47

All the documentation / tutorials / questions about processing a file uploaded using FormData to a ASP.NET WebAPI handler use MultipartFormDataStreamProvider to process the multipart stream to split it into the relevant form fields and files.

var root = HttpContext.Current.Server.MapPath("~/App_Data");
var provider = new MultipartFormDataStreamProvider(root);

await Request.Content.ReadAsMultipartAsync(provider);

foreach (MultipartFileData file in provider.FileData)
{
   // File
}

However, the files are automatically written to a directory during processsing.

It seems a lot of hassle when I could just use HttpContext.Current.Request.Files[0].InputStream to access a given file stream directly in memory.

How can WebAPI just access the file stream directly without the IO overhead of using MultipartFormDataStreamProvider?

Official tutorial: http://www.asp.net/web-api/overview/advanced/sending-html-form-data,-part-2

4
  • 1
    I think This Question should answer your needs.
    – Jon Susiak
    Jan 16 '15 at 10:58
  • Thanks @JonSusiak - I wish I found that a few hours ago, I ended up doing the exact same thing by examining the source code or MultipartFormDataStreamProvider and using the MultipartStreamProvider provider to give me the file upload in a MemoryStream rather than writing it to disk. Was just getting round to posting the answer.
    – simbolo
    Jan 16 '15 at 11:33
  • @simbolo - why didn't you use HttpContext.Current.Request.Files[0].InputStream? Could you explain the disadvantage?
    – Merenzo
    Jan 24 '17 at 8:22
  • Microsoft has a really good example for how to upload files: docs.microsoft.com/en-us/aspnet/web-api/overview/advanced/…
    – xdiegom
    Apr 23 '18 at 20:50
90

Solved:

Use the existing simple MultipartMemoryStreamProvider. No custom classes or providers required. This differers from the duplicate question which solved the solution by writing a custom provider.

Then use it in a WebAPI handler as so:

public async Task<IHttpActionResult> UploadFile()
{
    if (!Request.Content.IsMimeMultipartContent())
    {
        return StatusCode(HttpStatusCode.UnsupportedMediaType);
    }        
  
    var filesReadToProvider = await Request.Content.ReadAsMultipartAsync();
    
    foreach (var stream in filesReadToProvider.Contents)
    {
        var fileBytes = await stream.ReadAsByteArrayAsync();
    }
    return StatusCode(HttpStatusCode.OK);
}
10
  • Where can I find IHttpActionResult ?
    – guiomie
    Jul 3 '15 at 19:49
  • @guiomie simple google: msdn.microsoft.com/en-us/library/…
    – simbolo
    Aug 10 '15 at 13:48
  • 1
    Could this code please be updated so that it compiles? Not all code paths return a value. Thanks.
    – mbx-mbx
    Sep 27 '17 at 12:42
  • 5
    @Magrangs - you simply need to return a Http Result such as return Ok(); Oct 3 '17 at 11:44
  • end the method with: return Request.CreateResponse(HttpStatusCode.OK); Jan 27 '18 at 14:20

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