Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am dynamically loading content into my modals, and often it will be a page that is already a normally accessible page on my site.

So I want to be able to reuse that controller/action and load it into my modal but obviously the controller already uses a layout. So when I load the page into my modal, the header and footer of my site is all in the modal again, which I don't want.


One solution I thought of that might work, but seems like a dirty workaround, is to have in my Appcontroller a check for a URL parameter that says it is a modal call for the page (not a regular call). It then overrides the layout with a special modal one.

//app_controller.php

public function beforeRender() {
    if (isset($this->params['passed']['_modal'])) {
        $this->layout = 'modal';
    }
}

// In my jQuery call to open the modal:

myModal.load('users/view/5/_modal').dialog('open');

Then in the modal.ctp layout I would include a stylesheet that looks something like:

// modal_layout.css

@import url("normal_layout.css");

.header, .footer {display:none;}

So I don't have to redefine all of my normal layout's CSS but I can just hide the parts I don't want to show.

This seems like a bit of a stupid method of doing it, and I don't know if it even works, but surely someone has had to do this before with CakePHP, so what would you guys suggest?

share|improve this question

5 Answers 5

if ($this->request->is('ajax')) {
     $this->layout = 'ajax';            
}

Now you can configure your Layout/ajax.ctp as you want.

share|improve this answer

You could create an element.

$('#myModal').load("<?=url('users/view/5/_modal')?>", {type:'post'}, function(){
            $('#myModal').dialog({title:'open',autoOpen:false, modal:false, height:600, width:700});
            $('#myModal').dialog('open');
        });

function view($my_customer_id, action) {
//do stuff here 
$this->render(DS.'elements'.DS.'users'.DS.'modal');
}
share|improve this answer

use RequestHandler to detect ajax request. Put this line at the end of your action:

if ($this->RequestHandler->isAjax())$this->render('view_name','ajax');
share|improve this answer
    
But then won't it request the layout, view, CSS, JS etc. even if it is just an Ajax request with no view? –  BadHorsie Aug 11 '11 at 11:09
up vote 0 down vote accepted

It turned out I didn't need to anything so complex. I simply created a hidden div in my layout:

<div id="modal"></div>

And then in my layout's existing CSS I added certain rules to hide elements I don't want to see when a page is loaded in a modal:

#header, #footer {display:none;}

That way I can load a page into the modal but it still has all the normal styling that is already defined in the layout's CSS. Pages are loaded into the modal by using their normal CakePHP URL:

$('#modal').load('controller/action/param:whatever').dialog('open');
share|improve this answer

If you want the content of your modal dialog box to be simply the content of the view of an action you simply need to add the following a the top of the controller's action:

$this->layout = null;

This will disable the layout and all output the content{html} of the view

share|improve this answer
    
Yes but my layout contains the stylesheet that will make the content in my view look nice and the same as it normally does if you were to visit that page. –  BadHorsie Aug 11 '11 at 14:37
    
fair enough. Setting a different layout would do the trick. You can also simply reference you css from within the view itself. –  ElGabbu Aug 11 '11 at 14:43

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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