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...ontrol) 支持JSON和XML格式 Postgres-XL缺少的功能 内建的高可用机制 使用外部机制实现高可能,如:Corosync/Pacemaker 有未来功能提升的空间 增加节点/重新分片数据(re-shard)的简便性 数据重分布(redistribution)期间会锁表 可采用预分片(pre-shard)方式解决,在同台物理服务器上建立多个数据节点,每个节点存储一个数据分片。数据重分布时,将一些数据节点迁出即可 某些外键、唯一性约束功能 Postgres-XL架构 [外链图片转存失败,源站可能有防盗链机制,建议将图片保存下来直接上传(img-M9lFuEIP-1640133702200)(./assets/postgre-xl.jpg)] 基于开源项目Postgres-XC XL增加了MPP,允许数据节点间直接通讯,交换复杂跨节点关联查询相关数据信息,减少协调器负载。 多个协调器(Coordinator) 应用程序的数据库连入点 分析查询语句,生成执行计划 多个数据节点(DataNode) 实际的数据存储 数据自动打散分布到集群中各数据节点 本地执行查询 一个查询在所有相关节点上并行查询 全局事务管理器(GTM:Global Transaction Manager) 提供事务间一致性视图 部署GTM Proxy实例,以提高性能 Postgre-XL主要组件 GTM (Global Transaction Manager) - 全局事务管理器 GTM是Postgres-XL的一个关键组件,用于提供一致的事务管理和元组可见性控制。 GTM Standby GTM的备节点,在pgxc,pgxl中,GTM控制所有的全局事务分配,如果出现问题,就会导致整个集群不可用,为了增加可用性,增加该备用节点。当GTM出现问题时,GTM Standby可以升级为GTM,保证集群正常工作。 GTM-Proxy GTM需要与所有的Coordinators通信,为了降低压力,可以在每个Coordinator机器上部署一个GTM-Proxy。 Coordinator --协调器 协调器是应用程序到数据库的接口。它的作用类似于传统的PostgreSQL后台进程,但是协调器不存储任何实际数据。实际数据由数据节点存储。协调器接收SQL语句,根据需要获取全局事务Id和全局快照,确定涉及哪些数据节点,并要求它们执行(部分)语句。当向数据节点发出语句时,它与GXID和全局快照相关联,以便多版本并发控制(MVCC)属性扩展到集群范围。 Datanode --数据节点 用于实际存储数据。表可以分布在各个数据节点之间,也可以复制到所有数据节点。数据节点没有整个数据库的全局视图,它只负责本地存储的数据。接下来,协调器将检查传入语句,并制定子计划。然后,根据需要将这些数据连同GXID和全局快照一起传输到涉及的每个数据节点。数据节点可以在不同的会话中接收来自各个协调器的请求。但是,由于每个事务都是惟一标识的,并且与一致的(全局)快照相关联,所以每个数据节点都可以在其事务和快照上下文中正确执行。 Postgres-XL继承了PostgreSQL Postgres-XL是PostgreSQL的扩展并继承了其很多特性: 复杂查询 外键 触发器 视图 事务 MVCC(多版本控制) 此外,类似于PostgreSQL,用户可以通过多种方式扩展Postgres-XL,例如添加新的 数据类型 函数 操作 聚合函数 索引类型 过程语言 安装 环境说明 由于资源有限,gtm一台、另外两台身兼数职。 主机名 IP 角色 端口 nodename 数据目录 gtm 192.168.20.132 GTM 6666 gtm /nodes/gtm 协调器 5432 coord1 /nodes/coordinator xl1 192.168.20.133 数据节点 5433 node1 /nodes/pgdata gtm代理 6666 gtmpoxy01 /nodes/gtm_pxy1 协调器 5432 coord2 /nodes/coordinator xl2 192.168.20.134 数据节点 5433 node2 /nodes/pgdata gtm代理 6666 gtmpoxy02 /nodes/gtm_pxy2 要求 GNU make版本 3.8及以上版本 [root@pg ~] make --versionGNU Make 3.82Built for x86_64-redhat-linux-gnuCopyright (C) 2010 Free Software Foundation, Inc.License GPLv3+: GNU GPL version 3 or later <http://gnu.org/licenses/gpl.html>This is free software: you are free to change and redistribute it.There is NO WARRANTY, to the extent permitted by law. 需安装GCC包 需安装tar包 用于解压缩文件 默认需要GNU Readline library 其作用是可以让psql命令行记住执行过的命令,并且可以通过键盘上下键切换命令。但是可以通过--without-readline禁用这个特性,或者可以指定--withlibedit-preferred选项来使用libedit 默认使用zlib压缩库 可通过--without-zlib选项来禁用 配置hosts 所有主机上都配置 [root@xl2 11] cat /etc/hosts127.0.0.1 localhost192.168.20.132 gtm192.168.20.133 xl1192.168.20.134 xl2 关闭防火墙、Selinux 所有主机都执行 关闭防火墙: [root@gtm ~] systemctl stop firewalld.service[root@gtm ~] systemctl disable firewalld.service selinux设置: [root@gtm ~]vim /etc/selinux/config 设置SELINUX=disabled,保存退出。 This file controls the state of SELinux on the system. SELINUX= can take one of these three values: enforcing - SELinux security policy is enforced. permissive - SELinux prints warnings instead of enforcing. disabled - No SELinux policy is loaded.SELINUX=disabled SELINUXTYPE= can take one of three two values: targeted - Targeted processes are protected, minimum - Modification of targeted policy. Only selected processes are protected. mls - Multi Level Security protection. 