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I was having issues with 'event bubbling' so am using the '.on' event to stop this, but now when I try and submit the form, it wont work until you click the submit button twice. i.e nothing happens on the first click.

I have tried everything I can find online.

Does anyone have any ideas how to fix this?

$(document).on('submit', '.status_update_shipped', function(e) {
    $('.status_update_shipped').ajaxForm({
        dataType: 'json',
        success: function(data) {
            if (data.success) {
                $('#order-alert').text('Order #'+data.entry_id+' set as shipped (moved to past orders)').fadeIn();
                setTimeout(function(){
                    $('#order-alert').fadeOut().text('');
                }, 5000);
                var wrapper = '.recent-order-item-'+data.entry_id;
                $(wrapper).hide();
            }
        }
    });
    e.preventDefault();
});
share|improve this question
    
If you delete this line: e.preventDefault(); ?? – Hackerman Apr 1 '14 at 15:47
    
@RobertRozas If I remove this, it forwards a HTTP request rather than AJAX – user2889310 Apr 1 '14 at 15:48
    
@A.Wolff Thank you for your reply. If I don't nest it, it just uses a http request... not sure why. – user2889310 Apr 1 '14 at 15:56
    
Show me your form code pls.. – Hackerman Apr 1 '14 at 15:59
    
You tried everything you can find online, but have you tried the examples from the docs yet? malsup.com/jquery/form ~ None of them wrap .ajaxForm() inside of any event handlers. – Sparky Apr 1 '14 at 16:02
up vote 3 down vote accepted

Calling .ajaxForm() is only initializing the Forms plugin, not doing the actual submission. You don't need to wrap it in an event handler because the plugin is taking care of everything automatically... capturing the click, blocking the default submit, and doing the ajax... otherwise, there's no point in using a plugin for this.

(You're needing to click twice because the first click is only initializing the plugin.)

Following the examples in the docs: http://malsup.com/jquery/form/

$(document).ready(function() {

    $('.status_update_shipped').ajaxForm({ 
        // your options
    });

});

Also, don't forget to include the Forms plugin after you've included jQuery.

<script src="http://malsup.github.com/jquery.form.js"></script>
share|improve this answer

This answer is to use "ajaxSubmit" instead of "ajaxForm"

http://malsup.com/jquery/form/#options-object

$(document).on('submit', '.status_update_shipped', function(e) {
    $('.status_update_shipped').ajaxSubmit({
        dataType: 'json',
        success: function(data) {
            if (data.success) {
                $('#order-alert').text('Order #'+data.entry_id+' set as shipped (moved to past orders)').fadeIn();
                setTimeout(function(){
                    $('#order-alert').fadeOut().text('');
                }, 5000);
                var wrapper = '.recent-order-item-'+data.entry_id;
                $(wrapper).hide();
            }
        }
    });

    e.preventDefault();
    return false;
});
share|improve this answer

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