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I have this in my code:

 document.imgUploadForm.submit();

or

$.ajax({ url: "Controler/MyMethod",
            type: "POST",
            enctype: 'multipart/form-data',
            data: { data: $('#imgUploadForm').serialize() },
            success: function (data) {
                location.reload();
            }
       })

but in my action method, the values from the form aren't submitted. Why?

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Can you show us the HTML code? –  Selvaraj M A Apr 9 '12 at 9:53
    
Hey!!! You just edited your question! where is the previous question???? –  gdoron Apr 9 '12 at 9:54
    
@gdoron What would my method have as a parameter? –  Petko Xyz Apr 9 '12 at 9:56
    
I updated the answer. –  gdoron Apr 9 '12 at 10:00

2 Answers 2

Use ajax request should be like this

$.ajax({ url: "MyController/MyMethod",
        type: "POST",
        enctype: 'multipart/form-data',
        data:$('#imgUploadForm').serialize(),
        success: function (data) {
            location.reload();
        }
   })
share|improve this answer
    
And what would MyMethod has as parameter? –  Petko Xyz Apr 9 '12 at 9:55
    
All the names you assigned in form elements will be accessible via post or request. –  raheel shan Apr 9 '12 at 9:57

Change this:

data: { data: $('#imgUploadForm').serialize() },

To this:

data: $('#imgUploadForm').serialize(),

Full code:

$.ajax({ 
        url: '@Url.Action("ActionName", "controllerName")',
        type: "POST",
        data: $('#imgUploadForm').serialize(),
        success: function (data) {
            location.reload();
        }
   });
share|improve this answer
    
I edited the question –  Petko Xyz Apr 9 '12 at 9:54
1  
@PetkoXyz. You shouldn't! you should have ask a new question if you had to. don't edit questions to a new one. What about the answers?! –  gdoron Apr 9 '12 at 9:56

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