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... <arpa/inet.h>include <netdb.h>include <errno.h>include <endian.h>include <map>include <string>include <mutex>using namespace std;define NTP_LI 0define NTP_VERSION_NUM 3define NTP_MODE_CLIENT 3define NTP_MODE_SERVER 4define NTP_STRATUM 0define NTP_POLL 4define NTP_PRECISION -6define NTP_MIN_LEN 48define NTP_SERVER_PORT 123define NTP_SERVER_ADDR "119.28.183.184"define TIMEOUT 2define BUFSIZE 1500define JAN_1970 0x83aa7e80define NTP_CONV_FRAC32(x) (uint64_t)((x) ((uint64_t)1 << 32))define NTP_REVE_FRAC32(x) ((double)((double)(x) / ((uint64_t)1 << 32)))define NTP_CONV_FRAC16(x) (uint32_t)((x) ((uint32_t)1 << 16))define NTP_REVE_FRAC16(x) ((double)((double)(x) / ((uint32_t)1 << 16)))define USEC2FRAC(x) ((uint32_t)NTP_CONV_FRAC32((x) / 1000000.0))define FRAC2USEC(x) ((uint32_t)NTP_REVE_FRAC32((x)1000000.0))define NTP_LFIXED2DOUBLE(x) ((double)(ntohl(((struct l_fixedpt )(x))->intpart) - JAN_1970 + FRAC2USEC(ntohl(((struct l_fixedpt )(x))->fracpart)) / 1000000.0))struct s_fixedpt{uint16_t intpart;uint16_t fracpart;};struct l_fixedpt{uint32_t intpart;uint32_t fracpart;};struct ntphdr{if __BYTE_ORDER == __BID_ENDIANunsigned int ntp_li : 2;unsigned int ntp_vn : 3;unsigned int ntp_mode : 3;endifif __BYTE_ORDER == __LITTLE_ENDIANunsigned int ntp_mode : 3;unsigned int ntp_vn : 3;unsigned int ntp_li : 2;endifuint8_t ntp_stratum;uint8_t ntp_poll;int8_t ntp_precision;struct s_fixedpt ntp_rtdelay;struct s_fixedpt ntp_rtdispersion;uint32_t ntp_refid;struct l_fixedpt ntp_refts;struct l_fixedpt ntp_orits;struct l_fixedpt ntp_recvts;struct l_fixedpt ntp_transts;};class NtpClient {public:NtpClient();virtual ~NtpClient();void GetNtpTime(std::string &ntpTime);in_addr_t HostTransfer(const char host);int PaddingNtpPackage(void buf, size_t size);double GetOffset(const struct ntphdr ntp, const struct timeval recvtv);private:int m_sockfd;};endif / NTP_CLIENT_H / NtpClient.cpp //// Created by lwang on 2023-03-18.//include "NtpClient.h"NtpClient::NtpClient() { }NtpClient::~NtpClient() {}in_addr_t NtpClient::HostTransfer(const char host){in_addr_t saddr;struct hostent hostent;if ((saddr = inet_addr(host)) == INADDR_NONE){if ((hostent = gethostbyname(host)) == NULL){return INADDR_NONE;}memmove(&saddr, hostent->h_addr, hostent->h_length);}return saddr;}int NtpClient::PaddingNtpPackage(void buf, size_t size) // 构建并发送NTP请求报文{if (!size)return -1;struct ntphdr ntp;struct timeval tv;memset(buf, 0, BUFSIZE);ntp = (struct ntphdr )buf;ntp->ntp_li = NTP_LI;ntp->ntp_vn = NTP_VERSION_NUM;ntp->ntp_mode = NTP_MODE_CLIENT;ntp->ntp_stratum = NTP_STRATUM;ntp->ntp_poll = NTP_POLL;ntp->ntp_precision = NTP_PRECISION;gettimeofday(&tv, NULL); // 把目前的时间用tv 结构体返回ntp->ntp_transts.intpart = htonl(tv.tv_sec + JAN_1970);ntp->ntp_transts.fracpart = htonl(USEC2FRAC(tv.tv_usec));size = NTP_MIN_LEN;return 0;}double NtpClient::GetOffset(const struct ntphdr ntp, const struct timeval recvtv) // 偏移量{double t1, t2, t3, t4;t1 = NTP_LFIXED2DOUBLE(&ntp->ntp_orits);t2 = NTP_LFIXED2DOUBLE(&ntp->ntp_recvts);t3 = NTP_LFIXED2DOUBLE(&ntp->ntp_transts);t4 = recvtv->tv_sec + recvtv->tv_usec / 1000000.0;return ((t2 - t1) + (t3 - t4)) / 2;}void NtpClient::GetNtpTime(std::string &ntpTime){char buffer[64] = {0};char cmd[128] = {0};tm local;char buf[BUFSIZE];size_t nbytes;int maxfd1;struct sockaddr_in servaddr;fd_set readfds;struct timeval timeout, recvtv, tv;double offset;servaddr.sin_family = AF_INET;servaddr.sin_port = htons(NTP_SERVER_PORT);servaddr.sin_addr.s_addr = HostTransfer(NTP_SERVER_ADDR);if ((m_sockfd = socket(AF_INET, SOCK_DGRAM, 0)) < 0){perror("socket error");return ;}if (connect(m_sockfd, (struct sockaddr )&servaddr, sizeof(struct sockaddr)) != 0){perror("connect error");return ;}nbytes = BUFSIZE;if (PaddingNtpPackage(buf, &nbytes) != 0){fprintf(stderr, "construct ntp request error \n");exit(-1);}send(m_sockfd, buf, nbytes, 0);FD_ZERO(&readfds);FD_SET(m_sockfd, &readfds);maxfd1 = m_sockfd + 1;timeout.tv_sec = TIMEOUT;timeout.tv_usec = 0;if (select(maxfd1, &readfds, NULL, NULL, &timeout) > 0){if (FD_ISSET(m_sockfd, &readfds)){if ((nbytes = recv(m_sockfd, buf, BUFSIZE, 0)) < 0){perror("recv error");exit(-1);}// 计算C/S时间偏移量gettimeofday(&recvtv, NULL);offset = GetOffset((struct ntphdr )buf, &recvtv);gettimeofday(&tv, NULL);tv.tv_sec += (int)offset;tv.tv_usec += offset - (int)offset;local = localtime((time_t )&tv.tv_sec);strftime(buffer, 64, "%Y-%m-%d %H:%M:%S", local);ntpTime = std::string(buffer);} }return ;} main.cpp include "NtpClient.h"int main(){std::string ntpTime = "";char curBuf[64] = {0};struct timeval cur;tm local;NtpClient client;client.GetNtpTime(ntpTime);cout << "ntpTime: " << ntpTime << endl;gettimeofday(&cur, NULL);local = localtime((time_t )&cur.tv_sec);strftime(curBuf, 64, "%Y-%m-%d %H:%M:%S", local);std::string curTime = std::string(curBuf);cout << "curTime: " << curTime << endl;if (curTime != ntpTime){cout << "start time calibrate!" << endl;std::string cmd = "sudo date -s \"" + ntpTime + "\"";system(cmd.c_str());cout << "cmd: " << cmd << endl;}else{cout << "time seem" << endl;}return 0;} 推荐一个零声学院免费教程,个人觉得老师讲得不错, 分享给大家:[Linux,Nginx,ZeroMQ,MySQL,Redis, fastdfs,MongoDB,ZK,流媒体,CDN,P2P,K8S,Docker, TCP/IP,协程,DPDK等技术内容,点击立即学习: 本篇文章为转载内容。原文链接:https://blog.csdn.net/weixin_46935110/article/details/129683157。 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。
2023-03-01 12:56:47
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... apply,它们是应用于函数对象的 function foo() {console.log('调用了 foo')}const fooProxy = new Proxy(foo, {apply: function (target, thisArg, argArray) {console.log(对 foo 函数进行了 apply 调用)target.apply(thisArg, argArray)},construct: function (target, argArray, newTarget) {console.log(对 foo 函数进行了 new 调用)return new target(...argArray)} })fooProxy.apply({}, ['abc', 'cba'])new fooProxy('abc', 'cba')/ 对 foo 函数进行了 apply 调用调用了 foo对 foo 函数进行了 new 调用调用了 foo/ 3. Reflect 3.1 Reflect 的作用 Reflect 也是 ES6 新增的一个 API,它是一个对象,字面的意思是反射 Reflect 的作用: 它主要提供了很多操作 JavaScript 对象的方法,有点像 Object 中操作对象的方法 比如 Reflect.getPrototypeOf(target) 类似于 Object.getPrototypeOf() 比如 Reflect.defineProperty(target, propertyKey, attributes) 类似于 Object.defineProperty() 如果我们有 Object 可以做这些操作,那么为什么还需要有Reflect这样的新增对象呢? 这是因为在早期的 ECMA 规范中没有考虑到这种对 对象本身 的操作如何设计会更加规范,所以将这些 API 放到了 Object上面 但是 Object 作为一个构造函数,这些操作实际上放到它身上并不合适 另外还包含一些类似于 in、delete 操作符,让 JS 看起来是会有一些奇怪的 所以在 ES6 中新增了 Reflect,让我们这些操作都集中到了 Reflect 对象上 那么 Object 和 Reflect 对象之间的 API 关系,可以参考 MDN 文档: 比较 Reflect 和 Object 方法 3.2 Reflect 的常见方法 Reflect中有哪些常见的方法呢?它和Proxy是一一对应的,也是13个 Reflect.getPrototypeOf(target) 类似于 Object.getPrototypeOf() Reflect.setPrototypeOf(target, prototype) 设置对象原型的函数. 返回一个 Boolean, 如果更新成功,则返回 true Reflect.isExtensible(target) 类似于 Object.isExtensible() Reflect.preventExtensions(target) 类似于 Object.preventExtensions() , 返回一个 Boolean Reflect.getOwnPropertyDescriptor(target, propertyKey) 类似于 Object.getOwnPropertyDescriptor() , 如果对象中存在该属性,则返回对应的属性描述符, 否则返回 undefined Reflect.defineProperty(target, propertyKey, attributes) 和 Object.defineProperty() 类似, 如果设置成功就会返回 true Reflect.ownKeys(target) 返回一个包含所有自身属性(不包含继承属性)的数组 (类似于 Object.keys(), 但不会受 enumerable 影响) Reflect.has(target, propertyKey) 判断一个对象是否存在某个属性,和 in 运算符 的功能完全相同 Reflect.get(target, propertyKey[, receiver]) 获取对象身上某个属性的值,类似于 target[name] Reflect.set(target, propertyKey, value[, receiver]) 将值分配给属性的函数,返回一个 Boolean,如果更新成功,则返回 true Reflect.deleteProperty(target, propertyKey) 作为函数的 delete 操作符,相当于执行 delete target[name] Reflect.apply(target, thisArgument, argumentsList) 对一个函数进行调用操作,同时可以传入一个数组作为调用参数。和 Function.prototype.apply() 功能类似 Reflect.construct(target, argumentsList[, newTarget]) 对构造函数进行 new 操作,相当于执行 new target(...args) 3.3 Reflect 的使用 那么我们可以将之前Proxy案例中对原对象的操作,都修改为Reflect来操作 const obj = {name: 'why',age: 18}const objProxy = new Proxy(obj, {get: function (target, key) {console.log(监听到obj对象的${key}属性被访问了)return Reflect.get(target, key)// return target[key] // 对原来对象进行了直接操作},set: function (target, key, newValue) {console.log(监听到obj对象的${key}属性被设置值)Reflect.set(target, key, newValue)// target[key] = newValue // 对原来对象进行了直接操作} })objProxy.name = 'kobe'console.log(objProxy.name)/ 监听到obj对象的name属性被设置值监听到obj对象的name属性被访问了kobe/ 3.4 Receiver的作用 我们发现在使用getter、setter的时候有一个receiver的参数,它的作用是什么呢? 如果我们的源对象(obj)有 setter 、getter 的访问器属性,那么可以通过 receiver 来改变里面的 this const obj = {_name: 'why',get name() {return this._name // 不使用receiver, _name属性的操作不会被objProxy代理,因为this指向obj},set name(newValue) {this._name = newValue} }const objProxy = new Proxy(obj, {get: function (target, key, receiver) {// receiver 是创建出来的代理对象console.log('get 方法被访问-------', key, receiver)console.log(objProxy === receiver) // truereturn Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)} })objProxy.name = 'kobe'console.log(objProxy.name) // kobe/ get 方法被访问------- name { _name: 'kobe', name: [Getter/Setter] }trueget 方法被访问------- _name { _name: 'kobe', name: [Getter/Setter] }truekobe/ 3.5 Reflect 的 construct function Student(name, age) {this.name = namethis.age = age}function Teacher() {}const stu = new Student('why', 18)console.log(stu)console.log(stu.__proto__ === Student.prototype)/ Student { name: 'why', age: 18 }true/// 执行 Student 函数中的内容,但是创建出来的对象是 Teacher 对象const teacher = Reflect.construct(Student, ['why', 18], Teacher)console.log(teacher)console.log(teacher.__proto__ === Teacher.prototype)/ Teacher { name: 'why', age: 18 }true/ 4. 响应式 4.1 什么是响应式? 先来看一下响应式意味着什么?我们来看一段代码: m 有一个初始化的值,有一段代码使用了这个值; 那么在 m 有一个新的值时,这段代码可以自动重新执行 let m = 0// 一段代码console.log(m)console.log(m 2)console.log(m 2)m = 200 上面的这样一种可以自动响应数据变量的代码机制,我们就称之为是响应式的 对象的响应式 4.2 响应式函数设计 首先,执行的代码中可能不止一行代码,所以我们可以将这些代码放到一个函数中: 那么问题就变成了,当数据发生变化时,自动去执行某一个函数; 但是有一个问题:在开发中是有很多的函数的,如何区分一个函数需要响应式,还是不需要响应式呢? 很明显,下面的函数中 foo 需要在 obj 的 name 发生变化时,重新执行,做出相应; bar 函数是一个完全独立于 obj 的函数,它不需要执行任何响应式的操作; // 对象的响应式const obj = {name: 'why',age: 18}function foo() {const newName = obj.nameconsole.log('你好啊,李银河')console.log('Hello World')console.log(obj.name)}function bar() {console.log('普通的其他函数')console.log('这个函数不需要有任何的响应式')}obj.name = 'kobe' // name 发生改变时候 foo 函数执行 响应式函数的实现 watchFn 如何区分响应式函数? 这个时候我们封装一个新的函数 watchFn 凡是传入到 watchFn 的函数,就是需要响应式的 其他默认定义的函数都是不需要响应式的 / 封装一个响应式的函数 /let reactiveFns = []function watchFn(fn) {reactiveFns.push(fn)}// 对象的响应式const obj = {name: 'why',age: 18}watchFn(function foo() {const newName = obj.nameconsole.log('你好啊,李银河')console.log('Hello World')console.log(obj.name)})watchFn(function demo() {console.log(obj.name, 'demo function ---------')})function bar() {console.log('普通的其他函数')console.log('这个函数不需要有任何的响应式')}obj.name = 'kobe' // name 发生改变时候 foo 函数执行reactiveFns.forEach((fn) => {fn()}) 4.3 响应式依赖的收集 目前收集的依赖是放到一个数组中来保存的,但是这里会存在数据管理的问题: 在实际开发中需要监听很多对象的响应式 这些对象需要监听的不只是一个属性,它们很多属性的变化,都会有对应的响应式函数 不可能在全局维护一大堆的数组来保存这些响应函数 所以要设计一个类,这个类用于管理某一个对象的某一个属性的所有响应式函数: 相当于替代了原来的简单 reactiveFns 的数组; class Depend {constructor() {this.reactiveFns = []}addDepend(reactiveFn) {this.reactiveFns.push(reactiveFn)}notify() {this.reactiveFns.forEach((fn) => {fn()})} }const depend = new Depend()function watchFn(fn) {depend.addDepend(fn)}// 对象的响应式const obj = {name: 'why', // depend 对象age: 18 // depend 对象}watchFn(function foo() {const newName = obj.nameconsole.log('你好啊,李银河')console.log('Hello World')console.log(obj.name)})watchFn(function demo() {console.log(obj.name, 'demo function ---------')})function bar() {console.log('普通的其他函数')console.log('这个函数不需要有任何的响应式')}obj.name = 'kobe'depend.notify() 4.4 监听对象的变化 那么接下来就可以通过之前的方式来监听对象的变化: 方式一:通过 Object.defineProperty 的方式(vue2采用的方式); 方式二:通过 new Proxy 的方式(vue3采用的方式); 我们这里先以Proxy的方式来监听 class Depend {constructor() {this.reactiveFns = []}addDepend(reactiveFn) {this.reactiveFns.push(reactiveFn)}notify() {this.reactiveFns.forEach((fn) => {fn()})} }const depend = new Depend()function watchFn(fn) {depend.addDepend(fn)}// 对象的响应式const obj = {name: 'why', // depend 对象age: 18 // depend 对象}// 监听对象的属性变化:Proxy(vue3)/Object.defineProperty(vue2)const objProxy = new Proxy(obj, {get: function (target, key, receiver) {return Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)depend.notify()} })watchFn(function foo() {const newName = objProxy.nameconsole.log('你好啊,李银河')console.log('Hello World')console.log(objProxy.name)})watchFn(function demo() {console.log(objProxy.name, 'demo function ---------')})objProxy.name = 'kobe'objProxy.name = 'james'/ 你好啊,李银河Hello Worldkobekobe demo function ---------你好啊,李银河Hello Worldjamesjames demo function ---------/ 4.5 对象的依赖管理 目前是创建了一个 Depend 对象,用来管理对于 name 变化需要监听的响应函数: 但是实际开发中我们会有不同的对象,另外会有不同的属性需要管理; 如何可以使用一种数据结构来管理不同对象的不同依赖关系呢? 在前面我们刚刚学习过 WeakMap,并且在学习 WeakMap 的时候我讲到了后面通过 WeakMap 如何管理这种响应式的数据依赖: 实现 可以写一个 getDepend 函数专门来管理这种依赖关系 / 封装一个获取depend的函数 /const taregtMap = new WeakMap()function getDepend(target, key) {// 根据target对象获取mapconst map = taregtMap.get(target)if (!map) {map = new Map()taregtMap.set(target, map)}// 根据key获取depend对象const depend = map.get(key)if (!depend) {depend = new Depend()map.set(key, depend)}return depend}// 监听对象的属性变化:Proxy(vue3)/Object.defineProperty(vue2)const objProxy = new Proxy(obj, {get: function (target, key, receiver) {return Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)const depend = getDepend(target, key)depend.notify()} }) 正确的依赖收集 我们之前收集依赖的地方是在 watchFn 中: 但是这种收集依赖的方式我们根本不知道是哪一个 key 的哪一个 depend 需要收集依赖; 只能针对一个单独的 depend 对象来添加你的依赖对象; 那么正确的应该是在哪里收集呢?