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I'm defining my time variables via ksh script:

NOW="$(date +"%I:%OM")"
LASTHOUR="$(date +%I:%OM --date "last hour")"

my log output contains the following format:

019723  01/22 01:00  err  PoolEndorseServ::notify   Error while notifying in...
019722  01/22 00:00  err  PoolEndorseServ::notify   Error while notifying in...
019722  01/21 05:10  err  PoolEndorseServ::notify   Error while notifying in...

I want to be able to pull any records that are > than $LASTHOUR by looking at the time column.

Any assistance or direction is appreciated.

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1 Answer

I am assuming your time field is in the 24 hour format.

With awk:

awk -v LASTHOUR="$(date --date "last hour" "+%m/%d %H:%0M")" \
  '$2" "$3 > LASTHOUR' < yourfile

This will break if it's the first hour of January 1st, though. That can't be helped because you don't provide the year in the log.

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