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awk '$0 ~ str{print b}{b=$0}' str="findme" path_to_file

with this I can get the line before the found string's line.
How can I print its line number?

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After seeing comment to thelux4, I can say it's unclear what you want. From the question it looks like you wanted to get line with str (instead of line before it), so as I answered already, you should just go with print, e.g. awk -v str="findme" '$0 ~ str {print}' path_to_file. But if you want the line number (question is wrong then), use NR built-in variable. –  przemoc May 28 '11 at 11:49
    
question is not wrong, "How can I print its line number?" states that i want the line number. –  thetux4 Jun 3 '11 at 15:11
    
It sounded different originally: with this i can get the line before the found string's line. How can i also print its line? It was fixed by @Johan 6.5h after my comment was sent. After commenting under @eyadof answer you should realize that your question needs fixing, and my comment back then should convince you even more to better phrase it. Be always precise as much as you can and don't pretend you were when actually you weren't. It's easy to check (especially by yourself as the OP), so I don't know why are you bringing this up now. –  przemoc Jun 3 '11 at 17:13
    
I meant line number actually there but anyway maybe i should have been more clear. Thanks for suggestions. –  thetux4 Jun 3 '11 at 18:17

5 Answers 5

up vote 3 down vote accepted

Use NR to get the current line (record) number:

awk '$0 ~ str{print NR-1 FS b}{b=$0}' str="findme" path_to_file
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+1. You can just print NR-1, b instead of explicitly using FS –  glenn jackman Jun 14 '13 at 17:11

If I interpret the question correctly, and you simply want to print the line number of the line that precedes any line containing a given string, you can do:

$ awk '/findme/{print NR - 1}' /path/to/file
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Thank you, it works for me. –  Saeed Zarinfam Oct 23 '13 at 6:08

Just use print, which is equivalent to print $0 when no arguments are specified.

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Here is a solution:

awk '$0 ~ str{print b;print}{b=$0}' str="findme" path_to_file

Or, if you don't mind a slightly different output, in which there are '--' separating groups of found lines:

grep -B1 findme path_to_file

In this case, you search for the string "findme" within the file 'path_to_file'. The -B1 flag says, "also prints 1 line before that."

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you can use echo $(awk '$0 ~ str{print b}{b=$0}' str="findme" path_to_file)

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this prints the line. I want the number of line actually not the line itself. –  thetux4 May 28 '11 at 11:41

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