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I have a function in which I execute an ajax request and wait till I get a response and return a value but the value returned is undefined. What is wrong?

            function GetVMData(url_s){ 
                return $.ajax({ 
                       url: url_s, 
                       crossDomain: true,  
                       dataType: 'jsonp', 
                       error: function(xhr, status, error) {  
                           alert('failed') 
                        }  
                   }).pipe(function(data) { return data[4]; }); 
            } 

If I print the value of data[4] within the ajax callback it prints the right value, therefore i know the request is going through but when I try this:

            var cord;
            cord = GetVMData(url).done(function(cpu_USG) { 
            return cpu_USG;
            }); 
            alert(cord)

the value of cord is wrong.

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2 Answers

up vote 0 down vote accepted

Here:

var cord;

cord = GetVMData(url).done(function(cpu_USG) { 
  return cpu_USG;
});

alert(cord);

cord contains object, not the value. And by the way, you don't know where ajax calling will be finished, so you should be familiar with idea of callbacks..

As an example:

function makeRequest(url, callback) { 
  $.ajax({
    url: url, 
    crossDomain: true,  
    dataType: 'jsonp',

    error: function(xhr, status, error) {  
      alert('failed') 
    },

    success: callback
  }); 
}

var do_something = function (data) {
  alert(data[4]);
};

cord = makeRequest(url, do_something);
share|improve this answer
    
you just repeated the code that I have written. How do i get the value then ? –  user1454693 Aug 23 '12 at 4:47
    
Now I understand why, thanks! what is the workaround ? –  user1454693 Aug 23 '12 at 4:49
    
I have a lot of other sections that use that value, so should I just encapsulate all those section within the callback ? –  user1454693 Aug 23 '12 at 4:50
    
@Speransky Danil: callbacks is what he originally had. Deferreds are easier to work with and practically callback solution doesn't change anything –  zerkms Aug 23 '12 at 4:56
    
@user1454693: why did you check this answer?! You had nice code with callbacks, now you have weird code with callbacks. Cannot get it o_O Callbacks will be deprecated in further jquery releases, so no reason to use it –  zerkms Aug 23 '12 at 5:00
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    var cord;
    cord = GetVMData(url).done(function(cpu_USG) { 
    return cpu_USG;
    }); 
    alert(cord)

This code runs asynchronously. So you need to perform everything in the callback, like:

    GetVMData(url).done(function(cpu_USG) { 
        alert(cpu_USG);
    }); 
share|improve this answer
    
the GetVMData function will be called from another function that needs the cpu_USG value how can i achieve that. So from the previous example cord will be used to graph a chart. –  user1454693 Aug 23 '12 at 4:44
    
@user1454693: so what? You have to use it in the way I've demonstrated. This is how deferred and asynchronous calls work –  zerkms Aug 23 '12 at 4:45
    
so are you saying that I should encapsulate all the code that uses that value inside the callback ? isnt there another way of achieving this ? –  user1454693 Aug 23 '12 at 4:48
    
@user1454693: as soon as deferred is resolved (it happens when ajax request finishes successfully) the callback is called. And you get all the data in the callback and in the callback only. PS: deferreds made the dealing with ajax million times easier, so I cannot get what confuses you. –  zerkms Aug 23 '12 at 4:50
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