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I have been trying to work out the syntax for this command:

grep ! error_log | find /home/foo/public_html/ -mmin -60

or

grep '[^error_log]' | find /home/baumerf/public_html/ -mmin -60

I need to see all files that have been modified except for those names error_log.

Reading about it here, but only one NOT regex there: http://www.robelle.com/smugbook/regexpr.html

Advice greatly appreciated!

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2  
[^error_log] would never ever work anyway, [] are char classes, regexp 's in general are not good at negative patterns (unless the engine implements negative lookaheads). –  Jaap Nov 9 '11 at 15:49

1 Answer 1

up vote 247 down vote accepted

grep -v is your friend

grep --help | grep invert
-v, --invert-match select non-matching lines

Also check out the related -L (the complement of -l).

-L, --files-without-match only print FILE names containing no match

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Thanks for the reply! Tried this and grep --invert-match 'error_log' | find /home/foo/public_html/ -mmin -60 runs for several minutes and outputs /home/foo/public_html/contest/error_log /home/foo/public_html/error_log etc... whereas grep ! error_log | find /home/foo/public_html/ -mmin -60 produces that same output and finishes in 2 seconds. What am I doing wrong? Also tried it with -v instead of --invert-match –  jerrygarciuh Aug 23 '10 at 14:35
2  
@jerrygarciuh, You have the find and the grep in the wrong order, it should be find /home/foo/public_html -mmin -60 | grep -v error_log –  Motti Aug 23 '10 at 14:40
10  
+1 for piping grep to grep. –  Henry Merriam Mar 30 at 20:19
2  
Worth mentioning that for multiple (negative) matches -e option can be used: grep -v -e 'negphrase1' -e 'negphrase2' –  Babken Vardanyan Jun 18 at 9:30

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