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I have a VERY simple jQuery Ajax call (below). The Ajax call executes and I can see in the Firebug Net panel that the server returned 200 OK and returned a string "OK" as it should. However, the done and fail functions do not fire! Very frustrating!

(The "before" and "after" alerts DO fire. )

For simplicity (and as a debugging technique) I have stripped this down to it's most bare skeleton but still the handlers won't fire. What am I not seeing here?

postUrl= "/mod/users/check_email/";
dataToPost= { email: "test@not.me" };

alert("before");
$.ajax
({
    type: "POST", 
    url: postUrl,
    data: dataToPost,
    done: function() 
    {
        alert("Success.");
    },
    fail: function() 
    {
        alert("Sorry. Server unavailable. ");
    },
});  // end Ajax call 

alert("after");
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1  
The ajax method doesn't have done and fail options. What you are looking for are success and error. –  Kevin B May 24 '13 at 21:46

2 Answers 2

You need to chain the done() and fail() functions, they are not part of the options object used in $.ajax :

$.ajax({
    type: "POST", 
    url : postUrl,
    data: dataToPost
}).done(function()  {
    alert("Success.");
}).fail(function()  {
    alert("Sorry. Server unavailable. ");
}); 

Also, as ajax is asynchronous, don't be suprised if the "after" alert comes before the "success" alert.

share|improve this answer
    
Thanks very much!! That worked like a champ. I was switching from old success and error examples to done and fail. –  misterrobinson May 24 '13 at 22:04
    
@misterrobinson - Yes, it can be a litte confusing, but the new methods aren't part of the object, as they are much more universal an can be used on any deferred/promise, like what the $.ajax function returns. –  adeneo May 24 '13 at 22:20

success and error callbacks can be used in that way. For done and fail, you need to do :

$.ajax({
    type: "POST", 
    url: postUrl,
    data: dataToPost,
}).done(function() {
    alert("Success.");
}).fail(function() {
    alert("Sorry. Server unavailable. ");
});

Or :

$.ajax({
    type: "POST", 
    url: postUrl,
    data: dataToPost,
    success: function() {
            //code here
    }
});
share|improve this answer
    
Thanks very much!! That worked like a champ. I was switching from old success and error examples to done and fail. –  misterrobinson May 24 '13 at 22:05

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