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0

You haven't mentioned authorization for "/welcome" Ex: <intercept-url pattern="/welcome" access="isAuthenticated()" />


0

User unidirectional relation between User and Address if Address object does not supposed to know about its owner (generally it does not). I would prefer user id in Address table if a User have more than one Address (one-to-many relation). But for your question you may design like that, public class User{ ... @OneToOne(CascadeType.REMOVE)//this is ...


0

Adding <%@page session="false"%> to the top of the JSP file should prevent a session from being started. This is unrelated to Spring Security but should meet your needs. There is some very minimal Oracle documentation at the URL below that says: JSP Default Session Requests Generally speaking, servlets do not request an HTTP session by ...


0

Well I found where was the issue. The problem was that I added a constraint to the password size, and the validate were executed before the password was hashed, so the validate pass, then the password was hashed and it doesn't have less than the 15 characters, so it failed when it try to persist the user in the database and then it threw the null pointer ...


0

@Taras and @Burt Thanks I followed as both of you suggested in this answer. Working fine. But invalidate mothod doesn't invalidate session and another user keeps on using application. I don't know why this weird behavior. So I used sessionToInvalidate.setMaxInactiveInterval(1). And this works as I expected.


0

I realise this is from quite some time ago, but I want to put this here to see if it helps someone else. I followed the same idea in http://distigme.wordpress.com/2012/11/01/ajax-and-spring-security-form-based-login/ and had the same issue in that the first returned content was the login page, and the next was a HTTP 403. I think this is the part of Spring ...


0

as of current version (http://docs.spring.io/spring-boot/docs/current/reference/html/common-application-properties.html) there is typo, property is: server.session.timeout


0

According to RFC6749, the OAuth2 Specs, a password grant type must have the client secret passed in either as a request body parameter or as a BASE64 encoded string. The password grant type is not suited for applications that has lesser security or high risk of secrets being exposed to the outer world. For applications which has a user-agent (web browsers), ...


0

Use the ! (not) operator: <sec:intercept-url pattern="/url/domestic/*" access="!hasAuthority('systemAccessRole')"/>


0

In order to use token based security with Spring security, there are multiple options available. Use OAuth Use JWT Implement own interceptor method (Not preferred) How to implement these. Spring provides many samples for using these frameworks, http://projects.spring.io/spring-security-oauth/docs/oauth2.html ...


0

To authenticate with cURL you need to setup HTTP Basic authentication: http.httpBasic();


0

The documentation for Spring oAuth is pretty bad, but the examples they provide are workable if you know your way around Spring Security. I want to to flag here that using oAuth 2 for user authentication isn't recommended and that you should stick to providers that support Open ID Connect. It is not clear to me from a quick glance at Login With Amazon if ...


0

Maybe what you want is @PreFilter: @PreFilter("hasPermission(filterObject, 'com.example.Item', 'read')") List<Item> getItems(Collection<Long> itemIds) Note that item ids that the user has not permission to will be silently dropped.


-2

Spring security work on server side it manage by browser server. There is no need to authenticate in every time. You just allow to use username and password to login in Amazon site. If you are not understand just write your email address to me I just give complete information by mail.


0

I am using Spring Security v4.1. After a lot of reading and testing I disable the crcf security feature for specific urls using xml configuration. <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" ...


3

As Spring Security documentation states: hasRole([role]): Returns true if the current principal has the specified role hasAnyRole([role1,role2]): Returns true if the current principal has any of the supplied roles (given as a comma-separated list of strings). Also, on access attribute, documentation states: access: Lists the access ...


0

If you are using Spring Boot, it automatically configures web security if spring-boot-starter-security is on the classpath. Please refer: https://spring.io/guides/gs/securing-web/#initial Spring web security: is @EnableWebSecurity obsolete?


1

Your XML document has the Spring beans namespace as default namespace. The http element and the other elements from Spring Security are in the security namespace. You need to prefix: <security:http auto-config="true"> <security:intercept-url pattern="/admin**" access="ROLE_USER" /> </security:http> ...


