vlan_id为0x123和vlan_pcp=7 ovs-ofctl add-flow br0 in_port=1,vlan_tci=0xf123,actions=output:2 14.匹配mpls label 条件:指定dl_type=0x8847/0x8848 ovs-ofctl add-flow br0 mpls,in_port=1,mpls_label=7,actions=output:2 15.匹配mpls tc,范围为0-7 条件:指定dl_type=0x8847/0x8848 ovs-ofctl add-flow br0 mpls,in_port=1,mpls_tc=7,actions=output:2 1 16.匹配tunnel id,源/目的IP 匹配tunnel id ovs-ofctl add-flow br0 in_port=1,tun_id=0x7/0xf,actions=output:2 匹配tunnel源IP ovs-ofctl add-flow br0 in_port=1,tun_src=192.168.1.0/255.255.255.0,actions=output:2 匹配tunnel目的IP ovs-ofctl add-flow br0 in_port=1,tun_dst=192.168.1.0/255.255.255.0,actions=output:2 一些匹配项的速记符 速记符 匹配项 ip dl_type=0x800 ipv6 dl_type=0x86dd icmp dl_type=0x0800,nw_proto=1 icmp6 dl_type=0x86dd,nw_proto=58 tcp dl_type=0x0800,nw_proto=6 tcp6 dl_type=0x86dd,nw_proto=6 udp dl_type=0x0800,nw_proto=17 udp6 dl_type=0x86dd,nw_proto=17 sctp dl_type=0x0800,nw_proto=132 sctp6 dl_type=0x86dd,nw_proto=132 arp dl_type=0x0806 rarp dl_type=0x8035 mpls dl_type=0x8847 mplsm dl_type=0x8848 指令动作 1.动作为出接口 从指定接口转发出去 ovs-ofctl add-flow br0 in_port=1,actions=output:2 1 2.动作为指定group group id为已创建的group table ovs-ofctl add-flow br0 in_port=1,actions=group:666 1 3.动作为normal 转为L2/L3处理流程 ovs-ofctl add-flow br0 in_port=1,actions=normal 1 4.动作为flood 从所有物理接口转发出去,除了入接口和已关闭flooding的接口 ovs-ofctl add-flow br0 in_port=1,actions=flood 1 5.动作为all 从所有物理接口转发出去,除了入接口 ovs-ofctl add-flow br0 in_port=1,actions=all 1 6.动作为local 一般是转发给本地网桥 ovs-ofctl add-flow br0 in_port=1,actions=local 1 7.动作为in_port 从入接口转发回去 ovs-ofctl add-flow br0 in_port=1,actions=in_port 1 8.动作为controller 以packet-in消息上送给控制器 ovs-ofctl add-flow br0 in_port=1,actions=controller 1 9.动作为drop 丢弃数据包操作 ovs-ofctl add-flow br0 in_port=1,actions=drop 1 10.动作为mod_vlan_vid 修改报文的vlan id,该选项会使vlan_pcp置为0 ovs-ofctl add-flow br0 in_port=1,actions=mod_vlan_vid:8,output:2 1 11.动作为mod_vlan_pcp 修改报文的vlan优先级,该选项会使vlan_id置为0 ovs-ofctl add-flow br0 in_port=1,actions=mod_vlan_pcp:7,output:2 1 12.动作为strip_vlan 剥掉报文内外层vlan tag ovs-ofctl add-flow br0 in_port=1,actions=strip_vlan,output:2 1 13.动作为push_vlan 在报文外层压入一层vlan tag,需要使用openflow1.1以上版本兼容 ovs-ofctl add-flow -O OpenFlow13 br0 in_port=1,actions=push_vlan:0x8100,set_field:4097-\>vlan_vid,output:2 1 ps: set field值为4096+vlan_id,并且vlan优先级为0,即4096-8191,对应的vlan_id为0-4095 14.动作为push_mpls 修改报文的ethertype,并且压入一个MPLS LSE ovs-ofctl add-flow br0 in_port=1,actions=push_mpls:0x8847,set_field:10-\>mpls_label,output:2 1 15.动作为pop_mpls 剥掉最外层mpls标签,并且修改ethertype为非mpls类型 ovs-ofctl add-flow br0 mpls,in_port=1,mpls_label=20,actions=pop_mpls:0x0800,output:2 1 16.