Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've got a bash script which outputs some column-based information. I'd like to give the user some options for matching values is specific columns. For example, ./myColumnDump might print

User Job_name Start_day
andrew job1_id monday
andrew job2_id tuesday
adam job1_id tuesday
adam job2_id monday

and I'd like to add options like ./myColumDump -j 2 (where's j's argument is a regular expression used which matches values in the Job_name column).

I'm currently piping the output through grep and embedding the user-specified regex's in a big regex to match a whole row, but the he/she might specify -j .*monday which would spill into the different column.

Is there a nicer way to achieve this in a bash script?

share|improve this question

4 Answers 4

up vote 2 down vote accepted

Here is the complete bash script scan.sh to do your job:

#!/bin/bash
usage()
{
cat << EOF
usage: $0 options
This script scans given input file for specified regex in the input column #   
OPTIONS:
   -h      Show usage instructions
   -f      input data file name
   -r      regular expression to match
   -j      column number
EOF
}   
# process inputs to the script
DATA_FILE=
COL_NUM=
REG_EX=
while getopts ":j:f:r:h" OPTION
do
     case $OPTION in
         f) DATA_FILE="$OPTARG" ;;
         r) REG_EX="$OPTARG" ;;
         j) COL_NUM="$OPTARG" ;;
         \?) usage
             exit 1 ;;
         h)
             usage
             exit 1 ;;
     esac
done   
if [[ -z $DATA_FILE ]] || [[ -z $COL_NUM ]] || [[ -z $REG_EX ]]
then
     usage
     exit 1
fi

awk -v J=${COL_NUM} -v R="${REG_EX}" '{if (match($J, R)) print $0;}' "${DATA_FILE}"

TESTING

Let's say this is your data file: User Job_name Start_day

andrew job1_id monday
andrew job2_id tuesday
adam job1_id tuesday
adam job2_id monday

./scan.sh -j 2 -f data  -r ".*job1.*"
andrew job1_id monday
adam job1_id tuesday

./scan.sh -j 2 -f data  -r ".*job2.*"
andrew job2_id monday
adam job2_id tuesday

./scan.sh -j 1 -f data  -r ".*adam.*"
adam job1_id tuesday
adam job2_id monday
share|improve this answer

Here's a pure bash script (courtesy anubhava)

#!/bin/bash
# tested on bash 4
usage()
{
cat << EOF
usage: $0 options [file]
This script scans given input file for specified regex in the input column #
OPTIONS:
   -h      Show usage instructions
   -f      input data file name
   -r      regular expression to match
   -j      column number

Example:  $0 -j 2 -r "job2" -f file
EOF
}
# process inputs to the script
DATA_FILE=
COL_NUM=
REG_EX=
while getopts ":j:f:r:h" OPTION
do
     case $OPTION in
         f) DATA_FILE="$OPTARG" ;;
         r) REG_EX="$OPTARG" ;;
         j) COL_NUM="$OPTARG" ;;
         \?) usage
             exit 1 ;;
         h)
             usage
             exit 1 ;;
     esac
done
if [[ -z $DATA_FILE ]] || [[ -z $COL_NUM ]] || [[ -z $REG_EX ]]
then
     usage
     exit 1
fi
while read -r line
do
    array=( $line )
    col=${array[$((COL_NUM-1))]}
    [[ $col =~ $REG_EX ]] && echo "$line"
done < $DATA_FILE
share|improve this answer

This problem is tailor made for awk(1). For example, you can do this:

awk '$2 ~ /^job1/'

to print out lines where column two matches ^job1. So, given a column number in N and a regular expression in R, you should be able to do this:

awk "\$${N} ~ /${R}/"

You will, as usual, need to be careful with your quoting.

share|improve this answer

To build on mu is too short's answer, you can pass the user's pattern to awk:

# suppose the -j pattern is in shell var $j
awk -v j="$j" '$2 ~ j'

Have to advise users to enter a regex pattern that awk understands though.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.