28

In Symfony 2.8/3.0, with our fancy new security components, how do I get the currently logged User (i.e. FOSUser) object in a service without injecting the whole container?

Is it even possible in a non-hacky way?

PS: Let's not consider the "pass it to the service function as a parameter" for being trivially obvious. Also, dirty.

46

Inject security.token_storage service into your service, and then use:

$this->token_storage->getToken()->getUser();

as described here: http://symfony.com/doc/current/book/security.html#retrieving-the-user-object and here: http://symfony.com/doc/current/book/service_container.html#referencing-injecting-services

  • I did this, but when I request the token, I get null. Is there something I missed to set? – Mathias Bader Jun 3 '18 at 19:30
  • "Always Check if the User is Logged In It's important to check if the user is authenticated first. If they're not, $user will either be null or the string anon.. Wait, what? Yes, this is a quirk. If you're not logged in, the user is technically the string anon., though the getUser() controller shortcut converts this to null for convenience." symfony.com/doc/3.4/… – Kim Sep 23 '18 at 10:20
27

Using constructor dependency injection, you can do it this way:

use Symfony\Component\Security\Core\Authentication\Token\Storage\TokenStorageInterface;

class A
{
    private $user;

    public function __construct(TokenStorageInterface $tokenStorage)
    {
        $this->user = $tokenStorage->getToken()->getUser();
    }

    public function foo()
    {
        dump($this->user);
    }
}
  • 1
    Why do you say it's only for Symfony 3.3+ ? What part of your code doesn't work in older versions of Symfony? – Radu Murzea Nov 6 '17 at 7:50
  • 1
    For some reason, I thought constructor dependency injection wasn't supported earlier, but that's not true. Thank you for your comment. – Mateusz Nov 7 '17 at 23:52
  • When I call $tokenStorage->getToken() I receive null. What could be the reason for this? The user is logged in ... – Mathias Bader Jun 3 '18 at 19:32
  • If you get $tokenStorage->getToken() equal null, try storing the whole $tokenStorage as a class property, i.e. in __construct(...): $this->tokenStorage = $tokenStorage. – iloo Feb 13 at 10:03
17

New in version 3.4: The Security utility class was introduced in Symfony 3.4.

use Symfony\Component\Security\Core\Security;

public function indexAction(Security $security)
{
    $user = $security->getUser();
}

https://symfony.com/doc/3.4/security.html#always-check-if-the-user-is-logged-in

  • 1
    Seems to be the recommended way... – goulashsoup Feb 7 at 8:46
  • Works for Symfony 4 – Darragh Enright Apr 20 at 13:15
  • I don't fully understand why Security is recommended over TokenStorageInterface and/or AuthorizationCheckerInterface as the class is final which makes it impossible to mock which in turn makes unit testing services dependent on these services harder than it needs to be. – Liiva Jun 26 at 14:39
  • I guess you should never change your code just because of how easy you can write (phpunit) tests for it. Having and using final classes makes much sense. You can mock final classes for example using hooks: tomasvotruba.cz/blog/2019/03/28/… – Kim Jun 26 at 21:36
9

In symfo 4 :

use Symfony\Component\Security\Core\Security;

class ExampleService
{
    private $security;

    public function __construct(Security $security)
    {
        $this->security = $security;
    }

    public function someMethod()
    {
        $user = $this->security->getUser();
    }
}

See doc : https://symfony.com/doc/current/security.html#retrieving-the-user-object

4

From Symfony 3.3, from a Controller only, according this blog post: https://symfony.com/blog/new-in-symfony-3-2-user-value-resolver-for-controllers

It's easy as:

use Symfony\Component\Security\Core\User\UserInterface

public function indexAction(UserInterface $user)
{...}
  • 1
    Look like this doesn't work with FOSUserBundle – Piotrek Zatorski May 26 '18 at 12:47
2

Symfony does this in Symfony\Bundle\FrameworkBundle\ControllerControllerTrait

protected function getUser()
{
    if (!$this->container->has('security.token_storage')) {
        throw new \LogicException('The SecurityBundle is not registered in your application.');
    }

    if (null === $token = $this->container->get('security.token_storage')->getToken()) {
        return;
    }

    if (!is_object($user = $token->getUser())) {
        // e.g. anonymous authentication
        return;
    }

    return $user;
}

So if you simply inject and replace security.token_storage, you're good to go.

1

if you class extend of Controller

$this->get('security.context')->getToken()->getUser();

Or, if you has access to container element..

$container = $this->configurationPool->getContainer();
$user = $container->get('security.context')->getToken()->getUser();

http://symfony.com/blog/new-in-symfony-2-6-security-component-improvements

  • 2
    The class is a service, not a controller (technically, it can be both, but it's rare and ugly). Also, I explicitly asked to not inject the controller. Thus, your answer, though kinda correct, violates both pre-conditions so it's technically invalid. Thanks, though. – xDaizu Apr 27 '16 at 7:39

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