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I am trying to write a program using Sockets and I need to get my own local IP address.

When I use getLocalAddress in the socket, I only get 0.0.0.0.

Here is a little piece of my code:

DatagramSocket socket;
DatagramPacket pacoteEnvio = new DatagramPacket(msgByte, msgByte.length, addr, 6500);
socket = new DatagramSocket();
System.out.println("Local address = " + socket.getLocalAddress());
socket.send(pacoteEnvio);

Do you have any idea?

I am using UDP, so I am not sure if I can get my IP this way because it's connectionless, but I think you can help me!

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Your socket is not bound, that explains the 0 0 0 0 address –  GETah Apr 24 '12 at 13:12
    
I tried to bound it for a test, but i got the message: It's already bound.. –  fhbeltrami Apr 24 '12 at 13:15
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4 Answers 4

Getting the local address using mechanisms like this generally doesn't work in the way you expect. A system generally has at least two addresses - 127.0.0.1 and ip address of nic, when you bind to an address for listening, you are binding to INADDR_ANY, which is the same as the address 0.0.0.0 which is the same as binding to 127.0.0.1 and ip address of nic. Consider a laptop with a wired and wireless network card - either or both of them could be connected at the same time. Which would be considered the IP address of the system in this case?

I stole a subset of the answer for enumerating the ip addresses of all enabled NIC cards, which deals with the addresses of all the NICs, which lists the IP addresses for all the interfaces, on my system I have 10 interfaces, so I end up with a lot of IP addresses.

try {
  System.out.println("Full list of Network Interfaces:");
  for (Enumeration<NetworkInterface> en = NetworkInterface.getNetworkInterfaces(); en.hasMoreElements();) {
      NetworkInterface intf = en.nextElement();
      System.out.println("    " + intf.getName() + " " + intf.getDisplayName());
      for (Enumeration<InetAddress> enumIpAddr = intf.getInetAddresses(); enumIpAddr.hasMoreElements(); ) {
          System.out.println("        " + enumIpAddr.nextElement().toString());
      }
  }
} catch (SocketException e) {
  System.out.println(" (error retrieving network interface list)");
}

Generally, though if you're server programming, when you receive a packet on a UDP service, it contains the sender's IP address, which you simply send the response to, and the computer is smart enough to send it out of the correct network interface.

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The javadoc for DatagramSocket.getLocalAddress() says this

Returns - the local address to which the socket is bound, null if the socket is closed, or an InetAddress representing wildcard address if either the socket is not bound, or the security manager checkConnect method does not allow the operation.

If you create a DatagramSocket using the no-args constructor, you get a socket that is not bound, and therefore (as per the javadoc) getLocalAddress() should return the wildcard IP address 0.0.0.0. And it does.

It is surprising what you can learn by reading the documentation :-)

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You can try :

InetAddress ip = InetAddress.getLocalHost();

http://docs.oracle.com/javase/1.4.2/docs/api/java/net/DatagramSocket.html

public DatagramSocket(int port, InetAddress laddr) throws SocketException

Creates a datagram socket, bound to the specified local address. The local port must be between 0 and 65535 inclusive. If the IP address is 0.0.0.0, the socket will be bound to the wildcard address, an IP address chosen by the kernel.

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it's not working... i tried too –  fhbeltrami Apr 24 '12 at 13:13
    
Now it works. Thanks man –  fhbeltrami Apr 24 '12 at 13:23
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While the DatagramSocket is not connected, it doesn't bind any port on local machine so it's IP is 0.0.0.0 . Try to make connection with socket.connect(SocketAddress addr) and then you will get the right result. You will get the same 0.0.0.0 ip adress after socket.disconnect() method.

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But I am broadcasting, so I don't have any address to connect. –  fhbeltrami Apr 24 '12 at 13:20
    
try to connect to localhost(find a free port there) –  Zhivko Draganov Apr 24 '12 at 13:25
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