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How can i grep a nearer word from a file ?

E.g

04-02-2010  Workingday
05-02-2010  Workingday
06-02-2010  Workingday
07-02-2010  Holiday
08-02-2010  Workingday
09-02-2010  Workingday

I stored above data in a file 'feb2010',

By this commend i stored date in one variable date=date '+%d-%m-%Y'

if date is 06-02-2010 , i want to grep " 06-02-2010 Workingday "

and want to store the string Working day in a variable

  • How can i do this ?
  • Is there any other option ?
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On another note, i strongly recommend ISO8601 datetime format (%Y-%m-%d), because it is easily sortable. –  Christoffer Hammarström Feb 1 '10 at 11:34
    

4 Answers 4

up vote 1 down vote accepted
daytype=`grep $date feb2010 | cut -c13-`

The grep outputs the line, then the cut cuts off everything before the 13th character on that line. (Another possibility is cut -f3 -d' ', which outputs the field after the second space.) The result is stored in the variable daytype.

This assumes that the date occurs only once in the file.

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using awk might be better with $2. Or cut -f2 -d" " –  ghostdog74 Feb 1 '10 at 14:02
    
With two spaces between the quotes, of course. Yes, you're right. –  Thomas Feb 1 '10 at 17:38
#! /bin/bash

grep `date '+%d-%m-%Y'` feb2010 |
while read date type; do
  echo $type
done
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type=($(grep $date feb2010))    # make an array
type=${type[1]}                 # only keep the second element
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using the bash shell

#!/bin/bash
mydate=$(date '+%d-%m-%Y')
while read -r d day
do
    case "$d" in
        "$mydate"*) echo $day;;
    esac
done < feb2010
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