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I'm going to run snoop command for every 5min during 20:00 till 23:00, but i don't know how to kill at last 5min (22:55 till 23:00). Would you please help me in this regard.

snoop command:

FILE=vitrin_`date +%Y%m%d%H%M`.cap
kill -9 `pgrep snoop`
snoop -x0 -d e1000g0 -o /export/home/vitrin/$FILE

Crontab:

0,5,10,15,20,25,30,35,40,45,50,55 20,21,22 * * * /export/home/snoop.sh
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2 Answers

Instead of killing your snoop (and possibly some other unrelated ones) from the next cron run, you could just run it from the start under the supervision of a tool such as timeout from coreutils. At least under linux you almost certainly already have it, unless your coreutils are pretty old.

timeout 5m snoop ...
status=$?
[ $status -eq 124 ] && exit 0
exit $status

If you really need SIGKILL timeout has a --signal option.

If the running command is killed by timeout the exit status is set to 124. In your case it seems you want to ignore it, eg. like in the example above.

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I just put kill in order to keep the log files in average size. –  Hamid Jul 16 '12 at 10:06
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Something like this might help:

kill -9 $(pgrep snoop) && \
  test $(date '+%s') -lt $(date -d "23:00" '+%s') && \
  snoop -x0 -d e1000g0 -o /export/home/vitrin/$FILE

or like this in the crontab:

*/5 20-23 * * * /export/home/snoop.sh
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