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I'm writing a simple networking app... I need to know the real ip of my machine on the network, like 192.168.1.3 . getLocalHost returns 127.0.0.1 (on Linux, dunno if it is the same on windows) how to do it?;

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In my windows, System.out.println(InetAddress.getLocalHost().getHostAddress()); prints 10.50.16.136 –  Calm Storm Mar 4 '10 at 17:31
    
127.0.1.1 for me (Ubuntu) –  sfussenegger Mar 4 '10 at 17:32
    
Interesting ... correct answer although it's not working? –  sfussenegger Mar 4 '10 at 17:55
    
This is very common on SO, the incorrect answered gets marked as answered. –  Steve Kuo Mar 4 '10 at 17:57
    
@sfussenegger 127.0.1.1 is a Debian thing (which Ubuntu is derived from). IIRC, you will get it if you are using DHCP. This allows reporting a fixed IP address (I believe this is necessary for the smooth running of GNOME). So 127.0.1.1 is a "real IP" address. (BTW: 192.168.* is non-internet IP address.) –  Tom Hawtin - tackline Mar 4 '10 at 18:39

4 Answers 4

To fix it:

  1. Find your host name. Type: hostname. For example, you find your hostname is mycomputer.xzy.com

  2. Put your host name in your hosts file. /etc/hosts . Such as 10.50.16.136 mycomputer.xzy.com

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This is the most neat answer. –  amos May 11 at 14:44

If you actually want to work with all of the IP addresses on the machine you can get those with the NetworkInterface class. Of course, then you need to which one you actually want to use, but that's going to be different depending on what you're using it for, or you might need to expand the way you're using it to account for multiple addresses.

import java.net.*;
import java.util.*;

public class ShowInterfaces
{
        public static void main(String[] args) throws Exception
        {
                System.out.println("Host addr: " + InetAddress.getLocalHost().getHostAddress());  // often returns "127.0.0.1"
                Enumeration<NetworkInterface> n = NetworkInterface.getNetworkInterfaces();
                for (; n.hasMoreElements();)
                {
                        NetworkInterface e = n.nextElement();
                        System.out.println("Interface: " + e.getName());
                        Enumeration<InetAddress> a = e.getInetAddresses();
                        for (; a.hasMoreElements();)
                        {
                                InetAddress addr = a.nextElement();
                                System.out.println("  " + addr.getHostAddress());
                        }
                }
        }
}
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8  
while (x.hasMoreElements()) {} would be neater than for (;x.hasMoreElements();) {} –  sync Nov 25 '12 at 23:49

As the machine might have multiple addresses, it's hard to determine which one is the one for you. Normally, you want the system to assign an IP based on its routing table. As the result depends on the IP you'd like to connect to, there is a simple trick: Simply create a connection and see what address you've got from the OS:

// instead of google.com, use what makes most sense to you
// output on my machine: "192.168.1.102"
Socket s = new Socket("192.168.1.1", 80);
System.out.println(s.getLocalAddress().getHostAddress());
s.close();

// output on my machine: "127.0.1.1"
System.out.println(InetAddress.getLocalHost().getHostAddress());

I'm not sure whether it's possible to do this without establishing a connection though. I think I've once managed to do it with Perl (or C?), but don't ask me about Java. I think it might be possible to create a UDP socket (DatagramSocket) without actually connecting it.

If there is a NAT router on the way you won't be able to get the IP that remote hosts will see though. However, as you gave 192.* as an example, I think you don't care.

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Your computer may have multiple IPs. How do you know which one? The way I do it is to have a very simple CGI running on another machine that reports back the IP it's seen, and I hit that when I need to know what my IP looks like to the outside world.

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