268

I'm using asp.net mvc 4 webapi beta to build a rest service. I need to be able to accept POSTed images/files from client applications. Is this possible using the webapi? Below is how action I am currently using. Does anyone know of an example how this should work?

[HttpPost]
public string ProfileImagePost(HttpPostedFile profileImage)
{
    string[] extensions = { ".jpg", ".jpeg", ".gif", ".bmp", ".png" };
    if (!extensions.Any(x => x.Equals(Path.GetExtension(profileImage.FileName.ToLower()), StringComparison.OrdinalIgnoreCase)))
    {
        throw new HttpResponseException("Invalid file type.", HttpStatusCode.BadRequest);
    }

    // Other code goes here

    return "/path/to/image.png";
}
3
  • 3
    That only works with MVC not the WebAPI framework.
    – Phil
    Apr 25, 2012 at 16:57
  • You should be able to just grab the item from Request.Files
    – Tejs
    Apr 25, 2012 at 16:59
  • 7
    The ApiController does not contain the HttpRequestBase which has the Files property. It's Request object is based on the HttpRequestMessage class.
    – Phil
    Apr 25, 2012 at 17:03

13 Answers 13

401

I'm surprised that a lot of you seem to want to save files on the server. Solution to keep everything in memory is as follows:

[HttpPost("api/upload")]
public async Task<IHttpActionResult> Upload()
{
    if (!Request.Content.IsMimeMultipartContent())
        throw new HttpResponseException(HttpStatusCode.UnsupportedMediaType); 

    var provider = new MultipartMemoryStreamProvider();
    await Request.Content.ReadAsMultipartAsync(provider);
    foreach (var file in provider.Contents)
    {
        var filename = file.Headers.ContentDisposition.FileName.Trim('\"');
        var buffer = await file.ReadAsByteArrayAsync();
        //Do whatever you want with filename and its binary data.
    }

    return Ok();
}
17
  • 41
    Keeping the files in memory can be useful if you don't want to spend diskspace. However, if you allow large files to be uploaded then keeping them in memory means your webserver will use up a lot of memory, which cannot be spend on keeping stuff around for other requests. This will cause problems on servers that work under high load. Nov 28, 2013 at 16:02
  • 22
    @W.Meints I understand the reasons for wanting to store data, but I don't understand why anyone would want to store uploaded data on server disk space. You should always keep file storage isolated from the web-server - even for smaller projects.
    – Gleno
    Nov 29, 2013 at 16:50
  • 1
    Make sure your posted file size is less then 64k, the default behaviour is to ignore requests otherwise, I was stuck on this for a log time. Apr 20, 2014 at 12:26
  • 3
    Unfortunately, the MultipartMemoryStreamProvider doesn't help if you want to read form data aswell. Wanted to create something like a MultipartFormDataMemoryStreamProvider but so many classes and helper classes are internal in the aspnetwebstack :(
    – martinoss
    Apr 8, 2015 at 16:19
  • 9
    File.WriteAllBytes(filename, buffer); to write it to a file
    – pomber
    Oct 26, 2016 at 19:15
177

see http://www.asp.net/web-api/overview/formats-and-model-binding/html-forms-and-multipart-mime#multipartmime, although I think the article makes it seem a bit more complicated than it really is.

Basically,

public Task<HttpResponseMessage> PostFile() 
{ 
    HttpRequestMessage request = this.Request; 
    if (!request.Content.IsMimeMultipartContent()) 
    { 
        throw new HttpResponseException(HttpStatusCode.UnsupportedMediaType); 
    } 

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

    var task = request.Content.ReadAsMultipartAsync(provider). 
        ContinueWith<HttpResponseMessage>(o => 
    { 

        string file1 = provider.BodyPartFileNames.First().Value;
        // this is the file name on the server where the file was saved 

        return new HttpResponseMessage() 
        { 
            Content = new StringContent("File uploaded.") 
        }; 
    } 
    ); 
    return task; 
} 
13
  • 5
    What is the benefit of using a Task to read just one file? Genuine question, I'm just beginning to use Tasks. From my current understanding, this code is really suited for when uploading more than one file correct?
    – Chris
    Aug 9, 2012 at 10:45
  • 49
    MultipartFormDataStreamProvider doesn't have BodyPartFileNames property any more (in WebApi RTM). See asp.net/web-api/overview/working-with-http/…
    – Shrike
    Dec 3, 2012 at 15:08
  • 6
    Guys, can any of you please shed some light on why we can't simply access files using HttpContext.Current.Request.Files and instead need to use this fancy MultipartFormDataStreamProvider? The full question: stackoverflow.com/questions/17967544.
    – niaher
    Aug 1, 2013 at 3:19
  • 7
    Files are being saved as BodyPart_8b77040b-354b-464c-bc15-b3591f98f30f. Should not they be saved like pic.jpg exactly as it was on the client?
    – lbrahim
    Aug 13, 2014 at 12:35
  • 10
    MultipartFormDataStreamProvider doesn't expose BodyPartFileNames property any more, I used FileData.First().LocalFileName instead. Nov 17, 2015 at 14:23
118