安装依赖包 所有主机上都执行 yum install -y flex bison readline-devel zlib-devel openjade docbook-style-dsssl gcc 创建用户 所有主机上都执行 [root@gtm ~] useradd postgres[root@gtm ~] passwd postgres[root@gtm ~] su - postgres[root@gtm ~] mkdir ~/.ssh[root@gtm ~] chmod 700 ~/.ssh 配置SSH免密登录 仅仅在gtm节点配置如下操作: [root@gtm ~] su - postgres[postgres@gtm ~] ssh-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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...values的值是个数组,意思是标签值必须是此数组中的其中一个才能匹配上;- {key: app, operator: In, values: [nginx-pod]}template: 模板,当副本数量不足时,会根据下面的模板创建pod副本metadata:labels: 这里的标签必须和上面的matchLabels一致,将他们关联起来app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1ports:- containerPort: 80 1、创建一个ReplicaSet 新建一个文件 rs.yaml,内容如下 apiVersion: apps/v1kind: ReplicaSet pod控制器metadata: 元数据name: pc-replicaset 名字namespace: dev 名称空间spec:replicas: 3 副本数selector: 选择器,通过它指定该控制器管理哪些podmatchLabels: Labels匹配规则app: nginx-podtemplate: 模板,当副本数量不足时,会根据下面的模板创建pod副本metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1 运行 kubectl create -f rs.yaml 获取replicaset kubectl get replicaset -n dev 2、扩缩容 刚刚我们已经用第一种方式创建了一个replicaSet,现在就基于原来的rs进行扩容,原来的副本数量是3个,现在我们将其扩到6个,做法也很简单,运行编辑命令 第一种方式: scale 使用scale命令实现扩缩容,后面--replicas=n直接指定目标数量即可kubectl scale rs pc-replicaset --replicas=2 -n dev 第二种方式:使用edit命令编辑rs 这种方式相当于使用vi编辑修改yaml配置的内容,进去后将replicas的值改为1,保存后自动生效kubectl edit rs pc-replicaset -n dev 3、镜像版本变更 第一种方式:scale kubectl scale rs pc-replicaset nginx=nginx:1.71.2 -n dev 第二种方式:edit 这种方式相当于使用vi编辑修改yaml配置的内容,进去后将nginx的值改为nginx:1.71.2,保存后自动生效kubectl edit rs pc-replicaset -n dev 4、删除rs 第一种方式kubectl delete -f rs.yaml 第二种方式 ,如果想要只删rs,但不删除pod,可在删除时加上--cascade=false参数(不推荐)kubectl delete rs pc-replicaset -n dev --cascade=false 2、Deployment k8s v1.2版本后加入Deployment;这种控制器不直接控制pod,而是通过管理ReplicaSet来间接管理pod;也就是Deployment管理ReplicaSet,ReplicaSet管理pod;所以 Deployment 比 ReplicaSet 功能更加强大 当我们创建了一个Deployment之后,也会自动创建一个ReplicaSet 功能 支持ReplicaSet 的所有功能 支持发布的停止、继续 支持版本的滚动更新和回退功能 配置模板 新建文件 apiVersion: apps/v1 版本号kind: Deployment 类型 metadata: 元数据name: rs名称 namespace: 所属命名空间 labels: 标签controller: deployspec: 详情描述replicas: 3 副本数量revisionHistoryLimit: 3 保留历史版本的数量,默认10,内部通过保留rs来实现paused: false 暂停部署,默认是falseprogressDeadlineSeconds: 600 部署超时时间(s),默认是600strategy: 策略type: RollingUpdate 滚动更新策略rollingUpdate: 滚动更新maxSurge: 30% 最大额外可以存在的副本数,可以为百分比,也可以为整数maxUnavailable: 30% 最大不可用状态的 Pod 的最大值,可以为百分比,也可以为整数selector: 选择器,通过它指定该控制器管理哪些podmatchLabels: Labels匹配规则app: nginx-podmatchExpressions: Expressions匹配规则- {key: app, operator: In, values: [nginx-pod]}template: 模板,当副本数量不足时,会根据下面的模板创建pod副本metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1ports:- containerPort: 80 1、创建和删除Deployment 创建pc-deployment.yaml,内容如下: apiVersion: apps/v1kind: Deployment metadata:name: pc-deploymentnamespace: devspec: replicas: 3selector:matchLabels:app: nginx-podtemplate:metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1 创建和查看 创建deployment,--record=true 表示记录整个deployment更新过程[root@k8s-master01 ~] kubectl create -f pc-deployment.yaml --record=truedeployment.apps/pc-deployment created 查看deployment READY 可用的/总数 UP-TO-DATE 最新版本的pod的数量 AVAILABLE 当前可用的pod的数量[root@k8s-master01 ~] kubectl get deploy pc-deployment -n devNAME READY UP-TO-DATE AVAILABLE AGEpc-deployment 3/3 3 3 15s 查看rs 