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How can I get an ASP.net web form (v3.5) to post a file using a plain old <input type="file" />?

I am not interested in using the ASP.net FileUpload server control.

Thanks for your suggestions.

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2  
Ahhh.... my newb days... :) –  Ronnie Overby Jul 8 '14 at 22:20

8 Answers 8

up vote 79 down vote accepted

In your aspx :

<form id="form1" runat="server" enctype="multipart/form-data">
 <input type="file" id="myFile" name="myFile" />
 <asp:Button runat="server" ID="btnUpload" OnClick="btnUploadClick" Text="Upload" />
</form>

In code behind :

protected void btnUploadClick(object sender, EventArgs e)
{
    HttpPostedFile file = Request.Files["myFile"];

    //check file was submitted
    if (file != null && file.ContentLength > 0)
    {
        string fname = Path.GetFileName(file.FileName);
        file.SaveAs(Server.MapPath(Path.Combine("~/App_Data/", fname)));
    }
}
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21  
google + so = love –  roufamatic Jun 9 '10 at 22:08
1  
@mathieu, pity that you variant does use runat="server", it isn't independent from the server stuff of ASP.NET –  Oleg Orlov Apr 11 '13 at 14:09
    
what if there are more than 1 inputs and you want separate functions performed with both sets of files. –  Neville Nazerane Jun 11 '14 at 11:01

You'll have to set the enctype attribute of the form to multipart/form-data; then you can access the uploaded file using the HttpRequest.Files collection.

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Here is a solution without relying on any server-side control, just like OP has described in the question.

Client side HTML code:

<form action="upload.aspx" method="post" enctype="multipart/form-data">
    <input type="file" name="UploadedFile" />
</form>

Page_Load method of upload.aspx :

if(Request.Files["UploadedFile"] != null)
{
    HttpPostedFile MyFile = Request.Files["UploadedFile"];
    //Setting location to upload files
    string TargetLocation = Server.MapPath("~/Files/");
    try
    {
        if (MyFile.ContentLength > 0)
            {
                //Determining file name. You can format it as you wish.
                string FileName = MyFile.FileName;
                //Determining file size.
                int FileSize = MyFile.ContentLength;
                //Creating a byte array corresponding to file size.
                byte[] FileByteArray = new byte[FileSize];
                //Posted file is being pushed into byte array.
                MyFile.InputStream.Read(FileByteArray, 0, FileSize);
                //Uploading properly formatted file to server.
                MyFile.SaveAs(TargetLocation + FileName);
            }
        }
     catch(Exception BlueScreen)
     {
         //Handle errors
     }
}
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use the HTML control with a runat server attribute

 <input id="FileInput" runat="server" type="file" />

Then in asp.net Codebehind

 FileInput.PostedFile.SaveAs("DestinationPath");

There are also some 3'rd party options that will show progress if you intrested

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Again, that's turning it into a server control. ;) –  ahwm Sep 3 '13 at 18:16

The Request.Files collection contains any files uploaded with your form, regardless of whether they came from a FileUpload control or a manually written <input type="file">.

So you can just write a plain old file input tag in the middle of your WebForm, and then read the file uploaded from the Request.Files collection.

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Yes you can achive this by ajax post method. on server side you can use httphandler. So we are not using any server controls as per your requirement.

with ajax you can show the upload progress also.

You can find full code here in this link

you will have to read the file as a inputstream.

using (FileStream fs = File.Create("D:\\_Workarea\\" + fileName))
    {
        Byte[] buffer = new Byte[32 * 1024];
        int read = context.Request.GetBufferlessInputStream().Read(buffer, 0, buffer.Length);
        while (read > 0)
        {
            fs.Write(buffer, 0, read);
            read = context.Request.GetBufferlessInputStream().Read(buffer, 0, buffer.Length);
        }
    } 

Sample Code

function sendFile(file) {              
        debugger;
        $.ajax({
            url: 'handler/FileUploader.ashx?FileName=' + file.name, //server script to process data
            type: 'POST',
            xhr: function () {
                myXhr = $.ajaxSettings.xhr();
                if (myXhr.upload) {
                    myXhr.upload.addEventListener('progress', progressHandlingFunction, false);
                }
                return myXhr;
            },
            success: function (result) {                    
                //On success if you want to perform some tasks.
            },
            data: file,
            cache: false,
            contentType: false,
            processData: false
        });
        function progressHandlingFunction(e) {
            if (e.lengthComputable) {
                var s = parseInt((e.loaded / e.total) * 100);
                $("#progress" + currFile).text(s + "%");
                $("#progbarWidth" + currFile).width(s + "%");
                if (s == 100) {
                    triggerNextFileUpload();
                }
            }
        }
    }
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HtmlInputFile control

I've used this all the time.

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That requires adding runat="server" which essentially turns it into a server control, which they didn't want to use. –  ahwm Sep 3 '13 at 18:10

Here's a Code Project article with a downloadable project which purports to solve this. Disclaimer: I have not tested this code. http://www.codeproject.com/KB/aspnet/fileupload.aspx

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