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If I want to pass a parameter to an awk script file, how can I do that ?

#!/usr/bin/awk -f

{print $1}

Here I want to print the first argument passed to the script from the shell, like:

bash-prompt> echo "test" | ./myawkscript.awk hello
bash-prompt> hello
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comlete awk tutotial available –  jhonnash Apr 12 '13 at 11:21

3 Answers 3

up vote 3 down vote accepted

your hash bang defines the script is not shell script, it is an awk script. you cannot do it in bash way within your script.

also, what you did : echo blah|awk ... is not passing paramenter, it pipes the output of echo command to another command.

you could try these way below:

 echo "hello"|./foo.awk file -

or

var="hello"
awk -v a="$var" -f foo.awk file

with this, you have var a in your foo.awk, you could use it.

if you want to do something like shell script accept $1 $2 vars, you can write a small shellscript to wrap your awk stuff.

EDIT

No I didn't misunderstand you.

let's take the example:

let's say, your x.awk has:

{print $1}

if you do :

echo "foo" | x.awk file

it is same as:

echo "foo"| awk '{print $1}' file

here the input for awk is only file, your echo foo doesn't make sense. if you do:

  echo "foo"|awk '{print $1}' file -
or
    echo "foo"|awk '{print $1}' - file

awk takes two input (arguments for awk) one is stdin one is the file, in your awk script you could:

echo "foo"|awk 'NR==FNR{print $1;next}{print $1}' - file

this will print first foo from your echo, then the column1 from file of course this example does nothing actual work, just print them all.

you can of course have more than two inputs, and don't check the NR and FNR, you could use the

ARGC   The number of elements in the ARGV array.

ARGV   An array of command line arguments, excluding options and the program argument, numbered from zero to ARGC-1

for example :

echo "foo"|./x.awk file1 - file2

then your "foo" is the 2nd arg, you can get it in your x.awk by ARGV[2]

echo "foo" |x.awk file1 file2 file2 -

now it is ARGV[4] case.

I mean, your echo "foo"|.. would be stdin for awk, it could by 1st or nth "argument"/input for awk. depends on where you put the -(stdin). You have to handle it in your awk script.

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1  
You have misunderstanding, you understand that echo blah | awk ... means I am passing parameter to awk script. Read again. –  UNIX Apr 12 '13 at 11:51
    
nice upvoted comment :).. @UNIX see edit, i hope it is cleared now. –  Kent Apr 12 '13 at 12:20
    
@UNIX shortly, if you want your echo foo|./x.awk file to print foo first, do echo foo|./x.awk - file –  Kent Apr 12 '13 at 12:32
    
Thanks @Kent for helping –  UNIX Apr 12 '13 at 13:25
    
Came back to this answer (I favorited the question to do so). I cannot do something like awk {print 1}. Does it means that awk always needs either awk <commands> file or something | awk <commands>? –  fedorqui Apr 26 '13 at 9:22

In awk $1 references the first field in a record not the first arguemnt like it does in bash. You need to use ARGV for this, check out here for the offical word.

Script:

#!/bin/awk -f

BEGIN{
    print "AWK Script"
    print ARGV[1]
}

Demo:

$ ./script.awk "Passed in using ARGV"
AWK Script
Passed in using ARGV
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This worked to me:

awk file test.awk:

#!/usr/bin/awk

{print my_var}

Test:

$ echo "" | awk -v my_var="hello this is me" -f test.awk 
hello this is me
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Your solution doesn't pass a parameter to an awk program, it just make the awk to read its input from pipe, the parameter is something written beside the name of the script or a program –  UNIX Apr 12 '13 at 11:27
    
...and why do you set the executable bit for test.awk and then call it using awk -f? –  Fredrik Pihl Apr 12 '13 at 11:32
    
Uhms I did not understand your question properly, @UNIX. I updated my answer so now it is really having a varaible passed with -v my_var="value". –  fedorqui Apr 12 '13 at 11:34
    
You are right, @FredrikPihl, I thought it was necessary. After testing and seeing is not necessary, I remove the reference to chmod +x. Thanks! –  fedorqui Apr 12 '13 at 11:35
    
I didn't use awk -f when call test.awk –  UNIX Apr 12 '13 at 11:35

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