发现rs的名称是在原来deployment的名字后面添加了一个10位数的随机串[root@k8s-master01 ~] kubectl get rs -n devNAME DESIRED CURRENT READY AGEpc-deployment-6696798b78 3 3 3 23s 查看pod[root@k8s-master01 ~] kubectl get pods -n devNAME READY STATUS RESTARTS AGEpc-deployment-6696798b78-d2c8n 1/1 Running 0 107spc-deployment-6696798b78-smpvp 1/1 Running 0 107spc-deployment-6696798b78-wvjd8 1/1 Running 0 107s 删除deployment 删除deployment,其下的rs和pod也将被删除kubectl delete -f pc-deployment.yaml 2、扩缩容 deployment的扩缩容和 ReplicaSet 的扩缩容一样,只需要将rs或者replicaSet改为deployment即可,具体请参考上面的 ReplicaSet 扩缩容 3、镜像更新 刚刚在创建时加上了--record=true参数,所以在一旦进行了镜像更新,就会新建出一个pod出来,将老的old-pod上的容器全删除,然后在新的new-pod上在新建对应数量的容器,此时old-pod是不会删除的,因为这个old-pod是要进行回退的; 镜像更新策略有2种 滚动更新(RollingUpdate):(默认值),杀死一部分,就启动一部分,在更新过程中,存在两个版本Pod 重建更新(Recreate):在创建出新的Pod之前会先杀掉所有已存在的Pod strategy:指定新的Pod替换旧的Pod的策略, 支持两个属性:type:指定策略类型,支持两种策略Recreate:在创建出新的Pod之前会先杀掉所有已存在的PodRollingUpdate:滚动更新,就是杀死一部分,就启动一部分,在更新过程中,存在两个版本PodrollingUpdate:当type为RollingUpdate时生效,用于为RollingUpdate设置参数,支持两个属性:maxUnavailable:用来指定在升级过程中不可用Pod的最大数量,默认为25%。maxSurge: 用来指定在升级过程中可以超过期望的Pod的最大数量,默认为25%。 重建更新 编辑pc-deployment.yaml,在spec节点下添加更新策略 spec:strategy: 策略type: Recreate 重建更新 创建deploy进行验证 变更镜像[root@k8s-master01 ~] kubectl set image deployment pc-deployment nginx=nginx:1.17.2 -n devdeployment.apps/pc-deployment image updated 观察升级过程[root@k8s-master01 ~] kubectl get pods -n dev -wNAME READY STATUS RESTARTS AGEpc-deployment-5d89bdfbf9-65qcw 1/1 Running 0 31spc-deployment-5d89bdfbf9-w5nzv 1/1 Running 0 31spc-deployment-5d89bdfbf9-xpt7w 1/1 Running 0 31spc-deployment-5d89bdfbf9-xpt7w 1/1 Terminating 0 41spc-deployment-5d89bdfbf9-65qcw 1/1 Terminating 0 41spc-deployment-5d89bdfbf9-w5nzv 1/1 Terminating 0 41spc-deployment-675d469f8b-grn8z 0/1 Pending 0 0spc-deployment-675d469f8b-hbl4v 0/1 Pending 0 0spc-deployment-675d469f8b-67nz2 0/1 Pending 0 0spc-deployment-675d469f8b-grn8z 0/1 ContainerCreating 0 0spc-deployment-675d469f8b-hbl4v 0/1 ContainerCreating 0 0spc-deployment-675d469f8b-67nz2 0/1 ContainerCreating 0 0spc-deployment-675d469f8b-grn8z 1/1 Running 0 1spc-deployment-675d469f8b-67nz2 1/1 Running 0 1spc-deployment-675d469f8b-hbl4v 1/1 Running 0 2s 滚动更新 编辑pc-deployment.yaml,在spec节点下添加更新策略 spec:strategy: 策略type: RollingUpdate 滚动更新策略rollingUpdate:maxSurge: 25% maxUnavailable: 25% 创建deploy进行验证 变更镜像[root@k8s-master01 ~] kubectl set image deployment pc-deployment nginx=nginx:1.17.3 -n dev deployment.apps/pc-deployment image updated 观察升级过程[root@k8s-master01 ~] kubectl get pods -n dev -wNAME READY STATUS RESTARTS AGEpc-deployment-c848d767-8rbzt 1/1 Running 0 31mpc-deployment-c848d767-h4p68 1/1 Running 0 31mpc-deployment-c848d767-hlmz4 1/1 Running 0 31mpc-deployment-c848d767-rrqcn 1/1 Running 0 31mpc-deployment-966bf7f44-226rx 0/1 Pending 0 0spc-deployment-966bf7f44-226rx 0/1 ContainerCreating 0 0spc-deployment-966bf7f44-226rx 1/1 Running 0 1spc-deployment-c848d767-h4p68 0/1 Terminating 0 34mpc-deployment-966bf7f44-cnd44 0/1 Pending 0 0spc-deployment-966bf7f44-cnd44 0/1 ContainerCreating 0 0spc-deployment-966bf7f44-cnd44 1/1 Running 0 2spc-deployment-c848d767-hlmz4 0/1 Terminating 0 34mpc-deployment-966bf7f44-px48p 0/1 Pending 0 0spc-deployment-966bf7f44-px48p 0/1 ContainerCreating 0 0spc-deployment-966bf7f44-px48p 1/1 Running 