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This may be a duplicate as I believe I already saw something like that but can't find it anymore so I'm asking :

I have a lots of files with multiple lines, and in most case, one of the line contain a certain patern. I would like to have every file that do not have a line with this patern.

EDIT : Just need to use the "-L" grep option. This is a duplicate, I'm sure but don't find the original back ...

share|improve this question

closed as off topic by Dave Jarvis, Matteo, Jan Hančič, kmp, Mario Sannum Dec 14 '12 at 7:50

Questions on Stack Overflow are expected to relate to programming within the scope defined by the community. Consider editing the question or leaving comments for improvement if you believe the question can be reworded to fit within the scope. Read more about reopening questions here.If this question can be reworded to fit the rules in the help center, please edit the question.

    
why did I get -1 for this one ?! – claf May 19 '09 at 7:05
    
My guess is that someone thought that info was readily available in the manual. – JesperE May 19 '09 at 7:07
    
If you've found an answer, don't edit your question with it, post the answer instead. Nowadays you can even accept your own answers. – JesperE May 19 '09 at 7:08
up vote 18 down vote accepted

The answer was just to get the "-L" option in order to have file WITHOUT the pattern ... Should have read the man more carrefully!

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Grep returns 0/1 to indicate if there was a match, so you can do something like this:

for f in *.txt; do
    if ! grep -q "some expression" $f; then
        echo $f
    fi
done

EDIT: You can also use the -L option:

grep -L "some expression" *

share|improve this answer
    
no need for loop just have to use "-L" option of grep. – claf May 19 '09 at 7:06

Use the -v option along with -l. Man page excerpt:

-v, --invert-match
    Invert the sense of matching, to select non-matching lines.  (-v is specified by POSIX.)

-l, --files-with-matches
      Suppress normal output; instead print the  name  of  each  input
      file  from  which  output would normally have been printed.  The
      scanning will stop on the first match.

As always, use man

Edit: No need to use for loops, just use the wildcard char:

grep -lv "some expression" *
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1  
No sorry, this will give me every line that doesn't contain the match ... How did you get +3 on this! – claf May 19 '09 at 7:05
    
People vote without reading and/or understanding the post, unfortunately. – JesperE May 19 '09 at 7:06
    
I totally misread the question it seems - I've been up since 5 AM, so forgive me! – atc May 19 '09 at 7:16
1  
grep -lv 'expr' * should do the same as grep -L 'expr' *, so this answer is incomplete, not incorrect. – amertune Apr 21 '10 at 22:37

try "count" and filter where equals ":0":

grep -c [pattern] * | grep ":0"

(if you use TurboGREP cough, you won't have a -L switch ;))

share|improve this answer
    
TurboGREP does seem to have -l and -v, so you could just use grep -lv 'expr' *. – amertune Apr 21 '10 at 22:39

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