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I simply need to get the 'html' from a particular (cross domain) request.

I'm using the JQuery.ajax() function passing dataType=json so that JQuery generates a script tag and fires off the request. Here's the code:

            var url="http://www.google.com/callback=?";
            $.ajax({
                type: 'GET',
                url: url,
                dataType: 'json',
                success: function(data) {$("#out").append("success "+data); },
                error: function(data) {$("#out").append("failure "+data); },
                complete: function(data) {$("#out").append("complete "+data); },
                data: {},
                async: false
            });

Now, the odd bit is that, using firebug, I do see the generated script tag AND the response from the remote server, but none of my callbacks are being called. Jquery's script tag injection for cross domain calls

How do I get the html returned from the ajax() call? Am I using the wrong function in the first place?

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1 Answer 1

up vote 0 down vote accepted

The callback isn't called because the document returned is not a JavaScript application consisting of a function call to that callback.

JSON-P works by running third party JS that calls a function on your page.

You can't use client side code to get content that isn't expressed as JavaScript from a different origin.

If you want to get such content then you need to proxy it through a server. Either one on the same origin (so you can get the content directly) or one that transforms it to JSON-P.

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Thanks Qeuntin. If you read between the lines, I am trying to get out of the same origin policy, without the need for a proxy. The jsonp hack is so that the browser sends the request, I know the browser receives the output too, but I just cant get a handle to it. I'm ok if the call backs dont execute (async=false should help here) –  Ryan Fernandes Jun 13 '11 at 7:46
    
The browser won't let you get a handle on it, that is the point of the same origin policy. –  Quentin Jun 13 '11 at 7:48
    
well, it sure likes firebug more than it likes me :) –  Ryan Fernandes Jun 13 '11 at 8:01
    
Firebug is a browser extension, it isn't (and doesn't need to be) subject to the same restrictions as code provided by a webpage the user happened to visit. –  Quentin Jun 13 '11 at 8:05

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