0 0spc-deployment-c848d767-8rbzt 0/1 Terminating 0 34mpc-deployment-966bf7f44-dkmqp 0/1 Pending 0 0spc-deployment-966bf7f44-dkmqp 0/1 ContainerCreating 0 0spc-deployment-966bf7f44-dkmqp 1/1 Running 0 2spc-deployment-c848d767-rrqcn 0/1 Terminating 0 34m 至此,新版本的pod创建完毕,就版本的pod销毁完毕 中间过程是滚动进行的,也就是边销毁边创建 4、版本回退 更新 刚刚在创建时加上了--record=true参数,所以在一旦进行了镜像更新,就会新建出一个pod出来,将老的old-pod上的容器全删除,然后在新的new-pod上在新建对应数量的容器,此时old-pod是不会删除的,因为这个old-pod是要进行回退的; 回退 在回退时会将new-pod上的容器全部删除,在将old-pod上恢复原来的容器; 回退命令 kubectl rollout: 版本升级相关功能,支持下面的选项: status 显示当前升级状态 history 显示 升级历史记录 pause 暂停版本升级过程 resume 继续已经暂停的版本升级过程 restart 重启版本升级过程 undo 回滚到上一级版本(可以使用–to-revision回滚到指定版本) 用法 查看当前升级版本的状态kubectl rollout status deploy pc-deployment -n dev 查看升级历史记录kubectl rollout history deploy pc-deployment -n dev 版本回滚 这里直接使用--to-revision=1回滚到了1版本, 如果省略这个选项,就是回退到上个版本kubectl rollout undo deployment pc-deployment --to-revision=1 -n dev 金丝雀发布 Deployment控制器支持控制更新过程中的控制,如“暂停(pause)”或“继续(resume)”更新操作。 比如有一批新的Pod资源创建完成后立即暂停更新过程,此时,仅存在一部分新版本的应用,主体部分还是旧的版本。然后,再筛选一小部分的用户请求路由到新版本的Pod应用,继续观察能否稳定地按期望的方式运行。确定没问题之后再继续完成余下的Pod资源滚动更新,否则立即回滚更新操作。这就是所谓的金丝雀发布。 金丝雀发布不是自动完成的,需要人为手动去操作,才能达到金丝雀发布的标准; 更新deployment的版本,并配置暂停deploymentkubectl set image deploy pc-deployment nginx=nginx:1.17.4 -n dev && kubectl rollout pause deployment pc-deployment -n dev 观察更新状态kubectl rollout status deploy pc-deployment -n dev 监控更新的过程kubectl get rs -n dev -o wide 确保更新的pod没问题了,继续更新kubectl rollout resume deploy pc-deployment -n dev 如果有问题,就回退到上个版本回退到上个版本kubectl rollout undo deployment pc-deployment -n dev Horizontal Pod Autoscaler 简称HPA,使用deployment可以手动调整pod的数量来实现扩容和缩容;但是这显然不符合k8s的自动化的定位,k8s期望可以通过检测pod的使用情况,实现pod数量自动调整,于是就有了HPA控制器; HPA可以获取每个Pod利用率,然后和HPA中定义的指标进行对比,同时计算出需要伸缩的具体值,最后实现Pod的数量的调整。比如说我指定了一个规则:当我的cpu利用率达到90%或者内存使用率到达80%的时候,就需要进行调整pod的副本数量,每次添加n个pod副本; 其实HPA与之前的Deployment一样,也属于一种Kubernetes资源对象,它通过追踪分析ReplicaSet控制器的所有目标Pod的负载变化情况,来确定是否需要针对性地调整目标Pod的副本数,也就是HPA管理Deployment,Deployment管理ReplicaSet,ReplicaSet管理pod,这是HPA的实现原理。 1、安装metrics-server metrics-server可以用来收集集群中的资源使用情况 安装git[root@k8s-master01 ~] yum install git -y 获取metrics-server, 注意使用的版本[root@k8s-master01 ~] git clone -b v0.3.6 https://github.com/kubernetes-incubator/metrics-server 修改deployment, 注意修改的是镜像和初始化参数[root@k8s-master01 ~] cd /root/metrics-server/deploy/1.8+/[root@k8s-master01 1.8+] vim metrics-server-deployment.yaml按图中添加下面选项hostNetwork: trueimage: registry.cn-hangzhou.aliyuncs.com/google_containers/metrics-server-amd64:v0.3.6args:- --kubelet-insecure-tls- --kubelet-preferred-address-types=InternalIP,Hostname,InternalDNS,ExternalDNS,ExternalIP 2、安装metrics-server [root@k8s-master01 1.8+] kubectl apply -f ./ 3、查看pod运行情况 [root@k8s-master01 1.8+] kubectl get pod -n kube-systemmetrics-server-6b976979db-2xwbj 1/1 Running 0 90s 4、使用kubectl top node 查看资源使用情况 [root@k8s-master01 1.8+] kubectl top nodeNAME CPU(cores) CPU% MEMORY(bytes) MEMORY%k8s-master01 289m 14% 1582Mi 54% k8s-node01 81m 4% 1195Mi 40% k8s-node02 72m 3% 1211Mi 41% [root@k8s-master01 1.8+] kubectl top pod -n kube-systemNAME CPU(cores) MEMORY(bytes)coredns-6955765f44-7ptsb 3m 9Micoredns-6955765f44-vcwr5 3m 8Mietcd-master 14m 145Mi... 