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I am using Spring Security 3 in Struts 2 + Spring IOC project.

I have used Custom Filter, Authentication Provider etc. in my Project.

You can see my security.xml here

<?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: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/security
       http://www.springframework.org/schema/security/spring-security-3.1.xsd">


<global-method-security pre-post-annotations="enabled">
        <expression-handler ref="expressionHandler" />
</global-method-security>

<beans:bean id="expressionHandler"
        class="org.springframework.security.access.expression.method.DefaultMethodSecurityExpressionHandler" >
    <beans:property name="permissionEvaluator" ref="customPermissionEvaluator" />
</beans:bean>

<beans:bean class="code.permission.MyCustomPermissionEvaluator" id="customPermissionEvaluator" />

<!-- User Login -->

  <http auto-config="true" use-expressions="true" pattern="/user/*" >
<intercept-url pattern="/index.jsp" access="permitAll"/>
<intercept-url pattern="/user/showLoginPage.action" access="permitAll"/>
<intercept-url pattern="/user/showFirstPage" access="hasRole('ROLE_USER') or hasRole('ROLE_VISIT')"/>
<intercept-url pattern="/user/showSecondUserPage" access="hasRole('ROLE_USER')"/>
<intercept-url pattern="/user/showThirdUserPage" access="hasRole('ROLE_VISIT')"/>
<intercept-url pattern="/user/showFirstPage" access="hasRole('ROLE_USER') or hasRole('ROLE_VISIT')"/>
<form-login login-page="/user/showLoginPage.action" />
<logout invalidate-session="true"
        logout-success-url="/"
        logout-url="/user/j_spring_security_logout"/>
<access-denied-handler ref="myAccessDeniedHandler" />

  <custom-filter before="FORM_LOGIN_FILTER" ref="myApplicationFilter"/>
  </http>

    <beans:bean id="myAccessDeniedHandler" class="code.security.MyAccessDeniedHandler" />

    <beans:bean id="myApplicationFilter" class="code.security.MyApplicationFilter">
        <beans:property name="authenticationManager" ref="authenticationManager"/>
        <beans:property name="authenticationFailureHandler" ref="failureHandler"/>
        <beans:property name="authenticationSuccessHandler" ref="successHandler"/>
    </beans:bean>

    <beans:bean id="successHandler"
  class="org.springframework.security.web.authentication.SavedRequestAwareAuthenticationSuccessHandler">
      <beans:property name="defaultTargetUrl" value="/user/showFirstPage">   </beans:property>
    </beans:bean>

     <beans:bean id="failureHandler"
  class="org.springframework.security.web.authentication.SimpleUrlAuthenticationFailureHandler">
      <beans:property name="defaultFailureUrl" value="/user/showLoginPage.action?login_error=1"/>
    </beans:bean>

    <beans:bean id= "myUserDetailServiceImpl" class="code.security.MyUserDetailServiceImpl">
    </beans:bean>

     <beans:bean id="myAuthenticationProvider" class="code.security.MyAuthenticationProvider">
        <beans:property name="userDetailsService" ref="myUserDetailServiceImpl"/>

    </beans:bean>

 <!-- User Login Ends -->

 <!-- Admin Login -->

    <http auto-config="true" use-expressions="true" pattern="/admin/*" >
    <intercept-url pattern="/index.jsp" access="permitAll"/>
    <intercept-url pattern="/admin/showSecondLogin" access="permitAll"/>
    <intercept-url pattern="/admin/*" access="hasRole('ROLE_ADMIN')"/>
    <form-login login-page="/admin/showSecondLogin"/>
    <logout invalidate-session="true"
        logout-success-url="/"
        logout-url="/admin/j_spring_security_logout"/>

    <access-denied-handler ref="myAccessDeniedHandlerForAdmin" />
    <custom-filter before="FORM_LOGIN_FILTER" ref="myApplicationFilterForAdmin"/> 
</http>

<beans:bean id="myAccessDeniedHandlerForAdmin" class="code.security.admin.MyAccessDeniedHandlerForAdmin" />

  <beans:bean id="myApplicationFilterForAdmin" class="code.security.admin.MyApplicationFilterForAdmin">
        <beans:property name="authenticationManager" ref="authenticationManager"/>
        <beans:property name="authenticationFailureHandler" ref="failureHandlerForAdmin"/>
        <beans:property name="authenticationSuccessHandler" ref="successHandlerForAdmin"/>
   </beans:bean>

    <beans:bean id="successHandlerForAdmin"
  class="org.springframework.security.web.authentication.SavedRequestAwareAuthenticationSuccessHandler">
    </beans:bean>

    <beans:bean id="failureHandlerForAdmin"
  class="org.springframework.security.web.authentication.SimpleUrlAuthenticationFailureHandler">
       <beans:property name="defaultFailureUrl" value="/admin/showSecondLogin?login_error=1"/>
     </beans:bean>

