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I got the following piece of code, but it always gives me an error saying "Object doesn't support property or method 'ajaxSubmit'". I am not sure where is my error... Can anyone help me?

<script src="/Scripts/jquery.color.js"></script>
<script src="/Scripts/jquery.Jcrop.min.js"></script>
<script src="/Scripts/jquery.form.js"></script>
<script>
$(document).ready(function () {
    var wrapper = $('<div/>').css({ height: 0, width: 0, 'overflow': 'hidden' });
    var fileInput = $(':file').wrap(wrapper);
    $('#BTN_Upload').click(function () {
        fileInput.click();
    }).show();
    $("#INPUT_Upload").change(function () {
        var options = {
            target: '#DIV_UploadedImages',
            beforeSubmit: showRequest,
            success: showResponse,
            dataType: "json",
            clearForm: true,
            resetForm: true
        };
        $('#FORM_ImageUpload').ajaxSubmit(options);
    });
});
</script>

HTML:

 <form id="FORM_ImageUpload" method="post" action="~/Async/UploadImage">
    <input type="file" value="Post" id="INPUT_Upload">
    <img src="~/Images/button_add_pictures.jpg" id="BTN_Upload" class="ProfileButton" />
 </form>
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marked as duplicate by Sergio, user2864740, iambriansreed, infinity, Wolfram Mar 6 at 10:43

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.

    
It's not a duplicate, I have used the scenario in the plugin website and I have used it correctly. –  user2227904 Jan 13 at 19:32
1  
are you sure jquery.form.js is loaded successfully? I mean no 404 error –  CuriousGuy Jan 13 at 19:33
    
I managed to find it through the debugging tools. The same happened when I loaded it with the online copy of the plugin. –  user2227904 Jan 13 at 19:34
    
try this alert($('#FORM_ImageUpload').ajaxForm);. What does it alerts? –  CuriousGuy Jan 13 at 19:35
    
What does your form markup look like? That kind of error would imply that #FORM_ImageUpload isn't a proper form. –  user3177945 Jan 13 at 19:38

2 Answers 2

When I face situations when something doesn't work and I can't understand why, I usually write a minimal required code that works. And then I add code more and more until it stops to work. This is how I find the problem place in my code.

Here is a minimum of code that should work:

<!DOCTYPE html>
<html>
<head>
<script src="//ajax.googleapis.com/ajax/libs/jquery/1.8.2/jquery.min.js"></script>
<script src="http://malsup.github.io/jquery.form.js"></script>
<script>

alert($.fn.ajaxSubmit);

</script>
</head>
<body>

</body>
</html>

It alerts the source code of ajaxSubmit method. You may add parts of your code until it alerts undefined, then you'll find out why it doesn't work.

I always use this approach.

Hope it helps!

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I understand that, but that is exactly my issue. That even the bare launch gives me undefined. No matter how I try I can't understand why it's undefined. –  user2227904 Jan 13 at 21:10
up vote 1 down vote accepted

Since I am new with MVC and I completely forgot that MVC automatically adds jquery to its designs I have included another link to it in the code which caused the issue.

To summarize: If you have linked twice jquery jquery-form will not work.

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