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So, I'm trying to get the IP-Address of my machine in my local network (which should be 192.168.178.41).

My first intention was to use something like this:

InetAddress.getLocalHost().getHostAddress();

but it only returns 127.0.0.1, which is correct but not very helpful for me.

I searched around and found this answer http://stackoverflow.com/a/2381398/717341, which simply creates a Socket-connection to some web-page (e.g. "google.com") and gets the local host address from the socket:

Socket s = new Socket("google.com", 80);
System.out.println(s.getLocalAddress().getHostAddress());
s.close();

This does work for my machine (it returns 192.168.178.41), but it needs to connect to the internet in order to work. Since my application does not require an internet connection and it might look "suspicious" that the app tries to connect to google every time it is launched, I don't like the idea of using it.

So, after some more research I stumbled across the NetworkInterface-class, which (with some work) does also return the desired IP-Address:

Enumeration<NetworkInterface> interfaces = NetworkInterface.getNetworkInterfaces();
while (interfaces.hasMoreElements()){
    NetworkInterface current = interfaces.nextElement();
    System.out.println(current);
    if (!current.isUp() || current.isLoopback() || current.isVirtual()) continue;
    Enumeration<InetAddress> addresses = current.getInetAddresses();
    while (addresses.hasMoreElements()){
        InetAddress current_addr = addresses.nextElement();
        if (current_addr.isLoopbackAddress()) continue;
        System.out.println(current_addr.getHostAddress());
    }
}

On my machine, this returns the following:

name:eth1 (eth1)
fe80:0:0:0:226:4aff:fe0d:592e%3
192.168.178.41
name:lo (lo)

It finds both my network interfaces and returns the desired IP, but I'm not sure what the other address (fe80:0:0:0:226:4aff:fe0d:592e%3) means.

Also, I haven't found a way to filter it from the returned addresses (by using the isXX()-methods of the InetAddress-object) other then using RegEx, which I find very "dirty".

Any other thoughts than using either RegEx or the internet?

share|improve this question
2  
fe80:0:0:0:226:4aff:fe0d:592e looks like an IPv6 address –  Brian Rogers Jan 6 '12 at 23:00
    
fe80::... is an IPv6 link-local address –  fge Jan 6 '12 at 23:00
    
And by the way, what do you want to "filter"? And of course, you do know that a machine can be multihomed? –  fge Jan 6 '12 at 23:02

4 Answers 4

up vote 17 down vote accepted

fe80:0:0:0:226:4aff:fe0d:592e is your ipv6 address ;-).

Check this using

if (current_addr instanceof Inet4Address)
  System.out.println(current_addr.getHostAddress());
else if (current_addr instanceof Inet6Address)
  System.out.println(current_addr.getHostAddress());

If you just care for IPv4, then just discard the IPv6 case. But beware, IPv6 is the future ^^.

P.S.: Check if some of your breaks should have been continues.

share|improve this answer
1  
getHostAddress() is present in the InetAddress base class, there's no need for casting here (docs.oracle.com/javase/6/docs/api/java/net/…) –  skaffman Jan 6 '12 at 23:13
    
That looks pretty nice and it works. Although just to filter them, you don't need the casts. I am aware of IPv6 being the future, but for my current needs, an IPv4 will do just fine ;-) And of course you're right about the breaks. I corrected that. Thanks till here! –  Lukas Knuth Jan 6 '12 at 23:15
    
@skaffman: Point taken - cast removed –  yankee Jan 6 '12 at 23:37
1  
@yankee: Point not taken, I think: The if isn't necessary either. –  skaffman Jan 7 '12 at 9:44
2  
@skaffmann: True, the if is pointless in this example, but for the sake of explaining how to distinguish between IPv4 and IPv6 I am not going to change that. After all the question also seems to be about extracting just the IPv4 address –  yankee Jan 7 '12 at 20:00
import java.net.*;

public class Get_IP
{
    public static void main(String args[])
    {
        try
        {
            InetAddress addr = InetAddress.getLocalHost();
            String hostname = addr.getHostName();
            System.out.println(addr.getHostAddress());
            System.out.println(hostname);
        }catch(UnknownHostException e)
        {
             //throw Exception
        }


    }

}

share|improve this answer
2  
As I mentioned above, this gives you 127.0.0.1 on Linux. However, this might work with Windows systems... –  Lukas Knuth Feb 1 '12 at 18:19
    
it's mentioned at first. –  Mavlarn Dec 17 '13 at 1:37
public static String getIp(){
    String ipAddress = null;
    Enumeration<NetworkInterface> net = null;
    try {
        net = NetworkInterface.getNetworkInterfaces();
    } catch (SocketException e) {
        throw new RuntimeException(e);
    }

    while(net.hasMoreElements()){
        NetworkInterface element = net.nextElement();
        Enumeration<InetAddress> addresses = element.getInetAddresses();
        while (addresses.hasMoreElements()){
            InetAddress ip = addresses.nextElement();
            if (ip instanceof Inet4Address){

                if (ip.isSiteLocalAddress()){

                    ipAddress = ip.getHostAddress();
                }

            }

        }
    }
    return ipAddress;
}
share|improve this answer
    
this code will ignore the 127.0.0.1 ip in linux –  Ehud Lev Sep 22 '13 at 15:41
    
How is this different from the answer and what I provided? –  Lukas Knuth Sep 22 '13 at 16:21
    
in linux your code will return 127.0.0.1 –  Ehud Lev Sep 23 '13 at 6:44

Yankee's answer is correct for the first part. To print out the IP address, you can get it as an array of bytes and convert that to the normal string representation like this:

StringBuilder ip = new StringBuilder();
for(byte b : current_addr.getAddress()) {
    // The & here makes b convert like an unsigned byte - so, 255 instead of -1.
    ip.append(b & 0xFF).append('.');
}
ip.setLength(ip.length() - 1); // To remove the last '.'
System.out.println(ip.toString());
share|improve this answer
    
What would be the advantage over just using current_addr.getHostAddress() ? –  Lukas Knuth Jan 6 '12 at 23:18
    
@Lukas Knuth: At first I did not have the prints in my answer. I edited them into the post a minute later since I thought that might be quite helpful ;-). Russell probably did not see that version. –  yankee Jan 6 '12 at 23:40
    
Oops, my bad - I assumed that getHostAddress was printing out the full text that yankee was having to regex. I didn't notice the earlier print of current. –  Russell Zahniser Jan 7 '12 at 0:11

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