0

I've struggled to get the Google provider working as well. I tried to use Google's Identity Platform OAuth2 Guide as a reference, but really finding end points that worked ended up being trial and error for me. As an example, the accessTokenUri I found from other examples rather than the Google docs, so I can't be sure it is most current. But other ...


3

The principal is the currently logged in user. However, you retrieve it through the security context which is bound to the current thread and as such it's also bound to the current request and its session. SecurityContextHolder.getContext() internally obtains the current SecurityContext implementation through a ThreadLocal variable. Because a request is ...


1

Alternatively you can wrap the Executor used by Hystrix with DelegatingSecurityContextExecutor. See https://docs.spring.io/spring-security/site/docs/current/reference/htmlsingle/#delegatingsecuritycontextexecutor


0

You have to define at least the RoleHierarchie with something like this or whatever the configuration may look like in your case: @Bean public RoleHierarchy roleHierarchy() { RoleHierarchyImpl r = new RoleHierarchyImpl(); r.setHierarchy("ROLE_ADMIN > ROLE_STAFF"); r.setHierarchy("ROLE_STAFF > ROLE_USER"); r.setHierarchy("ROLE_DEVELOPER > ...


0

Why use some random filter when Spring has one built-in? Safe from what? What is your threat model? It's fine to return the CSRF token in every response, even if you don't use it. The same-origin policy prevents other sites from reading the response.


0

After digging a little bit, it seems that the huge amount of requests was the IE9 client trying to reconnect. I found what was my problem. I forgot to add <async-supported>true</async-supported> on several <servlet> and <filter> definitions.


0

Try by changing web.xml to like below...add load on start up <servlet> <servlet-name>HelloWorld</servlet-name> <servlet-class>org.springframework.web.servlet.DispatcherServlet</servlet-class> <load-on-startup>1</load-on-startup> </servlet> <servlet-mapping> ...


0

I had the same problem and it took ages to figure out a workaround: @Override protected void configure(HttpSecurity http) throws Exception { // Authentication is not needed for the login page // Permit access to VAADIN resources explicitly http.authorizeRequests().antMatchers( "/vaadinServlet/**", "/login") ...


0

Spring has an abstract implementation for username/password authentication. Extend it to your required implementation. https://github.com/spring-projects/spring-security/blob/master/core/src/main/java/org/springframework/security/authentication/dao/AbstractUserDetailsAuthenticationProvider.java


0

I had a weird issue that would cause on login to redirect the user to localhost:8080/js/bootstrap.min.js If anyone else is experiencing an odd redirection on login, which seems to override the .defaultSuccessUrl(), then try adding this code below in SecurityConfig: @Override public void configure(WebSecurity security){ ...


0

Should be handled by this ticket - https://jira.sonarsource.com/browse/SONARJAVA-1691


-1

Try this: def sessions = ContextListener.instance().getSessions() def sessionToInvalidate = sessions.find{it.id == sessionId} Update: as Burt Beckwith mentioned, ContextListener is not standart class. However, it's easy to implement. You can see how it's implemented in App info grails plugin here


0

Invalidation should work. This code is 100% working on grails 2.3.5, spring-security-core:2.0.0 def sessions = ContextListener.instance().getSessions() def sessionToInvalidate = sessions.find{it.id == someId} sessionToInvalidate.invalidate() Update: ContextListener is not standart class. However, it's easy to implement. You can see how it's ...


0

You will need to create a custom CallbackHandler and implement its handle method. In your authenticationManager class, call this method and pass username and password to it. More details can be found here: http://cxf.apache.org/docs/ws-security.html


0

You could catch SessionConnectedEvent inside your event listener. I explained how to do it in this post This is the excerpt from Spring Websocket documentation: SessionConnectEvent — published when a new STOMP CONNECT is received indicating the start of a new client session. The event contains the message representing the connect including the session ...


0

I think you should to add one more method of HttpSecurity class, something like that: .... .and() .authorizeRequests() .antMatchers("/internal/application/info") .permitAll() ....


0

I had:3,1,1 the save problem with my application. I solved it by adding as a library to my project. However I had to change import package to make it work. import org.springframework.security.access.annotation.Secured I am using IntelliJ IDEA, I just has to search the maven repo for the spring-security-core:3.1.1. In IntelliJ you do : File > Project ...


