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return AJAX callback return

I have made a JQuery code using AJAX, but despite all my efforts (trying $.post, $.get and $.ajax) I am not able to get any response nor using it in my code. Example code:

var r = $.post("ajaxpage.php", function(data) {return data});
console.log(r); // nothing
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marked as duplicate by Blazemonger, apsillers, George Stocker Jun 22 '12 at 1:50

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
@Cranio So instead of linking askers to one of those four questions, you decided to muddy the water further by contributing a fifth? –  Blazemonger Jun 21 '12 at 21:18
1  
Then answer it somewhere else this lengthy, or edit your older posts, or, whatever. Really no need to put this question up. It bothers me as much as it bothers @Blazemonger. –  Styxxy Jun 21 '12 at 21:21
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@Cranio - I think you're kinda missing the point of SO. If you have an answer to a question then post it at the question. Self-answering is for if you have found a solution to your own question. SO isn't a programming blog site. –  CAbbott Jun 21 '12 at 21:22
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Speaking only for myself, I would prefer you (a) amplify one of your existing answers and (b) link to it often in the future. This is a well-established practice on SO, and one I think is better than "blogging" a new question. –  Blazemonger Jun 21 '12 at 21:24
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No doubt it was ;). There are plenty of possible ways to share this answer anyway. (Again, the answer itself is quite good, so keep up that kind of quality.) –  Styxxy Jun 21 '12 at 21:29

1 Answer 1

up vote 3 down vote accepted

One of the most common misconceptions of beginner programmers about Javascript and AJAX is to treat the AJAX request as a "normal" function, doing variable assignments or expecting to use immediately the AJAX response in their code.

That's not how it works though; let's try to understand how a correct implementation works.

AJAX stands for Asynchronous JavaScript and XML.

We will ignore for a while the XML part (which is more about how the request is carried on, via XMLHttpObject), the Javascript bit is quite obvious (it's the scripting language we use, with or without JQuery), let's focus on asynchronous.

Think about AJAX this way: it is roughly like sending a work email to a colleague, while you're at work, and giving some info; and requesting an action to be taken and/or other info in return; no matter if your friend answers immediately or not, you still have to continue your job because the answer could be delayed (your friend may be particularly busy today). When your friends answers with relevant info, only then you will address the matter and take appropriate actions. If an action is requested, your colleague will carry it on only when he receives your email.

AJAX works in a similar way: from client-side, you make a request to a server-side page, and expect an action (like writing a row in a database) or a response (some data fetched server-side from the page you are calling.

The important bit is that your JavaScript code continues its execution regardless of the completion of the round-trip, as there can be a significant delay when your client (remember that JS runs client-side) makes an AJAX call to the server (slow server, slow connection, and so on).

So you can't expect to do things like:

var r = $.post("ajaxpage.php", function(data) {return data});

because $.post doesn't actually "return" a value like a "regular" function, the variable r cannot be valued by $.post

Instead, you should organize your code based on the done event, which is fired after the AJAX call has completed: it guarantees (if there have been no failures, like server-side errors, not found pages, etc.) that we actually have a response to use in your code on success. With that event we can call a function that receives the response as a parameter and actually uses it.

$.post("ajaxpage.php").done(useMyResponse);
// rest of the code

function useMyResponse(response)
{
    // do fancy things with the response like:
    console.log(response); // works!
    // or maybe
    $("#someElement").html(response);
}

A shorthand for this would be:

$.post("ajaxpage.php",function (response) { 
     // use response
     console.log(response);
});

Edit: i'm not a native English speaker, forgive my mistakes.

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to point out something to avoid misconception, $.post returns something, a Deferred object, which hosts several methods to deal with "late" results due to async operations, one of which is .done(). –  Joseph the Dreamer Jun 21 '12 at 21:13

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