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I want to use jQuery ajax to retrieve data from a server.

I want to put the success callback function definition outside the .ajax() block like the following. So do I need to declare the variable dataFromServer like the following so that I will be able to use the returned data from the success callback?

I've seen most people define the success callback inside the .ajax() block. So is the following code correct if I want to define the success callback outside?

var dataFromServer;  //declare the variable first

function getData() {
    $.ajax({
        url : 'example.com',
        type: 'GET',
        success : handleData(dataFromServer)
    })
}

function handleData(data) {
    alert(data);
    //do some stuff
}
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6 Answers 6

up vote 14 down vote accepted

Just use:

function getData() {
    $.ajax({
        url : 'example.com',
        type: 'GET',
        success : handleData
    })
}

The success property requires only a reference to a function, and passes the data as parameter to this function.

You can access your handleData function like this because of the way handleData is declared. JavaScript will parse your code for function declarations before running it, so you'll be able to use the function in code that's before the actual declaration. This is known as hoisting.

This doesn't count for functions declared like this, though:

var myfunction = function(){}

Those are only available when the interpreter passed them.

See this question for more information about the 2 ways of declaring functions

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1  
passing success callbacks is so 2010... –  Alnitak Feb 7 '13 at 15:26
    
@Alnitak, when did the deferred objects thing get introduced? I haven't seen it before. Also, it seems slightly messy, since the code that defines what callback to use is in a different location than the actual AJAX call. –  Cerbrus Feb 7 '13 at 15:28
2  
it was introduced in jQuery 1.5 and it's far less messy than using success:. Decoupling the callback from the AJAX is a good thing! See the notes I just added to the end of my answer. –  Alnitak Feb 7 '13 at 15:29
    
@Alnitak, I'll have a look. Let's see if I can be convinced :P –  Cerbrus Feb 7 '13 at 15:32
    
@Alnitak: Is deferred objects always preferred over success callback? Thanks. –  tonga Feb 7 '13 at 15:43

The "new" way of doing this since jQuery 1.5 (Jan 2011) is to use deferred objects instead of passing a success callback. You should return the result of $.ajax and then use the .done, .fail etc methods to add the callbacks outside of the $.ajax call.

function getData() {
    return $.ajax({
        url : 'example.com',
        type: 'GET'
    });
}

function handleData(data /* , textStatus, jqXHR */ ) {
    alert(data);
    //do some stuff
}

getData().done(handleData);

This decouples the callback handling from the AJAX handling, allows you to add multiple callbacks, failure callbacks, etc, all without ever needing to modify the original getData() function. Separating the AJAX functionality from the set of actions to be completed afterwards is a good thing!.

Deferreds also allow for much easier synchronisation of multiple asynchronous events, which you can't easily do just with success:

For example, I could add multiple callbacks, an error handler, and wait for a timer to elapse before continuing:

// a trivial timer, just for demo purposes -
// it resolves itself after 5 seconds
var timer = $.Deferred();
setTimeout(timer.resolve, 5000);

// add a done handler _and_ an `error:` handler, even though `getData`
// didn't directly expose that functionality
var ajax = getData().done(handleData).fail(error);

$.when(timer, ajax).done(function() {
    // this won't be called until *both* the AJAX and the 5s timer have finished
});

ajax.done(function(data) {
    // you can add additional callbacks too, even if the AJAX call
    // already finished
});

Other parts of jQuery use deferred objects too - you can synchronise jQuery animations with other async operations very easily with them.

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I'm not completely convinced yet, but +1 for suggesting a method that uses this newer functionality. –  Cerbrus Feb 7 '13 at 15:33
1  
@Cerbrus see the new example, and then consider how you'd do it without deferred objects –  Alnitak Feb 7 '13 at 15:36
    
Did not know that. Seems great ! –  jbl Feb 7 '13 at 15:37
    
@jbl deferred objects are fantastic. I normally downvote any answer that promotes use of success: because deferreds just work so much better. –  Alnitak Feb 7 '13 at 15:38
    
@Cerbrus that's exactly how it's supposed to be interpreted. Suggest you search here for user:6782 deferred for lots more examples. –  Alnitak Feb 7 '13 at 15:43

I do not know why you are defining the parameter outside the script. That is unnecessary. Your callback function will be called with the return data as a parameter automatically. It is very possible to define your callback outside the sucess: i.e.

function getData() {
    $.ajax({
        url : 'example.com',
        type: 'GET',
        success : handleData
    })
}

function handleData(data) {
    alert(data);
    //do some stuff
}

the handleData function will be called and the parameter passed to it by the ajax function.

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You don't need to declare the variable. Ajax success function automatically takes up to 3 parameters: Function( Object data, String textStatus, jqXHR jqXHR )

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I would write :

var dataFromServer;  //declare the variable first

var handleData = function (data) {
    alert(data);
    //do some stuff
}


function getData() {
    $.ajax({
        url : 'example.com',
        type: 'GET',
        success : handleData
    })
}
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5  
Your code never actually uses dataFromServer so that first line can be removed. –  Anthony Grist Feb 7 '13 at 15:36

Try rewriting your success handler to:

success : handleData

The success property of the ajax method only requires a reference to a function.

In your handleData function you can take up to 3 parameters:

object data
string textStatus
jqXHR jqXHR
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