        <authentication-manager alias="authenticationManager">
    <authentication-provider ref="myAuthenticationProviderForAdmin" />
    <authentication-provider ref="myAuthenticationProvider" />
</authentication-manager>

<beans:bean id="myAuthenticationProviderForAdmin" class="code.security.admin.MyAuthenticationProviderForAdmin">
    <beans:property name="userDetailsService" ref="userDetailsServiceForAdmin"/>
</beans:bean>

<beans:bean id= "userDetailsServiceForAdmin" class="code.security.admin.MyUserDetailsServiceForAdminImpl">
</beans:bean>

 <!-- Admin Login Ends -->

<beans:bean id="messageSource"
    class="org.springframework.context.support.ResourceBundleMessageSource">
    <beans:property name="basenames">
        <beans:list>
            <beans:value>code/security/SecurityMessages</beans:value>
        </beans:list>
    </beans:property>            
</beans:bean>

Uptill now you can see, url-pattern I have mentioned is hard coded. I wanted to know if there is a way to create new ROLES and PERMISSIONS dynamically, not hard coded.

Like creating new roles and permissions and saving them to database and then accessing from database. I have searched on net, but I am not able to find out how to add new entries to code.

share|improve this question
    
Do you mean you want dynamic change the access restirction for the urls? –  Ralph Nov 30 '11 at 6:51
    
@Ralph yes. I want to be able to create new roles and then allow them some urls and put restrictions. –  Dark Drake Nov 30 '11 at 7:09
    
what did you ended up using ? –  coding_idiot Nov 12 '13 at 2:27
    
you can find the source code of that here github.com/springinpractice –  Aalkhodiry Dec 19 '13 at 23:18

5 Answers 5

up vote 16 down vote accepted

So this are at least two question:

  • How to make the granted authorities/privileges/Roles dynamic?
  • How to make the access restriction for the URLs dynamic?

1) How to make the granted authorities/privileges/Roles dynamic?

I will not answer this in great detail, because I belive this theme was discusses often enough.

The easiest way would be to store the complete user information: login, password and roles in a database (3 Tables: User, Roles, User2Roles) and use the JdbcDetailService. You can configure the two SQL Statements (for authentication and for granding the roles) very nicely in the xml.

But then the user needs to logout and login to get this new Roles. If this is not acceptable, you must also manipulate the Roles of the current logged in user. They are stored in the users session. I guess the easiest way to do that is to add a filter in the spring security filter chain that updates the Roles for every request, if they needs to be changed.

2) How to make the access restriction for the URLs dynamic?

Here you have at last two ways:

  • Hacking into the FilterSecurityInterceptor and updating the securityMetadataSource, the needed Roles should be stored there. At least you must manipulate the output of the method DefaultFilterInvocationSecurityMetadataSource#lookupAttributes(String url, String method)
  • The other way would be using other expressions for the assess attribute: instead of access="hasRole('ROLE_USER')" for example access="isAllowdForUserPages1To3". Of course you must create that method. This is called a "custom SpEL expression handler" (If you have that create Spring Security 3 Book, then it is chapter (damn it has no chapter numbers) starting at page 210). What you need to do is subclassing WebSecurityExpressionRoot and introducing the new method isAllowdForUserPages1To3. Then you need to subclass DefaultWebSecurityExpressionHandler and modify the createEvaluationContext method. So that it first request StandartEvaluationContext by calling super (you need to cast the result to StandartEvaluationContext). The replace the rootObject in the StandartEvaluationContext by your new CustomWebSecurityExpressionRoot implementation. At least, and that maybe the hardest part, you need to replace the the expressionHanlder attribute of the expressionVoter (WebExpressionVoter) in the xml configuration by your new subclassed DefaultWebSecurityExpressionHandler. (This is hard because you first need to write a lot of security configuration explicite, because you can not access them in the security namespace directly.)
share|improve this answer
    
Thanks a lot for giving this thing time and putting efforts. I really appreciate it. –  Dark Drake Nov 30 '11 at 9:14
    
Can you please tell me any working example of this thing on net ? Because I cannot find proper code. –  Dark Drake Nov 30 '11 at 10:33
    
@Gurparsad Singh: sorry no, I have studied the book I have mentions and build something similar for the methodExpressions - but it is different and not public. (I guess you are asking for point 2). –  Ralph Nov 30 '11 at 10:57
    
+1 for the detailed implementation –  Gaurav Saxena Dec 5 '11 at 10:38
    
@Dark Drake: see stackoverflow.com/a/12372555/280244 for an example for a custom web expression. –  Ralph Dec 11 '12 at 13:38

I would like to supplement response of Ralph about creating custom SpEL expression. His explanations helps me very much to find right way how to do this but I think that they need to be extended.

