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  • This is a file transfer send/receive program using sockets TCP. This code is included in both client and server application and it works fine only for the first time.

  • The second time, the side which is going to receive gets 0 and the transfer finishes. How can I fix it so it can be used many times?

    public static void sendFile(string filePath)
    {
        FileStream fs = new FileStream(filePath, FileMode.Open, FileAccess.Read);
        string fileName = Path.GetFileName(filePath);
        byte[] fileData;
        try
        {
            //sending file name and file size to the server
            busy = true;
            fileSize = fs.Length;
            byte[] fileDetial = null;
            string detail =  fileName + "," + fileSize.ToString();
            fileDetial = Encoding.ASCII.GetBytes(detail);
            client.Send(fileDetial);
    
            //sending file data to the server
    
            fileData = new byte[packetSize];
            count = 0;
            sum = 0;
            Program.thFP.Start();                           // running transfer rate
            Program.fp.StatusLabel("Sending data...");
            transferRate.timeLeft();
    
            while (sum < fileSize)
            {
                fs.Seek(sum, SeekOrigin.Begin);
                fs.Read(fileData, 0, fileData.Length);
                count = client.Send(fileData, 0, fileData.Length, SocketFlags.None);
                sum += count;
                Program.fp.ProgressBarFileHandler(sum, fileSize);
            }
        }
        finally
        {
            busy = false;
            fs.Close();
            fileData = null;
            MessageBox.Show(string.Format("{0} sent successfully", fileName));
        }
    }
    

    there's no problem at all with the code below as i guess .. i think the problem is in the SENDFILE method .. but here's the receiveFile code .. it might help

    public static void ReceiveFile()
    {
    
        //receving file name and file size from server
        busy = true;
        byte[] commandData = new byte[1024];
        client.Receive(commandData);
        Console.WriteLine(Encoding.ASCII.GetString(commandData));
        string[] Command = Encoding.ASCII.GetString(commandData).Split(',');
        string fileName = Command[0];
        fileSize = Convert.ToInt64(Command[1]);
        Program.thFP.Start();                           // running transfer rate
        Program.fp.StatusLabel("Receiving data...");
        transferRate.timeLeft();
    
        // receiving the file data from server
        FileStream fs = new FileStream(@"D:\" + fileName, FileMode.Create, FileAccess.Write);
        byte[] fileData = new byte[packetSize];
        try
        {
            count = 0;
            sum = 0;
            while (sum < fileSize)
            {
                count = client.Receive(fileData,0,fileData.Length, SocketFlags.None);
                fs.Seek(sum, SeekOrigin.Begin);
                fs.Write(fileData, 0, fileData.Length);
                sum += count;
                Program.fp.ProgressBarFileHandler(sum,fileSize);
            }
        }
        finally
        {
            busy = false;
            fs.Close();
            fileData = null;
            MessageBox.Show(string.Format("{0} recevied successfully", fileName));
        }
    }
    
  • share|improve this question
    1  
    It might be helpful if you remove the try...finally, or atleast add a catch statement, to see if an Exception is being thrown somewhere. –  TJMonk15 Jan 23 '12 at 0:39
        
    im gonna try that =) –  Murhaf Sousli Jan 23 '12 at 0:40
        
    i removed the try and finally .. the application didn't stop or gave me an error.. i think something wrong gets with the socket after the first transfer :S –  Murhaf Sousli Jan 23 '12 at 0:44
        
    You can run netstat to see what state the port is in. –  Chris O Jan 23 '12 at 1:41
        
    how can i do that ?! –  Murhaf Sousli Jan 23 '12 at 1:43

    2 Answers 2

    up vote 1 down vote accepted

    I've fixed the code. The problem was in the SendFile method and exactly in the FileStream

    I should Dispose it, so I can initialize it again with the new path

    finally
    {
        busy = false;
        fs.Dispose();   //here i fixed my mistake it was fs.Close()
        fileData = null;
        MessageBox.Show(string.Format("{0} sent successfully", fileName));
    }
    
    share|improve this answer

    I'd suggest you need to dispose of the FileStream. I' recommend wrapping it in a using block, so it will always be disposed even if an excpetion is thrown.

    // receiving the file data from server
    using (FileStream fs = new FileStream(@"D:\" + fileName, FileMode.Create, FileAccess.Write))
    {
        byte[] fileData = new byte[packetSize];
        try
        {
            ...same code as before here...
        }
        finally
        {
             ...same code as before here...
        }
    }
    

    I always recommend wrapping streams in a using block. It means that if you later come back and edit the code, there is less danger of you introducing a code path that does not dispose of the stream when done.

    I'd also restructure the code so that your "Successful" message isn't in a finally block - it should probably be at the end of the try block. Your current implementation will show the Success message when an exception is thrown - and the file might therefore be successful.

    share|improve this answer
        
    indeed .. you are absolutely right .. it should edited and updated the way you said .. but the code was about a problem and its fixed :) no matter –  Murhaf Sousli Jan 28 '12 at 3:02

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