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The following command is correctly returning all the lines with warnings more than 0 from all files.

grep -i warning * | grep -v 'Warnings: 0' | more

I want to see the 4 lines above the warnings line where warning is more than 0. The -B4 switch does not work for obvious reasons.

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What are those obvious reasons? I'm guessing that it is because you don't care about the actual Warnings: 0 line or anything between, but you should really clarify –  Adam Batkin Sep 6 '11 at 13:19
    
I mean this does not work # grep -iB4 warning * | grep -v 'Warnings: 0' | more –  shantanuo Sep 6 '11 at 13:22
    
WHAT doesn't work about it? Does it give you an error (what error)? Is the output not what you expected (and in what way)? Does your computer catch fire? etc... –  Adam Batkin Sep 6 '11 at 13:55

3 Answers 3

up vote 2 down vote accepted

If I understood your question correctly, here is a solution:

grep -v "Warnings: 0" * | grep -B4 -i warning
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This is what I was looking for. You have a missing *, please add it to your answer. # grep -v "Warnings: 0" * | grep -B4 -i warning –  shantanuo Sep 6 '11 at 15:20
    
Thanks. I added the * –  Hai Vu Sep 6 '11 at 20:01

How about using a little regex instead:

grep -e "Warnings: [1-9][0-9]*" -B4 * | more

The grep should look for 1 or more warnings and print the previous 4 lines.

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# doesn't OR in reg exp work? # grep -e "('Warnings: [1-9][0-9]*' | '[1-9][0-9]* warning')" -B9 * | more –  shantanuo Sep 6 '11 at 13:54
    
@shantanuo: Try using grep -E or egrep for this, it provides an extended set of POSIX syntax. Then you can use the | OR operator –  Lee Netherton Sep 6 '11 at 14:22

your are unclear if the warnings message should be include in the output or not. In this version it is.

Try:

awk -F"[: ]" '($1  /Warning/ && $2> 0){a[NR]=$0;for (i=4;i>=0;i--) \
            print a[NR-i]}{a[NR]=$0}' file

HTH Chris

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