Here is a way how to create custom SpEL expression:

1) Create custom subclass of WebSecurityExpressionRoot class. In this subclass create new method which you will use in expression. For example:

public class CustomWebSecurityExpressionRoot extends WebSecurityExpressionRoot {

    public CustomWebSecurityExpressionRoot(Authentication a, FilterInvocation fi) {
        super(a, fi);
    }

    public boolean yourCustomMethod() {
        boolean calculatedValue = ...;

        return calculatedValue;

    }
}

2) Create custom subclass of DefaultWebSecurityExpressionHandler class and overrride method createSecurityExpressionRoot(Authentication authentication, FilterInvocation fi) (not createEvaluationContext(...)) in it to return your CustomWebSecurityExpressionRoot instance. For example:

@Component(value="customExpressionHandler")
public class CustomWebSecurityExpressionHandler extends DefaultWebSecurityExpressionHandler {

    @Override
    protected SecurityExpressionRoot createSecurityExpressionRoot(
            Authentication authentication, FilterInvocation fi) {

        WebSecurityExpressionRoot expressionRoot = new CustomWebSecurityExpressionRoot(authentication, fi);

        return expressionRoot;
}}

3) Define in your spring-security.xml reference to your expression handler bean

<security:http access-denied-page="/error403.jsp" use-expressions="true" auto-config="false">
    ...

    <security:expression-handler ref="customExpressionHandler"/>
</security:http>

After this you can use your custom expression instead of standart:

<security:authorize access="yourCustomMethod()">
share|improve this answer

You can use Voter to dynamically restrict access. Also see Get Spring Security intercept urls from database or properties

share|improve this answer

This question has a very straightforward answer. I wonder why you haven't got your answer yet.
There are two things that should be cleared at least:

First, you should know that when you are using namespace, automatically some filters will be added to each URL you have written.

Second, you should also know that what each filter does.

Back to your question:
As you want to have intercept-url to be dynamically configured, you have to remove those namespaces, and replace them with these filters:

<bean id="springSecurityFilterChain" class="org.springframework.security.web.FilterChainProxy">
    <sec:filter-chain-map path-type="ant">
        <sec:filter-chain pattern="/css/**" filters="none" />
        <sec:filter-chain pattern="/images/**" filters="none" />
        <sec:filter-chain pattern="/login.jsp*" filters="none" />
        <sec:filter-chain pattern="/user/showLoginPage.action" filters="none" />
        <sec:filter-chain pattern="/**"
            filters="
        securityContextPersistenceFilter,
        logoutFilter,
        authenticationProcessingFilter,
        exceptionTranslationFilter,
        filterSecurityInterceptor" />
    </sec:filter-chain-map>
</bean>



Then you have to inject your own SecurityMetadaSource into FilterSecurityInterceptor. See the following:

<bean id="filterSecurityInterceptor"
    class="org.springframework.security.web.access.intercept.FilterSecurityInterceptor">
    <property name="authenticationManager" ref="authenticationManager" />
    <property name="accessDecisionManager" ref="accessDecisionManager" />
    <property name="securityMetadataSource" ref="myFilterInvocationSecurityMetadataSource" />
</bean>

<bean id="myFilterInvocationSecurityMetadataSource" class="myPackage.MyFilterSecurityMetadataSource">
</bean>



But before that, you have to customize 'MyFilterSecurityMetadataSource' first.
This class has to implement the 'DefaultFilterInvocationSecurityMetadataSource'.
As you want to have all roles and URLs in your DB, you have to customize its getAttributes

Now see the following example of its implementation:

public class MyFilterSecurityMetadataSource implements FilterInvocationSecurityMetadataSource {


public List<ConfigAttribute> getAttributes(Object object) {
    FilterInvocation fi = (FilterInvocation) object;
    String url = fi.getRequestUrl();
    List<ConfigAttribute> attributes = new ArrayList<ConfigAttribute>();

    attributes = getAttributesByURL(url); //Here Goes Code

    return attributes;
}

public Collection<ConfigAttribute> getAllConfigAttributes() {
    return null;
}

public boolean supports(Class<?> clazz) {
    return FilterInvocation.class.isAssignableFrom(clazz);
}
}


do you see the "Here goes your code" comment? You have to implement that method yourself.
I myself, have a table named URL_ACCESS which contains both URLs and their corresponding roles. After receiving URL from user, I look up into that table and return its related role.

As I'm working exactly on this subject, you may ask any questions... I will always answer.

share|improve this answer
  1. Create your model (user, role, permissions) and a way to retrieve permissions for a given user;
  2. Define your own org.springframework.security.authentication.ProviderManager and configure is (set its providers) to a custom org.springframework.security.authentication.AuthenticationProvider; this last one should return on its authenticate method a Authentication, which should be setted with the GrantedAuthority, in your case, all the permissions for the given user.

The trick in that article is to have roles assigned to users, but, to set the permissions for those roles in the Authentication.authorities object.

For that I advise you to read the API, and see if you can extend some basic ProviderManager and AuthenticationProvider instead of implementing everything. I've done that with LdapAuthenticationProvider setting a custom LdapAuthoritiesPopulator, that would retrieve the correct roles for the user.

share|improve this answer

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