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My questions is fairly simple. I have a file containing lines which are often duplicates of one another. My first attempt used awk: cat /tmp/log |awk '!x[$0]++'|.

That does the job perfectly except that I realized there was one line that I need to have duplicated.

So basically I need to remove all duplicates except for one that contains "Successful association". Even if it is a dupe.

Any ideas are welcome!

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1 Answer 1

up vote 2 down vote accepted

Print the line if not seen before or it equals to the allowed duplicate:

awk '!x[$0]++ || ($0 ~ /Successful association/)' /tmp/log
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Awesome, that was it. I can't believe I didn't know / find anything on using || in that matter. Thanks again! –  user1611908 Aug 20 '12 at 14:07
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+1, but except for one that contains "Successful association" implies the check should be $0 ~ /Successful association/ rather than strict equality. Or just: !x[$0]++ || /Successful association/ –  William Pursell Aug 20 '12 at 15:49

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