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everybody! I have a simple question. What does this line do?

trap "exec 1>&6 6>&- ; cat $LOGFILE" 0

So far, I understand that I am moving the standard output to 6 (this variable hasn't been declared before, so I assume that 6 is a variable created in this same line), then the '6>&-' is something I don't really get... and the cat $LOGFILE shows the contents of the variable LOGFILE. Also, the 0 at the end is supposed to mean that at the end of the execution of my program, execute 'exec 1>&6 6>&- ; cat $LOGFILE' before exiting.

Thanks for the help in advance!

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See tldp.org/LDP/abs/html/x17784.html for more details on this kind of syntax. –  Rob Napier Feb 10 '12 at 17:04

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up vote 1 down vote accepted
  1. trap <command> 0 means to execute <command> upon exit of the shell
  2. exec 1>&6 means to redirect STDOUT (fd1) to fd6
  3. exec 6>&- means to close fd6
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Thanks! Just one more thing: the fd6 wasn't declared before that line... Does that mean that fd6 is instantly created in this same line? –  Nacho321 Feb 10 '12 at 17:03

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