37

I'm new to Spring Security. How do I add an event listener which will be called as a user logs in successfully? Also I need to get some kind of unique session ID in this listener which should be available further on. I need this ID to synchronize with another server.

50

You need to define a Spring Bean which implements ApplicationListener.

Then, in your code, do something like this:

public void onApplicationEvent(ApplicationEvent appEvent)
{
    if (appEvent instanceof AuthenticationSuccessEvent)
    {
        AuthenticationSuccessEvent event = (AuthenticationSuccessEvent) appEvent;
        UserDetails userDetails = (UserDetails) event.getAuthentication().getPrincipal();

        // ....
    }
}

Then, in your applicationContext.xml file, just define that bean and it will automatically start receiving events :)

| improve this answer | |
  • Thanks! Just found AuthenticationSuccessEvent but was trying to figure out how to register a listener. – axk Oct 8 '08 at 12:36
  • 2
    what about the session ID he was asking about? – siebmanb Feb 26 '15 at 10:28
  • 1
    @siebmanb just add @Autowired HttpSession session to the listener. Spring will inject a proxy which automagically delegates to the correction session. – Marcel Stör Feb 17 '16 at 22:43
47

The problem with AuthenticationSuccessEvent is it doesn't get published on remember-me login. If you're using remember-me authentication use InteractiveAuthenticationSuccessEvent instead, it works for normal login as well as for remember-me login.

@Component
public class LoginListener implements ApplicationListener<InteractiveAuthenticationSuccessEvent> {

    @Override
    public void onApplicationEvent(InteractiveAuthenticationSuccessEvent event)
    {
        UserDetails userDetails = (UserDetails) event.getAuthentication().getPrincipal();
        // ...
    }
}
| improve this answer | |
24

Similar to Phill's answer, but modified to take Generics into consideration:

public class AuthenticationListener implements ApplicationListener<AuthenticationSuccessEvent> {

  @Override
  public void onApplicationEvent(final AuthenticationSuccessEvent event) {

      // ...

  }

}
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10

In Grails, with Spring Security Plugin, you can do this in Config.groovy:

grails.plugins.springsecurity.useSecurityEventListener = true

grails.plugins.springsecurity.onAuthenticationSuccessEvent = { e, appCtx ->

        def session = SecurityRequestHolder.request.getSession(false)
        session.myVar = true

}
| improve this answer | |
  • Right way to get request in Config.groovy def request= RequestContextHolder?.currentRequestAttributes(); – openSource Apr 25 '13 at 23:37
  • 1
    Does anyone know how to get the current logged in user in this event? I am currently using def springSecurityService = Holders.grailsApplication.mainContext.getBean 'springSecurityService'; def user = springSecurityService.getPrincipal() but user is always null. Thank you! EDIT: Looks like doing def user = event.getAuthentication().getPrincipal() works great! – Pudpuduk Jun 10 '14 at 6:57
3

Another way using @EventListener

@EventListener
public void doSomething(InteractiveAuthenticationSuccessEvent event) { // any spring event
    // your code 

}
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