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-Environment-

  1. VPN connection(OpenVPN)
    -Default gateway is changed into VPN server IP
    -Virtual interface(tunXX) for VPN connection directly connects to a default gateway

  2. Interfaces & default gateway

    interfaces :
      lo        inet addr:127.0.0.1
      wlan0     inet addr:150.149.131.5
      tun0      inet addr:10.8.0.14
    
    default gateway : 10.8.0.2
    

In this environment, I want to know "10.8.0.14" regardless of the interface name using Android API.

I cound find only a way to get default route IP address below

mSocket = new Socket(dstAddress, peerPortNum); 
mStrMyIPAddr = mSocket.getLocalAddress().getHostAddress();

But, I don not want to use Socket

share|improve this question
    
Why don't you want to use a socket? –  Bill the Lizard Mar 28 '13 at 1:20
    
Because, It needs a thread or a AsyncTask class. I'm looking for a more concise way. –  jazzsir Mar 28 '13 at 8:23
    
There is no way to do this without resorting to hacks. –  Locutus May 20 at 9:10

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