应该在我们调用了 Proxy 的 get 捕获器时 因为如果一个函数中使用了某个对象的 key,那么它应该被收集依赖 / 封装一个响应式函数 /let activeReactviceFn = nullfunction watchFn(fn) {activeReactviceFn = fnfn()activeReactviceFn = null}/ 封装一个获取depend的函数 /const taregtMap = new WeakMap()function getDepend(target, key) {// 根据target对象获取maplet map = taregtMap.get(target)if (!map) {map = new Map()taregtMap.set(target, map)}// 根据key获取depend对象let depend = map.get(key)if (!depend) {depend = new Depend()map.set(key, depend)}return depend}// 监听对象的属性变化:Proxy(vue3)/Object.defineProperty(vue2)const objProxy = new Proxy(obj, {get: function (target, key, receiver) {// 根据 target key 获取对应的 depnedconst depend = getDepend(target, key)// 给 depend 对象中添加响应式函数activeReactviceFn && depend.addDepend(activeReactviceFn)return Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)const depend = getDepend(target, key)depend.notify()} }) 4.6 对 Depend 重构 两个问题: 问题一:如果函数中有用到两次 key,比如 name,那么这个函数会被收集两次 问题二:我们并不希望将添加 reactiveFn 放到 get 中,因为它是属于 Depend 的行为 所以我们需要对 Depend 类进行重构: 解决问题一的方法:不使用数组,而是使用 Set 解决问题二的方法:添加一个新的方法,用于收集依赖 // 保存当前需要收集的响应式函数let activeReactviceFn = nullclass Depend {constructor() {this.reactiveFns = new Set()}depend() {if (activeReactviceFn) {this.reactiveFns.add(activeReactviceFn)} }addDepend(reactiveFn) {this.reactiveFns.add(reactiveFn)}notify() {this.reactiveFns.forEach((fn) => {fn()})} }// 对象的响应式const obj = {name: 'why', // depend 对象age: 18 // depend 对象}/ 封装一个响应式函数 /function watchFn(fn) {activeReactviceFn = fnfn()activeReactviceFn = null}/ 封装一个获取depend的函数 /const taregtMap = new WeakMap()function getDepend(target, key) {// 根据target对象获取maplet map = taregtMap.get(target)if (!map) {map = new Map()taregtMap.set(target, map)}// 根据key获取depend对象let depend = map.get(key)if (!depend) {depend = new Depend()map.set(key, depend)}return depend}// 监听对象的属性变化:Proxy(vue3)/Object.defineProperty(vue2)const objProxy = new Proxy(obj, {get: function (target, key, receiver) {// 根据 target key 获取对应的 depnedconst depend = getDepend(target, key)// 给 depend 对象中添加响应式函数depend.depend()return Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)const depend = getDepend(target, key)depend.notify()} })watchFn(function () {console.log(objProxy.name, '--------------')console.log(objProxy.name, '++++++++++++++')})objProxy.name = 'kobe'/ why --------------why ++++++++++++++kobe --------------kobe ++++++++++++++/ 4.7 创建响应式对象 目前的响应式是针对于obj一个对象的,我们可以创建出来一个函数,针对所有的对象都可以变成响应式对象 / 保存当前需要收集的响应式函数 /let activeReactviceFn = null/ 依赖收集类 /class Depend {constructor() {this.reactiveFns = new Set()}depend() {if (activeReactviceFn) {this.reactiveFns.add(activeReactviceFn)} }addDepend(reactiveFn) {this.reactiveFns.add(reactiveFn)}notify() {this.reactiveFns.forEach((fn) => {fn()})} }/ 封装一个响应式函数 /function watchFn(fn) {activeReactviceFn = fnfn()activeReactviceFn = null}/ 封装一个获取depend的函数 /const taregtMap = new WeakMap()function getDepend(target, key) {// 根据target对象获取maplet map = taregtMap.get(target)if (!map) {map = new Map()taregtMap.set(target, map)}// 根据key获取depend对象let depend = map.get(key)if (!depend) {depend = new Depend()map.set(key, depend)}return depend}/ 创建响应式对象函数 /function reactive(obj) {// 监听对象的属性变化:Proxy(vue3)/Object.defineProperty(vue2)return new Proxy(obj, {get: function (target, key, receiver) {// 根据 target key 获取对应的 depnedconst depend = getDepend(target, key)// 给 depend 对象中添加响应式函数depend.depend()return Reflect.get(target, key, receiver)},set: function (target, key, newValue, receiver) {Reflect.set(target, key, newValue, receiver)const depend = getDepend(target, key)depend.notify()} })}const info = reactive({address: '广州市',height: 1.88})watchFn(() => {console.log(info.address, '---')})info.address = '北京市' 4.8 Vue2 响应式原理 前面所实现的响应式的代码,其实就是 Vue3 中的响应式原理: Vue3 主要是通过 Proxy 来监听数据的变化以及收集相关的依赖的 Vue2 中通过 Object.defineProerty的方式来实现对象属性的监听 可以将 reactive 函数进行如下的重构: 在传入对象时,我们可以遍历所有的 key,并且通过属性存储描述符来监听属性的获取和修改 在 setter 和 getter 方法中的逻辑和前面的 Proxy 是一致的 / 保存当前需要收集的响应式函数 /let activeReactviceFn = null/ 依赖收集类 /class Depend {constructor() {this.reactiveFns = new Set()}depend() {if (activeReactviceFn) {this.reactiveFns.add(activeReactviceFn)} }addDepend(reactiveFn) {this.reactiveFns.add(reactiveFn)}notify() {this.reactiveFns.forEach((fn) => {fn()})} }/ 封装一个响应式函数 /function watchFn(fn) {activeReactviceFn = fnfn()activeReactviceFn = null}/ 封装一个获取depend的函数 /const taregtMap = new WeakMap()function getDepend(target, key) {// 根据target对象获取maplet map = taregtMap.get(target)if (!map) {map = new Map()taregtMap.set(target, map)}// 根据key获取depend对象let depend = map.get(key)if (!depend) {depend = new Depend()map.set(key, depend)}return depend}/ 创建响应式对象函数 /function reactive(obj) {Object.keys(obj).forEach((key) => {let value = obj[key]Object.defineProperty(obj, key, {get: function () {const dep = getDepend(obj, key)dep.depend()return value},set: function (newValue) {value = newValueconst dep = getDepend(obj, key)dep.notify()} })})return obj}const info = reactive({address: '广州市',height: 1.88})watchFn(() => {console.log(info.address, '---')})info.address = '北京市' 本篇文章为转载内容。原文链接:https://blog.csdn.net/wanghuan1020/article/details/126774033。 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。
2023-01-11 12:37:47
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...ader的一个EFI应用 - GRUB镜像组成:GRUB.MBR(boot.img), 硬盘扇区offset 1 到offset 62放置GRUB的core.img,/boot分区的boot/grub/grub.cfg 1.3 创建USB-FDD或者USB-ZIP格式U盘步骤 1)Android上:dd if=/dev/zero of=/dev/block/sda bs=512 count=4 2)Windows上:快速格式化该U盘,这个U盘就只有PBR扇区而没有MBR扇区 2 Windows安装 2.1 BIOS设置 进入BIOS设置,一般有Del、Enter、Esc等键。 2.2 Windows ISO刻录方法 Windows上的Universal USB Installer工具软件:刻录操作系统ISO文件到U盘 Linux下将操作系统ISO文件刻录到U盘:dd if=xxx.iso of=/dev/sda 注意使用的是整个磁盘,所以用的是sda而不是sda1 2.3 Windows GHO镜像安装方法 - 比较常见 1) 制作PE启动U盘 2) 下载Windows ISO镜像后(番茄花园),解压出来,里面包含GHO文件,拷贝到PE启动U盘的GHO文件夹(或者提前将文件.gho拷贝入待装系统的电脑D盘根目录)。 3) 插入PE启动U盘到电脑USB 2.0口,选择从U盘启动,启动到PE界面后,选ghost方式安装,ghost镜像的后缀名.gho。 2.4 Printer 1)HP LaserJet M1005 MFP 2)Nantian PR9 并口-OKI仿真驱动 2.5 Disable Driver Signature bcdedit /set testsigning on bcdedit /set testsigning off 3 Windows网络 3.1 CMD方式配置IP地址 :: netsh: Network Shell @echo off if [%1] == [] ( echo "Usage:" echo "WIN_IP.bat static" echo "WIN_IP.bat dhcp" echo "WIN_IP.bat speed" goto :EOF ) if %1 == static ( call :static_ip ) else if %1 == dhcp ( call :dhcp_ip ) else if %1 == speed ( call :nic_speed ) goto :EOF :: get interface name, use the following command :: getmac /V /FO LIST :static_ip set name="Ethernet" set ip=192.168.0.100 set mask=255.255.255.0 :: gwmetric=1 echo "setting static ip address..." netsh interface ipv4 set address %name% static %ip% %mask% none 1 :: netsh interface ipv4 set dns %name% static 114.114.114.114 :: netsh interface ipv4 add dns %name% 8.8.8.8 goto :EOF :dhcp_ip set name="Ethernet" echo "setting dhcp..." netsh interface ipv4 set address %name% dhcp netsh interface ipv4 set dns %name% dhcp goto :EOF :nic_speed wmic NIC where NetEnabled=true get Name, Speed 3.2 DNS查询流程 1) 现有的DNS缓存 ipconfig /displaydns 2) 查询hosts文件 C:\Windows\System32\drivers\etc\hosts 3) 请求发往DNS服务器 ipconfig /all 3.3 firewall appwiz.cpl msconfig wf.msc Inbound Rules and Outbound Rules Enable 4 File and Printer Sharing (Echo Request - ICMPv4-Out) netsh advfirewall firewall add rule name="UDP ports" protocol=UDP dir=in localport=8080 action=allow https://github.com/DynamoRIO/drmemory/wiki/Downloads 3.4 Multicast - Windows组播client需要使用setsockopt()设置IP_ADD_MEMBERSHIP(加入指定的组播组)才能接收组播server发送的数据。 - 组播MAC地址是指第一个字节的最低位是1的MAC地址。 - 组播MAC地址的前3个字节固定为01:00:5e,后3个字节使用组播IP的后23位。例如239.192.255.251的MAC地址为01:00:5e:40:ff:fb。 - Windows 10 Wireshark要抓取SOME/IP组播报文,需要使用SocketTool工具监听239.192.255.251:30490,然后Wireshark才会显示组播报文,否则不显示(Windows netmon不需要任何设置,就可以抓到全部报文)。 netsh interface ip show joins Win 10 PowerShell: Get-NetAdapter | Format-List -Property ifAlias,PromiscuousMode In Linux, map IP addr to multicast MAC is function ip_eth_mc_map(), kernel eventually calls driver ndo_set_rx_mode() to set multicast MAC to NIC RX MAC filter table. 3.5 NAT 查看当前机器的NAT端口代理表: netsh interface portproxy show all 1) 第三方软件PortTunnel。 2) ICS(Internet Connection Sharing)是NAT的简化版。 3) showcase: USB Reverse Tethering 3.6 route命令用法 route [-f] [-p] [command [destination] [mask netmask] [gateway] [metric metric] [if interface]] route print ::增加一条到192.168.0.10/24网络的路由,网关是192.168.0.1,最后一个if参数是数字,可以使用route print查询,类似于Android的NetId。 route add 192.168.0.0 mask 255.255.255.0 192.168.0.1 metric 1 if 11 ::删除192.168.0.10这条路由 route delete 192.168.0.0 3.7 VLAN PowerShell Get-NetAdapter PowerShell Set-NetAdapterAdvancedProperty -Name \"Ethernet 3\" -DisplayName \"VLAN ID\" -DisplayValue 24 PowerShell Reset-NetAdapterAdvancedProperty -Name \"Ethernet 3\" -DisplayName \"VLAN ID\" 3.8 WiFi AP 1) get password netsh wlan show profiles netsh wlan show profiles name="FAST_ABCD" key=clear 2) enable Soft AP netsh wlan show drivers ::netsh wlan set hostednetwork mode=allow netsh wlan set hostednetwork mode=allow ssid=myWIFI key=12345678 netsh wlan start hostednetwork ::netsh wlan stop hostednetwork 3.9 Malicious software Task Manager Find process name, open file location, remove xxx.exe, rename empty xxx.txt to xxx.exe 4 Office 4.1 Excel Insert Symbol More Symbols Wingdings 2 4.2 Outlook 4.2.1 邮箱清理 点击 自己的邮件名字 Data File Properties(数据文件属性) Folder Size(文件夹大小) Server Data(服务器数据) 从左下角“导航选项”中切换到“日历” View(视图) Change View(更改视图) List(列表) 删除“日历”中过期的项目。 Calendar (Left Bottom) - View (Change View to Calendar) - Choose Menu Month 4.2.2 TCAM filter rule Home - ... - Rules - Create Rule (Manage Rules & Alerts) - Title 4.3 Powerpoint画图 插入 - > 形状 Insert - > Shapes 4.4 Word 升级目录 [References][Update Table] 5 Sprax EA 5.1 Basic Design - Toolbox Message/Argument/Return Value Publish - Save - Save to Clipboard 5.2 Advanced Copy/Paste - Copy to Clipboard - Full Structure for Duplication Copy/Paste - Paste Package from Clipboard 6 USB Win7 CMD: wmic path Win32_PnPSignedDriver | find "Android" wmic path Win32_PnPSignedDriver | find "USB" :: similar to Linux lsusb wmic path Win32_USBControllerDevice get Dependent 7 Abbreviations CAB: Capacity Approval Board NPcap: Nmap Packet Capture wmic: Windows Management Instrumentation Command-line 本篇文章为转载内容。原文链接:https://blog.csdn.net/zoosenpin/article/details/118596813。 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。
2023-09-10 16:27:10
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...uld be in address order.MemRegion _covered[max_covered_regions];// The last card is a guard card; never committed.MemRegion _guard_region;inline size_t compute_byte_map_size(size_t num_bytes);enum CardValues {clean_card = (CardValue)-1,dirty_card = 0,CT_MR_BS_last_reserved = 1};// a word's worth (row) of clean card valuesstatic const intptr_t clean_card_row = (intptr_t)(-1);// CardTable entry sizestatic uint _card_shift;static uint _card_size;static uint _card_size_in_words;size_t last_valid_index() const {return cards_required(_whole_heap.word_size()) - 1;}private:void initialize_covered_region(void region0_start, void region1_start);MemRegion committed_for(const MemRegion mr) const;public:CardTable(MemRegion whole_heap);virtual ~CardTable() = default;void initialize(void region0_start, void region1_start);// Barrier set functions.// Initialization utilities; covered_words is the size of the covered region// in, um, words.inline size_t cards_required(size_t covered_words) const {assert(is_aligned(covered_words, _card_size_in_words), "precondition");return covered_words / _card_size_in_words;}// Dirty the bytes corresponding to "mr" (not all of which must be// covered.)void dirty_MemRegion(MemRegion mr);// Clear (to clean_card) the bytes entirely contained within "mr" (not// all of which must be covered.)void clear_MemRegion(MemRegion mr);// Return true if "p" is at the start of a card.bool is_card_aligned(HeapWord p) {CardValue pcard = byte_for(p);return (addr_for(pcard) == p);}// Mapping from address to card marking array entryCardValue byte_for(const void p) const {assert(_whole_heap.contains(p),"Attempt to access p = " PTR_FORMAT " out of bounds of "" card marking array's _whole_heap = [" PTR_FORMAT "," PTR_FORMAT ")",p2i(p), p2i(_whole_heap.start()), p2i(_whole_heap.end()));CardValue result = &_byte_map_base[uintptr_t(p) >> _card_shift];assert(result >= _byte_map && result < _byte_map + _byte_map_size,"out of bounds accessor for card marking array");return result;}// The card table byte one after the card marking array// entry for argument address. Typically used for higher bounds// for loops iterating through the card table.CardValue byte_after(const void p) const {return byte_for(p) + 1;}void invalidate(MemRegion mr);// Provide read-only access to the card table array.const CardValue byte_for_const(const void p) const {return byte_for(p);}const CardValue byte_after_const(const void p) const {return byte_after(p);}// Mapping from card marking array entry to address of first wordHeapWord addr_for(const CardValue p) const {assert(p >= _byte_map && p < _byte_map + _byte_map_size,"out of bounds access to card marking array. p: " PTR_FORMAT" _byte_map: " PTR_FORMAT " _byte_map + _byte_map_size: " PTR_FORMAT,p2i(p), p2i(_byte_map), p2i(_byte_map + _byte_map_size));// As _byte_map_base may be "negative" (the card table has been allocated before// the heap in memory), do not use pointer_delta() to avoid the assertion failure.size_t delta = p - _byte_map_base;HeapWord result = (HeapWord) (delta << _card_shift);assert(_whole_heap.contains(result),"Returning result = " PTR_FORMAT " out of bounds of "" card marking array's _whole_heap = [" PTR_FORMAT "," PTR_FORMAT ")",p2i(result), p2i(_whole_heap.start()), p2i(_whole_heap.end()));return result;}// Mapping from address to card marking array index.size_t index_for(void p) {assert(_whole_heap.contains(p),"Attempt to access p = " PTR_FORMAT " out of bounds of "" card marking array's _whole_heap = [" PTR_FORMAT "," PTR_FORMAT ")",p2i(p), p2i(_whole_heap.start()), p2i(_whole_heap.end()));return byte_for(p) - _byte_map;}CardValue byte_for_index(const size_t card_index) const {return _byte_map + card_index;}// Resize one of the regions covered by the remembered set.void resize_covered_region(MemRegion new_region);// Card-table-RemSet-specific things.static uintx ct_max_alignment_constraint();static uint card_shift() {return _card_shift;}static uint card_size() {return _card_size;}static uint card_size_in_words() {return _card_size_in_words;}static constexpr CardValue clean_card_val() { return clean_card; }static constexpr CardValue dirty_card_val() { return dirty_card; }static intptr_t clean_card_row_val() { return clean_card_row; }// Initialize card sizestatic void initialize_card_size();// Card marking array base (adjusted for heap low boundary)// This would be the 0th element of _byte_map, if the heap started at 0x0.// But since the heap starts at some higher address, this points to somewhere// before the beginning of the actual _byte_map.CardValue byte_map_base() const { return _byte_map_base; }virtual bool is_in_young(const void p) const = 0;}; class G1CardTable : public CardTable {friend class VMStructs;friend class G1CardTableChangedListener;G1CardTableChangedListener _listener;public:enum G1CardValues {g1_young_gen = CT_MR_BS_last_reserved << 1,// During evacuation we use the card table to consolidate the cards we need to// scan for roots onto the card table from the various sources. Further it is// used to record already completely scanned cards to avoid re-scanning them// when incrementally evacuating the old gen regions of a collection set.// This means that already scanned cards should be preserved.//// The merge at the start of each evacuation round simply sets cards to dirty// that are clean; scanned cards are set to 0x1.//// This means that the LSB determines what to do with the card during evacuation// given the following possible values://// 11111111 - clean, do not scan// 00000001 - already scanned, do not scan// 00000000 - dirty, needs to be scanned.