See the code below, adapted from this article, which demonstrates the simplest example code I could find. It includes both file and memory (faster) uploads.

public HttpResponseMessage Post()
{
    var httpRequest = HttpContext.Current.Request;
    if (httpRequest.Files.Count < 1)
    {
        return Request.CreateResponse(HttpStatusCode.BadRequest);
    }

    foreach(string file in httpRequest.Files)
    {
        var postedFile = httpRequest.Files[file];
        var filePath = HttpContext.Current.Server.MapPath("~/" + postedFile.FileName);
        postedFile.SaveAs(filePath);
        // NOTE: To store in memory use postedFile.InputStream
    }

    return Request.CreateResponse(HttpStatusCode.Created);
}
6
  • 27
    HttpContext.Current is null when WebAPI is hosted in OWIN which is a self hosting container.
    – Zach
    Apr 23, 2014 at 5:58
  • 1
    Fixed it like so: var httpRequest = System.Web.HttpContext.Current.Request;
    – msysmilu
    Oct 29, 2014 at 17:30
  • 8
    Do not use System.Web in WebAPI unless you absolutely have to.
    – Kugel
    Sep 16, 2015 at 7:19
  • 3
    Sure thing, System.Web is tightly coupled to IIS. If you're working within OWIN piple line or .Net Core those API will not be available when running under linux or self-hosted.
    – Kugel
    Nov 28, 2016 at 7:32
  • 3
    Great answer. Just one detail: if you are uploading from a HTML page, the <input type="file" /> tag must have a "name" attribute, or the file will not be present in HttpContext.Current.Request.Files.
    – GBU
    Jun 8, 2018 at 21:19
28

The ASP.NET Core way is now here:

[HttpPost("UploadFiles")]
public async Task<IActionResult> Post(List<IFormFile> files)
{
    long size = files.Sum(f => f.Length);

    // full path to file in temp location
    var filePath = Path.GetTempFileName();

    foreach (var formFile in files)
    {
        if (formFile.Length > 0)
        {
            using (var stream = new FileStream(filePath, FileMode.Create))
            {
                await formFile.CopyToAsync(stream);
            }
        }
    }

    // process uploaded files
    // Don't rely on or trust the FileName property without validation.

    return Ok(new { count = files.Count, size, filePath});
}
1
  • The question is specifically tagged asp.net-mvc-4, so this answer could be confusing especially to someone new to .NET
    – G. Stoynev
    Oct 24, 2020 at 17:39
16

Here is a quick and dirty solution which takes uploaded file contents from the HTTP body and writes it to a file. I included a "bare bones" HTML/JS snippet for the file upload.

Web API Method:

[Route("api/myfileupload")]        
[HttpPost]
public string MyFileUpload()
{
    var request = HttpContext.Current.Request;
    var filePath = "C:\\temp\\" + request.Headers["filename"];
    using (var fs = new System.IO.FileStream(filePath, System.IO.FileMode.Create))
    {
        request.InputStream.CopyTo(fs);
    }
    return "uploaded";
}

HTML File Upload:

<form>
    <input type="file" id="myfile"/>  
    <input type="button" onclick="uploadFile();" value="Upload" />
</form>
<script type="text/javascript">
    function uploadFile() {        
        var xhr = new XMLHttpRequest();                 
        var file = document.getElementById('myfile').files[0];
        xhr.open("POST", "api/myfileupload");
        xhr.setRequestHeader("filename", file.name);
        xhr.send(file);
    }
</script>
3
  • Beware though that this will not work with 'normal' multipart form uploads.
    – Tom
    Jan 26, 2015 at 13:46
  • 3
    @Tom what does that mean?
    – Chazt3n
    Dec 28, 2016 at 22:19
  • It means it's not compatible with browsers where JavaScript is disabled/non-existant, e.g. Netscape 1.*. Aug 8, 2018 at 7:17
13

I used Mike Wasson's answer before I updated all the NuGets in my webapi mvc4 project. Once I did, I had to re-write the file upload action:

    public Task<HttpResponseMessage> Upload(int id)
    {
        HttpRequestMessage request = this.Request;
        if (!request.Content.IsMimeMultipartContent())
        {
            throw new HttpResponseException(new HttpResponseMessage(HttpStatusCode.UnsupportedMediaType));
        }

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

        var task = request.Content.ReadAsMultipartAsync(provider).
            ContinueWith<HttpResponseMessage>(o =>
            {
                FileInfo finfo = new FileInfo(provider.FileData.First().LocalFileName);

                string guid = Guid.NewGuid().ToString();

                File.Move(finfo.FullName, Path.Combine(root, guid + "_" + provider.FileData.First().Headers.ContentDisposition.FileName.Replace("\"", "")));

                return new HttpResponseMessage()
                {
                    Content = new StringContent("File uploaded.")
                };
            }
        );
        return task;
    }

Apparently BodyPartFileNames is no longer available within the MultipartFormDataStreamProvider.

