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I have a file and I wish to grep out all the lines that do not start with a timestamp. I tried using the following regex but it did not work:

cat myFile | grep '^(?!\[0-9\]$).*$'

Any other suggestions or something that I might be doing wrong here?

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did not work... Smoke came out of your computer? –  Bart Kiers Feb 6 '12 at 19:12
    
It belongs to unix.stackexchange.com, but can't find it between the off topic options. Voted for superuser.com –  BlackBear Feb 6 '12 at 19:19
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3 Answers 3

up vote 7 down vote accepted

Why not simply use grep -v option like this to negate:

grep -v "<pattern>" file

Let's say you want to grep all the lines in a shell script that are not commented ( do not have # at start ) then you can use:

grep -v "^\s*#" file.sh
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The only right answer here: Don't try to negate the pattern, negate the match result. +1 –  Platinum Azure Feb 6 '12 at 19:25
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Try this:

cat myFile | grep '^\d\d\d\d-\d\d-\d\d \d\d:\d\d:\d\d'

This assumes your timestamp is of the pattern dddd-dd-dd dd:dd:dd, but you change it to what matches your timestamp if it's something else.

Note: Unless you're using some kind of cmd chaining, grep pattern file is a simpler syntax

BTW: Your use of a double-negative makes me unsure if you want the timestamp lines or you want the non-timestamp lines.

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You don't need a not operator, just use grep as it is most easily used: finding a pattern:

grep '^[0-9]' myFile
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