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I have a strange situation going on with ajax callbacks.

Call A works fine (I can see the server calls in the right place), and the done callback is fired correctly.

Call B call works fine (I can see the server calls in the right place), but then A's done callback is fired!

Here's the code: A:

$(document).ready(function () {
    $('#beta_signup_form').submit(function() {
        var valuesToSubmit = $(this).serialize();
        $.ajax({
            url: $(this).attr('action'), //submits it to the given url of the form
            data: valuesToSubmit,
            dataType: "JSON", // you want a difference between normal and ajax-calls, and json is standard
            type: 'POST'
        }).done(function(json){
            console.log("in the beta signup form success function!!!!");
        })
        .fail(function () {
            console.log("--------> beta signup modal callback error");
        });
        return false; // prevents normal behaviour
    });
});

and code B:

$(document).ready(function () {
    $('#twitter_sign_up').submit(function() {
        var valuesToSubmit = $(this).serialize();
        $.ajax({
            url: $(this).attr('action'), //submits it to the given url of the form
            data: valuesToSubmit,
            dataType: "JSON", // you want a difference between normal and ajax-calls, and json is standard
            type: 'POST'
        }).done(function(json) {
             console.log("in success for modal B...");
        }).fail(function () {
            console.log("--------> modal B callback error");
        });
        return false; // prevents normal behaviour
    });
});

What's going on here???

share|improve this question
    
I've never seen that happen. –  Kevin B May 1 '13 at 15:22
    
Can you paste HTML code here. –  varunvlalan May 1 '13 at 15:24
    
Are you sure that it happens with the code you've shown us? Because it looks perfectly fine. Even more - since they are in separate $(document).ready handlers, then it is impossible for them to see each other. –  freakish May 1 '13 at 15:24
    
you should use var valuesToSubmit = $(this).serialize(), $this = $(this); in the submit callback and then refer to $this in your $.ajax call instead of $(this). –  gillyspy May 1 '13 at 15:28
    
this is how you create an ajax fiddle with jQuery for us to see what you're doing next time DEMO –  gillyspy May 1 '13 at 16:14

1 Answer 1

OH man... I just figured it out.

So I had:

<div id="twitter_sign_up">
  <form id="beta_signup_form" ...>
    ...
  </form>
</div>

My fault for copying html!

share|improve this answer
    
Very nice, haha. Glad you were able to figure it out. –  Kevin B May 1 '13 at 15:31
    
Cheers Kevin :D I'm super happy to have that one sorted! took a while... –  Louis Sayers May 1 '13 at 15:33
    
This is what ruled out that being the problem for me, "Call B call works fine (I can see the server calls in the right place)" I guess they were both calling the same location? or did you not actually check the location it was posting to –  Kevin B May 1 '13 at 15:35

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