//g1_card_already_scanned = 0x1};static const size_t WordAllClean = SIZE_MAX;static const size_t WordAllDirty = 0;STATIC_ASSERT(BitsPerByte == 8);static const size_t WordAlreadyScanned = (SIZE_MAX / 255) g1_card_already_scanned;G1CardTable(MemRegion whole_heap): CardTable(whole_heap), _listener() {_listener.set_card_table(this);}static CardValue g1_young_card_val() { return g1_young_gen; }static CardValue g1_scanned_card_val() { return g1_card_already_scanned; }void verify_g1_young_region(MemRegion mr) PRODUCT_RETURN;void g1_mark_as_young(const MemRegion& mr);size_t index_for_cardvalue(CardValue const p) const {return pointer_delta(p, _byte_map, sizeof(CardValue));}// Mark the given card as Dirty if it is Clean. Returns whether the card was// Clean before this operation. This result may be inaccurate as it does not// perform the dirtying atomically.inline bool mark_clean_as_dirty(CardValue card);// Change Clean cards in a (large) area on the card table as Dirty, preserving// already scanned cards. Assumes that most cards in that area are Clean.inline void mark_range_dirty(size_t start_card_index, size_t num_cards);// Change the given range of dirty cards to "which". All of these cards must be Dirty.inline void change_dirty_cards_to(CardValue start_card, CardValue end_card, CardValue which);inline uint region_idx_for(CardValue p);static size_t compute_size(size_t mem_region_size_in_words) {size_t number_of_slots = (mem_region_size_in_words / _card_size_in_words);return ReservedSpace::allocation_align_size_up(number_of_slots);}// Returns how many bytes of the heap a single byte of the Card Table corresponds to.static size_t heap_map_factor() { return _card_size; }void initialize(G1RegionToSpaceMapper mapper);bool is_in_young(const void p) const override;}; 以位为粒度的位图能准确描述每一个字的引用关系,但是一个位通常包含的信息太少,只能描述2个状态:引用还是未引用。实际应用中JVM在垃圾回收的时候需要更多的状态,如果增加至一个字节来描述状态,则位图需要256KB的空间,这个数字太大,开销占了25%。所以一个可能的做法位图不再描述一个字,而是一个区域,JVM选择512字节为单位,即用一个字节描述512字节的引用关系。选择一个区域除了空间利用率的问题之外,实际上还有现实的意义。我们知道Java对象实际上不是一个字能描述的(有一个参数可以控制对象最小对齐的大小,默认是8字节,实际上Java在JVM中还有一些附加信息,所以对齐后最小的Java对象是16字节),很多Java对象可能是几十个字节或者几百个字节,所以用一个字节描述一个区域是有意义的。但是我没有找到512的来源,为什么512效果最好?没有相应的数据来支持这个数字,而且这个值不可以配置,不能修改,但是有理由相信512字节的区域是为了节约内存额外开销。按照这个值,1MB的内存只需要2KB的额外空间就能描述引用关系。这又带来另一个问题,就是512字节里面的内存可能被引用多次,所以这是一个粗略的关系描述,那么在使用的时候需要遍历这512字节。 再举一个例子,假设有两个对象B、C都在这512字节的区域内。为了方便处理,记录对象引用关系的时候,都使用对象的起始位置,然后用这个地址和512对齐,因此B和C对象的卡表指针都指向这一个卡表的位置。那么对于引用处理也有可有两种处理方法:·处理的时候会以堆分区为处理单位,遍历整个堆分区,在遍历的时候,每次都会以对象大小为步长,结合卡表,如果该卡表中对应的位置被设置,则说明对象和其他分区的对象发生了引用。具体内容在后文中介绍Refine的时候还会详细介绍。·处理的时候借助于额外的数据结构,找到真正对象的位置,而不需要从头开始遍历。在后文的并发标记处理时就使用了这种方法,用于找到第一个对象的起始位置。在G1除了512字节粒度的卡表之外,还有bitMap,例如使用bitMap可以描述一个分区对另外一个分区的引用情况。在JVM中bitMap使用非常多,例如还可以描述内存的分配情况。 在G1除了512字节粒度的卡表之外,还有bitMap,例如使用bitMap可以描述一个分区对另外一个分区的引用情况。在JVM中bitMap使用非常多,例如还可以描述内存的分配情况。G1在混合收集算法中用到了并发标记。在并发标记的时候使用了bitMap来描述对象的分配情况。例如1MB的分区可以用16KB(16KB×ObjectAlignmentInBytes×8=1MB)来描述,即16KB额外的空间。其中ObjectAlignmentInBytes是8字节,指的是对象对齐,第二个8是指一个字节有8位。即每一个位可以描述64位。例如一个对象长度对齐之后为24字节,理论上它占用3个位来描述这个24字节已被使用了,实际上并不需要,在标记的时候只需要标记这3个位中的第一个位,再结合堆分区对象的大小信息就能准确找出。其最主要的目的是为了效率,标记一个位和标记3个位相比能节约不少时间,如果对象很大,则更划算。这些都是源码的实现细节,大家在阅读源码时需要细细斟酌。 本篇文章为转载内容。原文链接:https://blog.csdn.net/qq_16500963/article/details/132133125。 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。
2023-12-16 20:37:50
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...lSet:管理有状态应用 1、ReplicaSet 简称为RS,主要的作用是保证一定数量的pod能够正常运行,它会持续监听这些pod的运行状态,提供了以下功能 自愈能力: 重启 :当某节点中的pod运行过程中出现问题导致无法启动时,k8s会不断重启,直到可用状态为止 故障转移:当正在运行中pod所在的节点发生故障或者宕机时,k8s会选择集群中另一个可用节点,将pod运行到可用节点上; pod数量的扩缩容:pod副本的扩容和缩容 镜像升降级:支持镜像版本的升级和降级; 配置模板 rs的所有配置如下 apiVersion: apps/v1 版本号kind: ReplicaSet 类型 metadata: 元数据name: rs名称 namespace: 所属命名空间 labels: 标签controller: rsspec: 详情描述replicas: 3 副本数量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就是label的key,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。 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...d-Q Local Address Foreign Address State PID/Program name tcp 0 0 0.0.0.0:22 0.0.0.0: LISTEN 3327/sshd tcp 0 0 127.0.0.1:25 0.0.0.0: LISTEN 3620/master tcp6 0 0 :::6633 ::: LISTEN 868/java tcp6 0 0 127.0.0.1:1099 ::: LISTEN 868/java tcp6 0 0 :::6640 ::: LISTEN 868/java tcp6 0 0 127.0.0.1:6644 ::: LISTEN 868/java tcp6 0 0 :::8181 ::: LISTEN 868/java tcp6 0 0 127.0.0.1:2550 ::: LISTEN 868/java tcp6 0 0 :::22 ::: LISTEN 3327/sshd tcp6 0 0 :::8185 ::: LISTEN 868/java tcp6 0 0 127.0.0.1:44601 ::: LISTEN 868/java tcp6 0 0 :::33273 ::: LISTEN 868/java tcp6 0 0 ::1:25 ::: LISTEN 3620/master tcp6 0 0 :::44444 ::: LISTEN 868/java tcp6 0 0 :::6653 ::: LISTEN 868/java tcp6 0 0 :::39169 ::: LISTEN 868/java tcp6 0 0 :::8101 ::: LISTEN 868/java tcp6 0 0 :::6886 ::: LISTEN 868/java openstack配置 openstack的networking-odl插件安装方式 https://docs.openstack.org/networking-odl/latest/install/installation.htmlodl-installation yum install python-networking-odl.noarch -y https://docs.openstack.org/networking-odl/latest/install/installation.htmlnetworking-odl-configuration systemctl restart neutron-server /etc/neutron/plugins/ml2 测试端口可连接性 curl -u admin:admin http://10.13.80.34:8181/controller/nb/v2/neutron/networks odl配置文件修改 etc/custom.properties ovsdb.l3.fwd.enabled=yes ovsdb.l3gateway.mac=0a:00:27:00:00:0d telnet 10.13.80.34 8181 netstat -nlp | grep 8181 telnet 127.0.0.1 8181 telnet 10.13.80.34 8181 systemctl status firewall iptables iptables -nvL iptables -F 清空iptables openstack server create --flavor tiny --image cirros --nic net-id=24449ee2-b84e-493f-8d76-139ac3e4f3cd --key-name mykey provider-instance nova service-list nova show ae5e26d1-c84d-40fa-bb27-f0b46d6a7061 查看虚机详情 ovs-vsctl set Open_vSwitch 89444614-3bf8-4d7a-b3a0-df5d20b48b7a other_config={'local_ip'='192.168.56.102'} ovs-vsctl set Open_vSwitch b084eccf-b92e-470c-8dff-8549e92c2104 other_config={'local_ip'='192.168.56.122'} ovs-vsctl list interface eth0 ovs-appctl fdb/show br-int [root@rcontroller01 ~] openstack security group rule list 2e19a748-9086-49f8-9498-01abc1a964fe 一个神奇的命令 +--------------------------------------+-------------+-----------+------------+--------------------------------------+ | ID | IP Protocol | IP Range | Port Range | Remote Security Group | +--------------------------------------+-------------+-----------+------------+--------------------------------------+ | 0184e6b3-4f7f-4fd5-8125-b80682e7ee48 | None | None | | 2e19a748-9086-49f8-9498-01abc1a964fe | | 1e0bfedc-8f25-408a-9328-708113bbbc52 | icmp | 0.0.0.0/0 | | None | | 39116d39-454b-4d82-867e-bbfd3ea63182 | None | None | | None | | 4032366f-3ac9-4862-85a7-c7411a8b7678 | None | None | | 2e19a748-9086-49f8-9498-01abc1a964fe | | dc7bc251-f0d0-456a-9102-c5b66646aa84 | tcp | 0.0.0.0/0 | 22:22 | None | | ddacf7ea-57ea-4c8a-8b68-093766284595 | None | None | | None | +--------------------------------------+-------------+-----------+------------+--------------------------------------+ dpif/dump-flows dp 想控制端打印dp中流表的所有条目。 这个命令主要来与debugOpen Vswitch.它所打印的流表不是openFlow的流条目。 它打印的是由dp模块维护的简单的流。 如果你想查看OpenFlow条目,请使用ovs-ofctl dump-flows。dpif/del-fow dp 删除指定dp上所有流表。同上所述,这些不是OpenFlow流表。 ovs-appctl dpif/dump-flows br-int 创建网络 openstack network create --share --external --provider-physical-network provider --provider-network-type flat provider $ openstack subnet create --network provider \ --allocation-pool start=192.168.56.100,end=192.168.56.200 \ --dns-nameserver 8.8.8.8 --gateway 192.168.56.1 \ --subnet-range 192.168.56.0/24 provider openstack network create selfservice $ openstack subnet create --network selfservice \ --dns-nameserver 8.8.8.8 --gateway 192.168.1.1 \ --subnet-range 192.168.1.0/24 selfservice openstack router create router openstack router add subnet router selfservice openstack router set router --external-gateway provider openstack port list --router router +--------------------------------------+------+-------------------+-------------------------------------------------------------------------------+--------+ | ID | Name | MAC Address | Fixed IP Addresses | Status | +--------------------------------------+------+-------------------+-------------------------------------------------------------------------------+--------+ | bff6605d-824c-41f9-b744-21d128fc86e1 | | fa:16:3e:2f:34:9b | ip_address='172.16.1.1', subnet_id='3482f524-8bff-4871-80d4-5774c2730728' | ACTIVE | | d6fe98db-ae01-42b0-a860-37b1661f5950 | | fa:16:3e:e8:c1:41 | ip_address='203.0.113.102', subnet_id='5cc70da8-4ee7-4565-be53-b9c011fca011' | ACTIVE | +--------------------------------------+------+-------------------+-------------------------------------------------------------------------------+--------+ $ ping -c 4 203.0.113.102 创建虚机 openstack keypair list $ ssh-keygen -q -N "" $ openstack keypair create --public-key ~/.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。
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...Identity实现应用程序的用户管理,以及实现应用程序的认证与授权等相关技术,译者希望本系列教程能成为掌握ASP.NET Identity技术的一份完整而有价值的资料。读者若是能够按照文章的描述,一边阅读、一边实践、一边理解,定能有意想不到的巨大收获!希望本系列博文能够得到广大园友的高度推荐。 15 Advanced ASP.NET Identity 15 ASP.NET Identity高级技术 In this chapter, I finish my description of ASP.NET Identity by showing you some of the advanced features it offers. I demonstrate how you can extend the database schema by defining custom properties on the user class and how to use database migrations to apply those properties without deleting the data in the ASP.NET Identity database. I also explain how ASP.NET Identity supports the concept of claims and demonstrates how they can be used to flexibly authorize access to action methods. I finish the chapter—and the book—by showing you how ASP.NET Identity makes it easy to authenticate users through third parties. I demonstrate authentication with Google accounts, but ASP.NET Identity has built-in support for Microsoft, Facebook, and Twitter accounts as well. Table 15-1 summarizes this chapter. 本章将完成对ASP.NET Identity的描述,向你展示它所提供的一些高级特性。我将演示,你可以扩展ASP.NET Identity的数据库架构,其办法是在用户类上定义一些自定义属性。也会演示如何使用数据库迁移,这样可以运用自定义属性,而不必删除ASP.NET Identity数据库中的数据。还会解释ASP.NET Identity如何支持声明(Claims)概念,并演示如何将它们灵活地用来对动作方法进行授权访问。最后向你展示ASP.NET Identity很容易通过第三方部件来认证用户,以此结束本章以及本书。将要演示的是使用Google账号认证,但ASP.NET Identity对于Microsoft、Facebook以及Twitter账号,都有内建的支持。表15-1是本章概要。 Table 15-1. Chapter Summary 表15-1. 本章概要 Problem 问题 Solution 解决方案 Listing 清单号 Store additional information about users. 存储用户的附加信息 Define custom user properties. 定义自定义用户属性 1–3, 8–11 Update the database schema without deleting user data. 更新数据库架构而不删除用户数据 Perform a database migration. 执行数据库迁移 4–7 Perform fine-grained authorization. 执行细粒度授权 Use claims. 使用声明(Claims) 12–14 Add claims about a user. 添加用户的声明(Claims) Use the ClaimsIdentity.AddClaims method. 使用ClaimsIdentity.AddClaims方法 15–19 Authorize access based on claim values. 基于声明(Claims)值授权访问 Create a custom authorization filter attribute. 创建一个自定义的授权过滤器注解属性 20–21 Authenticate through a third party. 通过第三方认证 Install the NuGet package for the authentication provider, redirect requests to that provider, and specify a callback URL that creates the user account. 安装认证提供器的NuGet包,将请求重定向到该提供器,并指定一个创建用户账号的回调URL。 22–25 15.1 Preparing the Example Project 15.1 准备示例项目 In this chapter, I am going to continue working on the Users project I created in Chapter 13 and enhanced in Chapter 14. No changes to the application are required, but start the application and make sure that there are users in the database. Figure 15-1 shows the state of my database, which contains the users Admin, Alice, Bob, and Joe from the previous chapter. To check the users, start the application and request the /Admin/Index URL and authenticate as the Admin user. 本章打算继续使用第13章创建并在第14章增强的Users项目。对应用程序无需做什么改变,但需要启动应用程序,并确保数据库中有一些用户。图15-1显示了数据库的状态,它含有上一章的用户Admin、Alice、Bob以及Joe。为了检查用户,请启动应用程序,请求/Admin/Index URL,并以Admin用户进行认证。 Figure 15-1. The initial users in the Identity database 图15-1. Identity数据库中的最初用户 I also need some roles for this chapter. I used the RoleAdmin controller to create roles called Users and Employees and assigned the users to those roles, as described in Table 15-2. 本章还需要一些角色。我用RoleAdmin控制器创建了角色Users和Employees,并为这些角色指定了一些用户,如表15-2所示。 Table 15-2. The Types of Web Forms Code Nuggets 表15-2. 角色及成员(作者将此表的标题写错了——译者注) Role 角色 Members 成员 Users Alice, Joe Employees Alice, Bob Figure 15-2 shows the required role configuration displayed by the RoleAdmin controller. 图15-2显示了由RoleAdmin控制器所显示出来的必要的角色配置。 Figure 15-2. Configuring the roles required for this chapter 图15-2. 配置本章所需的角色 15.2 Adding Custom User Properties 15.2 添加自定义用户属性 When I created the AppUser class to represent users in Chapter 13, I noted that the base class defined a basic set of properties to describe the user, such as e-mail address and telephone number. Most applications need to store more information about users, including persistent application preferences and details such as addresses—in short, any data that is useful to running the application and that should last between sessions. In ASP.NET Membership, this was handled through the user profile system, but ASP.NET Identity takes a different approach. 我在第13章创建AppUser类来表示用户时曾做过说明,基类定义了一组描述用户的基本属性,如E-mail地址、电话号码等。大多数应用程序还需要存储用户的更多信息,包括持久化应用程序爱好以及地址等细节——简言之,需要存储对运行应用程序有用并且在各次会话之间应当保持的任何数据。在ASP.NET Membership中,这是通过用户资料(User Profile)系统来处理的,但ASP.NET Identity采取了一种不同的办法。 Because the ASP.NET Identity system uses Entity Framework to store its data by default, defining additional user information is just a matter of adding properties to the user class and letting the Code First feature create the database schema required to store them. Table 15-3 puts custom user properties in context. 因为ASP.NET Identity默认是使用Entity Framework来存储其数据的,定义附加的用户信息只不过是给用户类添加属性的事情,然后让Code First特性去创建需要存储它们的数据库架构即可。表15-3描述了自定义用户属性的情形。 Table 15-3. Putting Cusotm User Properties in Context 表15-3. 自定义用户属性的情形 Question 问题 Answer 回答 What is it? 什么是自定义用户属性? Custom user properties allow you to store additional information about your users, including their preferences and settings. 自定义用户属性让你能够存储附加的用户信息,包括他们的爱好和设置。 Why should I care? 为何要关心它? A persistent store of settings means that the user doesn’t have to provide the same information each time they log in to the application. 设置的持久化存储意味着,用户不必每次登录到应用程序时都提供同样的信息。 How is it used by the MVC framework? 在MVC框架中如何使用它? This feature isn’t used directly by the MVC framework, but it is available for use in action methods. 此特性不是由MVC框架直接使用的,但它在动作方法中使用是有效的。 15.2.1 Defining Custom Properties 15.2.1 定义自定义属性 Listing 15-1 shows how I added a simple property to the AppUser class to represent the city in which the user lives. 清单15-1演示了如何给AppUser类添加一个简单的属性,用以表示用户生活的城市。 Listing 15-1. Adding a Property in the AppUser.cs File 清单15-1. 在AppUser.cs文件中添加属性 using System;using Microsoft.AspNet.Identity.EntityFramework;namespace Users.Models { public enum Cities {LONDON, PARIS, CHICAGO}public class AppUser : IdentityUser {public Cities City { get; set; } }} I have defined an enumeration called Cities that defines values for some large cities and added a property called City to the AppUser class. To allow the user to view and edit their City property, I added actions to the Home controller, as shown in Listing 15-2. 这里定义了一个枚举,名称为Cities,它定义了一些大城市的值,另外给AppUser类添加了一个名称为City的属性。为了让用户能够查看和编辑City属性,给Home控制器添加了几个动作方法,如清单15-2所示。 Listing 15-2. Adding Support for Custom User Properties in the HomeController.cs File 清单15-2. 