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I have this file

myfile

a b c d e 1  
b c s d e 1  
a b d e f 2  
d f g h j 2  
awk 'if $6==$variable {print @0}' myfile

How can I use this code in shell script that get $variable as parameter by user in command prompt?

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2 Answers 2

up vote 6 down vote accepted

You can use awk's -v flag. And since awk prints by default, you can try for example:

variable=1
awk -v var=$variable '$6 == var' file.txt

Results:

a b c d e 1
b c s d e 1

EDIT:

The command is essentially the same, wrapped up in shell. You can use it in a shell script with multiple arguments like this script.sh 2 j

Contents of script.sh:

command=$(awk -v var_one=$1 -v var_two=$2 '$6 == var_one && $5 == var_two' file.txt)
echo -e "$command"

Results:

d f g h j 2
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yes .. but i want use this code in .sh file and run this file with arguments. for example prg.sh 1 –  mohammad Oct 13 '12 at 9:00
    
@mohammadreshad: Please see the edit. HTH. –  Steve Oct 13 '12 at 9:18
1  
Note that you don't even need -v, but can do: awk '$6 == var' var=$variable input-file –  William Pursell Oct 13 '12 at 14:30
    
@WilliamPursell: You're absolutely correct :-) –  Steve Oct 13 '12 at 14:35

This is question 24 in the comp.unix.shell FAQ (http://cfajohnson.com/shell/cus-faq-2.html#Q24) but the most commonly used alternatives with the most common reasons to pick between the 2 are:

-v var=value '<script>' file1 file2
if you want the variable to be populated in the BEGIN section

or:

'<script>' file1 var=value file2
if you do not want the variable to be populated in the BEGIN section and/or need to change the variables value between files
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