4

I want to check if a role is granted for a specific user in Symfony2 (not the logged user). I know that I can check it for the logged user by:

$securityContext = $this->get('security.context');

if (false === $securityContext->isGranted('VIEW', $objectIdentity)) {
        //do anything
}

but if I'm the logged user and I wand to check other user if isGranted ??

6

The "VIEW" is a permission, not a role.

The best way to check if a user has a right (be it a role or permission) would be to access the AccessDecisionManager. Something like:

$token = new UsernamePasswordToken($user, 'none', 'none', $user->getRoles());
$attributes = is_array($attributes) ? $attributes : array($attributes);
$this->get('security.access.decision_manager')->decide($token, $attributes, $object);

See original answer here: https://stackoverflow.com/a/22380765/971254 for details.

  • I think this is the correct answer. Access Control Lists are way too complicated for common use cases. – Alberto Oct 28 '16 at 9:48
5

You just need to create a custom security context that will take a user object and generate a UserSecurityIdentity out of it. Here are the steps:

Create a new service in YourApp/AppBundle/Resources/config.yml

yourapp.security_context:
    class: YourApp\AppBundle\Security\Core\SecurityContext
    arguments: [ @security.acl.provider ]

Create a custom Security Context Class like this:

namespace YourApp\AppBundle\Security\Core;

use Symfony\Component\Security\Acl\Model\MutableAclProviderInterface;
use Symfony\Component\Security\Acl\Domain\ObjectIdentity;
use Symfony\Component\Security\Acl\Domain\UserSecurityIdentity;
use Symfony\Component\Security\Acl\Permission\MaskBuilder;

use Symfony\Component\Security\Acl\Exception\AclNotFoundException;
use Symfony\Component\Security\Acl\Exception\NoAceFoundException;

use YourApp\AppBundle\Document\User;

/**
 * Allows ACL checking against a specific user object (regardless of whether that user is logged in or not)
 *
 */
class SecurityContext
{
    public function __construct(MutableAclProviderInterface $aclProvider)
    {
        $this->aclProvider = $aclProvider;
    }

    public function isGranted($mask, $object, User $user)
    {
        $objectIdentity = ObjectIdentity::fromDomainObject($object);
        $securityIdentity = UserSecurityIdentity::fromAccount($user);

        try {
            $acl = $this->aclProvider->findAcl($objectIdentity, array($securityIdentity));
        } catch (AclNotFoundException $e) {
            return false;
        }

        if (!is_int($mask)) {
            $builder = new MaskBuilder;
            $builder->add($mask);

            $mask = $builder->get();
        }

        try {
            return $acl->isGranted(array($mask), array($securityIdentity), false);
        } catch (NoAceFoundException $e) {
            return false;
        }
    }
}

Now you can inject that service where needed, or use it from a controller like this:

$someUser = $this->findSomeUserFromYourDatabase();

if ($this->get('yourapp.security_context')->isGranted('VIEW', $article, $someUser) {
   // ...
}
1

Checking roles for another user can not be done via the SecurityContext as this will always hold the current user's session token. Your task can be achieved for example via the getRoles method, if the user you need to check implements the UserInterface.

$otherUser = $this->get('doctrine')->...   // fetch the user

if( $otherUser instanceof \Symfony\Component\Security\Core\User\UserInterface  )
{ 
     $roles = $otherUser->getRoles();

     // your role could be VIEW or ROLE_VIEW, check the $roles array above. 
     if ( in_array( 'VIEW' , $roles ) )
     {
      // do something else
     }
}

If your user entity implement the FosUserBundle UserInterFace, that has a dedicated method hasRole. In that case you could use a one-liner:

$otherUser = $this->get('doctrine')->...   // fetch the user

if( $otherUser instanceof \FOS\UserBundle\Model\UserInterface  )
{ 
     // your role could be VIEW or ROLE_VIEW, check the proper role names
     if ( $otherUser->hasRole( 'VIEW' ) )
     {
      // do something else
     }
}
  • 1
    No, I want something like this: $user = $em->getRepository('ZxZZBundle:User')->find($id); if(false === $user->isGranted('VIEW', $objectIdentity) ) { // xxxxx } but User not have isGranted method. – said.seven Jun 6 '14 at 9:47
  • I want to check if he has "VIEW" role on specific entity, for example I want to check if user3 can view Product entity or user2 can create Product entity. – said.seven Jun 6 '14 at 10:42
  • What kind of mechanism are you using to keep track of these ACL definitions? – Debreczeni András Jun 6 '14 at 11:01
  • 4
    Note that in_array() & hasRole() don't take into account the ROLE inheritance – Pierre de LESPINAY Jul 13 '15 at 15:04
-3

The solution pointed by Debreczeni András is the right one.

One can also improve the user class by adding that logic as a method.

So in our user class (the one which implements the UserInterface) we simply add this method:

/**
 * @param string $role
 * @return bool
 */
public function hasRole($role)
{
    if (in_array($role, $this->getRoles())) {
        return true;
    }
    return false;
}

then we are able to use:

$someUser->hasRole('SOME_ROLE');
  • 14
    Please not that this method does not take role inheritance in account defined in your role_hierarchy in security.yml – 10us Jun 10 '16 at 7:12

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