动作为修改源/目的MAC,修改源/目的IP 修改源MAC ovs-ofctl add-flow br0 in_port=1,actions=mod_dl_src:00:00:00:00:00:01,output:2 修改目的MAC ovs-ofctl add-flow br0 in_port=1,actions=mod_dl_dst:00:00:00:00:00:01,output:2 修改源IP ovs-ofctl add-flow br0 in_port=1,actions=mod_nw_src:192.168.1.1,output:2 修改目的IP ovs-ofctl add-flow br0 in_port=1,actions=mod_nw_dst:192.168.1.1,output:2 17.动作为修改TCP/UDP/SCTP源目的端口 修改TCP源端口 ovs-ofctl add-flow br0 tcp,in_port=1,actions=mod_tp_src:67,output:2 修改TCP目的端口 ovs-ofctl add-flow br0 tcp,in_port=1,actions=mod_tp_dst:68,output:2 修改UDP源端口 ovs-ofctl add-flow br0 udp,in_port=1,actions=mod_tp_src:67,output:2 修改UDP目的端口 ovs-ofctl add-flow br0 udp,in_port=1,actions=mod_tp_dst:68,output:2 18.动作为mod_nw_tos 条件:指定dl_type=0x0800 修改ToS字段的高6位,范围为0-255,值必须为4的倍数,并且不会去修改ToS低2位ecn值 ovs-ofctl add-flow br0 ip,in_port=1,actions=mod_nw_tos:68,output:2 1 19.动作为mod_nw_ecn 条件:指定dl_type=0x0800,需要使用openflow1.1以上版本兼容 修改ToS字段的低2位,范围为0-3,并且不会去修改ToS高6位的DSCP值 ovs-ofctl add-flow br0 ip,in_port=1,actions=mod_nw_ecn:2,output:2 1 20.动作为mod_nw_ttl 修改IP报文ttl值,需要使用openflow1.1以上版本兼容 ovs-ofctl add-flow -O OpenFlow13 br0 in_port=1,actions=mod_nw_ttl:6,output:2 1 21.动作为dec_ttl 对IP报文进行ttl自减操作 ovs-ofctl add-flow br0 in_port=1,actions=dec_ttl,output:2 1 22.动作为set_mpls_label 对报文最外层mpls标签进行修改,范围为20bit值 ovs-ofctl add-flow br0 in_port=1,actions=set_mpls_label:666,output:2 1 23.动作为set_mpls_tc 对报文最外层mpls tc进行修改,范围为0-7 ovs-ofctl add-flow br0 in_port=1,actions=set_mpls_tc:7,output:2 1 24.动作为set_mpls_ttl 对报文最外层mpls ttl进行修改,范围为0-255 ovs-ofctl add-flow br0 in_port=1,actions=set_mpls_ttl:255,output:2 1 25.动作为dec_mpls_ttl 对报文最外层mpls ttl进行自减操作 ovs-ofctl add-flow br0 in_port=1,actions=dec_mpls_ttl,output:2 1 26.动作为move NXM字段 使用move参数对NXM字段进行操作 将报文源MAC复制到目的MAC字段,并且将源MAC改为00:00:00:00:00:01 ovs-ofctl add-flow br0 in_port=1,actions=move:NXM_OF_ETH_SRC[]-\>NXM_OF_ETH_DST[],mod_dl_src:00:00:00:00:00:01,output:2 1 2 ps: 常用NXM字段参照表 NXM字段 报文字段 NXM_OF_ETH_SRC 源MAC NXM_OF_ETH_DST 目的MAC NXM_OF_ETH_TYPE 以太网类型 NXM_OF_VLAN_TCI vid NXM_OF_IP_PROTO IP协议号 NXM_OF_IP_TOS IP ToS值 NXM_NX_IP_ECN IP ToS ECN NXM_OF_IP_SRC 源IP NXM_OF_IP_DST 目的IP NXM_OF_TCP_SRC TCP源端口 NXM_OF_TCP_DST TCP目的端口 NXM_OF_UDP_SRC UDP源端口 NXM_OF_UDP_DST UDP目的端口 NXM_OF_SCTP_SRC SCTP源端口 NXM_OF_SCTP_DST SCTP目的端口 27.动作为load NXM字段 使用load参数对NXM字段进行赋值操作 push mpls label,并且把10(0xa)赋值给mpls label ovs-ofctl add-flow br0 in_port=1,actions=push_mpls:0x8847,load:0xa-\>OXM_OF_MPLS_LABEL[],output:2 对目的MAC进行赋值 ovs-ofctl add-flow br0 in_port=1,actions=load:0x001122334455-\>OXM_OF_ETH_DST[],output:2 1 2 3 4 28.