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Using shell script I want to read a word from text file and return next column word.

For eg, my input file will be like

AGE1 PERSON1
AGE2 PERSON2
AGE3 PERSON3
AGE4 PERSON4

I have variable in Sh file having PERSON's name. I want read input text file and get value of person's age.

Please help, i'm beginner in Shell Scripting

share|improve this question
    
read about grep and cut. Good luck. –  shellter Oct 2 '12 at 16:16
    
Your question says "next column", but in your example it's the previous column -- which is it? Can the file have more than just two columns, or is it always exactly like your example? –  Barmar Oct 8 '12 at 17:28

3 Answers 3

up vote 0 down vote accepted

Building upon shellter's comment:

age=$(grep "$person_name" people_file.txt | cut -f1 -d' ')

I'll try to explain everything. First, I assume somethings (but you can change them on your script):

  1. Your file with the data you entered is called people_file.txt.
  2. The person's name you want to find is in the variable $person_name.
  3. The variable you want to store the result is $age.

Firstly, because we need to use commands to generate the value of the $age variable, we must use $( and ) to run a command (or a series of commands), and replace itself with the text it captures from executing the command (or commands).

We first need to find the line which contains the person's name. For that we use grep: grep regex file. Grep will search file line by line until it finds a line that matches the regular expression regex. In our case we can simply search for the person's name directly (assuming it doesn't contain special characters, like the period or an asterisk). Note that we must place the variable between double quotes, otherwise a person's name that has a space in it might be split in the command line so that its first name is used as the regular expression and the surname as the file. If you want to search in a case insensitive manner (like for example: John will find a line with JOHN or john), you can use the -i flag: grep -i regex file. The selected lines will be printed by grep into its output, but we will pump those lines into the input of the next command with the pipe operator |.

Finally, we have a line (or many lines) with the results. Now we must extract the age. The cut command will split each line it reads from the input into fields, and only print the fields you ask it to. In this case, we ask for the first field with the -f1 option. Also, we specify that the space character is to be used as the delimeter (ie. the character that separates the fields) with the -d1 command.

If you have more than one line with the same person's name, we need to pipe the output of grep into a head command, so that we can have only the number of lines we want. We can tell head how many lines we want with the -n N option. So if you only want the first match:

age=$(grep "$person_name" people_file.txt | head -n 1 | cut -f1 -d' ')

Hope this helps a little =)

share|improve this answer
    
Thank-you so much Janito. Appreciate your efforts of teaching me in depth. :) –  Maulzey Oct 2 '12 at 17:45
    
You're welcome =) –  Janito Vaqueiro Ferreira Filho Oct 2 '12 at 17:50
    
Your code doesn't work. It returns Jonathan's age when you search for Jon. –  ikegami Oct 2 '12 at 18:34
    
You have to be careful with your search option. Remember that grep searches for a regular expression. If you're sure that $person_name contains the full name, you can use grep "$person_name\$" file to make sure that the line ends with the name, or even grep "$person_name\\s" file to make sure that there is a space after the name. –  Janito Vaqueiro Ferreira Filho Oct 2 '12 at 18:45
    
The as-of-yet unapplied fix you mentioned will still allow Anne to match Marie-Anne. There's also the possible issue that L. Brine will match Lo Brine. (My solution suffers from none of these problems.) –  ikegami Oct 2 '12 at 21:41

A slightly simpler solution is:

age=$( awk '$2==name { print $1 }' name="$name" input-file )
share|improve this answer
    
Why not use awk's -v option so you don't have to unquote? –  Barmar Oct 8 '12 at 17:29
    
@Barmar Excellent suggestion! –  William Pursell Oct 8 '12 at 17:40
age=`
   perl -nle'
      BEGIN { $n = shift(@ARGV); }
      print $1 if /^(\S+)\s+\Q$n\E$/;
   ' "$name" file
`

Tested with bash in sh mode.

share|improve this answer
    
Hi, Thank-you so much for your help. On execution i'm getting 'Unrecognized switch: -E' CAn you help. –  Maulzey Oct 2 '12 at 17:26
    
whats your perl version? –  snoofkin Oct 2 '12 at 17:33
    
Adjusted for versions of Perl older than 5.10. Keep in mind that 5.14 is the oldest supported version of Perl, so your version is actually quite old. –  ikegami Oct 2 '12 at 18:31

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