9

How can I inject the current logged in user model to my controller?

For example, in my controller I currently have:

public function update(SaveAccountRequest $request)
{
    $user = User::findOrFail(Auth::user()->id);

    $user->first_name = $request->get('first_name');
    $user->last_name = $request->get('last_name');
    $user->email = $request->get('email');

    if($request->has('password')) {
        $user->password = Hash::make($request->get('password'));
    }

    $user->save();

    return redirect('/admin/account')->with('success', 'Your details have been saved.');
}

But instead of having this line:

$user = User::findOrFail(Auth::user()->id);

It would be nice just to inject the User model into my controller which loads in the already logged in user, so that I could us this instead:

public function update(SaveAccountRequest $request, User $user)
{
    $user->first_name = $request->get('first_name');
    $user->last_name = $request->get('last_name');
    $user->email = $request->get('email');

    if($request->has('password')) {
        $user->password = Hash::make($request->get('password'));
    }

    $user->save();

    return redirect('/admin/account')->with('success', 'Your details have been saved.');
}

How can I achieve this?

1
  • have you tried using the user id, for the second parameter that's probably far easier. Aug 8, 2015 at 9:47

4 Answers 4

14

The Request object (and in turn, any form request classes) have access to the currently authenticated user:

public function update(SaveAccountRequest $request)
{
    $user = $request->user();

    $user->first_name = $request->input('first_name');
    $user->last_name = $request->input('last_name');
    $user->email = $request->input('email');

    if ($request->has('password')) {
        $user->password = bcrypt($request->input('password'));
    }

    $user->save();

    return redirect('/admin/account')->with('success', 'Your details have been saved.');
}

No need to inject any thing, use façades, or query the database.

Also, if your attributes are marked as fillable you could just mass-assign them, without having to assign each property on your User model individually:

$user = $request->user()->fill($request->except('password'));

if ($request->has('password')) {
    $user->password = bcrypt($request->input('password'));
}

$user->save();
0
9

In order to have current user injected, you'll need to implement a simple service provider. Two simple steps are needed to achieve that:

  1. Implement the provider

    //app/Providers/CurrentUserServiceProvider.php
    <?php namespace App\Providers;
    
    use Illuminate\Support\ServiceProvider;
    
    class CurrentUserServiceProvider extends ServiceProvider
    {
      public function register() 
      {
        $this->app->bind(User::class, function ($app) {
          return Auth::user();  
        });
      }
    }
    
  2. Register your provider

    //config/app.php
    'providers' => [
      //here go existing providers
      'App\Providers\CurrentUserServiceProvider'
    ]
    
2
9

Since laravel 5.0, the class Illuminate\Contracts\Auth\Authenticatable can be used to inject the currently logged in user into the controller or class being resolved from the ioc container.

2
  • 1
    this is the correct answer to the original question.
    – chugadie
    Feb 25, 2020 at 17:58
  • 2
    @chugadie - do you mean like this? public function myAction(Authenticable $user)
    – kimsal
    Feb 26, 2020 at 14:04
-1

L5 you can try Facade:

use Illuminate\Support\Facades\Auth;
1
  • a) If you look you'll see he's already using the Facade. b) the question asks for dependency injection, not an anti-pattern. Jan 7, 2020 at 0:24

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