在HomeController.cs文件中添加对自定义属性的支持 using System.Web.Mvc;using System.Collections.Generic;using System.Web;using System.Security.Principal;using System.Threading.Tasks;using Users.Infrastructure;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.Owin;using Users.Models;namespace Users.Controllers {public class HomeController : Controller {[Authorize]public ActionResult Index() {return View(GetData("Index"));}[Authorize(Roles = "Users")]public ActionResult OtherAction() {return View("Index", GetData("OtherAction"));}private Dictionary<string, object> GetData(string actionName) {Dictionary<string, object> dict= new Dictionary<string, object>();dict.Add("Action", actionName);dict.Add("User", HttpContext.User.Identity.Name);dict.Add("Authenticated", HttpContext.User.Identity.IsAuthenticated);dict.Add("Auth Type", HttpContext.User.Identity.AuthenticationType);dict.Add("In Users Role", HttpContext.User.IsInRole("Users"));return dict;} [Authorize]public ActionResult UserProps() {return View(CurrentUser);}[Authorize][HttpPost]public async Task<ActionResult> UserProps(Cities city) {AppUser user = CurrentUser;user.City = city;await UserManager.UpdateAsync(user);return View(user);}private AppUser CurrentUser {get {return UserManager.FindByName(HttpContext.User.Identity.Name);} }private AppUserManager UserManager {get {return HttpContext.GetOwinContext().GetUserManager<AppUserManager>();} }} } I added a CurrentUser property that uses the AppUserManager class to retrieve an AppUser instance to represent the current user. I pass the AppUser object as the view model object in the GET version of the UserProps action method, and the POST method uses it to update the value of the new City property. Listing 15-3 shows the UserProps.cshtml view, which displays the City property value and contains a form to change it. 我添加了一个CurrentUser属性,它使用AppUserManager类接收了表示当前用户的AppUser实例。在GET版本的UserProps动作方法中,传递了这个AppUser对象作为视图模型。而在POST版的方法中用它更新了City属性的值。清单15-3显示了UserProps.cshtml视图,它显示了City属性的值,并包含一个修改它的表单。 Listing 15-3. The Contents of the UserProps.cshtml File in the Views/Home Folder 清单15-3. Views/Home文件夹中UserProps.cshtml文件的内容 @using Users.Models@model AppUser@{ ViewBag.Title = "UserProps";}<div class="panel panel-primary"><div class="panel-heading">Custom User Properties</div><table class="table table-striped"><tr><th>City</th><td>@Model.City</td></tr></table></div> @using (Html.BeginForm()) {<div class="form-group"><label>City</label>@Html.DropDownListFor(x => x.City, new SelectList(Enum.GetNames(typeof(Cities))))</div><button class="btn btn-primary" type="submit">Save</button>} Caution Don’t start the application when you have created the view. In the sections that follow, I demonstrate how to preserve the contents of the database, and if you start the application now, the ASP.NET Identity users will be deleted. 警告:创建了视图之后不要启动应用程序。在以下小节中,将演示如何保留数据库的内容,如果现在启动应用程序,将会删除ASP.NET Identity的用户。 15.2.2 Preparing for Database Migration 15.2.2 准备数据库迁移 The default behavior for the Entity Framework Code First feature is to drop the tables in the database and re-create them whenever classes that drive the schema have changed. You saw this in Chapter 14 when I added support for roles: When the application was started, the database was reset, and the user accounts were lost. Entity Framework Code First特性的默认行为是,一旦修改了派生数据库架构的类,便会删除数据库中的数据表,并重新创建它们。在第14章可以看到这种情况,在我添加角色支持时:当重启应用程序后,数据库被重置,用户账号也丢失。 Don’t start the application yet, but if you were to do so, you would see a similar effect. Deleting data during development is usually not a problem, but doing so in a production setting is usually disastrous because it deletes all of the real user accounts and causes a panic while the backups are restored. In this section, I am going to demonstrate how to use the database migration feature, which updates a Code First schema in a less brutal manner and preserves the existing data it contains. 不要启动应用程序,但如果你这么做了,会看到类似的效果。在开发期间删除数据没什么问题,但如果在产品设置中这么做了,通常是灾难性的,因为它会删除所有真实的用户账号,而备份恢复是很痛苦的事。在本小节中,我打算演示如何使用数据库迁移特性,它能以比较温和的方式更新Code First的架构,并保留架构中的已有数据。 The first step is to issue the following command in the Visual Studio Package Manager Console: 第一个步骤是在Visual Studio的“Package Manager Console(包管理器控制台)”中发布以下命令: Enable-Migrations –EnableAutomaticMigrations This enables the database migration support and creates a Migrations folder in the Solution Explorer that contains a Configuration.cs class file, the contents of which are shown in Listing 15-4. 它启用了数据库的迁移支持,并在“Solution Explorer(解决方案资源管理器)”创建一个Migrations文件夹,其中含有一个Configuration.cs类文件,内容如清单15-4所示。 Listing 15-4. The Contents of the Configuration.cs File 清单15-4. Configuration.cs文件的内容 namespace Users.Migrations {using System;using System.Data.Entity;using System.Data.Entity.Migrations;using System.Linq;internal sealed class Configuration: DbMigrationsConfiguration<Users.Infrastructure.AppIdentityDbContext> {public Configuration() {AutomaticMigrationsEnabled = true;ContextKey = "Users.Infrastructure.AppIdentityDbContext";}protected override void Seed(Users.Infrastructure.AppIdentityDbContext context) {// This method will be called after migrating to the latest version.// 此方法将在迁移到最新版本时调用// You can use the DbSet<T>.AddOrUpdate() helper extension method// to avoid creating duplicate seed data. E.g.// 例如,你可以使用DbSet<T>.AddOrUpdate()辅助器方法来避免创建重复的种子数据//// context.People.AddOrUpdate(// p => p.FullName,// new Person { FullName = "Andrew Peters" },// new Person { FullName = "Brice Lambson" },// new Person { FullName = "Rowan Miller" }// );//} }} Tip You might be wondering why you are entering a database migration command into the console used to manage NuGet packages. The answer is that the Package Manager Console is really PowerShell, which is a general-purpose tool that is mislabeled by Visual Studio. You can use the console to issue a wide range of helpful commands. See http://go.microsoft.com/fwlink/?LinkID=108518 for details. 提示:你可能会觉得奇怪,为什么要在管理NuGet包的控制台中输入数据库迁移的命令?答案是“Package Manager Console(包管理控制台)”是真正的PowerShell,这是Visual studio冒用的一个通用工具。你可以使用此控制台发送大量的有用命令,详见http://go.microsoft.com/fwlink/?LinkID=108518。 The class will be used to migrate existing content in the database to the new schema, and the Seed method will be called to provide an opportunity to update the existing database records. In Listing 15-5, you can see how I have used the Seed method to set a default value for the new City property I added to the AppUser class. (I have also updated the class file to reflect my usual coding style.) 这个类将用于把数据库中的现有内容迁移到新的数据库架构,Seed方法的调用为更新现有数据库记录提供了机会。在清单15-5中可以看到,我如何用Seed方法为新的City属性设置默认值,City是添加到AppUser类中自定义属性。(为了体现我一贯的编码风格,我对这个类文件也进行了更新。) Listing 15-5. Managing Existing Content in the Configuration.cs File 清单15-5. 在Configuration.cs文件中管理已有内容 using System.Data.Entity.Migrations;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.EntityFramework;using Users.Infrastructure;using Users.Models;namespace Users.Migrations {internal sealed class Configuration: DbMigrationsConfiguration<AppIdentityDbContext> {public Configuration() {AutomaticMigrationsEnabled = true;ContextKey = "Users.Infrastructure.AppIdentityDbContext";}protected override void Seed(AppIdentityDbContext context) {AppUserManager userMgr = new AppUserManager(new UserStore<AppUser>(context));AppRoleManager roleMgr = new AppRoleManager(new RoleStore<AppRole>(context)); string roleName = "Administrators";string userName = "Admin";string password = "MySecret";string email = "admin@example.com";if (!roleMgr.RoleExists(roleName)) {roleMgr.Create(new AppRole(roleName));}AppUser user = userMgr.FindByName(userName);if (user == null) {userMgr.Create(new AppUser { UserName = userName, Email = email },password);user = userMgr.FindByName(userName);}if (!userMgr.IsInRole(user.Id, roleName)) {userMgr.AddToRole(user.Id, roleName);}foreach (AppUser dbUser in userMgr.Users) {dbUser.City = Cities.PARIS;}context.SaveChanges();} }} You will notice that much of the code that I added to the Seed method is taken from the IdentityDbInit class, which I used to seed the database with an administration user in Chapter 14. This is because the new Configuration class added to support database migrations will replace the seeding function of the IdentityDbInit class, which I’ll update shortly. Aside from ensuring that there is an admin user, the statements in the Seed method that are important are the ones that set the initial value for the City property I added to the AppUser class, as follows: 你可能会注意到,添加到Seed方法中的许多代码取自于IdentityDbInit类,在第14章中我用这个类将管理用户植入了数据库。这是因为这个新添加的、用以支持数据库迁移的Configuration类,将代替IdentityDbInit类的种植功能,我很快便会更新这个类。除了要确保有admin用户之外,在Seed方法中的重要语句是那些为AppUser类的City属性设置初值的语句,如下所示: ...foreach (AppUser dbUser in userMgr.Users) { dbUser.City = Cities.PARIS;}context.SaveChanges();... You don’t have to set a default value for new properties—I just wanted to demonstrate that the Seed method in the Configuration class can be used to update the existing user records in the database. 你不一定要为新属性设置默认值——这里只是想演示Configuration类中的Seed方法,可以用它更新数据库中的已有用户记录。 Caution Be careful when setting values for properties in the Seed method for real projects because the values will be applied every time you change the schema, overriding any values that the user has set since the last schema update was performed. I set the value of the City property just to demonstrate that it can be done. 警告:在用于真实项目的Seed方法中为属性设置值时要小心,因为你每一次修改架构时,都会运用这些值,这会将自执行上一次架构更新之后,用户设置的任何数据覆盖掉。这里设置City属性的值只是为了演示它能够这么做。 Changing the Database Context Class 修改数据库上下文类 The reason that I added the seeding code to the Configuration class is that I need to change the IdentityDbInit class. At present, the IdentityDbInit class is derived from the descriptively named DropCreateDatabaseIfModelChanges<AppIdentityDbContext> class, which, as you might imagine, drops the entire database when the Code First classes change. Listing 15-6 shows the changes I made to the IdentityDbInit class to prevent it from affecting the database. 在Configuration类中添加种植代码的原因是我需要修改IdentityDbInit类。此时,IdentityDbInit类派生于描述性命名的DropCreateDatabaseIfModelChanges<AppIdentityDbContext> 类,和你相像的一样,它会在Code First类改变时删除整个数据库。清单15-6显示了我对IdentityDbInit类所做的修改,以防止它影响数据库。 Listing 15-6. Preventing Database Schema Changes in the AppIdentityDbContext.cs File 清单15-6. 在AppIdentityDbContext.cs文件是阻止数据库架构变化 using System.Data.Entity;using Microsoft.AspNet.Identity.EntityFramework;using Users.Models;using Microsoft.AspNet.Identity; namespace Users.Infrastructure {public class AppIdentityDbContext : IdentityDbContext<AppUser> {public AppIdentityDbContext() : base("IdentityDb") { }static AppIdentityDbContext() {Database.SetInitializer<AppIdentityDbContext>(new IdentityDbInit());}public static AppIdentityDbContext Create() {return new AppIdentityDbContext();} } public class IdentityDbInit : NullDatabaseInitializer<AppIdentityDbContext> {} } I have removed the methods defined by the class and changed its base to NullDatabaseInitializer<AppIdentityDbContext> , which prevents the schema from being altered. 我删除了这个类中所定义的方法,并将它的基类改为NullDatabaseInitializer<AppIdentityDbContext> ,它可以防止架构修改。 15.2.3 Performing the Migration 15.2.3 执行迁移 All that remains is to generate and apply the migration. First, run the following command in the Package Manager Console: 剩下的事情只是生成并运用迁移了。首先,在“Package Manager Console(包管理器控制台)”中执行以下命令: Add-Migration CityProperty This creates a new migration called CityProperty (I like my migration names to reflect the changes I made). A class new file will be added to the Migrations folder, and its name reflects the time at which the command was run and the name of the migration. My file is called 201402262244036_CityProperty.cs, for example. The contents of this file contain the details of how Entity Framework will change the database during the migration, as shown in Listing 15-7. 这创建了一个名称为CityProperty的新迁移(我比较喜欢让迁移的名称反映出我所做的修改)。这会在文件夹中添加一个新的类文件,而且其命名会反映出该命令执行的时间以及迁移名称,例如,我的这个文件名称为201402262244036_CityProperty.cs。该文件的内容含有迁移期间Entity Framework修改数据库的细节,如清单15-7所示。 Listing 15-7. The Contents of the 201402262244036_CityProperty.cs File 清单15-7. 201402262244036_CityProperty.cs文件的内容 namespace Users.Migrations {using System;using System.Data.Entity.Migrations; public partial class Init : DbMigration {public override void Up() {AddColumn("dbo.AspNetUsers", "City", c => c.Int(nullable: false));}public override void Down() {DropColumn("dbo.AspNetUsers", "City");} }} The Up method describes the changes that have to be made to the schema when the database is upgraded, which in this case means adding a City column to the AspNetUsers table, which is the one that is used to store user records in the ASP.NET Identity database. Up方法描述了在数据库升级时,需要对架构所做的修改,在这个例子中,意味着要在AspNetUsers数据表中添加City数据列,该数据表是ASP.NET Identity数据库用来存储用户记录的。 The final step is to perform the migration. Without starting the application, run the following command in the Package Manager Console: 最后一步是执行迁移。无需启动应用程序,只需在“Package Manager Console(包管理器控制台)”中运行以下命令即可: Update-Database –TargetMigration CityProperty The database schema will be modified, and the code in the Configuration.Seed method will be executed. The existing user accounts will have been preserved and enhanced with a City property (which I set to Paris in the Seed method). 这会修改数据库架构,并执行Configuration.Seed方法中的代码。已有用户账号会被保留,且增强了City属性(我在Seed方法中已将其设置为“Paris”)。 15.2.4 Testing the Migration 15.2.4 测试迁移 To test the effect of the migration, start the application, navigate to the /Home/UserProps URL, and authenticate as one of the Identity users (for example, as Alice with the password MySecret). Once authenticated, you will see the current value of the City property for the user and have the opportunity to change it, as shown in Figure 15-3. 为了测试迁移的效果,启动应用程序,导航到/Home/UserProps URL,并以Identity中的用户(例如Alice,口令MySecret)进行认证。一旦已被认证,便会看到该用户City属性的当前值,并可以对其进行修改,如图15-3所示。 Figure 15-3. Displaying and changing a custom user property 图15-3. 显示和个性自定义用户属性 15.2.5 Defining an Additional Property 15.2.5 定义附加属性 Now that database migrations are set up, I am going to define a further property just to demonstrate how subsequent changes are handled and to show a more useful (and less dangerous) example of using the Configuration.Seed method. Listing 15-8 shows how I added a Country property to the AppUser class. 现在,已经建立了数据库迁移,我打算再定义一个属性,这恰恰演示了如何处理持续不断的修改,也为了演示Configuration.Seed方法更有用(至少无害)的示例。清单15-8显示了我在AppUser类上添加了一个Country属性。 Listing 15-8. Adding Another Property in the AppUserModels.cs File 清单15-8. 在AppUserModels.cs文件中添加另一个属性 using System;using Microsoft.AspNet.Identity.EntityFramework; namespace Users.Models {public enum Cities {LONDON, PARIS, CHICAGO} public enum Countries {NONE, UK, FRANCE, USA}public class AppUser : IdentityUser {public Cities City { get; set; }public Countries Country { get; set; }public void SetCountryFromCity(Cities city) {switch (city) {case Cities.LONDON:Country = Countries.UK;break;case Cities.PARIS:Country = Countries.FRANCE;break;case Cities.CHICAGO:Country = Countries.USA;break;default:Country = Countries.NONE;break;} }} } I have added an enumeration to define the country names and a helper method that selects a country value based on the City property. Listing 15-9 shows the change I made to the Configuration class so that the Seed method sets the Country property based on the City, but only if the value of Country is NONE (which it will be for all users when the database is migrated because the Entity Framework sets enumeration columns to the first value). 