Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My problem is concerning JAVANIO client server message passing,i m unsure about defining the problem technically but: it seems that buffer is caching the data and when it is done then it is sending all together which is disturbing logic:

private void sendCreate(String line,SocketChannel from)
 /* A new client wishes to join the world.

      This requires the client to find out about the existing
      clients, and to add itself to the other clients' worlds.

      Message format: create name xPosn zPosn

      Store the user's name, extracted from the "create" message
  */
 { StringTokenizer st = new StringTokenizer(line);
 st.nextToken();                  // skip 'create' word
 userName = st.nextToken();
 String xPosn = st.nextToken();   // don't parse
 String zPosn = st.nextToken();   // don't parse

 // request details from other clients
 sendBroadcastMessage( "wantDetails " + achannel.socket().getInetAddress() + " " + port,from);

 // tell other clients about the new one
 sendBroadcastMessage( "create " + userName + " "+xPosn+" "+zPosn,from);

 } // end of sendCreate()

method responsible for broadcasting messages from server:

private void sendBroadcastMessage(String mesg, SocketChannel from) {
  prepWriteBuffer(mesg);
  Iterator i = clients.iterator();
  while (i.hasNext()) {
   SocketChannel channel = (SocketChannel) i.next();
   if (channel != from)
    channelWrite(channel, writeBuffer);
  }
 }

i m assuming that this should send the first message i.e sendBroadcastMessage( "wantDetails " + achannel.socket().getInetAddress() + " " + port,from); but this is not,it seems that it is waiting for other method call i.e sendBroadcastMessage( "create " + userName + " "+xPosn+" "+zPosn,from);and then sending both message as one message which is affecting application logic.ideally it should or it should send the first message after first call to sendBroadcastMessage and then when client recive the first then other call should be processed.

these are methods which are using in sendBroadcastMessage():

private void prepWriteBuffer(String mesg) {
  // fills the buffer from the given string
  // and prepares it for a channel write
  writeBuffer.clear();
  writeBuffer.put(mesg.getBytes());
  writeBuffer.putChar('\n');
  writeBuffer.flip();
 }

 private void channelWrite(SocketChannel channel, ByteBuffer writeBuffer) {
  long nbytes = 0;
  long toWrite = writeBuffer.remaining();

  // loop on the channel.write() call since it will not necessarily
  // write all bytes in one shot
  try {
    nbytes += channel.write(writeBuffer);

  } catch (ClosedChannelException cce) {
   cce.printStackTrace();
  } catch (Exception e) {
   e.printStackTrace();
  }
  // get ready for another write if needed
  writeBuffer.rewind();
 }

please suggest some solution.

thanks,

jibby lala

Edit : what about this,i got this patch from some chat app:

private void prepWriteBuffer(String mesg) {
        // fills the buffer from the given string
        // and prepares it for a channel write
        writeBuffer.clear();
        writeBuffer.put(mesg.getBytes());
        writeBuffer.putChar('\n');
        writeBuffer.flip();
    }


// called needs to remove the channel if it fails, otherwise it will fail forever.
        private void channelWrite(SocketChannel channel, ByteBuffer writeBuffer)  {    
            long nbytes = 0;
            long toWrite = writeBuffer.remaining();
            // loop on the channel.write() call since it will not necessarily
            // write all bytes in one shot
            try {
            while (nbytes != toWrite) {
                nbytes += channel.write(writeBuffer);

                try {
                    Thread.sleep(CHANNEL_WRITE_SLEEP);
                } catch (InterruptedException e) {
                }
            }
        } catch (ClosedChannelException cce) {
        } catch (Exception e) {
        }
        // get ready for another write if needed
        writeBuffer.rewind();
    }
share|improve this question

1 Answer 1

up vote 0 down vote accepted

perhaps you intended

 while(writeBuffer.remaining()>0)
      channel.write(writeBuffer);

However, you problem appears to be that you assume there is some type of magic marker between messages. However, no such divider exists. A stream is just a stream of bytes. When you read in a blocking mode you will get atleast one byte, you may get more this may span what was multiple writes but unless you include in the stream where you expect a message to start and end, you will have no way of knowing.

A simple approach is to write the length of the message at the start of the message and read at most single message until you get all of it. Something like.

private void prepWriteBuffer(String mesg) {    
  // fills the buffer from the given string    
  // and prepares it for a channel write    
  writeBuffer.clear();
  byte[] bytes = mesg.getBytes());
  writeBuffer.putInt(bytes.length);    
  writeBuffer.put(bytes);
  writeBuffer.flip();    
 } 


// called needs to remove the channel if it fails, otherwise it will fail forever.
private void channelWrite(SocketChannel channel, ByteBuffer writeBuffer) throws IOException {    
 while(writeBuffer.remaining()>0)
      channel.write(writeBuffer);
 writeBuffer.rewind();
}
share|improve this answer
    
Thanks for the answer, but this is inserting 4 additional characters in between those messages and still concatenating them and then sending. –  static void main Nov 26 '10 at 22:28
    
correct. that way to receiver can read the 4 bytes to determine the length and know in advance the length of the message. –  Peter Lawrey Nov 26 '10 at 23:05
    
If you need a pure text format, you can do that but decoding it to find the message boundaries with NIO is trickier. –  Peter Lawrey Nov 26 '10 at 23:06

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.