4
  • In WebApi RTM the BodyPartFileNames has been changed to FileData. See updated example at asp.net/web-api/overview/working-with-http/… Jun 13, 2013 at 13:22
  • Why not just use System.Web.HttpContext.Current.Request.Files collection? Oct 9, 2013 at 11:43
  • I'm thinking of using your method with 2 reservations: 1) Doesn't this write twice: i) in ReadAsMultipartAsync and ii) In File.Move? 2) Could you do async File.Move?
    – seebiscuit
    Oct 24, 2017 at 18:53
  • 1) I didn't have issues with two writes, is the url being called twice? 2) you could do Task.Run(() => { File.Move(src, dest); }); Oct 25, 2017 at 19:55
10

Toward this same directions, I'm posting a client and server snipets that send Excel Files using WebApi, c# 4:

public static void SetFile(String serviceUrl, byte[] fileArray, String fileName)
{
    try
    {
        using (var client = new HttpClient())
        {
                client.DefaultRequestHeaders.Accept.Add(new MediaTypeWithQualityHeaderValue("application/json"));
                using (var content = new MultipartFormDataContent())
                {
                    var fileContent = new ByteArrayContent(fileArray);//(System.IO.File.ReadAllBytes(fileName));
                    fileContent.Headers.ContentDisposition = new ContentDispositionHeaderValue("attachment")
                    {
                        FileName = fileName
                    };
                    content.Add(fileContent);
                    var result = client.PostAsync(serviceUrl, content).Result;
                }
        }
    }
    catch (Exception e)
    {
        //Log the exception
    }
}

And the server webapi controller:

public Task<IEnumerable<string>> Post()
{
    if (Request.Content.IsMimeMultipartContent())
    {
        string fullPath = HttpContext.Current.Server.MapPath("~/uploads");
        MyMultipartFormDataStreamProvider streamProvider = new MyMultipartFormDataStreamProvider(fullPath);
        var task = Request.Content.ReadAsMultipartAsync(streamProvider).ContinueWith(t =>
        {
            if (t.IsFaulted || t.IsCanceled)
                    throw new HttpResponseException(HttpStatusCode.InternalServerError);

            var fileInfo = streamProvider.FileData.Select(i =>
            {
                var info = new FileInfo(i.LocalFileName);
                return "File uploaded as " + info.FullName + " (" + info.Length + ")";
            });
            return fileInfo;

        });
        return task;
    }
    else
    {
        throw new HttpResponseException(Request.CreateResponse(HttpStatusCode.NotAcceptable, "Invalid Request!"));
    }
}

And the Custom MyMultipartFormDataStreamProvider, needed to customize the Filename:

PS: I took this code from another post http://www.codeguru.com/csharp/.net/uploading-files-asynchronously-using-asp.net-web-api.htm

public class MyMultipartFormDataStreamProvider : MultipartFormDataStreamProvider
{
    public MyMultipartFormDataStreamProvider(string path)
        : base(path)
    {

    }

    public override string GetLocalFileName(System.Net.Http.Headers.HttpContentHeaders headers)
    {
        string fileName;
        if (!string.IsNullOrWhiteSpace(headers.ContentDisposition.FileName))
        {
            fileName = headers.ContentDisposition.FileName;
        }
        else
        {
            fileName = Guid.NewGuid().ToString() + ".data";
        }
        return fileName.Replace("\"", string.Empty);
    }
}
2
  • Could you show how do you call you static method SetFile in your Controller?
    – user3383479
    Feb 26, 2015 at 15:43
  • This is a good answer. Extending the base provider like this also enables you to control the stream and gives you more flexibility than providing just a path i.e. cloud storage. Feb 26, 2016 at 7:37
6
[HttpPost]
public JsonResult PostImage(HttpPostedFileBase file)
{
    try
    {
        if (file != null && file.ContentLength > 0 && file.ContentLength<=10485760)
        {
            var fileName = Path.GetFileName(file.FileName);                                        

            var path = Path.Combine(Server.MapPath("~/") + "HisloImages" + "\\", fileName);

