5

While reading the source code of cat command, I found cat command supports for reading from socket. You can view the source at http://src.gnu-darwin.org/src/bin/cat/cat.c.html. But I've never use this command with socket: just quickly viewing a file or concatenating multiple files. What can I do with cat + socket? Can you give an interesting example of using cat command reading from a socket? Thanks.

4
  • 10
    Whatever you do, do not plug your cat in a socket: it may get electrocuted :) (I'm sorry, I couldn't resist). Aug 13, 2012 at 2:36
  • Do you have a programming context for this question? Aug 14, 2012 at 2:30
  • This question appears to be off-topic because it is about using unix tools. It would be better suited for Unix & Linux. Feb 27, 2014 at 19:08
  • Like this
    – user11153
    Nov 16, 2014 at 23:25

2 Answers 2

3

use "netcat" which on unix/linux is the command nc. You most likely want to be the client socket, so something like cat <filename> | nc <ip> <port>

1
  • The role of that example of cat is just passing the contetns to /dev/stdout (as we always do). So, I want to know, can we use cat as a server side? Instead of nc -l <ip> <port>?
    – itchyny
    Aug 13, 2012 at 3:01
0

The cat source code you found contains some magic to call socket() and connect() when you try to cat a socket. It doesn't contain any listen() or accept() so there's no way it can do the "server side" stuff. And it works with unix domain sockets, not inet sockets, so don't think it's for cat'ing stuff across an actual network. Unix domain sockets are just endpoints for local inter-process communication.

I can't imagine what use case they had in mind when they added this feature to cat.

1
  • Thanks. To be calm, what you are saying is perfectly right: I found no listen in the code. Thanks again.
    – itchyny
    Aug 13, 2012 at 5:06

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.