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(1. do you find it useful to have a global jquery ajax 'helper' that you can call ajax(url,data,async) ? )

function ajax(ajax_url, ajax_data, ajax_async){
  ajax_async = typeof(ajax_async) != 'undefined' ? ajax_async : true;

  $.ajax({
    type: 'GET',
    url: ajax_url,
    data: ajax_data,
    async: ajax_async,
    dataType: 'text',
    success: function(response) {
        return response;
    },
    error: function(){

    }
  });
}

if i'm calling a function that places a GET and returns the success response.

alert(ajax('localhost/hello','',false);

if i do alert(get_ajax()) i get an alert of 'undefined'.. even if there was a return value

i see its an event loop issue, but i async:false in the ajax call. thoughts? thank you.

share|improve this question
up vote 3 down vote accepted

This is one of those questions that has been asked a million times, but it's nearly impossible to search. Anyway, the problem is that when you return from here...

success: function(response) {
    return response;
}

...you're not returning from the ajax() function but the anonymous success function. To return the value from the main function you have to save the string to a variable so that you can return from the correct function.

var val = '';

$.ajax({
    //       ....
    success: function(response) {
       val = response;
    },
    //       ....
});

return val;

Note that this only works when you're making a synchronous call. For asynchronous calls it's better to give a callback function as an argument and use it as the success function.

share|improve this answer
    
you da bawsssss – Mike Nov 11 '11 at 8:06

For an synchronous call, I believe you would do

var data;
$.ajax({
    ...
    async: false,
    success: function(response) {
        data = response;
    }
});
return data;
share|improve this answer
    
upvote, but other guy had same answer first. thank you tho! – Mike Nov 11 '11 at 8:09

Your ajax function wraps the $.ajax call, does doesn't return anything: that's where the undefined comes from. To get some value in your alert example, you should add a return statement at the bottom of your function.

To get an alert with the response, the following should do:

success: function(response) {
    alert(response);
},
share|improve this answer
    
But i need to return the response. I get a value if i alert() inside the success, but not when i alert() the ajax fnction. – Mike Nov 11 '11 at 8:04
    
Well, if it is asynchronous, you can't get the response directly since the ajax call isn't blocking: it will only be available once the success callback function is called. Whatever you want to do with that data, you'll have to refactor your code to allow it to be updated from the success callback. Can't you move all your code that is affected by this call to be used after the ajax call has been completed? – jro Nov 11 '11 at 8:07
    
was my mistake, i left out that i set it to synchronous – Mike Nov 11 '11 at 8:14

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