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In the server side, i use this code :

ServerSocket server = new ServerSocket(1234);
Socket server_socket = server.accept();

I found the server is listening on port 1234.

When one or more client sockets are connected, they are all using the same port 1234 !

That is really confusing :

enter image description here

I remember that multi sockets can't use the same port, isn't it right ? Thanks.

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5  
Why wouldn't it? Read up on how TCP works. –  Jan Dvorak Dec 30 '12 at 15:12
1  
The simple answer you are looking for is that you didn't notice the LISTEN on the right.. it's only one. –  Stefanos Kalantzis Dec 30 '12 at 15:32
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No, .accept() does not return two sockets. docs.oracle.com/javase/6/docs/api/java/net/… –  Stefanos Kalantzis Dec 30 '12 at 15:36
2  
I called accept() twice, so there actually two sockets there, look at my screenshot. –  MrROY Dec 30 '12 at 15:38
1  
@StefanosKalantzis accept returns two sockets if called twice –  Jan Dvorak Dec 30 '12 at 15:40

1 Answer 1

up vote 8 down vote accepted

A TCP connection is identified by four numbers:

  • client (or peer 1) IP
  • server (or peer 2) IP
  • client port
  • server port

A typical TCP connection is open as follows:

  • The client IP is given by the client's ISP or NAT.
  • The server IP is given by the user or looked up in a DNS.
  • The client chooses a port arbitrarily from the unassigned range (while avoiding duplicate quadruples)
  • The server port is given by the protocol or explicitly.

The port that you specify in the ServerSocket is the one the clients connect to. It's nothing more than a port number that the OS knows that belongs to your application and an object that passes the events from the OS to your application.

The ServerSocket#accept method returns a Socket. A Socket is an object that wraps a single TCP connection. That is, the client IP, the server IP, the client TCP port and the server TCP port (and some methods to pass the associated data around)

The first TCP packet that the client sends must contain the server port that your app listens on, otherwise the operating system wouldn't know what application the connection belongs to.

Further on, there is no incentive to switch the server TCP port to another number. It doesn't help the server machine OR the client machine, it needs some overhead to perform (you need to send the new and the old TCP port together), and there's additional overhead, since the server OS can no longer identify the application by a single port - it needs to associate the application with all server ports it uses (the clients still needs to do it, but a typical client has less connections than a typical server)


What you see is

  • two inbound connections, belonging to the server (local port:1234). Each has its own Socket in the server application.
  • two outbound connections, belonging to the client (remote port:1234). Each has its own Socket in the client application.
  • one listening connection, belonging to the server. This corresponds to the single ServerSocket that accepts connections.

Since they are loopback connections, you can see both endpoints mixed together on a single machine. You can also see two distinct client ports (52506 and 52511), both on the local side and on the remote side.

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Does the two 127.0.0.1.1234 in my picture are the same socket ? –  MrROY Dec 30 '12 at 15:35
    
@MrROY they are different Sockets (note the other port is different in each) that came from the same ServerSocket –  Jan Dvorak Dec 30 '12 at 15:39
    
thanks! Do you mean these two(or more) sockets from the same ServerSocket could(or must) use the same port ? –  MrROY Dec 31 '12 at 1:53
    
@MrROY Sockets returned by the same ServerSocket must have the same server port as the ServerSocket, but two Sockets from the same ServerSocket will always differ in either the client IP or the client port (unless the server IP differs - your server has two distinct network cards, both facing the same network or you have one of those cards that pretend to be two) –  Jan Dvorak Dec 31 '12 at 7:59

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