动作为pop_vlan 弹出报文最外层vlan tag ovs-ofctl add-flow br0 in_port=1,dl_type=0x8100,dl_vlan=777,actions=pop_vlan,output:2 1 meter表 常用操作 由于meter表是openflow1.3版本以后才支持,所以所有命令需要指定OpenFlow1.3版本以上 ps: 在openvswitch-v2.8之前的版本中,还不支持meter 在v2.8版本之后已经实现,要正常使用的话,需要注意的是datapath类型要指定为netdev,band type暂时只支持drop,还不支持DSCP REMARK 1.查看当前设备对meter的支持 ovs-ofctl -O OpenFlow13 meter-features br0 2.查看meter表 ovs-ofctl -O OpenFlow13 dump-meters br0 3.查看meter统计 ovs-ofctl -O OpenFlow13 meter-stats br0 4.创建meter表 限速类型以kbps(kilobits per second)计算,超过20kb/s则丢弃 ovs-ofctl -O OpenFlow13 add-meter br0 meter=1,kbps,band=type=drop,rate=20 同上,增加burst size参数 ovs-ofctl -O OpenFlow13 add-meter br0 meter=2,kbps,band=type=drop,rate=20,burst_size=256 同上,增加stats参数,对meter进行计数统计 ovs-ofctl -O OpenFlow13 add-meter br0 meter=3,kbps,stats,band=type=drop,rate=20,burst_size=256 限速类型以pktps(packets per second)计算,超过1000pkt/s则丢弃 ovs-ofctl -O OpenFlow13 add-meter br0 meter=4,pktps,band=type=drop,rate=1000 5.删除meter表 删除全部meter表 ovs-ofctl -O OpenFlow13 del-meters br0 删除meter id=1 ovs-ofctl -O OpenFlow13 del-meter br0 meter=1 6.创建流表 ovs-ofctl -O OpenFlow13 add-flow br0 in_port=1,actions=meter:1,output:2 group表 由于group表是openflow1.1版本以后才支持,所以所有命令需要指定OpenFlow1.1版本以上 常用操作 group table支持4种类型 all:所有buckets都执行一遍 select: 每次选择其中一个bucket执行,常用于负载均衡应用 ff(FAST FAILOVER):快速故障修复,用于检测解决接口等故障 indirect:间接执行,类似于一个函数方法,被另一个group来调用 1.查看当前设备对group的支持 ovs-ofctl -O OpenFlow13 dump-group-features br0 2.查看group表 ovs-ofctl -O OpenFlow13 dump-groups br0 3.创建group表 类型为all ovs-ofctl -O OpenFlow13 add-group br0 group_id=1,type=all,bucket=output:1,bucket=output:2,bucket=output:3 类型为select ovs-ofctl -O OpenFlow13 add-group br0 group_id=2,type=select,bucket=output:1,bucket=output:2,bucket=output:3 类型为select,指定hash方法(5元组,OpenFlow1.5+) ovs-ofctl -O OpenFlow15 add-group br0 group_id=3,type=select,selection_method=hash,fields=ip_src,bucket=output:2,bucket=output:3 4.删除group表 ovs-ofctl -O OpenFlow13 del-groups br0 group_id=2 5.创建流表 ovs-ofctl -O OpenFlow13 add-flow br0 in_port=1,actions=group:2 goto table配置 数据流先从table0开始匹配,如actions有goto_table,再进行后续table的匹配,实现多级流水线,如需使用goto table,则创建流表时,指定table id,范围为0-255,不指定则默认为table0 1.在table0中添加一条流表条目 ovs-ofctl add-flow br0 table=0,in_port=1,actions=goto_table=1 2.在table1中添加一条流表条目 ovs-ofctl add-flow br0 table=1,ip,nw_dst=10.10.0.0/16,actions=output:2 tunnel配置 如需配置tunnel,必需确保当前系统对各tunnel的remote ip网络可达 gre 1.创建一个gre接口,并且指定端口id=1001 ovs-vsctl add-port br0 gre1 -- set Interface gre1 type=gre options:remote_ip=1.1.1.1 ofport_request=1001 2.