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I have a number of log files in a directory. I am trying to write a script to search all the log files for a string and echo the name of the files and the line number that the string is found.

I figure I will probably have to use 2 grep's - piping the output of one into the other since the -l option only returns the name of the file and nothing about the line numbers. Any insight in how I can successfully achieve this would be much appreciated.

Many thanks,

Alex

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3 Answers 3

up vote 5 down vote accepted
$ grep -Hn root /etc/passwd
/etc/passwd:1:root:x:0:0:root:/root:/bin/bash

combining -H and -n does what you expect.

If you want to echo the required informations without the string :

$ grep -Hn root /etc/passwd | cut -d: -f1,2
/etc/passwd:1

or with :

$ awk -F: '/root/{print "file=" ARGV[1] "\nline=" NR}' /etc/passwd
file=/etc/passwd
line=1

if you want to create shell variables :

$ awk -F: '/root/{print "file=" ARGV[1] "\nline=" NR}' /etc/passwd | bash
$ echo $line
1
$ echo $file
/etc/passwd
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perfect. Thank you –  Alex Bamb Nov 19 '12 at 22:08
1  
Interesting: "if you want to create shell variables" –  anishsane Nov 20 '12 at 5:35

Use -H. If you are using a grep that does not have -H, specify two filenames. For example:

grep -n pattern file /dev/null
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My version of grep kept returning text from the matching line, which I wasn't sure if you were after... You can also pipe the output to an awk command to have it ONLY print the file name and line number

grep -Hn "text" . | awk -F: '{print $1 ":" $2}'

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