我在我的项目中实现了这个安全过程: Spring Security 3 - MVC Integration Tutorial (Part 2)
我的问题是我需要将其转换为基于Ajax的登录。
为了使这个XML适合只返回客户端的字符串/ JSON,我需要做什么?
我了解问题可能出在form-login
标记中。
<?xml version="1.0" encoding="UTF-8"?>
<beans:beans xmlns="http://www.springframework.org/schema/security"
xmlns:beans="http://www.springframework.org/schema/beans"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
xsi:schemaLocation="http://www.springframework.org/schema/beans
http://www.springframework.org/schema/beans/spring-beans-3.0.xsd
http://www.springframework.org/schema/security
http://www.springframework.org/schema/security/spring-security-3.0.xsd">
<!-- This is where we configure Spring-Security -->
<http auto-config="true" use-expressions="true" access-denied-page="/Management/auth/denied" >
<intercept-url pattern="/Management/auth/login" access="permitAll"/>
<intercept-url pattern="/Management/main/admin" access="hasRole('ROLE_ADMIN')"/>
<intercept-url pattern="/Management/main/common" access="hasRole('ROLE_USER')"/>
<form-login
login-page="/Management/auth/login"
authentication-failure-url="/Management/auth/login?error=true"
default-target-url="/Management/main/common"/>
<logout
invalidate-session="true"
logout-success-url="/Management/auth/login"
logout-url="/Management/auth/logout"/>
</http>
<!-- Declare an authentication-manager to use a custom userDetailsService -->
<authentication-manager>
<authentication-provider user-service-ref="customUserDetailsService">
<password-encoder ref="passwordEncoder"/>
</authentication-provider>
</authentication-manager>
<!-- Use a Md5 encoder since the user's passwords are stored as Md5 in the database -->
<beans:bean class="org.springframework.security.authentication.encoding.Md5PasswordEncoder" id="passwordEncoder"/>
<!-- A custom service where Spring will retrieve users and their corresponding access levels -->
<beans:bean id="customUserDetailsService" class="com.affiliates.service.CustomUserDetailsService"/>
</beans:beans>
答案 0 :(得分:21)
这是一个老帖子,但它仍然是“春季安全ajax登录”的最佳结果之一,所以我想我会分享我的解决方案。它遵循Spring Security标准并且设置起来非常简单,诀窍是在安全配置中有2个<http>
元素,一个用于REST / Ajax,另一个用于应用程序的其余部分(常规HTML页面)。 <http>
显示的顺序非常重要,它必须从更具体的URL转到更通用的URL,就像<url-intercept>
中的<http>
元素一样。
第1步:设置两个单独的<http>
<?xml version="1.0" encoding="UTF-8"?>
<beans:beans xmlns="http://www.springframework.org/schema/security"
xmlns:p="http://www.springframework.org/schema/p"
xmlns:beans="http://www.springframework.org/schema/beans"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
xsi:schemaLocation="http://www.springframework.org/schema/beans http://www.springframework.org/schema/beans/spring-beans-3.1.xsd
http://www.springframework.org/schema/security http://www.springframework.org/schema/security/spring-security-3.1.xsd">
<!-- a shared request cache is required for multiple http elements -->
<beans:bean id="requestCache" class="org.springframework.security.web.savedrequest.HttpSessionRequestCache" />
<!-- remove security from static resources to avoid going through the security filter chain -->
<http pattern="/resources/**" security="none" />
<!-- http config for REST services (AJAX interface)
=================================================== -->
<http auto-config="true" use-expressions="true" pattern="/rest/**">
<!-- login configuration
login-processing-url="/rest/security/login-processing" front-end AJAX requests for authentication POST to this URL
login-page="/rest/security/login-page" means "authentication is required"
authentication-failure-url="/rest/security/authentication-failure" means "authentication failed, bad credentials or other security exception"
