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I am using C# to create a service for file uploading. I created three methods:

  • upload_start(string filename)
  • upload_continue(string filename, byte[] buffer)
  • upload_end(string filename)
  • It works, but I don't want to handle 3 functions from the client program. How can I open a FileStream from the client program, and let the server side finish the file upload?

    share|improve this question
    You want to start having the file be uploaded from the client, then the server can take over reading the file from the client computer? I am trying to get clarification on what you are trying to do. – James Black May 21 '11 at 3:46
    Yes, I want server take care everything. – alex May 21 '11 at 16:12

    3 Answers 3

    up vote 0 down vote accepted

    The simplest approach would probably be to create a REST service, either with wcf or do something similar with, but you would then just do a POST operation, and the server could do the work.

    Here is one approach:

    This would have a simpler interface for you.

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    I don't think you can as the FileStream is not Serializable. Why not pass the service the file name (as you already are) and have the service open the file and process it.

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    but it seems like I can just request.getInputStream to read all the upload file.<br> I cannot open file by the file name from web service server side, since the file is on client side. – alex May 21 '11 at 14:31
    @alex - The server won't have access to the file system on the client, as that would be an incredibly large security hole that others would love to exploit. – James Black May 21 '11 at 18:41

    For upload a large file in WebServices(not Windows Cominication Foundation WCF) this is the way to follow:

    In the server side file Web.Config add this xml and change the value of maxRequestLength depending on the maximum size of upload, by defoult maxRequestLength is 4MB, in this example 8192=MB


    Add another public function in server side, this function received a byte[] contains the file, the file name and a path where you wont save the file in the server.

     public String UploadFile(byte[] fileByte, String fileName, String savePath)
                string newPath = savePath;
                if (!Directory.Exists(newPath))
                newPath = newPath + fileName;
                System.IO.FileStream fs1 = null;
                byte[] b1 = null;
                b1 = fileByte;
                fs1 = new FileStream(newPath, FileMode.Create);
                fs1.Write(b1, 0, b1.Length);
                fs1 = null;
                return newPath;

    In the client side add this code to send the file:

    Microsoft.Win32.OpenFileDialog dlg = new Microsoft.Win32.OpenFileDialog();
                dlg.FileName = "Select a File"; 
                dlg.DefaultExt = ".xls";  
                dlg.Filter = "Excel documents (.xls)|*.xls";  
                // Show open file dialog box 
                Nullable<bool> result = dlg.ShowDialog();
                // Process open file dialog box results 
                if (result == true)
                    string filename = dlg.FileName;
                    string file = Path.GetFileName(filename);
                    System.IO.FileStream fs1 = null;
                    fs1 = System.IO.File.Open(filename, FileMode.Open, FileAccess.Read);
                    byte[] b1 = new byte[fs1.Length];
                    fs1.Read(b1, 0, (int)fs1.Length);
                    String savePath = @"C:\DOC\IMPORT\";
                    String newPath = WEB_SERVICES.UploadFile(b1, file, savePath);
                    MessageBox.Show(String.Format("The file is uploaded in {0}", newPath));
                    MessageBox.Show("Select a file, please");
    share|improve this answer

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