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I am currently having problems with awk usage of shell variables. Here's my problem, when I run the following:

awk -F: '$1=="marco" {print $7}' /etc/passwd

everything works fine and dandy. However, I want to be able to pass my $user shell variable instead of "marco", so I try the following (after reading about -v flag):

awk -F: -v awkvar=$user '$1=="$awkvar" {print $7}' /etc/passwd

and it doesn't seem to work. Can anyone help me?

Thanks!

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3 Answers 3

up vote 2 down vote accepted

Use quotation marks on the shell side, and don't use $ for awk variables.

awk -F: -v awkvar="$user" '$1==awkvar {print $7}' /etc/passwd

In awk, $ indicates that it's a positional parameter (i.e. a field number), so as it was, it was looking for field "marco", which reduces to $0, the whole line. So it would find any line with only one field.

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Good answer, I didn't know that a string as a field name reduces to 0. –  bonsaiviking Apr 18 '12 at 17:54
    
Thank you very much! That worked :) –  Marco A Apr 18 '12 at 17:55

A few things:

  1. In awk, a variable is substituted without the $ sigil. $ means "the field at position", so $awkvar means "the field at position value of awkvar". If awkvar=marco, then $awkvar is the same as $"marco", equivalent to $0.
  2. Unlike shell variables, you can't quote awk variables, or else they are treated as strings:

    sh$ awk -v awkvar=foo 'BEGIN{print "awkvar",awkvar}'
    awkvar foo
    sh$ 
    
  3. The standard shell variable containing the username is $USER, not $user

So in conclusion, what you want is this:

awk -F: -v awkvar=$user '$1==awkvar {print $7}' /etc/passwd

Or, using getent:

getent passwd $USER | awk -F: '{print $7}'
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2  
It's safer to quote shell variables to protect against whitespace (although you don't expect that in a username). Which brings up another point. Perhaps Marco is using $user to hold a username from user input or another source rather than using the $USER environment variable. This would be proper to avoid name collision. If the data may be from an "untrusted" source, it could contain anything. –  Dennis Williamson Apr 18 '12 at 21:30

It's not an awk but a shell problem.

This one would work (if the $user variable is set in your shell environment).

awk -F: '$1=="'"$user"'" {print $7}' /etc/passwd
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The -v awkvar=$user indicates he was trying to set and use the awk variable, so it was indeed an awk problem, not a shell one. But your solution does produce the right output in the end, so I decided to undo my downvote. –  Kevin Apr 18 '12 at 18:16
    
You should use -v and not use nested quoting. –  Dennis Williamson Apr 18 '12 at 21:24

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