至此,metrics-server安装完成 5、 准备deployment和servie 创建pc-hpa-pod.yaml文件,内容如下: apiVersion: apps/v1kind: Deploymentmetadata:name: nginxnamespace: devspec:strategy: 策略type: RollingUpdate 滚动更新策略replicas: 1selector:matchLabels:app: nginx-podtemplate:metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1resources: 资源配额limits: 限制资源(上限)cpu: "1" CPU限制,单位是core数requests: 请求资源(下限)cpu: "100m" CPU限制,单位是core数 创建deployment [root@k8s-master01 1.8+] kubectl run nginx --image=nginx:1.17.1 --requests=cpu=100m -n dev 6、创建service [root@k8s-master01 1.8+] kubectl expose deployment nginx --type=NodePort --port=80 -n dev 7、查看 [root@k8s-master01 1.8+] kubectl get deployment,pod,svc -n devNAME READY UP-TO-DATE AVAILABLE AGEdeployment.apps/nginx 1/1 1 1 47sNAME READY STATUS RESTARTS AGEpod/nginx-7df9756ccc-bh8dr 1/1 Running 0 47sNAME TYPE CLUSTER-IP EXTERNAL-IP PORT(S) AGEservice/nginx NodePort 10.101.18.29 <none> 80:31830/TCP 35s 8、 部署HPA 创建pc-hpa.yaml文件,内容如下: apiVersion: autoscaling/v1kind: HorizontalPodAutoscalermetadata:name: pc-hpanamespace: devspec:minReplicas: 1 最小pod数量maxReplicas: 10 最大pod数量 ,pod数量会在1~10之间自动伸缩targetCPUUtilizationPercentage: 3 CPU使用率指标,如果cpu使用率达到3%就会进行扩容;为了测试方便,将这个数值调小一些scaleTargetRef: 指定要控制的nginx信息apiVersion: /v1kind: Deploymentname: nginx 创建hpa [root@k8s-master01 1.8+] kubectl create -f pc-hpa.yamlhorizontalpodautoscaler.autoscaling/pc-hpa created 查看hpa [root@k8s-master01 1.8+] kubectl get hpa -n devNAME REFERENCE TARGETS MINPODS MAXPODS REPLICAS AGEpc-hpa Deployment/nginx 0%/3% 1 10 1 62s 9、 测试 使用压测工具对service地址192.168.5.4:31830进行压测,然后通过控制台查看hpa和pod的变化 hpa变化 [root@k8s-master01 ~] kubectl get hpa -n dev -wNAME REFERENCE TARGETS MINPODS MAXPODS REPLICAS AGEpc-hpa Deployment/nginx 0%/3% 1 10 1 4m11spc-hpa Deployment/nginx 0%/3% 1 10 1 5m19spc-hpa Deployment/nginx 22%/3% 1 10 1 6m50spc-hpa Deployment/nginx 22%/3% 1 10 4 7m5spc-hpa Deployment/nginx 22%/3% 1 10 8 7m21spc-hpa Deployment/nginx 6%/3% 1 10 8 7m51spc-hpa Deployment/nginx 0%/3% 1 10 8 9m6spc-hpa Deployment/nginx 0%/3% 1 10 8 13mpc-hpa Deployment/nginx 0%/3% 1 10 1 14m deployment变化 [root@k8s-master01 ~] kubectl get deployment -n dev -wNAME READY UP-TO-DATE AVAILABLE AGEnginx 1/1 1 1 11mnginx 1/4 1 1 13mnginx 1/4 1 1 13mnginx 1/4 1 1 13mnginx 1/4 4 1 13mnginx 1/8 4 1 14mnginx 1/8 4 1 14mnginx 1/8 4 1 14mnginx 1/8 8 1 14mnginx 2/8 8 2 14mnginx 3/8 8 3 14mnginx 4/8 8 4 14mnginx 5/8 8 5 14mnginx 6/8 8 6 14mnginx 7/8 8 7 14mnginx 8/8 8 8 15mnginx 8/1 8 8 20mnginx 8/1 8 8 20mnginx 1/1 1 1 20m pod变化 [root@k8s-master01 ~] kubectl get pods -n dev -wNAME READY STATUS RESTARTS AGEnginx-7df9756ccc-bh8dr 1/1 Running 0 11mnginx-7df9756ccc-cpgrv 0/1 Pending 0 0snginx-7df9756ccc-8zhwk 0/1 Pending 0 0snginx-7df9756ccc-rr9bn 0/1 Pending 0 0snginx-7df9756ccc-cpgrv 0/1 ContainerCreating 0 0snginx-7df9756ccc-8zhwk 0/1 ContainerCreating 0 0snginx-7df9756ccc-rr9bn 0/1 ContainerCreating 0 0snginx-7df9756ccc-m9gsj 0/1 Pending 0 0snginx-7df9756ccc-g56qb 0/1 Pending 0 0snginx-7df9756ccc-sl9c6 0/1 Pending 0 0snginx-7df9756ccc-fgst7 0/1 Pending 0 0snginx-7df9756ccc-g56qb 0/1 ContainerCreating 0 0snginx-7df9756ccc-m9gsj 0/1 ContainerCreating 0 0snginx-7df9756ccc-sl9c6 0/1 ContainerCreating 0 0snginx-7df9756ccc-fgst7 0/1 ContainerCreating 0 0snginx-7df9756ccc-8zhwk 1/1 Running 0 19snginx-7df9756ccc-rr9bn 1/1 Running 0 30snginx-7df9756ccc-m9gsj 