default-target-url="/rest/security/default-target" front-end AJAX requests are redirected here after success authentication
-->
<form-login
login-processing-url="/rest/security/login-processing"
login-page="/rest/security/login-page"
authentication-failure-url="/rest/security/authentication-failure"
default-target-url="/rest/security/default-target"
always-use-default-target="true" />
<logout logout-url="/rest/security/logout-url" />
<!-- REST services can be secured here, will respond with JSON instead of HTML -->
<intercept-url pattern="/rest/calendar/**" access="hasRole('ROLE_USER')" />
<!-- other REST intercept-urls go here -->
<!-- end it with a catch all -->
<intercept-url pattern="/rest/**" access="isAuthenticated()" />
<!-- reference to the shared request cache -->
<request-cache ref="requestCache"/>
</http>
<!-- http config for regular HTML pages
=================================================== -->
<http auto-config="true" use-expressions="true">
<form-login
login-processing-url="/security/j_spring_security_check"
login-page="/login"
authentication-failure-url="/login?login_error=t" />
<logout logout-url="/security/j_spring_security_logout" />
<intercept-url pattern="/calendar/**" access="hasRole('ROLE_USER')" />
<!-- other intercept-urls go here -->
<!-- in my app's case, the HTML config ends with permitting all users and requiring HTTPS
it is always a good idea to send sensitive information like passwords over HTTPS -->
<intercept-url pattern="/**" access="permitAll" requires-channel="https" />
<!-- reference to the shared request cache -->
<request-cache ref="requestCache"/>
</http>
<!-- authentication manager and other configuration go below -->
</beans:beans>
第2步:REST身份验证控制器
import org.springframework.http.HttpHeaders;
import org.springframework.http.HttpStatus;
import org.springframework.http.ResponseEntity;
import org.springframework.security.core.Authentication;
import org.springframework.security.core.context.SecurityContextHolder;
import org.springframework.stereotype.Controller;
import org.springframework.web.bind.annotation.RequestMapping;
import org.springframework.web.bind.annotation.RequestMethod;
import flexjson.JSONSerializer;
@Controller
@RequestMapping(value = "/rest/security")
public class RestAuthenticationController {
public HttpHeaders getJsonHeaders() {
HttpHeaders headers = new HttpHeaders();
headers.add("Content-Type", "application/json");
return headers;
}
@RequestMapping(value="/login-page", method = RequestMethod.GET)
public ResponseEntity<String> apiLoginPage() {
return new ResponseEntity<String>(getJsonHeaders(), HttpStatus.UNAUTHORIZED);
}
@RequestMapping(value="/authentication-failure", method = RequestMethod.GET)
public ResponseEntity<String> apiAuthenticationFailure() {
// return HttpStatus.OK to let your front-end know the request completed (no 401, it will cause you to go back to login again, loops, not good)
// include some message code to indicate unsuccessful login
return new ResponseEntity<String>("{\"success\" : false, \"message\" : \"authentication-failure\"}", getJsonHeaders(), HttpStatus.OK);
}
@RequestMapping(value="/default-target", method = RequestMethod.GET)
public ResponseEntity<String> apiDefaultTarget() {
Authentication authentication = SecurityContextHolder.getContext().getAuthentication();
// exclude/include whatever fields you need
String userJson = new JSONSerializer().exclude("*.class", "*.password").serialize(authentication);
return new ResponseEntity<String>(userJson, getJsonHeaders(), HttpStatus.OK);
}
}
第3步:提交AJAX表单并处理响应,需要jQuery的ajaxForm库
<form action="/rest/security/login-processing" method="POST">
...