0

Ended up using the spring source code as a base for rolling our own. Not hard really.


0

If you are using Spring Security ver >= 3.2, you can use the @AuthenticationPrincipal annotation: @RequestMapping(method = RequestMethod.GET) public ModelAndView showResults(@AuthenticationPrincipal CustomUser customUser, HttpServletRequest request) { String currentUsername = currentUser.getUsername(); // ... } Here, CustomUser is an object that ...


0

Without answering the question about how to create and inject Authentication objects, Spring Security 4.0 provides some welcome alternatives when it comes to testing. The @WithMockUser annotation enables the developer to specify a mock user (with optional authorities, username, password and roles) in a neat way: @Test @WithMockUser(username = "admin", ...


0

Spring security provides all these features and makes implementing these features simple. Yes your approach is right. you can add below cases. security none: allow unauthenticated users access to certain pages.(login, public pages) authenticated: allow access to authenticated users.. (general access to all registered users) restrict based on role: ...


0

I modified @Prakash Hari Sharma's solution and had the following code that worked for me. Note, th: prefix if using Thymeleaf. --Header section <meta th:name="_csrf" th:content="${_csrf.token}"/> <meta th:name="_csrf_header" th:content="${_csrf.headerName}"/> Ajax script function ... ... var token = $("meta[name='_csrf']").attr("content"); ...


0

change my Test with add GrandAuthorities , but isUserinRole also "false" @Test public void testDispatcher() throws Exception { User user = userDao.findByLogin("log1"); String sRole = user.getRole().getName(); List<GrantedAuthority> authorities = new ArrayList<GrantedAuthority>(); ...


0

The userProfileUpdate() method is both setting up the update_user.jsp and also updating the user entity object before the update_user.jsp page is displayed. Try to split up the logic into two methods, one that sets up the update_user.jsp and another that handles the post that calls the userservice.update() method like the following. @RequestMapping(value = ...


-1

So whats the problem? next level with AUTHORIZATION_CODE you will pass user approval and then you can request an access_token by this way : https://yourhost/oauth/token?client_id=CLIENT_ID&client_secret=CLIENT_SECRET&grant_type=authorization_code&code=AUTHORIZATION_CODE&redirect_uri=CALLBACK_URL take a look at : ...


0

The ClientDetails interface has a getResourceIds() method which should return all the resources that your client has access to. You need to populate this with the clients allowed resources when loading the client details. Once this is done, the any tokens issued to that client will only be able to be used for those resources.


-1

You can have any number of private key entries in your keystore... but you can configure only one private key to spring saml... you private key should be of type Entry type: PrivateKeyEntry .. and update your spring-security.xml to have alias of the private key. E.g. <!-- Central storage of cryptographic keys --> <bean ...


0

It can be done. Inside the SecurityConfig class by using the @Order annotation and declaring multiple classes that extend WebSecurityConfigurerAdapter: @Order(1) @Configuration public static class FirstConfigurationAdapter extends WebSecurityConfigurerAdapter { @Override protected void configure(HttpSecurity http) throws Exception { /* Settings for ...


2

I had this error as well, and the problem turned out that, with cut and paste, I had inadvertently listed the same bean twice in my spring-servlet.xml: <bean id="pathInfoHelper" class="org.nationalhistory.util.PathInfoHelper"> </bean> <bean id="imageIndexer" class="org.nationalhistory.util.ImageIndexer"/> <bean id="pathInfoHelper" ...


0

1.You can create a custom filter CustomUsernamePasswordAuthenticationFilter, It will look something like this: public class CustomUsernamePasswordAuthenticationFilter extends UsernamePasswordAuthenticationFilter{ @Override public Authentication attemptAuthentication(HttpServletRequest request, HttpServletResponse response) throws ...


0

After setting the login page URL and the login process URL as the same URL the redirection started working correctly


0

You need to import the signed certificate using the same alias as the private key. Now my when I list my jks file I have two entries, one private You should only have one, private.



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