Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a simple Java Server Socket but when I connect to it with a C#.Net Socket and Send to the Java Socket it blocks and I have to shutdown the .Net socket send for it to stop blocking. This them means I have to close the socket after each communication. Where am i going wrong?

socket = new Socket(AddressFamily.InterNetwork, SocketType.Stream, ProtocolType.Tcp);
                IPEndPoint ip = new IPEndPoint(IPAddress.Parse(ipAddress.Text), 8089);
                socket.Connect(ip);
 byte[] b = Encoding.UTF8.GetBytes(json);
            socket.Send(b, b.Length, SocketFlags.None);
        socket.Shutdown(SocketShutdown.Send);
        int timeout = 0;
        while (socket.Available == 0)
        {
            Thread.Sleep(100);
            timeout++;
        }


        string response = "";
        byte[] buffer = new byte[8192];
        int total = 0;
        while (socket.Available > 0)
        {
            int len = socket.Receive(buffer);
            total += len;
            response = response + (Encoding.UTF8.GetString(buffer, 0, len));
            buffer = new byte[1024];
            if (socket.Available == 0) Thread.Sleep(250);
        }
        MessageBox.Show(response);
        return response.Trim();

    }

ServerSide

clientSocket = serverSocket.accept();
        clientSocket.setKeepAlive(true);
        Log.d("DbThread","client Connected");

        br = new BufferedReader(new InputStreamReader(clientSocket.getInputStream()),8192);
        bo = new BufferedWriter(new OutputStreamWriter(clientSocket.getOutputStream()),8192);

        Thread.sleep(100);
        char[] buffer = new char[8192];

        int len=0;
        String build = "";
        while((len = br.read(buffer))>0){

            build = build + new String(buffer);
            buffer = new char[8192];
        }

        JSONObject json = new JSONObject(build.trim());
        Log.d("input",build.trim());
        String output = "";
        Gson gson = new Gson();
        switch(json.getString("classType").charAt(0))
        {
        case 'Q':
            Log.d("classType","Q");
            Query query = gson.fromJson(build.trim(), Query.class);
            output = query.executeToJson();Log.d("Query","end");break;

        case 'I':
            Log.d("classType","I");
            Insert insert = gson.fromJson(build.trim(), Insert.class);
            output = insert.executeToJson();break;

        case 'U':
            Log.d("classType","U");
            Update update = gson.fromJson(build.trim(), Update.class);
            output = update.executeToJson();break;

        case 'D':
            Log.d("classType","D");
            Delete delete = gson.fromJson(build.trim(), Delete.class);
            output = delete.executeToJson();break;

        }       



        bo.write(output);
        bo.flush();

        Log.d("Query",output);

    br.close();
share|improve this question
    
Remember that sockets are, by default, blocking. This means that things like accepting new connections, or receiving data, will block if there is nothing waiting. – Joachim Pileborg Aug 2 '12 at 13:41
    
You have to show the other side too. – Nikolai N Fetissov Aug 2 '12 at 13:43
    
where in this does it stop? the top loop? or the bottom loop? or...? – Marc Gravell Aug 2 '12 at 14:03

Firstly, checking Available as the loop exit condition is unsafe; all that tells you is what is buffered locally; that has nothing to do with the end of the stream.

Secondly, adding a Thread.Sleep is not an ideal way to do this; just Read or Recieve; that will block until some data is available; typically you just a loop over a Read or Receive.

One obvious condition where it will hang: if the other machine hasn't sent any reply; in which case it will sit forever in the topmost loop.

Additional notes:

  • you should not need to allocate a new buffer each iteration; the previous 8192 buffer is still fine; re-use it
  • you should not assume that your buffer has entire characters in it, especially since you are using UTF8; your buffer could have part of a multi-byte representation of a character; it is usually easier to make sure you have an entire message / frame before starting to decode

Personally I would investigate this by adding lots of debug output, and a network sniffer.

share|improve this answer
    
It blocks at the socket.send. I as though the Java Socket doesn't know the transmission has ended. hence why I have to shutdown the send transmission. – user1240059 Aug 2 '12 at 19:48
    
@user1240059 if you don't close the socket, then the transmission hasn't ended. Hence hy you often use "framing" on a socket. I'm confused though: you say it blocks on the send, then talk about the shutdown - but the shutdown is after the send - so: does it get to the shutdown? Where exactly does it block? – Marc Gravell Aug 2 '12 at 19:51
    
I think it's the java server socket is blocking at the read. I think it doesn't recognise the end of transmission unless I force the .net client socket to close the sending stream. – user1240059 Aug 2 '12 at 19:57
    
@user1240059 right; then you need to find out what the "framing" protocol is on this API. That is unique to your API, so I cannot tell you what this is. It could be as simple as "add a CRLF", or "add a zero-byte". It could be much more complicated. Without a "framing" protocol, it is correct to say that the message is not complete until the socket is closed. – Marc Gravell Aug 2 '12 at 20:41
    
I have tried everything at the end I can think of. I am sending from a System.Net.Sockets.Socket to a Java.Net.ServerSocket. I know it is the Java server socket blocking on the read it receives all the data I send but is expecting more. There must be something I can send to stop the server socket blocking without having to run socket.Shutdown(SocketShutdown.Send). Please help!! – user1240059 Aug 3 '12 at 12:44

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.