19

I have a multiauth laravel 5.2 app, with the fallowing guards defined on config/auth.php:

...
'admin' => [
    'driver' => 'session',
    'provider' => 'admin',
],
'user' => [
    'driver' => 'session',
    'provider' => 'user',
],
...

So, admin and user.

The problem resides in the view layer, since this two loggedin guards share some views, ex:

Hello {{Auth::guard('admin')->user()->name}}

In this case the guard is hardcoded into the view to be always admin (it gives error when loggedin guard is user), but, to avoid have to do another equal view just for this little change, I would like have it dinamic, something like:

Hello {{Auth::guard(<LOGGEDIN GUARD>)->user()->name}}

PS: I know that this could be achieved getting the corresponding url segment, ex: www.site.com/pt/user/dasboard which in the case it would be segment 2, but this way the app would lose scalability, since in the future the corresponding segment may not be the same (2 in the example above)

  • Have a look here at getGuard() and how it's implemented in Laravel's auth area. Think that will get you going in right direction. – camelCase Aug 17 '16 at 15:01
  • Thanks for the reply, unfortunately Auth::guard($this->getGuard()) triggers Method [getGuard] does not exist. . I guess it's a 5.1 feature, i also checked stackoverflow.com/questions/35624561/… , with same result – Miguel Aug 17 '16 at 15:11
  • Right, since you're not in the auth class and the method is protected, you can't use $this to access it. But you might be able to access with something like Auth::guard(Auth::getGuard()) but I'm not positive. – camelCase Aug 17 '16 at 16:03
  • also didn't work, ...class 'Illuminate\Auth\SessionGuard' does not have a method 'getGuard' – Miguel Aug 17 '16 at 16:44
33

One way to do this is to extend the Laravel authentication class in the IoC container to include, for instance, a name() method that check which guard is used for the current session, and calls user() on that Guard instance.

Another way is to simply use an if-statement in your Blade template:

@if(Auth::guard('admin')->check())
    Hello {{Auth::guard('admin')->user()->name}}
@elseif(Auth::guard('user')->check())
    Hello {{Auth::guard('user')->user()->name}}
@endif

However, this is a little dirty. You can clean this up a bit by using a partial, or by passing the view a variable containing the guard name, either directly from your Controller, or via a ViewComposer, and then doing:

Hello {{Auth::guard($guardName)->user()->name}}

in your View.

Extending Laravel's authentication is your best option, imo.

  • Thanks but that also would remove scalability from the app since the I would be fixed to the admin/user guard – Miguel Aug 17 '16 at 16:43
  • 1
    Very true. That's why extending the Laravel authentication is the better option here. – tomfrio Aug 17 '16 at 17:33
  • 1
    @tomfrio what if you're logged as both? – adam78 Jul 26 '17 at 8:33
  • return me : auth guard [user] is not defined ... but [admin] worked and return false for non admin new user – saber tabatabaee yazdi Oct 1 at 10:27
5

Since Laravel 5.5, this is easy to do with the @auth template directive.

@auth("user")
    You're a user!
@endauth

@auth("admin")
    You're an administrator!
@endauth

@guest
    You're not logged in!
@endguest

Reference: https://laravel.com/docs/5.6/blade#if-statements

  • 1
    i tried with your answer, but when i login with auth('admin'),it show content of admin but it still shows content of guest, i dont know why?! – the manh Nguyen Nov 19 '18 at 10:56
1

I recommend to use global helper function like

function activeGuard(){

foreach(array_keys(config('auth.guards')) as $guard){

    if(auth()->guard($guard)->check()) return $guard;

}
return null;
}
0

This will get the guard name that is used for current logged in user

Auth::getDefaultDriver()

When you log in, by default it will get you the:

'web'

Dependable through which guard you've been logged in it will get you that guard name.

This is not applicable for APIs!!! Because API in laravel by default donesn't use session.

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