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The context of my work is my local area network.

The code samples below are written in Java language but my question is about TCP, not programming.

I have experienced the following connection timeout:

  • 2 ms when connection established
  • 1 005 ms when host is alive but not listen on the specified socket port
  • 21 000 ms when host is down

This values comes from observation of my network but I presume it exists a RFC.

Here is some information about timeout:

Can you give me more pointers?

@Override
public void run() {
   for( int port = _portFirst; port < _portLast; ++port ) {
      String  host    = "192.168.1." + _address;
      boolean success = false;
      long    before  = System.currentTimeMillis();
      try {
         Socket        socket   = new Socket();
         SocketAddress endpoint = new InetSocketAddress( host, port );
         socket.connect( endpoint, 0 );
         success = true;
         socket.close();
      }// try
      catch( ConnectException c ){/**/}
      catch( Throwable t ){
         t.printStackTrace();
      }
      long duration = System.currentTimeMillis() - before;
      System.err.println( host + ":" + port + " = " + duration );
      _listener.hostPinged( host, port, success, duration );
   }
}
share|improve this question
    
These timeouts are controlled by your OS, which OS/Version do you have? –  Peter Lawrey Nov 7 '12 at 9:10
1  
BTW port scanning can be easily done by existing tools like nmap I would consider using it if you can. –  Peter Lawrey Nov 7 '12 at 9:12
    
Thanks, I know nmap, lookatlan.com or overlooksoft.com but my goal is to acquire fundamental knowledge –  Aubin Nov 7 '12 at 10:14

2 Answers 2

up vote 4 down vote accepted

There is no RFC for connection timeouts. It is impossible for any RFC or other document to know the conditions prevailing in any network in advance.

In general you can expect a successful connection to be very quick; an ECONNREFUSED (ConnectException: connection refused) to be about as quick; and a connection timeout (ConnectException: connect timeout) to take as long as it takes, depending on the cause, the platforms at both ends, and the nature of the intervening network. In Windows I believe a connection timeout consists of the total time across three connection attempts with timeouts 6s, 12s, and 24s, total 42s; in various Unixes I believe the total is more like 70s, which could result from 3 attempts with timeouts 10s, 20s, and 40s. As you see it is up to the platform. There is also the issue that filling the backlog queue at a Windows server will cause RSTs to be issued to incoming SYNs, where on a Unix/Linux server it will cause no response at all to incoming SYNs.

You should also note that in Java, and contrary to many years of Javadoc:

  1. A zero connect timeout does not imply an infinite timeout, it implies the platform default timeout, which as shown above isn't above about 70s;

  2. You cannot specify a connection timeout that increases the platform default; you can only use it to decrease the platform default.

share|improve this answer
    
Thanks, very precise advice! –  Aubin Nov 7 '12 at 10:16
    
But timeouts are sometimes specified in RFC... So it's not "impossible" –  Aubin Nov 7 '12 at 10:32
    
@Aubin It's not impossible for RFCs to specify timeouts, but then I didn't say it was. –  EJP Nov 7 '12 at 11:30

As you have found out, you can specify a timeout in the connect(...) method call as such:

connect( SocketAddress endpoint , int timeout )

And remember that "...A timeout of zero is interpreted as an infinite timeout." (where "infinite" often really means "use the OS default").

As for the defaults, they are OS dependent, but usually fairly consistent anyways. If you're on a linux box, have a look at /proc/sys/net/ipv4/tcp_keepalive* (but don't change them unless you know what you're doing :-)

Cheers,

share|improve this answer
    
However, and regardless of the Javadoc, a connect timeout of zero is not actually 'interpreted as an infinite timeout'. Try it and see. –  EJP Nov 7 '12 at 9:32
    
True, will edit. –  Anders R. Bystrup Nov 7 '12 at 9:53
    
"Try it and see"... It's exactly I've coded and tried. –  Aubin Nov 7 '12 at 10:17

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