1/1 Running 0 21snginx-7df9756ccc-cpgrv 1/1 Running 0 47snginx-7df9756ccc-sl9c6 1/1 Running 0 33snginx-7df9756ccc-g56qb 1/1 Running 0 48snginx-7df9756ccc-fgst7 1/1 Running 0 66snginx-7df9756ccc-fgst7 1/1 Terminating 0 6m50snginx-7df9756ccc-8zhwk 1/1 Terminating 0 7m5snginx-7df9756ccc-cpgrv 1/1 Terminating 0 7m5snginx-7df9756ccc-g56qb 1/1 Terminating 0 6m50snginx-7df9756ccc-rr9bn 1/1 Terminating 0 7m5snginx-7df9756ccc-m9gsj 1/1 Terminating 0 6m50snginx-7df9756ccc-sl9c6 1/1 Terminating 0 6m50s DaemonSet 简称DS,ds可以保证在集群中的每一台节点(或指定节点)上都运行一个副本,一般适用于日志收集、节点监控等场景;也就是说,如果一个Pod提供的功能是节点级别的(每个节点都需要且只需要一个),那么这类Pod就适合使用DaemonSet类型的控制器创建。 DaemonSet控制器的特点: 每当向集群中添加一个节点时,指定的 Pod 副本也将添加到该节点上 当节点从集群中移除时,Pod 也就被垃圾回收了 配置模板 apiVersion: apps/v1 版本号kind: DaemonSet 类型 metadata: 元数据name: rs名称 namespace: 所属命名空间 labels: 标签controller: daemonsetspec: 详情描述revisionHistoryLimit: 3 保留历史版本updateStrategy: 更新策略type: RollingUpdate 滚动更新策略rollingUpdate: 滚动更新maxUnavailable: 1 最大不可用状态的 Pod 的最大值,可以为百分比,也可以为整数selector: 选择器,通过它指定该控制器管理哪些podmatchLabels: Labels匹配规则app: nginx-podmatchExpressions: Expressions匹配规则- {key: app, operator: In, values: [nginx-pod]}template: 模板,当副本数量不足时,会根据下面的模板创建pod副本metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1ports:- containerPort: 80 1、创建ds 创建pc-daemonset.yaml,内容如下: apiVersion: apps/v1kind: DaemonSet metadata:name: pc-daemonsetnamespace: devspec: selector:matchLabels:app: nginx-podtemplate:metadata:labels:app: nginx-podspec:containers:- name: nginximage: nginx:1.17.1 运行 创建daemonset[root@k8s-master01 ~] kubectl create -f pc-daemonset.yamldaemonset.apps/pc-daemonset created 查看daemonset[root@k8s-master01 ~] kubectl get ds -n dev -o wideNAME DESIRED CURRENT READY UP-TO-DATE AVAILABLE AGE CONTAINERS IMAGES pc-daemonset 2 2 2 2 2 24s nginx nginx:1.17.1 查看pod,发现在每个Node上都运行一个pod[root@k8s-master01 ~] kubectl get pods -n dev -o wideNAME READY STATUS RESTARTS AGE IP NODE pc-daemonset-9bck8 1/1 Running 0 37s 10.244.1.43 node1 pc-daemonset-k224w 1/1 Running 0 37s 10.244.2.74 node2 2、删除daemonset [root@k8s-master01 ~] kubectl delete -f pc-daemonset.yamldaemonset.apps "pc-daemonset" deleted Job 主要用于负责批量处理一次性(每个任务仅运行一次就结束)任务。当然,你也可以运行多次,配置好即可,Job特点如下: 当Job创建的pod执行成功结束时,Job将记录成功结束的pod数量 当成功结束的pod达到指定的数量时,Job将完成执行 配置模板 apiVersion: batch/v1 版本号kind: Job 类型 metadata: 元数据name: rs名称 namespace: 所属命名空间 labels: 标签controller: jobspec: 详情描述completions: 1 指定job需要成功运行Pods的次数。默认值: 1parallelism: 1 指定job在任一时刻应该并发运行Pods的数量。默认值: 1activeDeadlineSeconds: 30 指定job可运行的时间期限,超过时间还未结束,系统将会尝试进行终止。backoffLimit: 6 指定job失败后进行重试的次数。默认是6manualSelector: true 是否可以使用selector选择器选择pod,默认是falseselector: 选择器,通过它指定该控制器管理哪些podmatchLabels: Labels匹配规则app: counter-podmatchExpressions: Expressions匹配规则- {key: app, operator: In, values: [counter-pod]}template: 模板,当副本数量不足时,会根据下面的模板创建pod副本metadata:labels:app: counter-podspec:restartPolicy: Never 重启策略只能设置为Never或者OnFailurecontainers:- name: counterimage: busybox:1.30command: ["bin/sh","-c","for i in 9 8 7 6 5 4 3 2 1; do echo $i;sleep 2;done"] 关于重启策略设置的说明:(这里只能设置为Never或者OnFailure) 如果指定为OnFailure,则job会在pod出现故障时重启容器,而不是创建pod,failed次数不变 如果指定为Never,则job会在pod出现故障时创建新的pod,并且故障pod不会消失,也不会重启,failed次数加1 如果指定为Always的话,就意味着一直重启,意味着job任务会重复去执行了,当然不对,所以不能设置为Always 1、创建一个job 创建pc-job.yaml,内容如下: