138

In my MVC application, I am using following code to upload a file.

MODEL

 public HttpPostedFileBase File { get; set; }

VIEW

@Html.TextBoxFor(m => m.File, new { type = "file" })

Everything working fine .. But I am trying to convert the result fiel to byte[] .How can i do this

CONTROLLER

 public ActionResult ManagePhotos(ManagePhotos model)
    {
        if (ModelState.IsValid)
        {
            byte[] image = model.File; //Its not working .How can convert this to byte array
        }
     }

3 Answers 3

277

As Darin says, you can read from the input stream - but I'd avoid relying on all the data being available in a single go. If you're using .NET 4 this is simple:

MemoryStream target = new MemoryStream();
model.File.InputStream.CopyTo(target);
byte[] data = target.ToArray();

It's easy enough to write the equivalent of CopyTo in .NET 3.5 if you want. The important part is that you read from HttpPostedFileBase.InputStream.

For efficient purposes you could check whether the stream returned is already a MemoryStream:

byte[] data;
using (Stream inputStream = model.File.InputStream)
{
    MemoryStream memoryStream = inputStream as MemoryStream;
    if (memoryStream == null)
    {
        memoryStream = new MemoryStream();
        inputStream.CopyTo(memoryStream);
    }
    data = memoryStream.ToArray();
}
13
  • 1
    The first example didn't work for me in .NET4 (didn't try the other one) - It didn't work when I tried it with a .png or .jpg, however it did work when I used a .txt file. Any idea why :) Nov 22, 2011 at 22:00
  • 2
    @VoodooChild: Presumably something in what you're doing is treating the data as text. I'd need to see more code to know what though. I suggest you ask another question giving your full scenario.
    – Jon Skeet
    Nov 22, 2011 at 22:04
  • 6
    ok this worked for me, just to give some context - Thanks! ` Image img = Image.FromStream(file.InputStream); MemoryStream ms = new MemoryStream(); img.Save(ms, ImageFormat.Jpeg); model.SiteLogo = ms.ToArray();` Nov 22, 2011 at 22:15
  • 9
    I was finding that the inputstream position was at the end of the stream, so I had to add the line model.File.InputStream.Position = 0; before Jon's code to make it work
    – Manish
    Jun 10, 2014 at 3:32
  • 2
    @UweKeim: Well yes, we've already got a using statement (not directive, btw) for inputStream, and both will refer to the same object. Why would you want to dispose of it twice?
    – Jon Skeet
    Mar 29, 2016 at 12:28
31

You can read it from the input stream:

public ActionResult ManagePhotos(ManagePhotos model)
{
    if (ModelState.IsValid)
    {
        byte[] image = new byte[model.File.ContentLength];
        model.File.InputStream.Read(image, 0, image.Length); 

        // TODO: Do something with the byte array here
    }
    ...
}

And if you intend to directly save the file to the disk you could use the model.File.SaveAs method. You might find the following blog post useful.

2
  • 6
    Is the InputStream for an HttpPostedFileBase guaranteed to return all its data in a single call to Read? It's best to avoid that where possible.
    – Jon Skeet
    Oct 21, 2011 at 16:12
  • I found this only worked if I reset the position in the image stream between the two lines: byte[] image = new byte[file.ContentLength]; file.InputStream.Position = 0; ile.InputStream.Read(image, 0, image.Length);
    – Andy Brown
    Oct 16, 2020 at 13:24
0
byte[] file = new byte[excelFile.ContentLength];
excelFile.InputStream.Read(file, 0, file.Length);

//Create memory stream object from your bytes
MemoryStream ms = new MemoryStream(file);

// Set WorkbookPart , Sheet
using (var myDoc = DocumentFormat.OpenXml.Packaging.SpreadsheetDocument.Open(ms, true))

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