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I am having some problem with jsonp and jquery.

This is my code -

var myCallback = function(data) {
  console.log(data);
};

$.ajax({
  url: my_url,
  type: 'GET',
  dataType: 'jsonp',
  jsonp: 'callback',
  jsonpCallback: 'myCallback'
});

jQuery adds something like ?callback=myCallback&_=1340513330866 to my_url and the data returned from my_url is myCallback('abcd') - although in reality it will be returning some HTML code instead of the abcd.

Problem: abcd is not logged in console through myCallback. So what am i doing wrong ? I was under the impression that the data returned will be executed as it is inside script tags ?

share|improve this question
    
could you post an example of the response you want – matt3141 Jun 24 '12 at 4:54
1  
myCallback must be global... is it? – Felix Kling Jun 24 '12 at 5:24
up vote 12 down vote accepted

If you use your own function, then you have to explicitly declare it as global. For example:

window.myCallback = function(data) {
  console.log(data);
};

DEMO


Explanation

Every function that should be called in response to a successful JSONP request must be global. jQuery is doing this as well. This is because JSONP is nothing else than including a (dynamically generated (most of the time)) JavaScript file with a <script> tag, which only contains a function call. Since each script is evaluated in global scope, the function that is called must be global as well.

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u saved my time. thanks – jasper Aug 26 '14 at 3:50
    
@Felix - Thanks, the example you given helped me a lot. +10; – Aviator Nov 19 '15 at 7:53

Remove single quote from the called method this will work, Please check the code here,

var myCallback = function(data) {
      console.log(data);
    };

$.ajax({
  url: my_url,
  type: 'GET',
  dataType: 'jsonp',
  jsonp: 'callback',
  jsonpCallback: myCallback
});

Try this fiddle

share|improve this answer
    
That won't work. From the documentation: "As of jQuery 1.5, you can also use a function for this setting, in which case the value of jsonpCallback is set to the return value of that function.". Your fiddle is not set up properly, so I wonder what it should demonstrate. – Felix Kling Jun 24 '12 at 5:28
    
But when I tried it's working on sample I have also added a working fiddle you can check the fiddle I have added – Umesh Aawte Jun 24 '12 at 5:31
    
As I said, I don't know what your demo is supposed to show. It only shows an alert with undefined... which proofs nothing. You did not even use the JSONP URL for the fiddle. If you have a look at the developer tools (Network tab, assuming Chrome) you will see that no request is made at all... the Ajax call does not take place. To be clear: Te alert appears because jQuery is calling the function you assign to jsonpCallback to get the callback name, just as the documentation says. It is not called in response to a successful Ajax call. – Felix Kling Jun 24 '12 at 5:35

Why not simply:

$.getJSON(my_url, myCallback);

this will handle function scoping and looks much simpler

share|improve this answer
    
This will not work with Jsonp – Sean Haddy Dec 27 '13 at 20:52

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