2

I'm trying to generate ajax specific responses from my controllers by using the Request::ajax() method, which is working just fine. The only problem is that the way I have it set up right now isn't really a nice looking solution.

My controller:

class HomeController extends BaseController {

protected $layout = 'layouts/main';

public function __construct()
{
    $this->beforeFilter('auth');
}

public function getIndex()
{
    $view = View::make('content.home.index');
    if(Request::ajax()) return $view; //For ajax calls we only want to return the content to be placed inside our container, without the layout
    $this->layout->menu = 'content.menu';
    $this->layout->content = $view;
}

}

So right now, for every method I define within my controllers I need to add the code snippet that checks for an AJAX request and returns a single view if the statement returns true.

This leads to my question that is probably more PHP related than it is to the framework;

Is there a way of executing my AJAX check on every method call, without actually placing it inside the method? Or is there some other solution to keep my code DRY?

Thanks in advance!

PS: This is my first post on stackoverflow, so feel free to correct me if I made any mistakes

1
  • 1
    I'd make a separate URI for that AJAX call instead of dynamically deciding to send a portion of HTML vs the entire page of HTML. It's closer to how HTTP is intended to be used. You may also consider returning JSON and using some client-side templating, such as MustacheJS – fideloper Nov 15 '13 at 20:01
10

Create a new barebone layout named 'layouts/ajax' (or any name you like).

    <?php echo $content ?>

In your Base controller, override this setupLayout() function.

protected function setupLayout()
{
    if ( ! is_null($this->layout))
    {
        $layout = Request::ajax() ? 'layouts/ajax' : $this->layout;
        $this->layout = View::make($layout);            
    }
}

Change your getIndex() function to this.

public function getIndex()
{
    $view = View::make('content.home.index');
    $this->layout->menu = 'content.menu';
    $this->layout->content = $view;
}

Now non-ajax requests will be rendered using layout set in the controller, where as ajax requests will receive whatever set to $this->layout->content.

Note : Controller will neglect the layout setup in setupLayout(), if the called method returns truthy value. So this method will not work for functions like below.

public function getIndex()
{
    return View::make('content.home.index');
}
3
  • Thanks, that answers my question and looks like a pretty neat solution :) I would upvote your answer if it didn't require 15 reputation :p – Tristan Godfrey Nov 26 '13 at 9:50
  • I think you can accept it as an answer by clicking the check-mark. That way it might help someone else in the future. – tharumax Nov 26 '13 at 14:55
  • Ah, didn't notice that! Checked it :) – Tristan Godfrey Dec 6 '13 at 11:34
1

You could just change the layout property, in the constructor, if it's an ajax request:

public function __construct()
{
    $this->beforeFilter('auth');

    if(Request::ajax()) {
        $this->layout = '';
    }
}

If it doesn't work try setting it to NULL instead.

0
0

Why would you return a VIEW via ajax? Are you using it to create a SPA? If so there are better ways. I'm generally against returning HTML via AJAX.

The route I'd go in your position is probably opposite of how you're doing it. Render the view no matter what, if the request is ajax, pass the extra data back and have JS render the data on the page. That's essentially how most Javascript MVC frameworks function.

Sorry if I am totally missing the point here, just going on an assumption of your end goal with the info you provided.

1
  • Probably is returning HTML instead of JSON, and wants to return a portion of it instead of an entire site (layout + portion) – fideloper Nov 15 '13 at 20:00

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.