可选选项 将tos或者ttl在隧道上继承,并将tunnel id设置成123 ovs-vsctl set Interface gre1 options:tos=inherit options:ttl=inherit options:key=123 3.创建关于gre流表 封装gre转发 ovs-ofctl add-flow br0 ip,in_port=1,nw_dst=10.10.0.0/16,actions=output:1001 解封gre转发 ovs-ofctl add-flow br0 in_port=1001,actions=output:1 vxlan 1.创建一个vxlan接口,并且指定端口id=2001 ovs-vsctl add-port br0 vxlan1 -- set Interface vxlan1 type=vxlan options:remote_ip=1.1.1.1 ofport_request=2001 2.可选选项 将tos或者ttl在隧道上继承,将vni设置成123,UDP目的端为设置成8472(默认为4789) ovs-vsctl set Interface vxlan1 options:tos=inherit options:ttl=inherit options:key=123 options:dst_port=8472 3.创建关于vxlan流表 封装vxlan转发 ovs-ofctl add-flow br0 ip,in_port=1,nw_dst=10.10.0.0/16,actions=output:2001 解封vxlan转发 ovs-ofctl add-flow br0 in_port=2001,actions=output:1 sflow配置 1.对网桥br0进行sflow监控 agent: 与collector通信所在的网口名,通常为管理口 target: collector监听的IP地址和端口,端口默认为6343 header: sFlow在采样时截取报文头的长度 polling: 采样时间间隔,单位为秒 ovs-vsctl -- --id=@sflow create sflow agent=eth0 target=\"10.0.0.1:6343\" header=128 sampling=64 polling=10 -- set bridge br0 sflow=@sflow 2.查看创建的sflow ovs-vsctl list sflow 3.删除对应的网桥sflow配置,参数为sFlow UUID ovs-vsctl remove bridge br0 sflow 7b9b962e-fe09-407c-b224-5d37d9c1f2b3 4.删除网桥下所有sflow配置 ovs-vsctl -- clear bridge br0 sflow 1 QoS配置 ingress policing 1.配置ingress policing,对接口eth0入流限速10Mbps ovs-vsctl set interface eth0 ingress_policing_rate=10000 ovs-vsctl set interface eth0 ingress_policing_burst=8000 2.清除相应接口的ingress policer配置 ovs-vsctl set interface eth0 ingress_policing_rate=0 ovs-vsctl set interface eth0 ingress_policing_burst=0 3.查看接口ingress policer配置 ovs-vsctl list interface eth0 4.查看网桥支持的Qos类型 ovs-appctl qos/show-types br0 端口镜像配置 1.配置eth0收到/发送的数据包镜像到eth1 ovs-vsctl -- set bridge br0 mirrors=@m \ -- --id=@eth0 get port eth0 \ -- --id=@eth1 get port eth1 \ -- --id=@m create mirror name=mymirror select-dst-port=@eth0 select-src-port=@eth0 output-port=@eth1 2.删除端口镜像配置 ovs-vsctl -- --id=@m get mirror mymirror -- remove bridge br0 mirrors @m 3.清除网桥下所有端口镜像配置 ovs-vsctl clear bridge br0 mirrors 4.查看端口镜像配置 ovs-vsctl get bridge br0 mirrors Open vSwitch中有多个命令,分别有不同的作用,大致如下: ovs-vsctl用于控制ovs db ovs-ofctl用于管理OpenFlow switch 的 flow ovs-dpctl用于管理ovs的datapath ovs-appctl用于查询和管理ovs daemon 转载于:https://www.cnblogs.com/liuhongru/p/10336849.html 本篇文章为转载内容。原文链接:https://blog.csdn.net/weixin_30876945/article/details/99916308。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-06-08 17:13:19
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随机学习一条linux命令:
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