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jQuery AJAX seems to be sending two requests. As I'm using a two-factor authentication method, based on time, the second request is failing hence the original request is "failing".

The first is a post request, that's fine, but then there's a GET request, which isn't fine.

Here's the javascript I'm using to generate the query.

$('#form').live('submit', function(event) {
    var target = $('#ajax');
    var url = '/ajax/user/authenticateLevel3';
    $.ajax({
        type: "POST",
        url: url,
        data: $('#form').serialize(),
        dataType: 'json',
        success: function(data, status) {
            $.getJSON(url, function(data) {

                if (!data.resultCode) {
                $('#ajax').html($.base64.decode(data.html));
                $('#ajax').modal();
                } else {
                    location.reload();
                }

            });
        }
    });
    event.preventDefault();
});

Any ideas how I can work around this?

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closed as too localized by Shmiddty, Mathletics, undefined, nbrooks, NullPoiиteя Dec 25 '12 at 12:44

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

6  
You do see that you're actually making two requests right? $.ajax is one, $.getJSON is the second. –  Shmiddty Dec 24 '12 at 16:41
2  
On an unrelated note, the live method has been deprecated for quite some time. Don't use it. –  nbrooks Dec 24 '12 at 16:41
    
@Shmiddty, erm heh, yes? How should I be doing this? @nbrooks, I'm getting round to moving things to .on(). –  bear Dec 24 '12 at 16:44
1  
You should be able to just unwrap the contents of of the $.getJSON callback and it will probably work. IE remove $.getJSON(... and the closing }); for that block. –  Shmiddty Dec 24 '12 at 16:45
    
Voting to close as too localized. –  Shmiddty Dec 24 '12 at 16:48

3 Answers 3

up vote 0 down vote accepted

getJSON is an AJAX method for retrieving JSON from a server, not for processing the data returned by another ajax method. Just remove it.

$('#form').live('submit', function(event) {
    var target = $('#ajax');
    var url = '/ajax/user/authenticateLevel3';
    $.ajax({
        type: "POST",
        url: url,
        data: $('#form').serialize(),
        dataType: 'json',
        success: function(data, status) {
            if (!data.resultCode) {
            $('#ajax').html($.base64.decode(data.html));
            $('#ajax').modal();
            } else {
                location.reload();
            }
        }
    });
    event.preventDefault();
});

Since you mentioned you are switching over to .on, the syntax will be like this:

$(parent).on('submit', '#form', function(event) {
    /*
     * ...
     */
});

where parent is the nearest static parent element of #form.

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You are sending 2 requests. One with .ajax and another with .getJson.

Remove the .getJson request. With no dataType property passed to .ajax, jquery will attempt to guess the response type. You may also specify the dataType as json to force the conversion. The 'data' parameter of the success callback should be converted to a javascript object for both of these options.

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That is because you are doing 2 ajax calls (.ajax and .getJSON)

Try doing this instead (using document event delegation instead of .live):

$(document).on('submit', '#form', function(event) {
    var target = $('#ajax');
    var url = '/ajax/user/authenticateLevel3';
    $.ajax({
        type: "POST",
        url: url,
        data: $('#form').serialize(),
        dataType: 'json',
        success: function(data, status) {
            if (!data.resultCode) {
                $('#ajax').html($.base64.decode(data.html));
                $('#ajax').modal();
            } else {
                location.reload();
            }
        }
    });
    event.preventDefault();
});
share|improve this answer

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