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I have just recently started working with Laravel. Great framework so far! However I have a question.

I am using a layout template like this: public $layout = 'layouts.private';

This is set in my Base_Controller:

public function __construct(){

    //Styles
    Asset::add('reset', 'css/reset.css');
    Asset::add('main', 'css/main.css');

    //Scripts
    Asset::add('jQuery', 'http://ajax.googleapis.com/ajax/libs/jquery/1.8.1/jquery.min.js');

    //Switch layout template according to the users auth credentials.
    if (Auth::check()) {
        $this -> layout = 'layouts.private';
    } else {
        $this -> layout = 'layouts.public';
    }

    parent::__construct();

}

However I get an error exception now when I try to access functions in my diffrent controllers, which should not call any view, i.e. when a user is going to login:

class Login_Controller extends Base_Controller {

public $restful = true;

public function post_index()
{

    $user = new User();
    $credentials = array('username' => Input::get('email'), 'password' => Input::get('password'));

    if (Auth::attempt($credentials))
    {

    } else {

    }

}

}

The error I get, is that I do not set the content of the different variables in my public $layout. But since no view is needed in this function, how do I tell Laravel not to include the layout in this function?

The best solution that I my self have come a cross (don't know if this is a bad way?) is to unset($this -> layout); from function post_index()...

To sum up my question: how do I tell Laravel not to include public $layout in certain functions, where a view is not needed?

Thanks in advance, fischer

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What did the documentation of lavarel told you about this? We're not lavarel developers her pre-se, so you've probably dedicated your question to the wrong audience? –  hakre Sep 30 '12 at 10:41
    
Perhaps unseting $this->layout would be best. A better option would be only to include the $layout public only in the controllers that need it. Alternatively, you could call upon a Blade view which imports the layout if it requires it. –  Mike Anthony Oct 1 '12 at 10:29
    
I don't think there is a "correct" way to do this... You could either set $this->layout to a new template, or unsetting it should be fine if you don't want to have a layout at all for that page. I would probably create "public" or "login" layout or something and set it to that whenever I need it. i.e. $this->layout = 'public' –  Chris Schmitz Oct 1 '12 at 18:54
    
Great! Thanks for your comments guys! I will try fiddling a little more with it and have a look at using blade templating :) –  fischer Oct 2 '12 at 10:19
    
Are you declaring the 'layout' variable before trying to assign it? Normally you'd add public $layout = "my.layout" with the public $restful = true variable. –  PapaSmurf Oct 3 '12 at 10:04

2 Answers 2

up vote 2 down vote accepted

You need to set $this->layout = null on any function you don't want to render the view.

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If a view isn't needed then it should be a redirect. What else is going on in that login method of yours?

What you should be doing is showing a login form on the GET login page. This page posts to the POST login page where you do validation and authentication. Regardless of what happens at the authentication level the user should then be redirect back to a GET request where another view will be displayed. This will either be the login form again if they failed or their control panel/home page.

This is a web development pattern called Post/Redirect/Get and should be applied in most cases. I can't think of a case where you would apply it.

In this method of yours, no view is needed, but you should still be redirecting as such.

return Redirect::to('wherever');

Remember that you must return the redirect or Laravel will assume you want to use your layout as the response.

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