apiVersion: batch/v1kind: Job metadata:name: pc-jobnamespace: devspec:manualSelector: trueselector:matchLabels:app: counter-podtemplate:metadata:labels:app: counter-podspec:restartPolicy: Nevercontainers:- name: counterimage: busybox:1.30command: ["bin/sh","-c","for i in 9 8 7 6 5 4 3 2 1; do echo $i;sleep 3;done"] 创建 创建job[root@k8s-master01 ~] kubectl create -f pc-job.yamljob.batch/pc-job created 查看job[root@k8s-master01 ~] kubectl get job -n dev -o wide -wNAME COMPLETIONS DURATION AGE CONTAINERS IMAGES SELECTORpc-job 0/1 21s 21s counter busybox:1.30 app=counter-podpc-job 1/1 31s 79s counter busybox:1.30 app=counter-pod 通过观察pod状态可以看到,pod在运行完毕任务后,就会变成Completed状态[root@k8s-master01 ~] kubectl get pods -n dev -wNAME READY STATUS RESTARTS AGEpc-job-rxg96 1/1 Running 0 29spc-job-rxg96 0/1 Completed 0 33s 接下来,调整下pod运行的总数量和并行数量 即:在spec下设置下面两个选项 completions: 6 指定job需要成功运行Pods的次数为6 parallelism: 3 指定job并发运行Pods的数量为3 然后重新运行job,观察效果,此时会发现,job会每次运行3个pod,总共执行了6个pod[root@k8s-master01 ~] kubectl get pods -n dev -wNAME READY STATUS RESTARTS AGEpc-job-684ft 1/1 Running 0 5spc-job-jhj49 1/1 Running 0 5spc-job-pfcvh 1/1 Running 0 5spc-job-684ft 0/1 Completed 0 11spc-job-v7rhr 0/1 Pending 0 0spc-job-v7rhr 0/1 Pending 0 0spc-job-v7rhr 0/1 ContainerCreating 0 0spc-job-jhj49 0/1 Completed 0 11spc-job-fhwf7 0/1 Pending 0 0spc-job-fhwf7 0/1 Pending 0 0spc-job-pfcvh 0/1 Completed 0 11spc-job-5vg2j 0/1 Pending 0 0spc-job-fhwf7 0/1 ContainerCreating 0 0spc-job-5vg2j 0/1 Pending 0 0spc-job-5vg2j 0/1 ContainerCreating 0 0spc-job-fhwf7 1/1 Running 0 2spc-job-v7rhr 1/1 Running 0 2spc-job-5vg2j 1/1 Running 0 3spc-job-fhwf7 0/1 Completed 0 12spc-job-v7rhr 0/1 Completed 0 12spc-job-5vg2j 0/1 Completed 0 12s 2、删除 删除jobkubectl delete -f pc-job.yaml CronJob 简称为CJ,CronJob控制器以 Job控制器资源为其管控对象,并借助它管理pod资源对象,Job控制器定义的作业任务在其控制器资源创建之后便会立即执行,但CronJob可以以类似于Linux操作系统的周期性任务作业计划的方式控制其运行时间点及重复运行的方式。也就是说,CronJob可以在特定的时间点(反复的)去运行job任务。可以理解为定时任务 配置模板 apiVersion: batch/v1beta1 版本号kind: CronJob 类型 metadata: 元数据name: rs名称 namespace: 所属命名空间 labels: 标签controller: cronjobspec: 详情描述schedule: cron格式的作业调度运行时间点,用于控制任务在什么时间执行concurrencyPolicy: 并发执行策略,用于定义前一次作业运行尚未完成时是否以及如何运行后一次的作业failedJobHistoryLimit: 为失败的任务执行保留的历史记录数,默认为1successfulJobHistoryLimit: 为成功的任务执行保留的历史记录数,默认为3startingDeadlineSeconds: 启动作业错误的超时时长jobTemplate: job控制器模板,用于为cronjob控制器生成job对象;下面其实就是job的定义metadata:spec:completions: 1parallelism: 1activeDeadlineSeconds: 30backoffLimit: 6manualSelector: trueselector:matchLabels:app: counter-podmatchExpressions: 规则- {key: app, operator: In, values: [counter-pod]}template:metadata:labels:app: counter-podspec:restartPolicy: Never containers:- name: counterimage: busybox:1.30command: ["bin/sh","-c","for i in 9 8 7 6 5 4 3 2 1; do echo $i;sleep 20;done"] cron表达式写法 需要重点解释的几个选项:schedule: cron表达式,用于指定任务的执行时间/1 <分钟> <小时> <日> <月份> <星期>分钟 值从 0 到 59.小时 值从 0 到 23.日 值从 1 到 31.月 值从 1 到 12.星期 值从 0 到 6, 0 代表星期日多个时间可以用逗号隔开; 范围可以用连字符给出;可以作为通配符; /表示每... 