我已经添加了一个枚举,它定义了国家名称。还添加了一个辅助器方法,它可以根据City属性选择一个国家。清单15-9显示了对Configuration类所做的修改,以使Seed方法根据City设置Country属性,但只当Country为NONE时才进行设置(在迁移数据库时,所有用户都是NONE,因为Entity Framework会将枚举列设置为枚举的第一个值)。 Listing 15-9. Modifying the Database Seed in the Configuration.cs File 清单15-9. 在Configuration.cs文件中修改数据库种子 using System.Data.Entity.Migrations;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.EntityFramework;using Users.Infrastructure;using Users.Models; namespace Users.Migrations {internal sealed class Configuration: DbMigrationsConfiguration<AppIdentityDbContext> {public Configuration() {AutomaticMigrationsEnabled = true;ContextKey = "Users.Infrastructure.AppIdentityDbContext";}protected override void Seed(AppIdentityDbContext context) {AppUserManager userMgr = new AppUserManager(new UserStore<AppUser>(context));AppRoleManager roleMgr = new AppRoleManager(new RoleStore<AppRole>(context)); string roleName = "Administrators";string userName = "Admin";string password = "MySecret";string email = "admin@example.com";if (!roleMgr.RoleExists(roleName)) {roleMgr.Create(new AppRole(roleName));}AppUser user = userMgr.FindByName(userName);if (user == null) {userMgr.Create(new AppUser { UserName = userName, Email = email },password);user = userMgr.FindByName(userName);}if (!userMgr.IsInRole(user.Id, roleName)) {userMgr.AddToRole(user.Id, roleName);} foreach (AppUser dbUser in userMgr.Users) {if (dbUser.Country == Countries.NONE) {dbUser.SetCountryFromCity(dbUser.City);} }context.SaveChanges();} }} This kind of seeding is more useful in a real project because it will set a value for the Country property only if one has not already been set—subsequent migrations won’t be affected, and user selections won’t be lost. 这种种植在实际项目中会更有用,因为它只会在Country属性未设置时,才会设置Country属性的值——后继的迁移不会受到影响,因此不会失去用户的选择。 1. Adding Application Support 1. 添加应用程序支持 There is no point defining additional user properties if they are not available in the application, so Listing 15-10 shows the change I made to the Views/Home/UserProps.cshtml file to display the value of the Country property. 应用程序中如果没有定义附加属性的地方,则附加属性就无法使用了,因此,清单15-10显示了我对Views/Home/UserProps.cshtml文件的修改,以显示Country属性的值。 Listing 15-10. Displaying an Additional Property in the UserProps.cshtml File 清单15-10. 在UserProps.cshtml文件中显示附加属性 @using Users.Models@model AppUser@{ ViewBag.Title = "UserProps";} <div class="panel panel-primary"><div class="panel-heading">Custom User Properties</div><table class="table table-striped"><tr><th>City</th><td>@Model.City</td></tr> <tr><th>Country</th><td>@Model.Country</td></tr></table></div>@using (Html.BeginForm()) {<div class="form-group"><label>City</label>@Html.DropDownListFor(x => x.City, new SelectList(Enum.GetNames(typeof(Cities))))</div><button class="btn btn-primary" type="submit">Save</button>} Listing 15-11 shows the corresponding change I made to the Home controller to update the Country property when the City value changes. 为了在City值变化时能够更新Country属性,清单15-11显示了我对Home控制器所做的相应修改。 Listing 15-11. Setting Custom Properties in the HomeController.cs File 清单15-11. 在HomeController.cs文件中设置自定义属性 using System.Web.Mvc;using System.Collections.Generic;using System.Web;using System.Security.Principal;using System.Threading.Tasks;using Users.Infrastructure;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.Owin;using Users.Models; namespace Users.Controllers {public class HomeController : Controller {// ...other action methods omitted for brevity...// ...出于简化,这里忽略了其他动作方法... [Authorize]public ActionResult UserProps() {return View(CurrentUser);}[Authorize][HttpPost]public async Task<ActionResult> UserProps(Cities city) {AppUser user = CurrentUser;user.City = city;user.SetCountryFromCity(city);await UserManager.UpdateAsync(user);return View(user);}// ...properties omitted for brevity...// ...出于简化,这里忽略了一些属性...} } 2. Performing the Migration 2. 准备迁移 All that remains is to create and apply a new migration. Enter the following command into the Package Manager Console: 剩下的事情就是创建和运用新的迁移了。在“Package Manager Console(包管理器控制台)”中输入以下命令: Add-Migration CountryProperty This will generate another file in the Migrations folder that contains the instruction to add the Country column. To apply the migration, execute the following command: 这将在Migrations文件夹中生成另一个文件,它含有添加Country数据表列的指令。为了运用迁移,可执行以下命令: Update-Database –TargetMigration CountryProperty The migration will be performed, and the value of the Country property will be set based on the value of the existing City property for each user. You can check the new user property by starting the application and authenticating and navigating to the /Home/UserProps URL, as shown in Figure 15-4. 这将执行迁移,Country属性的值将根据每个用户当前的City属性进行设置。通过启动应用程序,认证并导航到/Home/UserProps URL,便可以查看新的用户属性,如图15-4所示。 Figure 15-4. Creating an additional user property 图15-4. 创建附加用户属性 Tip Although I am focused on the process of upgrading the database, you can also migrate back to a previous version by specifying an earlier migration. Use the –Force argument make changes that cause data loss, such as removing a column. 提示:虽然我们关注了升级数据库的过程,但你也可以回退到以前的版本,只需指定一个早期的迁移即可。使用-Force参数进行修改,会引起数据丢失,例如删除数据表列。 15.3 Working with Claims 15.3 使用声明(Claims) In older user-management systems, such as ASP.NET Membership, the application was assumed to be the authoritative source of all information about the user, essentially treating the application as a closed world and trusting the data that is contained within it. 在旧的用户管理系统中,例如ASP.NET Membership,应用程序被假设成是用户所有信息的权威来源,本质上将应用程序视为是一个封闭的世界,并且只信任其中所包含的数据。 This is such an ingrained approach to software development that it can be hard to recognize that’s what is happening, but you saw an example of the closed-world technique in Chapter 14 when I authenticated users against the credentials stored in the database and granted access based on the roles associated with those credentials. I did the same thing again in this chapter when I added properties to the user class. Every piece of information that I needed to manage user authentication and authorization came from within my application—and that is a perfectly satisfactory approach for many web applications, which is why I demonstrated these techniques in such depth. 这是软件开发的一种根深蒂固的方法,使人很难认识到这到底意味着什么,第14章你已看到了这种封闭世界技术的例子,根据存储在数据库中的凭据来认证用户,并根据与凭据关联在一起的角色来授权访问。本章前述在用户类上添加属性,也做了同样的事情。我管理用户认证与授权所需的每一个数据片段都来自于我的应用程序——而且这是许多Web应用程序都相当满意的一种方法,这也是我如此深入地演示这些技术的原因。 ASP.NET Identity also supports an alternative approach for dealing with users, which works well when the MVC framework application isn’t the sole source of information about users and which can be used to authorize users in more flexible and fluid ways than traditional roles allow. ASP.NET Identity还支持另一种处理用户的办法,当MVC框架的应用程序不是有关用户的唯一信息源时,这种办法会工作得很好,而且能够比传统的角色授权更为灵活且流畅的方式进行授权。 This alternative approach uses claims, and in this section I’ll describe how ASP.NET Identity supports claims-based authorization. Table 15-4 puts claims in context. 这种可选的办法使用了“Claims(声明)”,因此在本小节中,我将描述ASP.NET Identity如何支持“Claims-Based Authorization(基于声明的授权)”。表15-4描述了声明(Claims)的情形。 提示:“Claim”在英文字典中不完全是“声明”的意思,根据本文的描述,感觉把它说成“声明”也不一定合适,所以在之后的译文中基本都写成中英文并用的形式,即“声明(Claims)”。根据表15-4中的声明(Claims)的定义:声明(Claims)是关于用户的一些信息片段。一个用户的信息片段当然有很多,每一个信息片段就是一项声明(Claim),用户的所有信息片段合起来就是该用户的声明(Claims)。请读者注意该单词的单复数形式——译者注 Table 15-4. Putting Claims in Context 表15-4. 声明(Claims)的情形 Question 问题 Answer 答案 What is it? 什么是声明(Claims)? Claims are pieces of information about users that you can use to make authorization decisions. Claims can be obtained from external systems as well as from the local Identity database. 声明(Claims)是关于用户的一些信息片段,可以用它们做出授权决定。声明(Claims)可以从外部系统获取,也可以从本地的Identity数据库获取。 Why should I care? 为何要关心它? Claims can be used to flexibly authorize access to action methods. Unlike conventional roles, claims allow access to be driven by the information that describes the user. 声明(Claims)可以用来对动作方法进行灵活的授权访问。与传统的角色不同,声明(Claims)让访问能够由描述用户的信息进行驱动。 How is it used by the MVC framework? 如何在MVC框架中使用它? This feature isn’t used directly by the MVC framework, but it is integrated into the standard authorization features, such as the Authorize attribute. 这不是直接由MVC框架使用的特性,但它集成到了标准的授权特性之中,例如Authorize注解属性。 Tip you don’t have to use claims in your applications, and as Chapter 14 showed, ASP.NET Identity is perfectly happy providing an application with the authentication and authorization services without any need to understand claims at all. 提示:你在应用程序中不一定要使用声明(Claims),正如第14章所展示的那样,ASP.NET Identity能够为应用程序提供充分的认证与授权服务,而根本不需要理解声明(Claims)。 15.3.1 Understanding Claims 15.3.1 理解声明(Claims) A claim is a piece of information about the user, along with some information about where the information came from. The easiest way to unpack claims is through some practical demonstrations, without which any discussion becomes too abstract to be truly useful. To get started, I added a Claims controller to the example project, the definition of which you can see in Listing 15-12. 一项声明(Claim)是关于用户的一个信息片段(请注意这个英文单词的单复数形式——译者注),并伴有该片段出自何处的某种信息。揭开声明(Claims)含义最容易的方式是做一些实际演示,任何讨论都会过于抽象根本没有真正的用处。为此,我在示例项目中添加了一个Claims控制器,其定义如清单15-12所示。 Listing 15-12. The Contents of the ClaimsController.cs File 清单15-12. ClaimsController.cs文件的内容 using System.Security.Claims;using System.Web;using System.Web.Mvc; namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} }} } Tip You may feel a little lost as I define the code for this example. Don’t worry about the details for the moment—just stick with it until you see the output from the action method and view that I define. More than anything else, that will help put claims into perspective. 提示:你或许会对我为此例定义的代码感到有点失望。此刻对此细节不必着急——只要稍事忍耐,当看到该动作方法和视图的输出便会明白。尤为重要的是,这有助于洞察声明(Claims)。 You can get the claims associated with a user in different ways. One approach is to use the Claims property defined by the user class, but in this example, I have used the HttpContext.User.Identity property to demonstrate the way that ASP.NET Identity is integrated with the rest of the ASP.NET platform. As I explained in Chapter 13, the HttpContext.User.Identity property returns an implementation of the IIdentity interface, which is a ClaimsIdentity object when working using ASP.NET Identity. The ClaimsIdentity class is defined in the System.Security.Claims namespace, and Table 15-5 shows the members it defines that are relevant to this chapter. 可以通过不同的方式获得与用户相关联的声明(Claims)。方法之一就是使用由用户类定义的Claims属性,但在这个例子中,我使用了HttpContext.User.Identity属性,目的是演示ASP.NET Identity与ASP.NET平台集成的方式(请注意这句话所表示的含义:用户类的Claims属性属于ASP.NET Identity,而HttpContext.User.Identity属性则属于ASP.NET平台。由此可见,ASP.NET Identity已经融合到了ASP.NET平台之中——译者注)。正如第13章所解释的那样,HttpContext.User.Identity属性返回IIdentity的接口实现,当使用ASP.NET Identity时,该实现是一个ClaimsIdentity对象。ClaimsIdentity类是在System.Security.Claims命名空间中定义的,表15-5显示了它所定义的与本章有关的成员。 Table 15-5. The Members Defined by the ClaimsIdentity Class 表15-5. ClaimsIdentity类所定义的成员 Name 名称 Description 描述 Claims Returns an enumeration of Claim objects representing the claims for the user. 返回表示用户声明(Claims)的Claim对象枚举 AddClaim(claim) Adds a claim to the user identity. 给用户添加一个声明(Claim) AddClaims(claims) Adds an enumeration of Claim objects to the user identity. 给用户添加Claim对象的枚举。 HasClaim(predicate) Returns true if the user identity contains a claim that matches the specified predicate. See the “Applying Claims” section for an example predicate. 如果用户含有与指定谓词匹配的声明(Claim)时,返回true。参见“运用声明(Claims)”中的示例谓词 RemoveClaim(claim) Removes a claim from the user identity. 删除用户的声明(Claim)。 Other members are available, but the ones in the table are those that are used most often in web applications, for reason that will become obvious as I demonstrate how claims fit into the wider ASP.NET platform. 还有一些可用的其它成员,但表中的这些是在Web应用程序中最常用的,随着我演示如何将声明(Claims)融入更宽泛的ASP.NET平台,它们为什么最常用就很显然了。 In Listing 15-12, I cast the IIdentity implementation to the ClaimsIdentity type and pass the enumeration of Claim objects returned by the ClaimsIdentity.Claims property to the View method. A Claim object represents a single piece of data about the user, and the Claim class defines the properties shown in Table 15-6. 在清单15-12中,我将IIdentity实现转换成了ClaimsIdentity类型,并且给View方法传递了ClaimsIdentity.Claims属性所返回的Claim对象的枚举。Claim对象所示表示的是关于用户的一个单一的数据片段,Claim类定义的属性如表15-6所示。 Table 15-6. The Properties Defined by the Claim Class 表15-6. Claim类定义的属性 Name 名称 Description 描述 Issuer Returns the name of the system that provided the claim 返回提供声明(Claim)的系统名称 Subject Returns the ClaimsIdentity object for the user who the claim refers to 返回声明(Claim)所指用户的ClaimsIdentity对象 Type Returns the type of information that the claim represents 返回声明(Claim)所表示的信息类型 Value Returns the piece of information that the claim represents 返回声明(Claim)所表示的信息片段 Listing 15-13 shows the contents of the Index.cshtml file that I created in the Views/Claims folder and that is rendered by the Index action of the Claims controller. The view adds a row to a table for each claim about the user. 清单15-13显示了我在Views/Claims文件夹中创建的Index.cshtml文件的内容,它由Claims控制器中的Index动作方法进行渲染。该视图为用户的每项声明(Claim)添加了一个表格行。 Listing 15-13. The Contents of the Index.cshtml File in the Views/Claims Folder 清单15-13. Views/Claims文件夹中Index.cshtml文件的内容 @using System.Security.Claims@using Users.Infrastructure@model IEnumerable<Claim>@{ ViewBag.Title = "Claims"; }<div class="panel panel-primary"><div class="panel-heading">Claims</div><table class="table table-striped"><tr><th>Subject</th><th>Issuer</th><th>Type</th><th>Value</th></tr>@foreach (Claim claim in Model.OrderBy(x => x.Type)) {<tr><td>@claim.Subject.Name</td><td>@claim.Issuer</td><td>@Html.ClaimType(claim.Type)</td><td>@claim.Value</td></tr>}</table></div> The value of the Claim.Type property is a URI for a Microsoft schema, which isn’t especially useful. The popular schemas are used as the values for fields in the System.Security.Claims.ClaimTypes class, so to make the output from the Index.cshtml view easier to read, I added an HTML helper to the IdentityHelpers.cs file, as shown in Listing 15-14. It is this helper that I use in the Index.cshtml file to format the value of the Claim.Type property. Claim.Type属性的值是一个微软模式(Microsoft Schema)的URI(统一资源标识符),这是特别有用的。System.Security.Claims.ClaimTypes类中字段的值使用的是流行模式(Popular Schema),因此为了使Index.cshtml视图的输出更易于阅读,我在IdentityHelpers.cs文件中添加了一个HTML辅助器,如清单15-14所示。Index.cshtml文件正是使用这个辅助器格式化了Claim.Type属性的值。 Listing 15-14. Adding a Helper to the IdentityHelpers.cs File 清单15-14. 