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I'm trying to get this script to basically read input from a file on a command line, match the user id in the file using grep and output these lines with line numbers starting from 1)...n in a new file.

so far my script looks like this

#!/bin/bash
linenum=1
grep $USER $1 |
while [ read LINE ]
do
echo $linenum ")" $LINE >> usrout
$linenum+=1
done

when i run it ./username file i get

line 4: [: read: unary operator expected

could anyone explain the problem to me?

thanks

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((linenum+=1)) –  Dennis Williamson Feb 23 '10 at 18:40
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6 Answers

up vote 3 down vote accepted

Just remove the [] around read line - they should be used to perform tests (file exists, string is empty etc.).

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i just found this out, thanks –  KP65 Feb 23 '10 at 15:52
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How about the following?

$ grep $USER file | cat -n >usrout
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Leave off the square brackets.

while read line; do
  echo $linenum ")" $LINE
done >> usrout
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missing the linenum increment :) –  vladr Feb 28 '10 at 2:24
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just use awk

awk -vu="$USER" '$0~u{print ++d") "$0}' file

or

grep  $USER file |nl

or with the shell, (no need to use grep)

i=1
while read -r line
do
 case "$line" in
  *"$USER"*) echo $((i++)) $line >> newfile;;
 esac
done <"file"
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Why not just use grep with the -n (or --line-number) switch?

$ grep -n ${USERNAME} ${FILE}

The -n switch gives the line number that the match was found on in the file. From grep's man page:

-n, --line-number
      Prefix  each  line of output with the 1-based line number
      within its input file.

So, running this against the /etc/passwd file in linux for user test_user, gives:

31:test_user:x:5000:5000:Test User,,,:/home/test_user:/bin/bash

This shows that the *test_user* account appears on line 31 of the /etc/passwd file.

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Also, instead of $foo+=1, you should write foo=$(($foo+1)).

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