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I've found empirically that

Endpoint endpoint1 = Endpoint.create(new Ping());
endpoint1.publish("http://0.0.0.0:8080/ws/ping");

binds to all network interfaces on the current computer (instead of just localhost - 127.0.0.1 or the hostname), but I have not been able to locate the documentation which says that this is guaranteed.

Question: Where is it defined that binding to 0.0.0.0 in Java will always bind to all network interfaces?

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You mean, other than the fact that it is INADDR_ANY? –  Donal Fellows Jun 19 '12 at 8:30
    
I am not very familiar with Socket programming. –  Thorbjørn Ravn Andersen Jun 19 '12 at 8:32
    
Do you want to hear about ipv6? I can pretend it does not exist if you don't want to hear about it. –  J-16 SDiZ Jun 19 '12 at 9:07
    
@J-16SDiZ the host in question still has ipv4. Feel free to elaborate on how to do it properly with ipv6. –  Thorbjørn Ravn Andersen Jun 19 '12 at 10:32
1  
use ::0 for ipv6. –  J-16 SDiZ Jun 19 '12 at 14:23

3 Answers 3

up vote 6 down vote accepted

Using 0.0.0.0 will only bind to IPv4-enabled interfaces. However, if you bind to ::, that should cover all IPv4 and IPv6 interfaces, assuming your TCP/IP stack (and Java) have IPv4-compatible IPv6 sockets enabled.

You'll need to look to the kernel (or socket libraries, if you're on Windows) for an explanation of "why". On my OS X system, the man pages explain it.

From man 4 inet:

 Sockets may be created with the local address INADDR_ANY to effect
 ``wildcard'' matching on incoming messages.  The address in a connect(2)
 or sendto(2) call may be given as INADDR_ANY to mean ``this host''.  The
 distinguished address INADDR_BROADCAST is allowed as a shorthand for the
 broadcast address on the primary network if the first network configured
 supports broadcast.

From man 4 inet6:

 Sockets may be created with the local address ``::'' (which is equal to
 IPv6 address 0:0:0:0:0:0:0:0) to affect ``wildcard'' matching on incoming
 messages.
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It has nothing to do with Java. 0.0.0.0 is INADDR_ANY, which is is a special address that is guaranteed to receive from any network interface by the C sockets API, which is called by Java.

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It seems to be a special reserved IP address of sorts. This link probably has more information Is 0.0.0.0 a valid IP address?. So I suspect it is not documented in Java as it is more related to the actual network specification.

And as some others have mentioned it appears that it is the Chuck Norris IP address :D

HTH

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+1 for the Chuck Norris IP address. –  NlightNFotis Jun 19 '12 at 9:05
    
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. –  Gerald Schneider Oct 6 at 11:53
1  
@GeraldSchneider so linking to another SO question is bad? –  Namphibian Oct 6 at 21:34
    
Like the Chuck Norris :) –  JRun Nov 13 at 12:18

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