在IdentityHelpers.cs文件中添加辅助器 using System.Web;using System.Web.Mvc;using Microsoft.AspNet.Identity.Owin;using System;using System.Linq;using System.Reflection;using System.Security.Claims;namespace Users.Infrastructure {public static class IdentityHelpers {public static MvcHtmlString GetUserName(this HtmlHelper html, string id) {AppUserManager mgr= HttpContext.Current.GetOwinContext().GetUserManager<AppUserManager>();return new MvcHtmlString(mgr.FindByIdAsync(id).Result.UserName);} public static MvcHtmlString ClaimType(this HtmlHelper html, string claimType) {FieldInfo[] fields = typeof(ClaimTypes).GetFields();foreach (FieldInfo field in fields) {if (field.GetValue(null).ToString() == claimType) {return new MvcHtmlString(field.Name);} }return new MvcHtmlString(string.Format("{0}",claimType.Split('/', '.').Last()));} }} Note The helper method isn’t at all efficient because it reflects on the fields of the ClaimType class for each claim that is displayed, but it is sufficient for my purposes in this chapter. You won’t often need to display the claim type in real applications. 注:该辅助器并非十分有效,因为它只是针对每个要显示的声明(Claim)映射出ClaimType类的字段,但对我要的目的已经足够了。在实际项目中不会经常需要显示声明(Claim)的类型。 To see why I have created a controller that uses claims without really explaining what they are, start the application, authenticate as the user Alice (with the password MySecret), and request the /Claims/Index URL. Figure 15-5 shows the content that is generated. 为了弄明白我为何要先创建一个使用声明(Claims)的控制器,而没有真正解释声明(Claims)是什么的原因,可以启动应用程序,以用户Alice进行认证(其口令是MySecret),并请求/Claims/Index URL。图15-5显示了生成的内容。 Figure 15-5. The output from the Index action of the Claims controller 图15-5. Claims控制器中Index动作的输出 It can be hard to make out the detail in the figure, so I have reproduced the content in Table 15-7. 这可能还难以认识到此图的细节,为此我在表15-7中重列了其内容。 Table 15-7. The Data Shown in Figure 15-5 表15-7. 图15-5中显示的数据 Subject(科目) Issuer(发行者) Type(类型) Value(值) Alice LOCAL AUTHORITY SecurityStamp Unique ID Alice LOCAL AUTHORITY IdentityProvider ASP.NET Identity Alice LOCAL AUTHORITY Role Employees Alice LOCAL AUTHORITY Role Users Alice LOCAL AUTHORITY Name Alice Alice LOCAL AUTHORITY NameIdentifier Alice’s user ID The table shows the most important aspect of claims, which is that I have already been using them when I implemented the traditional authentication and authorization features in Chapter 14. You can see that some of the claims relate to user identity (the Name claim is Alice, and the NameIdentifier claim is Alice’s unique user ID in my ASP.NET Identity database). 此表展示了声明(Claims)最重要的方面,这些是我在第14章中实现传统的认证和授权特性时,一直在使用的信息。可以看出,有些声明(Claims)与用户标识有关(Name声明是Alice,NameIdentifier声明是Alice在ASP.NET Identity数据库中的唯一用户ID号)。 Other claims show membership of roles—there are two Role claims in the table, reflecting the fact that Alice is assigned to both the Users and Employees roles. There is also a claim about how Alice has been authenticated: The IdentityProvider is set to ASP.NET Identity. 其他声明(Claims)显示了角色成员——表中有两个Role声明(Claim),体现出Alice被赋予了Users和Employees两个角色这一事实。还有一个是Alice已被认证的声明(Claim):IdentityProvider被设置到了ASP.NET Identity。 The difference when this information is expressed as a set of claims is that you can determine where the data came from. The Issuer property for all the claims shown in the table is set to LOCAL AUTHORITY, which indicates that the user’s identity has been established by the application. 当这种信息被表示成一组声明(Claims)时的差别是,你能够确定这些数据是从哪里来的。表中所显示的所有声明的Issuer属性(发布者)都被设置到了LOACL AUTHORITY(本地授权),这说明该用户的标识是由应用程序建立的。 So, now that you have seen some example claims, I can more easily describe what a claim is. A claim is any piece of information about a user that is available to the application, including the user’s identity and role memberships. And, as you have seen, the information I have been defining about my users in earlier chapters is automatically made available as claims by ASP.NET Identity. 因此,现在你已经看到了一些声明(Claims)示例,我可以更容易地描述声明(Claim)是什么了。一项声明(Claim)是可用于应用程序中的有关用户的一个信息片段,包括用户的标识以及角色成员等。而且,正如你所看到的,我在前几章定义的关于用户的信息,被ASP.NET Identity自动地作为声明(Claims)了。 15.3.2 Creating and Using Claims 15.3.2 创建和使用声明(Claims) Claims are interesting for two reasons. The first reason is that an application can obtain claims from multiple sources, rather than just relying on a local database for information about the user. You will see a real example of this when I show you how to authenticate users through a third-party system in the “Using Third-Party Authentication” section, but for the moment I am going to add a class to the example project that simulates a system that provides claims information. Listing 15-15 shows the contents of the LocationClaimsProvider.cs file that I added to the Infrastructure folder. 声明(Claims)比较有意思的原因有两个。第一个原因是应用程序可以从多个来源获取声明(Claims),而不是只能依靠本地数据库关于用户的信息。你将会看到一个实际的示例,在“使用第三方认证”小节中,将演示如何通过第三方系统来认证用户。不过,此刻我只打算在示例项目中添加一个类,用以模拟一个提供声明(Claims)信息的系统。清单15-15显示了我添加到Infrastructure文件夹中LocationClaimsProvider.cs文件的内容。 Listing 15-15. The Contents of the LocationClaimsProvider.cs File 清单15-15. LocationClaimsProvider.cs文件的内容 using System.Collections.Generic;using System.Security.Claims; namespace Users.Infrastructure {public static class LocationClaimsProvider {public static IEnumerable<Claim> GetClaims(ClaimsIdentity user) {List<Claim> claims = new List<Claim>();if (user.Name.ToLower() == "alice") {claims.Add(CreateClaim(ClaimTypes.PostalCode, "DC 20500"));claims.Add(CreateClaim(ClaimTypes.StateOrProvince, "DC"));} else {claims.Add(CreateClaim(ClaimTypes.PostalCode, "NY 10036"));claims.Add(CreateClaim(ClaimTypes.StateOrProvince, "NY"));}return claims;}private static Claim CreateClaim(string type, string value) {return new Claim(type, value, ClaimValueTypes.String, "RemoteClaims");} }} The GetClaims method takes a ClaimsIdentity argument and uses the Name property to create claims about the user’s ZIP code and state. This class allows me to simulate a system such as a central HR database, which would be the authoritative source of location information about staff, for example. GetClaims方法以ClaimsIdentity为参数,并使用Name属性创建了关于用户ZIP码(邮政编码)和州府的声明(Claims)。上述这个类使我能够模拟一个诸如中心化的HR数据库(人力资源数据库)之类的系统,它可能会成为全体职员的地点信息的权威数据源。 Claims are associated with the user’s identity during the authentication process, and Listing 15-16 shows the changes I made to the Login action method of the Account controller to call the LocationClaimsProvider class. 在认证过程期间,声明(Claims)是与用户标识关联在一起的,清单15-16显示了我对Account控制器中Login动作方法所做的修改,以便调用LocationClaimsProvider类。 Listing 15-16. Associating Claims with a User in the AccountController.cs File 清单15-16. AccountController.cs文件中用户用声明的关联 ...[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie); ident.AddClaims(LocationClaimsProvider.GetClaims(ident));AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);}... You can see the effect of the location claims by starting the application, authenticating as a user, and requesting the /Claim/Index URL. Figure 15-6 shows the claims for Alice. You may have to sign out and sign back in again to see the change. 为了看看这个地点声明(Claims)的效果,可以启动应用程序,以一个用户进行认证,并请求/Claim/Index URL。图15-6显示了Alice的声明(Claims)。你可能需要退出,然后再次登录才会看到发生的变化。 Figure 15-6. Defining additional claims for users 图15-6. 定义用户的附加声明 Obtaining claims from multiple locations means that the application doesn’t have to duplicate data that is held elsewhere and allows integration of data from external parties. The Claim.Issuer property tells you where a claim originated from, which helps you judge how accurate the data is likely to be and how much weight you should give the data in your application. Location data obtained from a central HR database is likely to be more accurate and trustworthy than data obtained from an external mailing list provider, for example. 从多个地点获取声明(Claims)意味着应用程序不必复制其他地方保持的数据,并且能够与外部的数据集成。Claim.Issuer属性(图15-6中的Issuer数据列——译者注)能够告诉你一个声明(Claim)的发源地,这有助于让你判断数据的精确程度,也有助于让你决定这类数据在应用程序中的权重。例如,从中心化的HR数据库获取的地点数据可能要比外部邮件列表提供器获取的数据更为精确和可信。 1. Applying Claims 1. 运用声明(Claims) The second reason that claims are interesting is that you can use them to manage user access to your application more flexibly than with standard roles. The problem with roles is that they are static, and once a user has been assigned to a role, the user remains a member until explicitly removed. This is, for example, how long-term employees of big corporations end up with incredible access to internal systems: They are assigned the roles they require for each new job they get, but the old roles are rarely removed. (The unexpectedly broad systems access sometimes becomes apparent during the investigation into how someone was able to ship the contents of the warehouse to their home address—true story.) 声明(Claims)有意思的第二个原因是,你可以用它们来管理用户对应用程序的访问,这要比标准的角色管理更为灵活。角色的问题在于它们是静态的,而且一旦用户已经被赋予了一个角色,该用户便是一个成员,直到明确地删除为止。例如,这意味着大公司的长期雇员,对内部系统的访问会十分惊人:他们每次在获得新工作时,都会赋予所需的角色,但旧角色很少被删除。(在调查某人为何能够将仓库里的东西发往他的家庭地址过程中发现,有时会出现异常宽泛的系统访问——真实的故事) Claims can be used to authorize users based directly on the information that is known about them, which ensures that the authorization changes when the data changes. The simplest way to do this is to generate Role claims based on user data that are then used by controllers to restrict access to action methods. Listing 15-17 shows the contents of the ClaimsRoles.cs file that I added to the Infrastructure. 声明(Claims)可以直接根据用户已知的信息对用户进行授权,这能够保证当数据发生变化时,授权也随之而变。此事最简单的做法是根据用户数据来生成Role声明(Claim),然后由控制器用来限制对动作方法的访问。清单15-17显示了我添加到Infrastructure中的ClaimsRoles.cs文件的内容。 Listing 15-17. The Contents of the ClaimsRoles.cs File 清单15-17. ClaimsRoles.cs文件的内容 using System.Collections.Generic;using System.Security.Claims; namespace Users.Infrastructure {public class ClaimsRoles {public static IEnumerable<Claim> CreateRolesFromClaims(ClaimsIdentity user) {List<Claim> claims = new List<Claim>();if (user.HasClaim(x => x.Type == ClaimTypes.StateOrProvince&& x.Issuer == "RemoteClaims" && x.Value == "DC")&& user.HasClaim(x => x.Type == ClaimTypes.Role&& x.Value == "Employees")) {claims.Add(new Claim(ClaimTypes.Role, "DCStaff"));}return claims;} }} The gnarly looking CreateRolesFromClaims method uses lambda expressions to determine whether the user has a StateOrProvince claim from the RemoteClaims issuer with a value of DC and a Role claim with a value of Employees. If the user has both claims, then a Role claim is returned for the DCStaff role. Listing 15-18 shows how I call the CreateRolesFromClaims method from the Login action in the Account controller. CreateRolesFromClaims是一个粗糙的考察方法,它使用了Lambda表达式,以检查用户是否具有StateOrProvince声明(Claim),该声明来自于RemoteClaims发行者(Issuer),值为DC。也检查用户是否具有Role声明(Claim),其值为Employees。如果用户这两个声明都有,那么便返回一个DCStaff角色的Role声明。清单15-18显示了如何在Account控制器中的Login动作中调用CreateRolesFromClaims方法。 Listing 15-18. Generating Roles Based on Claims in the AccountController.cs File 清单15-18. 在AccountController.cs中根据声明生成角色 ...[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(LocationClaimsProvider.GetClaims(ident)); ident.AddClaims(ClaimsRoles.CreateRolesFromClaims(ident));AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);}... I can then restrict access to an action method based on membership of the DCStaff role. Listing 15-19 shows a new action method I added to the Claims controller to which I have applied the Authorize attribute. 然后我可以根据DCStaff角色的成员,来限制对一个动作方法的访问。清单15-19显示了在Claims控制器中添加的一个新的动作方法,在该方法上已经运用了Authorize注解属性。 Listing 15-19. Adding a New Action Method to the ClaimsController.cs File 清单15-19. 在ClaimsController.cs文件中添加一个新的动作方法 using System.Security.Claims;using System.Web;using System.Web.Mvc;namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} } [Authorize(Roles="DCStaff")]public string OtherAction() {return "This is the protected action";} }} Users will be able to access OtherAction only if their claims grant them membership to the DCStaff role. Membership of this role is generated dynamically, so a change to the user’s employment status or location information will change their authorization level. 只要用户的声明(Claims)承认他们是DCStaff角色的成员,那么他们便能访问OtherAction动作。该角色的成员是动态生成的,因此,若是用户的雇用状态或地点信息发生变化,也会改变他们的授权等级。 提示:请读者从这个例子中吸取其中的思想精髓。对于读物的理解程度,仁者见仁,智者见智,能领悟多少,全凭各人,译者感觉这里的思想有无数的可能。举例说明:(1)可以根据用户的身份进行授权,比如学生在校时是“学生”,毕业后便是“校友”;(2)可以根据用户所处的部门进行授权,人事部用户属于人事团队,销售部用户属于销售团队,各团队有其自己的应用;(3)下一小节的示例是根据用户的地点授权。简言之:一方面用户的各种声明(Claim)都可以用来进行授权;另一方面用户的声明(Claim)又是可以自定义的。于是可能的运用就无法估计了。总之一句话,这种基于声明的授权(Claims-Based Authorization)有无限可能!要是没有我这里的提示,是否所有读者在此处都会有所体会?——译者注 15.3.3 Authorizing Access Using Claims 15.3.3 使用声明(Claims)授权访问 The previous example is an effective demonstration of how claims can be used to keep authorizations fresh and accurate, but it is a little indirect because I generate roles based on claims data and then enforce my authorization policy based on the membership of that role. A more direct and flexible approach is to enforce authorization directly by creating a custom authorization filter attribute. Listing 15-20 shows the contents of the ClaimsAccessAttribute.cs file, which I added to the Infrastructure folder and used to create such a filter. 前面的示例有效地演示了如何用声明(Claims)来保持新鲜和准确的授权,但有点不太直接,因为我要根据声明(Claims)数据来生成了角色,然后强制我的授权策略基于角色成员。一个更直接且灵活的办法是直接强制授权,其做法是创建一个自定义的授权过滤器注解属性。清单15-20演示了ClaimsAccessAttribute.cs文件的内容,我将它添加在Infrastructure文件夹中,并用它创建了这种过滤器。 Listing 15-20. The Contents of the ClaimsAccessAttribute.cs File 清单15-20. ClaimsAccessAttribute.cs文件的内容 using System.Security.Claims;using System.Web;using System.Web.Mvc; namespace Users.Infrastructure {public class ClaimsAccessAttribute : AuthorizeAttribute {public string Issuer { get; set; }public string ClaimType { get; set; }public string Value { get; set; }protected override bool AuthorizeCore(HttpContextBase context) {return context.User.Identity.IsAuthenticated&& context.User.Identity is ClaimsIdentity&& ((ClaimsIdentity)context.User.Identity).HasClaim(x =>x.Issuer == Issuer && x.Type == ClaimType && x.Value == Value);} }} The attribute I have defined is derived from the AuthorizeAttribute class, which makes it easy to create custom authorization policies in MVC framework applications by overriding the AuthorizeCore method. My implementation grants access if the user is authenticated, the IIdentity implementation is an instance of ClaimsIdentity, and the user has a claim with the issuer, type, and value matching the class properties. Listing 15-21 shows how I applied the attribute to the Claims controller to authorize access to the OtherAction method based on one of the location claims created by the LocationClaimsProvider class. 我所定义的这个注解属性派生于AuthorizeAttribute类,通过重写AuthorizeCore方法,很容易在MVC框架应用程序中创建自定义的授权策略。在这个实现中,若用户是已认证的、其IIdentity实现是一个ClaimsIdentity实例,而且该用户有一个带有issuer、type以及value的声明(Claim),它们与这个类的属性是匹配的,则该用户便是允许访问的。清单15-21显示了如何将这个注解属性运用于Claims控制器,以便根据LocationClaimsProvider类创建的地点声明(Claim),对OtherAction方法进行授权访问。 Listing 15-21. Performing Authorization on Claims in the ClaimsController.cs File 清单15-21. 在ClaimsController.cs文件中执行基于声明的授权 using System.Security.Claims;using System.Web;using System.Web.Mvc;using Users.Infrastructure;namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} } [ClaimsAccess(Issuer="RemoteClaims", ClaimType=ClaimTypes.PostalCode,Value="DC 20500")]public string OtherAction() {return "This is the protected action";} }} My authorization filter ensures that only users whose location claims specify a ZIP code of DC 20500 can invoke the OtherAction method. 