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In java, I can write code like this:

 ServerSocket ss = new ServerSocket(1111);
 Socket s = ss.accept();
 // here s.getLocalPort() is 1111
 ss.close();
 // here this is ok even s is still connected with a client.
 ss = new ServerSocket(s.getLocalPort());

on client side:

Socket s = new Socket("localhost", 1111);
// this line will throw an exception. 
ServerSocket ss = new ServerSocket(s.getLocalPort());

What I don't understand is the last line of the above two pieces of code seems no difference, why does it work differently? any info is highly appreciated, thank you in advance.

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Anybody has any hints? –  Sam Zheng Sep 22 '11 at 7:12

1 Answer 1

In the first case you closed the socket, in the second you didn't, so the port is still occupied.

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thank you for the quick reply, in the first case, I just closed the server socket "ss", but the socket "s" is still alive –  Sam Zheng Sep 15 '11 at 8:47
    
Correct, yet you don't listen to this port for new connections anymore, only communicate with the already established connections. –  MByD Sep 15 '11 at 8:48
    
yes, that is my question, see the second case, there is no socket listening on the port s.getLocalPort(), but why cannot I create a socket listening on it? –  Sam Zheng Sep 15 '11 at 8:53

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