例如1 // 每个小时的第一分钟执行/1 // 每分钟都执行concurrencyPolicy:Allow: 允许Jobs并发运行(默认)Forbid: 禁止并发运行,如果上一次运行尚未完成,则跳过下一次运行Replace: 替换,取消当前正在运行的作业并用新作业替换它 1、创建cronJob 创建pc-cronjob.yaml,内容如下: apiVersion: batch/v1beta1kind: CronJobmetadata:name: pc-cronjobnamespace: devlabels:controller: cronjobspec:schedule: "/1 " 每分钟执行一次jobTemplate:metadata:spec:template:spec:restartPolicy: Nevercontainers:- name: counterimage: busybox:1.30command: ["bin/sh","-c","for i in 9 8 7 6 5 4 3 2 1; do echo $i;sleep 3;done"] 运行 创建cronjob[root@k8s-master01 ~] kubectl create -f pc-cronjob.yamlcronjob.batch/pc-cronjob created 查看cronjob[root@k8s-master01 ~] kubectl get cronjobs -n devNAME SCHEDULE SUSPEND ACTIVE LAST SCHEDULE AGEpc-cronjob /1 False 0 <none> 6s 查看job[root@k8s-master01 ~] kubectl get jobs -n devNAME COMPLETIONS DURATION AGEpc-cronjob-1592587800 1/1 28s 3m26spc-cronjob-1592587860 1/1 28s 2m26spc-cronjob-1592587920 1/1 28s 86s 查看pod[root@k8s-master01 ~] kubectl get pods -n devpc-cronjob-1592587800-x4tsm 0/1 Completed 0 2m24spc-cronjob-1592587860-r5gv4 0/1 Completed 0 84spc-cronjob-1592587920-9dxxq 1/1 Running 0 24s 2、删除cronjob kubectl delete -f pc-cronjob.yaml pod调度 什么是调度 默认情况下,一个pod在哪个node节点上运行,是通过scheduler组件采用相应的算法计算出来的,这个过程是不受人工控制的; 调度规则 但是在实际使用中,我们想控制某些pod定向到达某个节点上,应该怎么做呢?其实k8s提供了四类调度规则 调度方式 描述 自动调度 通过scheduler组件采用相应的算法计算得出运行在哪个节点上 定向调度 运行到指定的node节点上,通过NodeName、NodeSelector实现 亲和性调度 跟谁关系好就调度到哪个节点上 1、nodeAffinity :节点亲和性,调度到关系好的节点上 2、podAffinity:pod亲和性,调度到关系好的pod所在的节点上 3、PodAntAffinity:pod反清河行,调度到关系差的那个pod所在的节点上 污点(容忍)调度 污点是站在node的角度上的,比如果nodeA有一个污点,大家都别来,此时nodeA会拒绝master调度过来的pod 定向调度 指的是利用在pod上声明nodeName或nodeSelector的方式将pod调度到指定的pod节点上,因为这种定向调度是强制性的,所以如果node节点不存在的话,也会向上面进行调度,只不过pod会运行失败; 1、定向调度-> nodeName nodeName 是将pod强制调度到指定名称的node节点上,这种方式跳过了scheduler的调度逻辑,直接将pod调度到指定名称的节点上,配置文件内容如下 apiVersion: v1 版本号kind: Pod 资源类型metadata: name: pod-namenamespace: devspec: containers: - image: nginx:1.17.1name: nginx-containernodeName: node1 调度到node1节点上 2、定向调度 -> NodeSelector NodeSelector是将pod调度到添加了指定label标签的node节点上,它是通过k8s的label-selector机制实现的,也就是说,在创建pod之前,会由scheduler用matchNodeSelecto调度策略进行label标签的匹配,找出目标node,然后在将pod调度到目标node; 要实验NodeSelector,首先得给node节点加上label标签 kubectl label nodes node1 nodetag=node1 配置文件内容如下 apiVersion: v1 版本号kind: Pod 资源类型metadata: name: pod-namenamespace: devspec: containers: - image: nginx:1.17.1name: nginx-containernodeSelector: nodetag: node1 调度到具有nodetag=node1标签的节点上 本篇文章为转载内容。原文链接:https://blog.csdn.net/qq_27184497/article/details/121765387。 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。
2023-09-29 09:08:28
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...加灵活高效。 2. 深度分析:InfoQ上的一篇文章详细探讨了OpenStack与ODL结合在大规模电信云环境中的实践案例,通过实证分析揭示了两者如何协同工作以实现网络自动化和服务编排,为运营商提供了前所未有的敏捷性和可扩展性。 3. 行业动态:随着云原生技术和Kubernetes生态系统的普及,越来越多的企业开始探索将ODL与K8s CNI插件相结合,用于构建更加智能、自适应的容器网络解决方案。一篇来自The New Stack的文章对此进行了详尽解读。 4. 技术教程:为了帮助用户更好地掌握OpenDaylight的高级功能,如利用Northbound API进行网络策略管理、故障排查等,Red Hat官方博客最近发布了一篇教程,提供了从理论到实践的全面指南。 5. 学术研究:《计算机网络》期刊最新刊载的一篇研究报告,针对开源SDN控制器(包括OpenDaylight)的安全性和性能进行了深入剖析,并提出了提升其可靠性的若干改进方案,这对于从事相关领域研究和技术开发的专业人士具有很高的参考价值。 以上这些资源不仅可以帮助您跟踪了解OpenDaylight与OpenStack集成的最新进展,还能让您洞悉整个SDN领域的前沿趋势和发展方向,从而更好地指导您的项目实施和技术创新。
2023-06-08 17:13:19
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...的变化自动更新数据库结构,而无需手动编辑数据库脚本或删除已有数据。 声明(Claims) , 在ASP.NET Identity框架中,声明(Claims)是一种用于表示用户特定信息的数据结构,它可以包含用户的任意属性或特性,例如姓名、年龄、角色或者权限等。声明被用来实现细粒度的授权机制,应用程序可以根据用户携带的声明值灵活地决定其对资源的访问权限。在本文中,作者演示了如何使用声明来进行动作方法的授权访问控制,使得身份验证和授权过程更为灵活与精准。
2023-10-28 08:49:21
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