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.

Why doesn't the following code throw a "java.net.BindException: Address already in use: JVM_Bind" exception?

import java.net.InetSocketAddress;
import java.net.ServerSocket;

public class Test
{
    public static void main(String[] args) throws Exception
    {
        try (ServerSocket socket1 = new ServerSocket();
             ServerSocket socket2 = new ServerSocket();
             ServerSocket socket3 = new ServerSocket())
        {
            int port = 10000;

            socket1.setReuseAddress(false);
            socket1.bind(new InetSocketAddress("0.0.0.0", port));

            socket2.setReuseAddress(false);
            socket2.bind(new InetSocketAddress("127.0.0.1", port));

            socket3.setReuseAddress(false);
            socket3.bind(new InetSocketAddress("127.0.0.2", port));

            Thread.sleep(Long.MAX_VALUE);
        }
    }
}

Running 'netstat' afterwards displays:

C:\Users\Administrator>netstat -a -n | findstr 10000
  TCP    0.0.0.0:10000          0.0.0.0:0              LISTENING
  TCP    127.0.0.1:10000        0.0.0.0:0              LISTENING
  TCP    127.0.0.2:10000        0.0.0.0:0              LISTENING
  TCP    [::]:10000             [::]:0                 LISTENING

I am running this on Windows Server 2008 R2 (64-bit), and 'ipconfig /all' displays only one network adapter/interface (other network adapters are disabled). But, on some other machines, this program actually does throw the expected "java.net.BindException: Address already in use: JVM_Bind"!

What could be going on?

share|improve this question
    
They are not the same port. They are the same port number. Different sockets could get notified depending on which (virtual) interface the same packets are sent to. –  Jan Dvorak Jan 3 '13 at 3:21
    
But I have only one network interface on that machine –  ManRow Jan 3 '13 at 3:23
6  
The loopback virtual interface has lots of IP addresses. You can listen to each of them separately, even with the same port number. –  Jan Dvorak Jan 3 '13 at 3:26
    
@JanDvorak Your comment should be an answer. –  Jim Garrison Jan 3 '13 at 6:07

1 Answer 1

up vote 2 down vote accepted

You can bind on the same port number on different IP addresses. The operating system can distinguish the incoming packets by their target IP address as well as their TCP port number.

The operating system has no problem keeping a separate serverSocket for 127.0.0.1:1000 and 127.0.0.2:1000. It knows where each packet belongs - even if it opens a new connection.

Note that the IP address 0.0.0.0 is just that - an IP address (it is not a valid IP address in the sense IP packets could be sent there, but I can't any support for 0.0.0.0 == any either). If you want to listen on all addresses, supply null to the InetSocketAddress instead. At this point, you have a greater chance of getting the desired exception (unless the OS decides that wildcard listens have lower priority and don't really overlap specific listens, so they can bind both).

Also note that setting setReuseAddress will not affect the binding. It only affects some specifics of what connections get refused or accepted.

As a side note - what's the point of waiting three hundred million years?

share|improve this answer
    
There is no difference between specifying 0.0.0.0 and null. Both mean INADDR_ANY. For that reason I'm surprised the more specific binds work afterwards. If there was no 0.0.0.0 I would expect the others to work, but not with 0.0.0.0 having already been bound. –  EJP Jan 3 '13 at 11:28
    
@EJP I originally thought the same but I couldn't find a support for that idea in the documentation. I did find the statement that port 0 means any at the same place, too. –  Jan Dvorak Jan 3 '13 at 11:29

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.