这个授权过滤器能够确保只有地点声明(Claim)的邮编为DC 20500的用户才能请求OtherAction方法。 15.4 Using Third-Party Authentication 15.4 使用第三方认证 One of the benefits of a claims-based system such as ASP.NET Identity is that any of the claims can come from an external system, even those that identify the user to the application. This means that other systems can authenticate users on behalf of the application, and ASP.NET Identity builds on this idea to make it simple and easy to add support for authenticating users through third parties such as Microsoft, Google, Facebook, and Twitter. 基于声明的系统,如ASP.NET Identity,的好处之一是任何声明都可以来自于外部系统,即使是将用户标识到应用程序的那些声明。这意味着其他系统可以代表应用程序来认证用户,而ASP.NET Identity就建立在这样的思想之上,使之能够简单而方便地添加第三方认证用户的支持,如微软、Google、Facebook、Twitter等。 There are some substantial benefits of using third-party authentication: Many users will already have an account, users can elect to use two-factor authentication, and you don’t have to manage user credentials in the application. In the sections that follow, I’ll show you how to set up and use third-party authentication for Google users, which Table 15-8 puts into context. 使用第三方认证有一些实际的好处:许多用户已经有了账号、用户可以选择使用双因子认证、你不必在应用程序中管理用户凭据等等。在以下小节中,我将演示如何为Google用户建立并使用第三方认证,表15-8描述了事情的情形。 Table 15-8. Putting Third-Party Authentication in Context 表15-8. 第三方认证情形 Question 问题 Answer 回答 What is it? 什么是第三方认证? Authenticating with third parties lets you take advantage of the popularity of companies such as Google and Facebook. 第三方认证使你能够利用流行公司,如Google和Facebook,的优势。 Why should I care? 为何要关心它? Users don’t like having to remember passwords for many different sites. Using a provider with large-scale adoption can make your application more appealing to users of the provider’s services. 用户不喜欢记住许多不同网站的口令。使用大范围适应的提供器可使你的应用程序更吸引有提供器服务的用户。 How is it used by the MVC framework? 如何在MVC框架中使用它? This feature isn’t used directly by the MVC framework. 这不是一个直接由MVC框架使用的特性。 Note The reason I have chosen to demonstrate Google authentication is that it is the only option that doesn’t require me to register my application with the authentication service. You can get details of the registration processes required at http://bit.ly/1cqLTrE. 提示:我选择演示Google认证的原因是,它是唯一不需要在其认证服务中注册我应用程序的公司。有关认证服务注册过程的细节,请参阅http://bit.ly/1cqLTrE。 15.4.1 Enabling Google Authentication 15.4.1 启用Google认证 ASP.NET Identity comes with built-in support for authenticating users through their Microsoft, Google, Facebook, and Twitter accounts as well more general support for any authentication service that supports OAuth. The first step is to add the NuGet package that includes the Google-specific additions for ASP.NET Identity. Enter the following command into the Package Manager Console: ASP.NET Identity带有通过Microsoft、Google、Facebook以及Twitter账号认证用户的内建支持,并且对于支持OAuth的认证服务具有更普遍的支持。第一个步骤是添加NuGet包,包中含有用于ASP.NET Identity的Google专用附件。请在“Package Manager Console(包管理器控制台)”中输入以下命令: Install-Package Microsoft.Owin.Security.Google -version 2.0.2 There are NuGet packages for each of the services that ASP.NET Identity supports, as described in Table 15-9. 对于ASP.NET Identity支持的每一种服务都有相应的NuGet包,如表15-9所示。 Table 15-9. The NuGet Authenticaton Packages 表15-9. NuGet认证包 Name 名称 Description 描述 Microsoft.Owin.Security.Google Authenticates users with Google accounts 用Google账号认证用户 Microsoft.Owin.Security.Facebook Authenticates users with Facebook accounts 用Facebook账号认证用户 Microsoft.Owin.Security.Twitter Authenticates users with Twitter accounts 用Twitter账号认证用户 Microsoft.Owin.Security.MicrosoftAccount Authenticates users with Microsoft accounts 用Microsoft账号认证用户 Microsoft.Owin.Security.OAuth Authenticates users against any OAuth 2.0 service 根据任一OAuth 2.0服务认证用户 Once the package is installed, I enable support for the authentication service in the OWIN startup class, which is defined in the App_Start/IdentityConfig.cs file in the example project. Listing 15-22 shows the change that I have made. 一旦安装了这个包,便可以在OWIN启动类中启用此项认证服务的支持,启动类的定义在示例项目的App_Start/IdentityConfig.cs文件中。清单15-22显示了所做的修改。 Listing 15-22. Enabling Google Authentication in the IdentityConfig.cs File 清单15-22. 在IdentityConfig.cs文件中启用Google认证 using Microsoft.AspNet.Identity;using Microsoft.Owin;using Microsoft.Owin.Security.Cookies;using Owin;using Users.Infrastructure;using Microsoft.Owin.Security.Google;namespace Users {public class IdentityConfig {public void Configuration(IAppBuilder app) {app.CreatePerOwinContext<AppIdentityDbContext>(AppIdentityDbContext.Create);app.CreatePerOwinContext<AppUserManager>(AppUserManager.Create);app.CreatePerOwinContext<AppRoleManager>(AppRoleManager.Create); app.UseCookieAuthentication(new CookieAuthenticationOptions {AuthenticationType = DefaultAuthenticationTypes.ApplicationCookie,LoginPath = new PathString("/Account/Login"),}); app.UseExternalSignInCookie(DefaultAuthenticationTypes.ExternalCookie);app.UseGoogleAuthentication();} }} Each of the packages that I listed in Table 15-9 contains an extension method that enables the corresponding service. The extension method for the Google service is called UseGoogleAuthentication, and it is called on the IAppBuilder implementation that is passed to the Configuration method. 表15-9所列的每个包都含有启用相应服务的扩展方法。用于Google服务的扩展方法名称为UseGoogleAuthentication,它通过传递给Configuration方法的IAppBuilder实现进行调用。 Next I added a button to the Views/Account/Login.cshtml file, which allows users to log in via Google. You can see the change in Listing 15-23. 下一步骤是在Views/Account/Login.cshtml文件中添加一个按钮,让用户能够通过Google进行登录。所做的修改如清单15-23所示。 Listing 15-23. Adding a Google Login Button to the Login.cshtml File 清单15-23. 在Login.cshtml文件中添加Google登录按钮 @model Users.Models.LoginModel@{ ViewBag.Title = "Login";}<h2>Log In</h2> @Html.ValidationSummary()@using (Html.BeginForm()) {@Html.AntiForgeryToken();<input type="hidden" name="returnUrl" value="@ViewBag.returnUrl" /><div class="form-group"><label>Name</label>@Html.TextBoxFor(x => x.Name, new { @class = "form-control" })</div><div class="form-group"><label>Password</label>@Html.PasswordFor(x => x.Password, new { @class = "form-control" })</div><button class="btn btn-primary" type="submit">Log In</button>}@using (Html.BeginForm("GoogleLogin", "Account")) {<input type="hidden" name="returnUrl" value="@ViewBag.returnUrl" /><button class="btn btn-primary" type="submit">Log In via Google</button>} The new button submits a form that targets the GoogleLogin action on the Account controller. You can see this method—and the other changes I made the controller—in Listing 15-24. 新按钮递交一个表单,目标是Account控制器中的GoogleLogin动作。可从清单15-24中看到该方法,以及在控制器中所做的其他修改。 Listing 15-24. Adding Support for Google Authentication to the AccountController.cs File 清单15-24. 在AccountController.cs文件中添加Google认证支持 using System.Threading.Tasks;using System.Web.Mvc;using Users.Models;using Microsoft.Owin.Security;using System.Security.Claims;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.Owin;using Users.Infrastructure;using System.Web; namespace Users.Controllers {[Authorize]public class AccountController : Controller {[AllowAnonymous]public ActionResult Login(string returnUrl) {if (HttpContext.User.Identity.IsAuthenticated) {return View("Error", new string[] { "Access Denied" });}ViewBag.returnUrl = returnUrl;return View();}[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie); ident.AddClaims(LocationClaimsProvider.GetClaims(ident));ident.AddClaims(ClaimsRoles.CreateRolesFromClaims(ident)); AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);} [HttpPost][AllowAnonymous]public ActionResult GoogleLogin(string returnUrl) {var properties = new AuthenticationProperties {RedirectUri = Url.Action("GoogleLoginCallback",new { returnUrl = returnUrl})};HttpContext.GetOwinContext().Authentication.Challenge(properties, "Google");return new HttpUnauthorizedResult();}[AllowAnonymous]public async Task<ActionResult> GoogleLoginCallback(string returnUrl) {ExternalLoginInfo loginInfo = await AuthManager.GetExternalLoginInfoAsync();AppUser user = await UserManager.FindAsync(loginInfo.Login);if (user == null) {user = new AppUser {Email = loginInfo.Email,UserName = loginInfo.DefaultUserName,City = Cities.LONDON, Country = Countries.UK};IdentityResult result = await UserManager.CreateAsync(user);if (!result.Succeeded) {return View("Error", result.Errors);} else {result = await UserManager.AddLoginAsync(user.Id, loginInfo.Login);if (!result.Succeeded) {return View("Error", result.Errors);} }}ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(loginInfo.ExternalIdentity.Claims);AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false }, ident);return Redirect(returnUrl ?? "/");}[Authorize]public ActionResult Logout() {AuthManager.SignOut();return RedirectToAction("Index", "Home");}private IAuthenticationManager AuthManager {get {return HttpContext.GetOwinContext().Authentication;} }private AppUserManager UserManager {get {return HttpContext.GetOwinContext().GetUserManager<AppUserManager>();} }} } The GoogleLogin method creates an instance of the AuthenticationProperties class and sets the RedirectUri property to a URL that targets the GoogleLoginCallback action in the same controller. The next part is a magic phrase that causes ASP.NET Identity to respond to an unauthorized error by redirecting the user to the Google authentication page, rather than the one defined by the application: GoogleLogin方法创建了AuthenticationProperties类的一个实例,并为RedirectUri属性设置了一个URL,其目标为同一控制器中的GoogleLoginCallback动作。下一个部分是一个神奇阶段,通过将用户重定向到Google认证页面,而不是应用程序所定义的认证页面,让ASP.NET Identity对未授权的错误进行响应: ...HttpContext.GetOwinContext().Authentication.Challenge(properties, "Google");return new HttpUnauthorizedResult();... This means that when the user clicks the Log In via Google button, their browser is redirected to the Google authentication service and then redirected back to the GoogleLoginCallback action method once they are authenticated. 这意味着,当用户通过点击Google按钮进行登录时,浏览器被重定向到Google的认证服务,一旦在那里认证之后,便被重定向回GoogleLoginCallback动作方法。 I get details of the external login by calling the GetExternalLoginInfoAsync of the IAuthenticationManager implementation, like this: 我通过调用IAuthenticationManager实现的GetExternalLoginInfoAsync方法,我获得了外部登录的细节,如下所示: ...ExternalLoginInfo loginInfo = await AuthManager.GetExternalLoginInfoAsync();... The ExternalLoginInfo class defines the properties shown in Table 15-10. ExternalLoginInfo类定义的属性如表15-10所示: Table 15-10. The Properties Defined by the ExternalLoginInfo Class 表15-10. ExternalLoginInfo类所定义的属性 Name 名称 Description 描述 DefaultUserName Returns the username 返回用户名 Email Returns the e-mail address 返回E-mail地址 ExternalIdentity Returns a ClaimsIdentity that identities the user 返回标识该用户的ClaimsIdentity Login Returns a UserLoginInfo that describes the external login 返回描述外部登录的UserLoginInfo I use the FindAsync method defined by the user manager class to locate the user based on the value of the ExternalLoginInfo.Login property, which returns an AppUser object if the user has been authenticated with the application before: 我使用了由用户管理器类所定义的FindAsync方法,以便根据ExternalLoginInfo.Login属性的值对用户进行定位,如果用户之前在应用程序中已经认证,该属性会返回一个AppUser对象: ...AppUser user = await UserManager.FindAsync(loginInfo.Login);... If the FindAsync method doesn’t return an AppUser object, then I know that this is the first time that this user has logged into the application, so I create a new AppUser object, populate it with values, and save it to the database. I also save details of how the user logged in so that I can find them next time: 如果FindAsync方法返回的不是AppUser对象,那么我便知道这是用户首次登录应用程序,于是便创建了一个新的AppUser对象,填充该对象的值,并将其保存到数据库。我还保存了用户如何登录的细节,以便下次能够找到他们: ...result = await UserManager.AddLoginAsync(user.Id, loginInfo.Login);... All that remains is to generate an identity the user, copy the claims provided by Google, and create an authentication cookie so that the application knows the user has been authenticated: 剩下的事情只是生成该用户的标识了,拷贝Google提供的声明(Claims),并创建一个认证Cookie,以使应用程序知道此用户已认证: ...ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(loginInfo.ExternalIdentity.Claims);AuthManager.SignIn(new AuthenticationProperties { IsPersistent = false }, ident);... 15.4.2 Testing Google Authentication 15.4.2 测试Google认证 There is one further change that I need to make before I can test Google authentication: I need to change the account verification I set up in Chapter 13 because it prevents accounts from being created with e-mail addresses that are not within the example.com domain. Listing 15-25 shows how I removed the verification from the AppUserManager class. 在测试Google认证之前还需要一处修改:需要修改第13章所建立的账号验证,因为它不允许example.com域之外的E-mail地址创建账号。清单15-25显示了如何在AppUserManager类中删除这种验证。 Listing 15-25. Disabling Account Validation in the AppUserManager.cs File 清单15-25. 在AppUserManager.cs文件中取消账号验证 using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.EntityFramework;using Microsoft.AspNet.Identity.Owin;using Microsoft.Owin;using Users.Models; namespace Users.Infrastructure {public class AppUserManager : UserManager<AppUser> {public AppUserManager(IUserStore<AppUser> store): base(store) {}public static AppUserManager Create(IdentityFactoryOptions<AppUserManager> options,IOwinContext context) {AppIdentityDbContext db = context.Get<AppIdentityDbContext>();AppUserManager manager = new AppUserManager(new UserStore<AppUser>(db)); manager.PasswordValidator = new CustomPasswordValidator {RequiredLength = 6,RequireNonLetterOrDigit = false,RequireDigit = false,RequireLowercase = true,RequireUppercase = true}; //manager.UserValidator = new CustomUserValidator(manager) {// AllowOnlyAlphanumericUserNames = true,// RequireUniqueEmail = true//};return manager;} }} Tip you can use validation for externally authenticated accounts, but I am just going to disable the feature for simplicity. 提示:也可以使用外部已认证账号的验证,但这里出于简化,取消了这一特性。 To test authentication, start the application, click the Log In via Google button, and provide the credentials for a valid Google account. When you have completed the authentication process, your browser will be redirected back to the application. If you navigate to the /Claims/Index URL, you will be able to see how claims from the Google system have been added to the user’s identity, as shown in Figure 15-7. 为了测试认证,启动应用程序,通过点击“Log In via Google(通过Google登录)”按钮,并提供有效的Google账号凭据。当你完成了认证过程时,浏览器将被重定向回应用程序。如果导航到/Claims/Index URL,便能够看到来自Google系统的声明(Claims),已被添加到用户的标识中了,如图15-7所示。 Figure 15-7. Claims from Google 图15-7. 来自Google的声明(Claims) 15.5 Summary 15.5 小结 In this chapter, I showed you some of the advanced features that ASP.NET Identity supports. I demonstrated the use of custom user properties and how to use database migrations to preserve data when you upgrade the schema to support them. I explained how claims work and how they can be used to create more flexible ways of authorizing users. I finished the chapter by showing you how to authenticate users via Google, which builds on the ideas behind the use of claims. 本章向你演示了ASP.NET Identity所支持的一些高级特性。演示了自定义用户属性的使用,还演示了在升级数据架构时,如何使用数据库迁移保护数据。我解释了声明(Claims)的工作机制,以及如何将它们用于创建更灵活的用户授权方式。最后演示了如何通过Google进行认证结束了本章,这是建立在使用声明(Claims)的思想基础之上的。 本篇文章为转载内容。原文链接:https://blog.csdn.net/gz19871113/article/details/108591802。 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。
