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I noticed a strange behaviour working with netcat and UDP. I start an instance (instance 1) of netcat that listens on a UDP port:

nc -lu -p 10000

So i launch another instance of netcat (instance 2) and try to send datagrams to my process:

nc -u 127.0.0.1 10000

I see the datagrams. But if i close instance 2 and relaunch again netcat (instance 3):

nc -u 127.0.0.1 10000

i can't see datagrams on instance 1's terminal. Obsiously the operating system assigns a different UDP source port at the instance 3 respect to instance 2 and the problem is there: if i use the same instance'2 source port (example 50000):

 nc -u -p 50000 127.0.0.1 10000

again the instance 1 of netcat receives the datagrams. UDP is a connection less protocol so, why? Is this a standard netcat behaviour?

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Your first command is illegal. It doesn't specify the port nc should listen on. And you can't use -l (listen) and -p (specify source port) together. If you're listening, you can't control the source. –  David Schwartz Oct 8 '11 at 12:55
    
False for version v1.10-38. nc gives an error if you try lo launch it without that option! So nc -lu 10000 won't run. –  MirkoBanchi Oct 8 '11 at 13:13
    
Weird. Does it ignore the port specified with -p? Or does it use it as the port it listens on? –  David Schwartz Oct 8 '11 at 13:19
    
It uses that port as "listing" port. And i see that with netstat -an | grep 10000: udp 0 0 0.0.0.0:10000 0.0.0.0:* –  MirkoBanchi Oct 8 '11 at 13:23
1  
The argument confusion stems from the fact that there are multiple slightly incompatible nc implementations (Wikipedia), including Hobbit's Netcat (netcat-traditional in Debian; -p required when listening), OpenBSD Netcat (netcat-openbsd in Debian; -p optional when listening) and GNU Netcat (not in Debian; without -p, listen port is random). Use nc -h to identify which one you're using. –  Søren Løvborg Jul 18 '14 at 16:51

1 Answer 1

up vote 23 down vote accepted

When nc is listening to a UDP socket, it 'locks on' to the source port and source IP of the first packet it receives. Check out this trace:

socket(PF_INET, SOCK_DGRAM, IPPROTO_UDP) = 3
setsockopt(3, SOL_SOCKET, SO_REUSEADDR, [1], 4) = 0
bind(3, {sa_family=AF_INET, sin_port=htons(10000), sin_addr=inet_addr("127.0.0.1")}, 16) = 0
recvfrom(3, "f\n", 2048, MSG_PEEK, {sa_family=AF_INET, sin_port=htons(52832), sin_addr=inet_addr("127.0.0.1")}, [16]) = 2
connect(3, {sa_family=AF_INET, sin_port=htons(52832), sin_addr=inet_addr("127.0.0.1")}, 16) = 0

Here you can see that it created a UDP socket, set it for address reuse, and bound it to port 10,000. As soon as it received its first datagram (from port 52,832), it issued a connect system call 'connecting' it to the 127.0.0.1:52,832. For UDP, a connect rejects all packets that don't match the IP and port in the connect.

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There are only one process that listen on port 10000. netstat -an | grep 10000 shows it: udp 0 0 0.0.0.0:10000 0.0.0.0:*. There is no Multicast or Broadcast. –  MirkoBanchi Oct 8 '11 at 13:18
    
I suppose it's an output of strace. Good. Now all is clear. Thank you David. –  MirkoBanchi Oct 8 '11 at 17:16
2  
Bummer, there should be an option to disable this IMO. Then again, how would one specify which host(s) to send datagrams to from the bound "listening" process? –  TimCinel Feb 14 '12 at 7:46
4  
Instead, I would recommend using socat. e.g. socat UDP-RECV:[port] STDOUT and socat STDIN UDP-DATAGRAM:[host]:[port] –  tudor May 7 '14 at 3:11

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