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I want to make my pc both server and client. This is my code

import java.net.*;
class tester {
static int pos=0; 
 static byte buffer[]=new byte[100];
   static void Client() throws Exception {
    InetAddress address=InetAddress.getLocalHost();
  DatagramSocket ds=new DatagramSocket(3000,address);
   while(true) {
    int c=System.in.read();
    buffer[pos++]=(byte)c;
    if((char)c=='\n')
      break;
   }
   ds.send(new DatagramPacket(buffer,pos,address,3000));
  Server();
}                   

static void Server() throws Exception {
 InetAddress address=InetAddress.getLocalHost();
 DatagramSocket ds=new DatagramSocket(3001,address);
 DatagramPacket dp=new DatagramPacket(buffer,buffer.length);
 ds.receive(dp);
 System.out.print(new String(dp.getData(),0,dp.getLength()));
}
  public static void main(String args[])throws Exception {

 if(args.length==1) {
  Client();
   } 
 }

}

In this I have tried to make my computer both server and client. I run this program on cmd as java tester hello but the program keeps on waiting.What should i do to receive message typed.?

*If there is any amendment to be made in the code please suggest that.Note that the aim is to make my pc both server and client.

share|improve this question
3  
Why are you putting _networking at the end of each question? You can use multiple tags with the question if you mean to say that this is a networking related question – Tahir Akhtar Mar 25 '11 at 14:00
up vote 34 down vote accepted

Currently your application will either run as the server or the client, depending on whether or not you provide a command line argument. To run as both within the same process, you'd want to start two threads (at least) - one for the server and one for the client.

For the moment though, I'd just start it up twice in two different command windows - once with a command line argument (to make it the client) and once without (to make it the server).

EDIT: I've just noticed that your main method will never run Server(). So you need to change it to something like this:

if (args.length == 1) {
  Client();
} else {
  Server();
}

(You might also want to start following Java naming conventions at the same time, by the way, renaming the methods to client() and server().)

Then remove the Server() call from the end of Client(), and call the parameterless DatagramSocket constructor in Client() to avoid trying to be a server...

The finished code might look something like this:

import java.io.IOException;
import java.net.*;

public class ClientServer {

   private static void runClient() throws IOException {
     InetAddress address = InetAddress.getLocalHost();
     DatagramSocket ds=new DatagramSocket();
     int pos = 0;
     byte[] buffer = new byte[100];
     while (pos < buffer.length) {
       int c = System.in.read();
       buffer[pos++]=(byte)c;
       if ((char)c == '\n') {
         break;
       }
     }
     System.out.println("Sending " + pos + " bytes");
     ds.send(new DatagramPacket(buffer, pos, address, 3000));
  }                   

  private static void runServer() throws IOException {
    byte[] buffer = new byte[100];
    InetAddress address = InetAddress.getLocalHost();
    DatagramSocket ds = new DatagramSocket(3000, address);
    DatagramPacket dp = new DatagramPacket(buffer, buffer.length);
    ds.receive(dp);
    System.out.print(new String(dp.getData(), 0, dp.getLength()));
  }

  public static void main(String args[]) throws IOException {
    if (args.length == 1) {
      runClient();
    } else {
      runServer();
    }
  }
}

Note that this still isn't great code, in particular using the system default string encoding... but it works. Start the server in one window by running java ClientServer, then in another window run java ClientServer xxx, type a message and press return. You should see it in the server window.

share|improve this answer
4  
@Jon Skeet please tell what do you mean by 'press return'? – Suhail Gupta Mar 25 '11 at 14:29
21  
@Suhail: Press the "return" key on your keyboard. Otherwise known as "enter". – Jon Skeet Mar 25 '11 at 14:29
19  
@Suhail: That's why I gave you very detailed instructions half an hour ago. Next time someone takes the time to give you detailed help, please make sure you've read their answer carefully before saying it doesn't work. – Jon Skeet Mar 25 '11 at 17:13
9  
You're a a software developer.. and you don't know what is meant by 'press return'? I'm pretty sure that's illegal. – Jaco Pretorius Mar 25 '11 at 17:18
8  
+1 @Jon You deserve a million rep for this one :) – Vincent Robert Mar 25 '11 at 17:42

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