</form>
$('form').ajaxForm({
success: function(response, statusText, xhr, $form) {
console.log(response);
if(response == null || response.username == null) {
alert("authentication failure");
} else {
// response is JSON version of the Spring's Authentication
alert("authentication success");
}
},
error: function(response, statusText, error, $form) {
if(response != null && response.message == "authentication-failure") {
alert("authentication failure");
}
}
});
答案 1 :(得分:5)
这取决于你的ajax-login的实现。无论如何,我猜你需要实现一个自定义过滤器。有两个很好的教程可以将Spring Security与ExtJs一起使用:
Integrating Spring Security 3 with Extjs
Integrating Spring Security with ExtJS Login Page
对于其他Ajax登录表单,它应该非常相似。
答案 2 :(得分:4)
Spring正在从基于XML的配置转向Java @Configuration
类。以下是上面帖子(Spring Security Ajax login)中解释的设置的@Configuration
版本。第2步&amp; 3保持不变,用此代码替换步骤1。订单再次变得重要,需要在更通用的定义之前加载更具体的定义,使用@Order(1)
和@Order(2)
来控制它。
import org.springframework.beans.factory.annotation.Autowired;
import org.springframework.context.annotation.Bean;
import org.springframework.context.annotation.Configuration;
import org.springframework.core.annotation.Order;
import org.springframework.security.config.annotation.web.builders.HttpSecurity;
import org.springframework.security.config.annotation.web.builders.WebSecurity;
import org.springframework.security.config.annotation.web.configuration.EnableWebSecurity;
import org.springframework.security.config.annotation.web.configuration.WebSecurityConfigurerAdapter;
import org.springframework.security.web.savedrequest.HttpSessionRequestCache;
import org.springframework.security.web.savedrequest.RequestCache;
@Configuration
@EnableWebSecurity
public class WebMvcSecurityConfiguration extends WebSecurityConfigurerAdapter {
@Bean(name = "requestCache")
public RequestCache getRequestCache() {
return new HttpSessionRequestCache();
}
@Configuration
@Order(1)
public static class ApiWebSecurityConfigurationAdapter extends WebSecurityConfigurerAdapter {
@Autowired private RequestCache requestCache;
@Override
protected void configure(HttpSecurity http) throws Exception {
http
.regexMatcher("/rest.*")
.authorizeRequests()
.antMatchers("/rest/calendar/**")
.hasAuthority("ROLE_USER")
.antMatchers("/rest/**")
.permitAll()
.and()
.headers()
.xssProtection()
.and()
.logout()
.logoutUrl("/rest/security/logout-url")
.and()
.requestCache()
.requestCache(requestCache)
.and()
.formLogin()
.loginProcessingUrl("/rest/security/login-processing")
.loginPage("/rest/security/login-page")
.failureUrl("/rest/security/authentication-failure")
.defaultSuccessUrl("/rest/security/default-target", false)
.and()
.httpBasic();
}
}
@Configuration
@Order(2)
public static class FormLoginWebSecurityConfigurerAdapter extends WebSecurityConfigurerAdapter {
@Autowired private RequestCache requestCache;
@Override
protected void configure(HttpSecurity http) throws Exception {
http
.authorizeRequests()
.regexMatchers("/calendar/.*")
.hasAuthority("ROLE_USER")
.regexMatchers("/.*")
.permitAll()
.and()
.logout()
.logoutUrl("/security/j_spring_security_logout")
.and()
.requestCache()
.requestCache(requestCache)
.and()
.formLogin()
.loginProcessingUrl("/security/j_spring_security_check")
.loginPage("/login")
.failureUrl("/login?login_error=t" )
.and()
.httpBasic();
}
}
@Override
public void configure(WebSecurity web) throws Exception {
web
.ignoring()
.antMatchers("/resources/**")
.antMatchers("/sitemap.xml");
}
}
答案 3 :(得分:0)
您可以使用HttpServletRequest.login(username,password)
登录,就像:
@Controller
@RequestMapping("/login")
public class AjaxLoginController {
@RequestMapping(method = RequestMethod.POST)
@ResponseBody
public String performLogin(
@RequestParam("username") String username,
@RequestParam("password") String password,
HttpServletRequest request, HttpServletResponse response) {
try {
request.login(username,password);
return "{\"status\": true}";
} catch (Exception e) {
return "{\"status\": false, \"error\": \"Bad Credentials\"}";
}
}