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I'll create an WCF for uploading file such as images or pdf files to te server. How can I create a service that can handle this function ? I tried to googling about it, but most of article told me to use Stream as service parameter. But what I want is using byte[] (array) for the file content. because, this service is not only accessing using .nte framework, but also using other technologies, such as php, java, objective-c, etc.

any helps ?

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A byte array is not a file. Should edit the subject of this question to reflect desire to post a byte array. Its misleading. –  barrypicker Mar 18 '13 at 19:14

3 Answers 3

up vote 4 down vote accepted

Seems streaming is your only option. See this [MSDN example]

See this question : How to upload a file to a WCF Service?

You could check out this article: http://blogs.msdn.com/b/carlosfigueira/archive/2008/04/17/wcf-raw-programming-model-receiving-arbitrary-data.aspx

It talks about just setup WCF Service for receiving arbitrary data, and you can POST from any client (php,java etc)

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Thanks Giddy... –  Ichiro Satoshi Oct 19 '11 at 2:45

Create a WCF service method accepting byte[] as a parameter:

[OperationContract]
public void ReceiveByteArray(byte[] byteArray) { ... }
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this wont works with large files. Using Streaming message transfer is better. Using byte array as requested is probably a bad idea. Maybe using an http put handler aside the WCF service can be a good idea –  Steve B Oct 18 '11 at 8:43
    
yozora wants to use it across various platforms, the solution is not ideal, but can help in 90% of cases, for rest a smart uploader might be required... –  Karel Frajtak Oct 18 '11 at 8:47

Create a WCF Service method accepting File Stream.

1) using a fileupload control you can perform the task 2) create a Temp folder on client site.

here code...

string fileextension=null, FileName=null;

        try
        {
                if (FileUpload1.HasFile)
                {

                    ITransferFile clientUpload = new TransferFileClient();
                    RemoteFileInfo uploadRequestInfo = new RemoteFileInfo();
                    fileextension = Path.GetExtension(FileUpload1.PostedFile.FileName);

                    FileUpload1.PostedFile.SaveAs(Server.MapPath(Path.Combine("~/TempFolder/", FileName + fileextension)));
                    System.IO.FileInfo fileInfo = new System.IO.FileInfo(Server.MapPath("~/TempFolder/") + FileName + fileextension);

                    using (System.IO.FileStream stream = new System.IO.FileStream(fileInfo.FullName, System.IO.FileMode.Open, System.IO.FileAccess.Read))
                    {
                        uploadRequestInfo.FileName = FileUpload1.PostedFile.FileName;
                        uploadRequestInfo.Length = fileInfo.Length;
                        uploadRequestInfo.FileByteStream = stream;
                        clientUpload.UploadFile(uploadRequestInfo);
                    }

                }


        }
        catch (Exception ex)
        {
            System.Web.HttpContext.Current.Response.Write("Error : " + ex.Message);
        }
        finally
        {
            if (File.Exists(Server.MapPath("~/TempFolder/") + FileName + fileextension))
            {
                File.Delete(Server.MapPath("~/TempFolder/") + FileName + fileextension);
            }
        }
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