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I am trying to upload a file using AJAX using C#-Razor. When I submit by clicking on the button the controller method is not being executed. How can I solve this ?

My code is as follows:

View

<div class="form-group">
    @Html.TextBoxFor(model => model.IMG, new { @class = "control-label col-md-12", type = "file", placeholder = "Industry", name = "files[]", id="FileUpload" })
    @Html.LabelFor(model => model.IMG, new { @class = "col-md-12 " })
    @Html.ValidationMessageFor(model => model.IMG)
</div>
<div class="form-group">
    <div class="col-md-offset-2 col-md-10">
        <input type="button" value="Create" class="btn btn-default" id="UseShipAddr" />
   </div>
</div>

AJAX

$('#UseShipAddr').click(function () {
        var formData = new FormData();
        var totalFiles = document.getElementById("FileUpload").files.length;
        for (var i = 0; i < totalFiles; i++) {
            var file = document.getElementById("FileUpload").files[i];

            formData.append("IMG", file);
            alert("h" + file);
        }
        formData.append("name", "James");
        formData.append("age", "1");

        $.ajax({
            url: "/Post/New",
            type: "POST",
            data: formData,
            cache: false,
            async: true,
            success: function (data) {
                alert(data);
            }
        });
    });

Controller

[HttpPost]
//[ValidateAntiForgeryToken]
public async Task<ActionResult> New([Bind(Include="age","name","IMG")] POST rec)
{
   if (ModelState.IsValid)
      {
         db.REC.Add(rec);
         await db.SaveChangesAsync();
         return RedirectToAction("My", "Post");
      }
   return View(rec);
}
5
  • 1
    Are you pointing to correct URI, "/Post/New" and method name ?Create?
    – Satpal
    Feb 12, 2017 at 6:02
  • That was a typo. I corrected it now. The problem still exist.
    – Illep
    Feb 12, 2017 at 6:33
  • Your not setting the correct ajax options, and you can simply use var formdata = new FormData($('form').get(0)); to serialize everything - refer this answer (and then .append() if you want to send additional data that is not in a form control
    – user3559349
    Feb 12, 2017 at 7:34
  • And as a side note new { name = "files[]" } does nothing at all fortunately. And why add new { id="FileUpload" } to override the default id attribute? - you can just use $('#IMG'). And since its not multiple = "multiple", there is only one file so the loop is not really necessaey.
    – user3559349
    Feb 12, 2017 at 7:37
  • You also have return RedirectToAction("My", "Post"); in your controller method but are making a ajax call (ajax calls never redirect - the whole point of them is to stay on the same page. If your wanting to redirect, then DO NOT use ajax)
    – user3559349
    Feb 12, 2017 at 22:56

2 Answers 2

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Send the extra parameters in a querystring. Here is the AJAX code:

$.ajax({
    url: "/Post/New?name=James&age=1",
    type: "POST",
    data: formData,
    cache: false,
    async: true,
    contentType: false, // Not to set any content header  
    processData: false, // Not to process data  
    success: function (data) {
        alert(data);
    }
});

And your controller should be similar to below:

public async Task<ActionResult> New(string name, int age)
{
    try
    {
        foreach (string file in Request.Files)
        {
            var fileContent = Request.Files[file];
            if (fileContent != null && fileContent.ContentLength > 0)
            {
                // get a stream
                var stream = fileContent.InputStream;
                // and optionally write the file to disk
                var fileName = Path.GetFileName(file);
                using (var fileStream = new MemoryStream())
                {
                    stream.CopyTo(fileStream);
                }

                // File is in the memory stream, do whatever you need to do
            }
        }
    }
    catch (Exception)
    {

        // whatever you want to do
    }
}
9
  • Can you also show me the corresponding HTML part of your code ?
    – Illep
    Feb 12, 2017 at 6:41
  • Same as yours. I only changed the portion in $.Ajax and controller code. Feb 12, 2017 at 6:48
  • Thanks for the update. Let me try this out and get back to you.
    – Illep
    Feb 12, 2017 at 6:59
  • It still doesn't work. THe controller doesn't get fired.
    – Illep
    Feb 12, 2017 at 11:49
  • Please open the chrome, or any browser's, debugger and select the Network tab. Then see what url is being called and what the response is. Feb 12, 2017 at 15:09
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You are not specifying any form while creating the form in object in your form submit #UseShipAddr click event. please specify your form while creating object as:

var formData = new FormData($(#formID)[0]);

or create form constructor

var dataString = new FormData();

append file to the form

dataString.append("UploadedFile", selectedFile);
var form = $('#formID')[0];
var dataString = new FormData(form);

now send that string to the action in controller.

There are lots of problem in your request. First remove this then you'll be able to call that action of the controller.

6
  • What do you mean ? Can you show me via a code if possible. Sorry I am a newbie.
    – Illep
    Feb 12, 2017 at 11:03
  • No this is not correct. That is not how FormData works. Feb 12, 2017 at 15:07
  • I am using it to upload file with some parameters in ajax call. What I know when i pass complete object of form data to the action using ajax call, on the action I need to name parameters with the same name as in the form field names.
    – Shahzad
    Feb 12, 2017 at 15:42
  • @CodingYoshi try to read this article on code project. you'll understand my point.
    – Shahzad
    Feb 12, 2017 at 15:54
  • @Illep as you are newbie you can also try same article it will help you alot.
    – Shahzad
    Feb 12, 2017 at 15:54

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