            file.SaveAs(path);
            #region MyRegion
            ////save imag in Db
            //using (MemoryStream ms = new MemoryStream())
            //{
            //    file.InputStream.CopyTo(ms);
            //    byte[] array = ms.GetBuffer();
            //} 
            #endregion
            return Json(JsonResponseFactory.SuccessResponse("Status:0 ,Message: OK"), JsonRequestBehavior.AllowGet);
        }
        else
        {
            return Json(JsonResponseFactory.ErrorResponse("Status:1 , Message: Upload Again and File Size Should be Less Than 10MB"), JsonRequestBehavior.AllowGet);
        }
    }
    catch (Exception ex)
    {

        return Json(JsonResponseFactory.ErrorResponse(ex.Message), JsonRequestBehavior.AllowGet);

    }
}
1
  • 6
    I think user need some explanation ...!
    – kamesh
    Jun 20, 2014 at 7:01
4

Here are two ways to accept a file. One using in memory provider MultipartMemoryStreamProvider and one using MultipartFormDataStreamProvider which saves to a disk. Note, this is only for one file upload at a time. You can certainty extend this to save multiple-files. The second approach can support large files. I've tested files over 200MB and it works fine. Using in memory approach does not require you to save to disk, but will throw out of memory exception if you exceed a certain limit.

private async Task<Stream> ReadStream()
{
    Stream stream = null;
    var provider = new MultipartMemoryStreamProvider();
    await Request.Content.ReadAsMultipartAsync(provider);
    foreach (var file in provider.Contents)
    {
        var buffer = await file.ReadAsByteArrayAsync();
        stream = new MemoryStream(buffer);
    }

    return stream;
}

private async Task<Stream> ReadLargeStream()
{
    Stream stream = null;
    string root = Path.GetTempPath();
    var provider = new MultipartFormDataStreamProvider(root);
    await Request.Content.ReadAsMultipartAsync(provider);
    foreach (var file in provider.FileData)
    {
        var path = file.LocalFileName;
        byte[] content = File.ReadAllBytes(path);
        File.Delete(path);
        stream = new MemoryStream(content);
    }

    return stream;
}
2

This question has lots of good answers even for .Net Core. I was using both Frameworks the provided code samples work fine. So I won't repeat it. In my case the important thing was how to use File upload actions with Swagger like this:

File upload button in Swagger

Here is my recap:

ASP .Net WebAPI 2

  • To upload file use: MultipartFormDataStreamProvider see answers here
  • How to use it with Swagger

.NET Core

1

I had a similar problem for the preview Web API. Did not port that part to the new MVC 4 Web API yet, but maybe this helps:

REST file upload with HttpRequestMessage or Stream?

Please let me know, can sit down tomorrow and try to implement it again.

1

API Controller :

[HttpPost]
public HttpResponseMessage Post()
{
    var httpRequest = System.Web.HttpContext.Current.Request;

    if (System.Web.HttpContext.Current.Request.Files.Count < 1)
    {
        //TODO
    }
    else
    {

    try
    { 
        foreach (string file in httpRequest.Files)
        { 
            var postedFile = httpRequest.Files[file];
            BinaryReader binReader = new BinaryReader(postedFile.InputStream);
            byte[] byteArray = binReader.ReadBytes(postedFile.ContentLength);

        }

    }
    catch (System.Exception e)
    {
        //TODO
    }

    return Request.CreateResponse(HttpStatusCode.Created);
}
0
0

Complementing Matt Frear's answer - This would be an ASP NET Core alternative for reading the file directly from Stream, without saving&reading it from disk:

public ActionResult OnPostUpload(List<IFormFile> files)
    {
        try
        {
            var file = files.FirstOrDefault();
            var inputstream = file.OpenReadStream();

            XSSFWorkbook workbook = new XSSFWorkbook(stream);

            var FIRST_ROW_NUMBER = {{firstRowWithValue}};

            ISheet sheet = workbook.GetSheetAt(0);
            // Example: var firstCellRow = (int)sheet.GetRow(0).GetCell(0).NumericCellValue;

            for (int rowIdx = 2; rowIdx <= sheet.LastRowNum; rowIdx++)
               {
                  IRow currentRow = sheet.GetRow(rowIdx);

                  if (currentRow == null || currentRow.Cells == null || currentRow.Cells.Count() < FIRST_ROW_NUMBER) break;

                  var df = new DataFormatter();                

                  for (int cellNumber = {{firstCellWithValue}}; cellNumber < {{lastCellWithValue}}; cellNumber++)
                      {
                         //business logic & saving data to DB                        
                      }               
                }
        }
        catch(Exception ex)
        {
            throw new FileFormatException($"Error on file processing - {ex.Message}");
        }
    }

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