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I've done some jQuery in the past, but I am completely stuck on this. I know about the pros and cons of using synchronous ajax calls, but here it will be required.

The remote page is loaded (controlled with firebug), but no return is shown.

What should I do different to make my function to return properly?

function getRemote() {

    var remote;

    $.ajax({
        type: "GET",
        url: remote_url,
        async: false,
        success : function(data) {
            remote = data;
        }
    });

    return remote;

}
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You code looks fine. what is it returning? Are there any js errors? –  ShankarSangoli Jul 13 '11 at 20:34
    
Nope. No errors at all! –  Industrial Jul 13 '11 at 20:35

4 Answers 4

up vote 115 down vote accepted

As you're making a synchronous request, that should be

function getRemote() {
    return $.ajax({
        type: "GET",
        url: remote_url,
        async: false
    }).responseText;
}

Example - http://api.jquery.com/jQuery.ajax/#example-3

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1  
please notice: you have an unnecessary "," after "async: false". –  Will Wu Jan 23 at 5:39
1  
Note that responseText always returns a string. If you are expecting JSON, wrap $.ajax with JSON.parse. –  usandfriends Jul 14 at 14:54

You're using the ajax function incorrectly. Since it's synchronous it'll return the data inline like so:

var remote = $.ajax({
    type: "GET",
    url: remote_url,
    async: false
}).responseText;
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how remote is that url ? is it from the same domain ? the code looks okay

try this

$.ajaxSetup({async:false});
$.get(remote_url, function(data) { remote = data; });
// or
remote = $.get(remote_url).responseText;
share|improve this answer
    
Yep! Same domain and everything. remote_url is defined properly and the AJAX call is properly carried out as mentioned (controlled with firebug). Just no return! –  Industrial Jul 13 '11 at 20:35
$("button").click(function(){ 
      $.ajax({url:"demo_test.txt",
              success:function(result){ $("#div1").html(result); }
             });
}); 
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