2023-10-28 08:49:21
283
转载
JSON
...的欢迎。但是,如果在应用开发中经常对JSON进行操作,人工编写相关代码则会很复杂麻烦且易于出错。 为了提升开发效能,我们通常会应用JSON功能组件包中的功能组件,其中比较常用的功能组件是JSON Util。JSON Util是一款小巧轻便的Java JSON解析库,具有解析效率高、简单易学等优点。 下面我们简单介绍一下JSON Util的应用方法: //导入JSON Util库 import org.json.; //将JSON字符串解析成JSONObject String jsonStr = "{\"name\":\"Jack\",\"age\":\"25\",\"address\":{\"province\":\"Guangdong\",\"city\":\"Shenzhen\",\"district\":\"Nanshan\"} }"; JSONObject jsonObj = new JSONObject(jsonStr); //获取JSONObject中的某个字段 String name = jsonObj.getString("name"); //将JSONObject转换为Java Bean Person person = jsonObj.toJavaObject(Person.class); 通过调用JSON Util提供的API,我们可以轻松地从字符串中解析出JSON对象,并且获取JSON中的字段值或将其转换为Java Bean,这样就可以更方便地完成与JSON相关的开发任务了。 总之,JSON Util是一款非常实用的JSON解析库,如果你在Java开发中需要对JSON数据进行操作的话,就不妨尝试一下这个功能组件。
2023-01-02 22:55:10
560
逻辑鬼才
JSON
...ge": 30, "address": { "city": "Beijing", "street": "Main Street", "zipcode": "100000" } "phone": "123456789" // 缺失分号 } 在上面的例子中,我们可以看到缺失了"name"和"age"键值组合后面的分号。这个失误可能看起来微不足道,但它会影响JSON的解读。 为了避免这种失误,我们应该在每个键值组合的结尾处都加上分号。 { "name": "Tom", "age": 30, "address": { "city": "Beijing", "street": "Main Street", "zipcode": "100000" }, "phone": "123456789" // 注意分号在这里 } 在上面的例子中,我们添加了"phone"键值组合后面的分号,使JSON格式变得正确。 因此,我们应该养成良好的编码习惯,细心地检查每个键值组合的结尾是否都加上了分号。
2023-06-16 09:53:24
301
算法侠
JSON
...据传输格式,它被普遍应用于客户端数据交流和API数据格式定义。而在真实的编程阶段中,我们常常需求对JSON中的值进行清除操作。以下就来说明一下怎样清除JSON的值。 // 原始JSON数据 const person = { "name": "Tom", "age": 18, "address": { "city": "Beijing", "street": "8th Street" } }; // 清除值的方法 function clearValue(obj) { Object.键s(obj).遍历(function(键) { if (typeof obj[键] === 'object') { clearValue(obj[键]); // 递归清除值 } else { obj[键] = null; // 赋值为null } }); } clearValue(person); // 调用清除方法 console.log(person); // 输出 {"name": null, "age": null, "address": {"city": null, "street": null} } 以上代码使用了递归的方式对JSON进行了清除操作,当遇到值为object时,递归调用清除方法,否则直接将值赋值为null。这样就能够简单快速地清除JSON的值了。
2023-10-16 19:41:44
522
码农
JSON
...通信协议,它在Web应用中普遍使用,而Go编程语言也兼容对JSON的解读和创建操作。当我们需要在Go中对JSON格式的数据进行处理的时候,我们通常需要使用数据结构来映射该JSON数据的结构。而JSON创建Go数据结构的辅助工具可以帮助我们自动创建Go数据结构,从而节约了我们人工编写的时间。 JSON创建Go数据结构的辅助工具可以通过网站或者命令行来使用。其中,网站类似于json-to-go,命令行类似于gojson。这些辅助工具可以将JSON格式的数据转换成Go代码,其中包括对应的数据结构。 下面是通过一个实例来演示如何使用上述JSON创建Go数据结构的辅助工具。 // JSON数据 { "name": "张三", "age": 25, "gender": "男", "hobbies": ["足球", "篮球", "音乐"], "address": { "city": "上海", "street": "静安寺" } } // 使用gojson命令创建数据结构 $ gojson -name Person data.json // 创建的Go代码 type Person struct { Name string json:"name" Age int json:"age" Gender string json:"gender" Hobbies []string json:"hobbies" Address struct { City string json:"city" Street string json:"street" } json:"address" } 以上代码中,我们使用gojson命令将data.json文件转换成了对应的Go数据结构Person。其中,使用了反引号来定义Go数据结构中每个成员的数据类型和JSON属性名称的映射关系。在这里,我们还可以看到,在address成员中嵌套了一个数据结构,以映射层次化的JSON数据。
2024-01-12 17:00:16
530
码农
JQuery
...("The URL address is: ", data); } }); 这段代码会向"http://www.example.com"发送一个GET请求,如果请求成功,则将返回的数据输出到控制台。嘿,实际上呢,我们没走寻常路去直接拽URL地址过来,而是耍了个小聪明,通过HTTP请求的方式把整个网页的全部内容都给搬过来了。然后我们可以通过分析HTML代码,从中提取出URL地址。 另外,我们还可以使用正则表达式来匹配URL地址。例如: javascript var urlPattern = /https?:\/\/[^ "]+/; var urlMatch = urlPattern.exec(window.location.href); console.log(urlMatch[0]); 这段代码会匹配URL地址中的协议和主机名,然后将其赋值给变量urlMatch,并输出到控制台。在这儿,我们耍了个小聪明,用了一个正则表达式的小魔法来找出那些URL地址,接着再通过exec()这个小技巧,把匹配到的结果给捞出来。敲黑板,注意啦!这里提到的正则表达式只是个入门级别的小栗子,在实际工作中,你可能得根据具体的业务需求对它进行“量体裁衣”,灵活调整。 总的来说,获取加载页面的URL地址并不是一件难事,只要我们掌握了正确的工具和方法,就可以轻松地完成这项任务。希望这篇文章能对你有所帮助,如果你还有其他问题,欢迎随时咨询我。
2023-01-07 17:36:42
304
人生如戏_t
Java
...过异步通道,Java应用程序可以发起读写请求而不必等待操作完成,极大地提高了系统的并行处理能力。在云计算、分布式系统及大数据处理等领域,这种非阻塞和异步I/O模式已经成为提高性能和扩展性的关键技术手段之一。 此外,为应对大规模、高并发场景下的网络通信需求,Netty作为基于NIO的高性能网络通信框架被广泛应用,它简化了NIO的复杂性,使得开发者能够更专注于业务逻辑的开发,而无需过多关心底层网络通信细节。 值得注意的是,尽管NIO和NIO.2在性能上有着显著的优势,但在实际项目选型时仍需根据具体应用场景权衡利弊。对于连接数较少但数据交换频繁的服务,传统的BIO可能因其编程模型简单直观,依然具有一定的适用性。 综上所述,深入理解Java IO的不同模型及其适用场景,并关注相关领域的最新发展动态和技术实践,对于提升系统设计与开发效率至关重要。同时,紧跟Java IO库的发展步伐,如Java 9及以上版本对NIO模块的持续优化,将有助于我们更好地适应未来的技术挑战。
2023-06-29 14:15:34
368
键盘勇士
Consul
...假设我们有一个Web应用,它依赖于一个数据库服务。当Web应用启动时,它会向Consul注册自己,并提供其IP地址和端口。同时,它还会告诉Consul它依赖于哪个数据库服务。 然后,Consul将这个信息存储在本地,并向所有连接到它的节点广播这个信息。这样一来,甭管哪个节点想要访问这个Web应用,它都可以通过Consul这小子找到该应用,并轻松获取到它的IP地址和端口信息,就像查电话本找号码一样简单明了。 如果你尝试访问这个Web应用,它会先去Consul查询数据库服务的IP地址和端口。如果Consul返回了一个有效的响应,Web应用就可以成功地连接到数据库了。要是Consul给咱返回了个无效的响应,比方说,由于数据库服务闹罢工了,Web应用就能感知到自己没法好好干活了,然后就会主动给自己按下暂停键。 这就是Consul的核心功能 - 服务发现。但是,这只是Consul的一部分功能。它还有许多其他的特性,如健康检查、配置管理和DNS。 4. 示例代码 下面是一些使用Consul的示例代码: python 连接到Consul client = consul.Consul() 注册服务 service_id = 'my-service' service_address = '192.168.1.1' service_port = 8080 service_tags = ['web', 'v1'] registration = client.agent.service.register( name=service_id, address=service_address, port=service_port, tags=service_tags, ) 查询服务 services = client.catalog.services() for service in services: print(service['Service']['ID']) 5. 结论 总的来说,Consul是一个强大且灵活的服务网格,它可以解决分布式系统中的一些常见问题,如服务发现、健康检查、配置管理和DNS。无论你是开发人员还是运维工程师,都应该了解一下Consul,看看它是否能够帮助你解决问题。
2023-05-01 13:56:51
489
夜色朦胧-t
ZooKeeper
...erver" ip_address = socket.gethostbyname(hostname) print(ip_address) 如果上述代码返回的是空值或者错误的信息,那么就可以确认是网络问题了。这时候我们可以通过调整网络设置来解决问题。 2. ZooKeeper服务器问题 如果网络没有问题,那么我们就需要检查ZooKeeper服务器本身是否有问题。我们可以尝试重启ZooKeeper服务器,看是否能解决这个问题。 bash sudo service zookeeper restart 如果重启后问题仍然存在,那么我们就需要进一步查看ZooKeeper的日志,看看有没有错误信息。 三、解决方案 根据问题的原因,我们可以采取不同的解决方案: 1. 网络问题 如果是网络问题,那么我们需要解决的就是网络问题。这个嘛,每个人的处理方式可能会有点差异,不过最直截了当的做法就是先瞅瞅网络设置对不对劲儿,确保你的客户端能够顺利地、不打折扣地连上ZooKeeper服务器。 2. ZooKeeper服务器问题 如果是ZooKeeper服务器的问题,那么我们需要做的就是修复ZooKeeper服务器。实际上,解决这个问题的具体招数确实得根据日志里蹦出来的错误信息来灵活应对。不过,最简单、最基础的一招你可别忘了,那就是重启一下ZooKeeper服务器,没准儿问题就迎刃而解啦! 四、总结 总的来说,客户端无法获取服务器的状态信息是一个比较常见的问题,但是它的原因可能会有很多种。咱们得像侦探破案那样,仔仔细细地排查各个环节,把问题的来龙去脉摸个一清二楚,才能揪出那个幕后真正的原因。然后,咱们再根据这个“元凶”,制定出行之有效的解决对策来。 在这个过程中,我们不仅需要掌握一定的技术和知识,更需要有一颗耐心和细心的心。这样子做,咱们才能真正地把各种难缠的问题给妥妥地解决掉,同时也能让自己的技术水平蹭蹭地往上涨。 以上就是我对这个问题的理解和看法,希望对你有所帮助。如果你还有其他的问题或者疑问,欢迎随时联系我,我会尽我所能为你解答。
2023-07-01 22:19:14
161
蝶舞花间-t
PostgreSQL
...NOT NULL, address VARCHAR(255) ); 现在,我们想要在“name”列上创建一个索引,以便我们可以更快地查找员工的名字。那么,我们就可以使用以下的SQL语句: sql CREATE INDEX idx_employees_name ON employees (name); 在这个语句中,“idx_employees_name”是我们给新创建的索引命名的字符串,“employees”是我们想要在其上创建索引的表名,“name”是我们想要在哪个列上创建索引的列名。 查看索引 如果我们已经创建了一个索引,但不确定它是否起作用或者我们想要查看所有已存在的索引,我们可以使用以下的SQL语句: sql SELECT FROM pg_indexes WHERE tablename = ''; 在这个语句中,“是我们想要查看其索引的表名。“pg_indexes”是PostgreSQL的一个系统表,它包含了所有的索引信息。 性能优化 虽然索引可以帮助我们加快查询速度,但是过多的索引也会影响数据库的性能。因此,在创建索引时,我们需要权衡索引的数量和查询效率之间的关系。通常来说,当你的表格里头的数据条数蹭蹭地超过10万大关的时候,那就真的得琢磨琢磨给它创建个索引了,这样一来才能让数据查找更溜更快。此外,咱们也得留意一下,别在那些频繁得不得了的列上乱建索引。要知道,这样做的话,索引维护起来可是会让人头疼的,成本噌噌往上涨。 总的来说,索引是提高数据库查询效率的重要手段。在PostgreSQL这个数据库里,我们能够用几句简单的SQL命令轻松创建索引。而且,更酷的是,还可以借助系统自带的索引管理工具,像看菜单一样直观地查看索引的各种状态,甚至还能随心所欲地调整它们,就像给你的数据仓库整理目录一样方便。但是,我们也需要注意不要滥用索引,以免影响数据库的整体性能。
2023-06-18 18:39:15
1325
海阔天空_t
Impala
..._DEBUGGER_ADDRESS=localhost:9999 \ -Djava.net.preferIPv4Stack=true \ -Dderby.system.home=/path/to/derby/data \ -Dderby.stream.error.file=/var/log/impala/derby.log \ com.cloudera.impala.service.ImpalaService 在这个例子中,我们添加了几个JVM选项来调整Impala的行为。比如,我们就拿MAX_THREADS这个选项来说吧,它就像是个看门人,专门负责把控同时进行的任务数量,不让它们超额。再来说说COMPACTION_THREAD_COUNT这个小家伙,它的职责呢,就是限制同一时间能有多少个压缩任务挤在一起干活,防止大家伙儿一起上阵导致场面过于混乱。 4. 性能优化 当你增加了并发连接时,你也应该考虑性能优化。例如,你可以考虑增加内存,以避免因内存不足而导致的性能问题。你也可以使用更快的硬件,如SSD,以提高I/O性能。 5. 结论 Impala是一个强大的工具,可以帮助你在Hadoop生态系统中进行高效的数据处理和分析。只要你把Impala设置得恰到好处,就能让它同时处理更多的连接请求,这样一来,甭管你的需求有多大,都能妥妥地得到满足。虽然这需要一些努力和知识,但最终的结果将是值得的。
2023-08-21 16:26:38
421
晚秋落叶-t
Nacos
...的技术。在传统的单体应用中,我们只需要关心应用程序内部的服务调用。而在微服务架构中,我们需要关注的是服务之间的通信。这就需要我们有一个统一的方式来发现并定位其他服务的位置。这就是服务发现的作用。 三、如何在Nacos中实现服务间的通信? 接下来,我们就来看看如何在Nacos中实现服务间的通信。 首先,我们需要将我们的服务注册到Nacos的服务注册中心。这样一来,当其他客户端兄弟想要找这个服务玩的时候,就可以直接去服务注册中心翻一翻,找到这个服务的住址,然后轻松对接上。下面是代码示例: java import com.alibaba.nacos.api.NacosFactory; import com.alibaba.nacos.api.config.ConfigService; import com.alibaba.nacos.api.exception.NacosException; public class NacosClient { private static ConfigService configService; public static void main(String[] args) throws NacosException { // 创建ConfigService实例 configService = NacosFactory.createConfigService("127.0.0.1", 8848); // 注册服务 configService.publishConfig("service-name", "localhost:8080"); } } 在这个示例中,我们首先创建了一个ConfigService实例,然后使用publishConfig方法将我们的服务注册到了Nacos的服务注册中心。 然后,我们可以在其他的服务中通过Nacos的服务发现组件来发现并访问我们的服务。下面是代码示例: java import com.alibaba.nacos.api.NacosFactory; import com.alibaba.nacos.api.config.ConfigService; import com.alibaba.nacos.api.exception.NacosException; public class NacosClient { private static ConfigService configService; public static void main(String[] args) throws NacosException { // 创建ConfigService实例 configService = NacosFactory.createConfigService("127.0.0.1", 8848); // 获取服务地址 String serviceAddress = configService.getConfig("service-name", null, -1L, false); System.out.println("Service address: " + serviceAddress); } } 在这个示例中,我们首先创建了一个ConfigService实例,然后使用getConfig方法从Nacos的服务注册中心中获取到了我们的服务地址。 四、总结 通过上述步骤,我们已经成功地在Nacos中实现了服务间的通信。当然,这只是一个简单的示例。在实际动手操作的时候,咱们可能还会遇到更多需要解决的活儿,比如得定期给服务做个“体检”,确保它健康运作;再比如做负载均衡,好让各项任务均匀分摊,不至于让某个部分压力山大。但是,有了Nacos的帮助,这些问题都不再是难题。
2023-04-20 17:45:00
99
诗和远方-t
Netty
Netty中的UnexpectedMessageSizeException解决方法全解析 在深入Netty的世界中,我们可能会遇到各种各样的异常情况,其中之一就是UnexpectedMessageSizeException。这个异常通常会在我们处理网络数据流的时候出现,就像是当你收到的消息包大得超出了预期或者超过了系统设定的最大限制,这时候程序就会像扔飞盘一样把这个异常给抛出来。那么,面对这种棘手问题,我们应该如何理解和解决呢?让我们一起探讨和揭秘吧! 1. 异常理解 解密UnexpectedMessageSizeException 在使用Netty进行通信时,尤其是在处理TCP协议的数据流时,由于TCP本身是无边界的,所以需要我们在应用层去判断消息的边界。Netty这家伙有个聪明的做法,就是给每个消息设定一个合适的“大小上限”——maxMessageSize,这样一来,任何消息都不能长得没边儿。要是有哪个消息过于“膨胀”,胆敢超过这个限制值,不好意思,Netty可不会客气,直接会给你抛出一个“意料之外的消息尺寸异常”——UnexpectedMessageSizeException,以此来表明它的原则性和纪律性。 这个异常的背后,实际上是Netty对传输层安全性的保障措施,防止因恶意或错误的大数据包导致内存溢出等问题。 2. 溯源分析 引发异常的原因 下面是一个简单的代码示例,展示了未正确配置maxMessageSize可能引发此异常: java public class MyServerInitializer extends ChannelInitializer { @Override protected void initChannel(SocketChannel ch) throws Exception { ChannelPipeline pipeline = ch.pipeline(); // 假设我们没有设置任何限制 pipeline.addLast(new LengthFieldBasedFrameDecoder(Integer.MAX_VALUE, 0, 4, 0, 4)); pipeline.addLast(new StringDecoder(CharsetUtil.UTF_8)); pipeline.addLast(new ServerHandler()); } } 在上述代码中,我们未给LengthFieldBasedFrameDecoder设置最大帧长度,因此理论上它可以接受任意大小的消息,这就可能导致UnexpectedMessageSizeException。 3. 解决方案 合理设置消息大小限制 为了解决这个问题,我们需要在初始化解码器时,明确指定一个合理的maxMessageSize。例如: java public class MyServerInitializer extends ChannelInitializer { private static final int MAX_FRAME_LENGTH = 1024 1024; // 设置每条消息的最大长度为1MB @Override protected void initChannel(SocketChannel ch) throws Exception { ChannelPipeline pipeline = ch.pipeline(); // 正确设置最大帧长度 pipeline.addLast(new LengthFieldBasedFrameDecoder(MAX_FRAME_LENGTH, 0, 4, 0, 4)); pipeline.addLast(new StringDecoder(CharsetUtil.UTF_8)); pipeline.addLast(new ServerHandler()); } } 这样,如果收到的消息大小超过1MB,LengthFieldBasedFrameDecoder将不再尝试解码并会抛出异常,而不是消耗大量内存。 4. 进一步探讨 异常处理与优化策略 虽然我们已经设置了消息大小的限制,但仍然建议在实际业务场景中对接收到超大消息的情况进行适当的异常处理,比如记录日志、关闭连接等操作: java public class ServerHandler extends SimpleChannelInboundHandler { @Override public void exceptionCaught(ChannelHandlerContext ctx, Throwable cause) { if (cause instanceof TooLongFrameException || cause instanceof UnexpectedMessageSizeException) { System.out.println("Caught an oversized message, closing connection..."); ctx.close(); } else { // 其他异常处理逻辑... } } // ...其他处理器逻辑... } 最后,对于消息大小的设定,并非越大越好,而应根据具体应用场景和服务器资源状况进行权衡。另外,咱们也可以琢磨琢磨用些招儿来对付大消息这个难题,比如把消息分块传输,或者使使劲儿,用压缩算法给它“瘦身”一下。 总的来说,处理Netty中的UnexpectedMessageSizeException关键在于提前预防,合理设置消息大小上限,以及妥善处理异常情况。只有把这些技巧摸得门儿清、运用自如,咱们的Netty应用程序才能真正变得身强力壮、高效无比。在这个过程中,不断地思考、实践与优化,才是编程乐趣之所在!
2023-11-27 15:28:29
151
林中小径
Netty
...理论,还会结合实际的Netty代码实例,让你看得明明白白、学得透透彻彻。 1. 简介 首先,我们需要了解什么是“ChannelNotRegisteredException”。说白了,当你在用Netty时,一个Channel(就相当于一个网络连接)如果没有被正确地挂靠到任何服务管家(像是ServerBootstrap或ClientBootstrap这些家伙),或者这个通道已经被关掉了,这时候系统就会抛出这个异常来提醒你。 2. 为什么会出现ChannelNotRegisteredException? 通常情况下,当我们创建一个新的Channel并试图与它交互时,可能会出现此异常。这是因为我们在捣鼓新频道的时候,忘了把它乖乖地塞进服务处理器里去啦。另一个可能的原因是我们的程序尝试在通道关闭后继续操作。 3. 如何处理ChannelNotRegisteredException? 处理这个问题的关键在于确保我们的Channel始终处于已注册的状态。如果Channel已经被关闭,我们应该避免进一步的操作。 以下是一个简单的Netty服务器示例,展示了如何处理可能出现的ChannelNotRegisteredException: java public class NettyServer { public void start() throws Exception { EventLoopGroup bossGroup = new NioEventLoopGroup(); EventLoopGroup workerGroup = new NioEventLoopGroup(); try { ServerBootstrap b = new ServerBootstrap(); b.group(bossGroup, workerGroup) .channel(NioServerSocketChannel.class) .childHandler(new ChannelInitializer() { @Override protected void initChannel(SocketChannel ch) throws Exception { ch.pipeline().addLast(new EchoServerHandler()); } }); ChannelFuture f = b.bind(9999).sync(); // 监听channel关闭 f.channel().closeFuture().sync(); } finally { bossGroup.shutdownGracefully(); workerGroup.shutdownGracefully(); } } private static class EchoServerHandler extends SimpleChannelInboundHandler { @Override protected void channelRead0(ChannelHandlerContext ctx, String msg) throws Exception { System.out.println("Received: " + msg); ctx.writeAndFlush(msg); } @Override public void exceptionCaught(ChannelHandlerContext ctx, Throwable cause) throws Exception { if (cause instanceof ChannelNotRegisteredException) { System.out.println("Caught ChannelNotRegisteredException"); } else { super.exceptionCaught(ctx, cause); } } } } 在这个例子中,我们创建了一个简单的Echo服务器,它会读取客户端发送的消息并原样返回。要是运行的时候不小心碰到了“ChannelNotRegisteredException”这个异常,我们就会贴心地打印一条消息,告诉用户现在有点小状况。 总的来说,处理ChannelNotRegisteredException需要我们密切关注我们的程序逻辑,并确保所有的Channel都被正确地注册和管理。这事儿确实需要你对咱们的网络通信模型有那么个透彻的理解,不过我可以拍胸脯保证,花在这上面的时间和精力绝对值回票价。你想啊,一个优秀的网络应用程序,那必须得是个处理各种奇奇怪怪的异常状况和错误消息的小能手才行!
2023-05-16 14:50:43
34
青春印记-t
Consul
...service", Address: "127.0.0.1:8080", // 使用环回IP Tags: []string{"tag1", "tag2"}, Meta: map[string]string{"version": "1.0"}, } consulAgent.Service注册(service) 2. 健康检查 Consul会根据你配置的环回IP进行健康检查。比如,你可以设置一个HTTP端点,Consul会定期发送GET请求来验证服务是否可用: yaml - id: my-check name: Service Health Check http: 'http://127.0.0.1:8080/health' interval: "10s" timeout: "3s" 四、注意事项与最佳实践 1. 避免滥用 虽然环回IP是内部通信的理想选择,但过度依赖可能导致外部访问问题。只应在必要时使用,例如服务间的通信。 2. 多IP策略 在多网络环境或负载均衡场景下,可以同时使用环回IP和实际IP,以便在内部通信和外部访问之间切换。 3. 安全考虑 环回IP通常不暴露在外网,但确保其安全仍然是必要的,比如通过防火墙规则限制访问。 五、总结 设置环回IP在Consul中是提高服务可用性和内部通信效率的重要步骤。搞懂环回IP的那点事儿,再加上Consul那些好玩的API和设置技巧,咱们就能轻松搞定微服务架构的那些琐碎事儿了。你知道吗,宝贝,每一个小细节都能决定系统是否顺溜运转,所以我们得像照顾宝宝一样细心对待每个步骤! 希望这篇文章能帮助你更好地理解和应用Consul的环回IP功能。如果你在实践中遇到任何问题,欢迎随时提问,我们一起探讨和学习。祝你在服务发现和配置的道路上越走越远!
2024-06-07 10:44:53
452
梦幻星空
Beego
...ne string Address string } 以上代码中,我们在User模型中定义了一个名为ID的字段,并设置了它的类型为uint和auto。这样,每次插入一条新的用户记录时,ID字段都会自动递增。 三、UUID和自增ID的选择 在实际开发中,我们常常需要根据具体的需求来选择生成哪种类型的ID。如果我们正在捣鼓一个分布式系统,那么选用UUID绝对是个更酷的选择。为啥呢?因为它可以在全球这个大舞台上保证每个ID都是独一无二的,就像每个人都有自己的指纹一样独特。假如我们正在捣鼓一个单机应用,那么选择自增ID可能是个更省心省力的办法。为啥呢?因为它生成的速度贼快,而且出岔子的概率也低得多,这样一来,我们就不用在这方面费太多心思啦! 四、总结 总的来说,生成UUID或自增ID是我们在开发Web应用时经常会遇到的问题。在Beego中,我们可以通过简单的代码就能实现这两种ID的生成。不过呢,具体要用哪种类型的ID,咱们还得根据实际需求来掂量决定。无论我们挑哪一个,只要能把数据的唯一性和安全性稳稳地守住,那就都是个没毛病的选择。
2023-11-17 22:27:26
589
翡翠梦境-t
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