我正在尝试在我的 Web 应用程序中使用 Spring Security 3.0.5。基本上,我想要一个网络服务,它通过 HTTP GET
返回 json 格式的数据。
我已经实现了一个 RESTful 服务,它在请求 url http://localhost:8080/webapp/json
时返回数据。这适用于以下 curl 命令
> curl http://localhost:8080/webapp/json
{"key":"values"}
在我使用spring security添加基本认证后,我可以使用下面的命令来获取数据
> curl http://localhost:8080/webapp/json
<html><head><title>Apache Tomcat/6.0.29 - Error report .....
> curl -u username:password http://localhost:8080/webapp/json
{"key":"values"}
之前的命令返回标准的 tomcat 错误页面,因为现在它需要用户名和密码。 我的问题是是否可以通过打印出我自己的错误消息的方式来处理拒绝访问?即
> curl http://localhost:8080/webapp/json
{"error":"401", "message":"Username and password required"}
这是我的 spring 安全配置和 AccessDeniedHandler
。如您所见,我正在尝试添加 access-denied-handler
,它只是通过 servlet 响应打印出一个字符串,但它仍然不会在命令行上打印我自己的消息。
<?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"
xmlns:context="http://www.springframework.org/schema/context"
xmlns:p="http://www.springframework.org/schema/p"
xsi:schemaLocation="http://www.springframework.org/schema/beans http://www.springframework.org/schema/beans/spring-beans-3.0.xsd
http://www.springframework.org/schema/context http://www.springframework.org/schema/context/spring-context-3.0.xsd
http://www.springframework.org/schema/security http://www.springframework.org/schema/security/spring-security-3.0.xsd">
<global-method-security secured-annotations="enabled"/>
<beans:bean name="access-denied" class="webapp.error.JSONAccessDeniedHandler"></beans:bean>
<http auto-config="true">
<access-denied-handler ref="access-denied"/>
<intercept-url pattern="/json" access="ROLE_USER,ROLE_ADMIN" />
<http-basic />
</http>
<authentication-manager>
<authentication-provider>
<password-encoder hash="md5"/>
<user-service>
...
</user-service>
</authentication-provider>
</authentication-manager>
</beans:beans>
AccessDeniedHandler.java
package webapp.error;
import java.io.IOException;
import java.io.PrintWriter;
import javax.servlet.ServletException;
import javax.servlet.http.HttpServletRequest;
import javax.servlet.http.HttpServletResponse;
import org.springframework.security.access.AccessDeniedException;
import org.springframework.security.web.access.AccessDeniedHandler;
public class JSONAccessDeniedHandler implements AccessDeniedHandler {
@Override
public void handle(HttpServletRequest request, HttpServletResponse response, AccessDeniedException accessDeniedException) throws IOException, ServletException {
PrintWriter writer = response.getWriter();
writer.print("{\"error\":\"401\", \"message\":\"Username and password required\"}");
}
}
最佳答案
我已经解决了我的问题,所以我想我应该在这里分享它。此配置允许服务器根据请求软件发出不同的错误消息。如果请求来自 Web 浏览器,它将检查 User-Agent
header 并在必要时重定向到表单登录。例如,如果请求来自curl
,当认证失败时,它会打印出纯文本错误信息。
<?xml version="1.0" encoding="UTF-8"?>
<beans
xmlns="http://www.springframework.org/schema/beans"
xmlns:sec="http://www.springframework.org/schema/security"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
xmlns:context="http://www.springframework.org/schema/context"
xmlns:p="http://www.springframework.org/schema/p"
xsi:schemaLocation="
http://www.springframework.org/schema/beans http://www.springframework.org/schema/beans/spring-beans-3.0.xsd
http://www.springframework.org/schema/context http://www.springframework.org/schema/context/spring-context-3.0.xsd
http://www.springframework.org/schema/security http://www.springframework.org/schema/security/spring-security-3.0.xsd">
<!-- AspectJ pointcut expression that locates our "post" method and applies security that way
<protect-pointcut expression="execution(* bigbank.*Service.post*(..))" access="ROLE_TELLER"/>-->
<sec:global-method-security secured-annotations="enabled"/>
<bean id="basicAuthenticationFilter"
class="org.springframework.security.web.authentication.www.BasicAuthenticationFilter"
p:authenticationManager-ref="authenticationManager"
p:authenticationEntryPoint-ref="basicAuthenticationEntryPoint" />
<bean id="basicAuthenticationEntryPoint"
class="webapp.PlainTextBasicAuthenticationEntryPoint"
p:realmName="myWebapp"/>
<bean id="formAuthenticationEntryPoint"
class="org.springframework.security.web.authentication.LoginUrlAuthenticationEntryPoint"
p:loginFormUrl="/login.jsp"/>
<bean id="daep" class="org.springframework.security.web.authentication.DelegatingAuthenticationEntryPoint">
<constructor-arg>
<map>
<entry key="hasHeader('User-Agent','Mozilla') or hasHeader('User-Agent','Opera') or hasHeader('User-Agent','Explorer')" value-ref="formAuthenticationEntryPoint" />
</map>
</constructor-arg>
<property name="defaultEntryPoint" ref="basicAuthenticationEntryPoint"/>
</bean>
<sec:http entry-point-ref="daep">
<sec:intercept-url pattern="/login.jsp*" filters="none"/>
<sec:intercept-url pattern="/json" access="ROLE_USER,ROLE_ADMIN" />
<sec:intercept-url pattern="/json/*" access="ROLE_USER,ROLE_ADMIN" />
<sec:logout
logout-url="/logout"
logout-success-url="/home.jsp"/>
<sec:form-login
login-page="/login.jsp"
login-processing-url="/login"
authentication-failure-url="/login.jsp?login_error=1" default-target-url="/home.jsp"/>
<sec:custom-filter position="BASIC_AUTH_FILTER" ref="basicAuthenticationFilter" />
</sec:http>
<sec:authentication-manager alias="authenticationManager">
<sec:authentication-provider>
...
</sec:authentication-provider>
</sec:authentication-manager>
</beans>
PlainTextBasicAuthenticationEntryPoint
通过扩展 org.springframework.security.web.authentication.www.BasicAuthenticationEntryPoint
import java.io.IOException;
import java.io.PrintWriter;
import javax.servlet.ServletException;
import javax.servlet.http.HttpServletRequest;
import javax.servlet.http.HttpServletResponse;
import org.springframework.security.core.AuthenticationException;
import org.springframework.security.web.authentication.www.BasicAuthenticationEntryPoint;
public class PlainTextBasicAuthenticationEntryPoint extends BasicAuthenticationEntryPoint {
@Override
public void commence(HttpServletRequest request, HttpServletResponse response, AuthenticationException authException) throws IOException, ServletException {
response.addHeader("WWW-Authenticate", "Basic realm=\"" + getRealmName() + "\"");
response.setStatus(HttpServletResponse.SC_UNAUTHORIZED);
PrintWriter writer = response.getWriter();
writer.println("HTTP Status " + HttpServletResponse.SC_UNAUTHORIZED + " - " + authException.getMessage());
}
}
关于java - 处理 Spring Security 中基本身份验证的未授权错误消息,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/4397062/