Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm trying to create two sockets for my server/client communication: One on which the client sends to the server and one the other way round. Both sockets have the same IP but a different port. Send and receive are in different threads.

The problem is that somehow they block each other. If I send from server to client I can't receive on the server side and vice-versa.

Is it even possible to have two sockets open at once to the same client/server? On the internet I could neither find someone doing it like I plan to do it nor saying it's impossible.

My client is an android phone and my server a PC.

Thanks in advance!

Sorry, it's a bit lengthy, I tried to simplify it as much as I could. println is a method that outputs Strings.

On the server side I write in the main method:

//set up the two Sockets sOut and sIn
IO myIO=new IO(sOut, sIn);
println("received "+myIO.receive()); //S1
myIO.toSendQ(new Object obj); //S2

On the client side in onCreate():

//set up the two Sockets sOut and sIn
IO myIO = new IO(sOut, sIn);
myIO.toSendQ(new Object obj); //C1
println("received "+myIO.receive()); //C2
//display sth

I/O looks like this:

public class IO
{
ObjectOutputStream objOut = null;
ObjectInputStream objIn = null;
public LinkedList<Msg> queueRec=new LinkedList<Msg>();
public LinkedList<Msg> queueSend=new LinkedList<Msg>();
int sleepTimeSend=1000;

public IO(Socket sOut, Socket sIn)
{
    init(sOut, sIn);
    new SendThread().start();
}

public synchronized void toSendQ(Msg msg)
{
    queueSend.add(msg);
}


public synchronized boolean send(Msg msg)
{
    boolean sent = true;
    if (msg != null)
    {
        try
        {
            objOut.writeObject(msg);
            objOut.flush();
            println("-> sent " + msg);
        }
        catch (IOException e)
        {
        }
    }
    return sent;
}


public synchronized Msg receive()
{
    Msg msg = null;
    try
        try
        {

            msg = (Msg) (objIn.readObject());
        }
        catch (ClassNotFoundException cnf)
        {
        }
    }
    catch (IOException e)
    {
    }
    queueRec.add(msg);
    return msg;
}


private synchronized boolean init(Socket sOut, Socket sIn)
{
    boolean sent = true;

    try
    {
        objOut = new ObjectOutputStream(sOut.getOutputStream());
        objIn = new ObjectInputStream(sIn.getInputStream());
    }
    catch (IOException e)
    {
    }
    return sent;
}


class SendThread extends Thread
{
    Msg msg;
    public void run()
    {
        while(true)
        {
            if(!queueSend.isEmpty())
            {
                LinkedList<Msg> queueSendClone=(LinkedList<Msg>) queueSend.clone();
                Iterator<Msg> it=queueSendClone.iterator();
                while(it.hasNext())
                {
                    msg=it.next();
                    send(msg);
                    queueSend.removeFirst();
                }
            }
            else
            {
                try
                {
                Thread.sleep(sleepTimeSend);
                }
                catch(Exception e)
                { 
                }
            }
        }
    }
}


}

I don't see anything displayed on the client if I run the program like this. The program doesn't hang though, but it's stuck in the line above, I assume.

If I comment out either C1 & S1 or C2 & S2 the message is sent and received. I don't get any error messages when trying to send or receive (in my program I do catch the exceptions, just left it out for simplicity's sake).

share|improve this question
    
Yes, it's possible, post relevant code and we may be able help you find the problem. –  MByD Jun 2 '11 at 14:22
    
Fixed it. The synchronizeds blocked it somehow. Created a separate synchronized method toRecQueue() that is called by receive()and removed all unnecessary other sychronizeds. –  ipped Jun 5 '11 at 14:18

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.