Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a input file with the following example data.

kernel_version hostname

2.6.32-220.el6.x86_64 www01.dc1.domain.com
2.6.32-220.el6.x86_64 www02.dc1.domain.com
2.6.32-220.el6.x86_64 exc01.dc1.domain.com
2.6.32-220.el6.x86_64 exc02.dc1.domain.com
2.6.32-120.el6.x86_64 www03.dc2.domain.com
2.6.32-120.el6.x86_64 www04.dc2.domain.com
2.6.32-120.el6.x86_64 exc03.dc2.domain.com
2.6.32-120.el6.x86_64 exc04.dc2.domain.com
2.6.32-100.el6.x86_64 www05.dc3.domain.com
2.6.32-100.el6.x86_64 www06.dc3.domain.com
2.6.32-100.el6.x86_64 exc05.dc3.domain.com
2.6.32-100.el6.x86_64 exc06.dc3.domain.com
2.6.32-220.el6.x86_64 www07.dc4.domain.com
2.6.32-220.el6.x86_64 www08.dc4.domain.com
2.6.32-220.el6.x86_64 exc07.dc4.domain.com
2.6.32-220.el6.x86_64 exc08.dc4.domain.com

I'd like to output the unique kernel version, and which dcs are running which.

For example;

2.6.32-220.el6.x86_64 dc1, dc4
2.6.32-120.el6.x86_64 dc2
2.6.32-100.el6.x86_64 dc3

What is the best method to achieve this?

share|improve this question
    
Heading should rather read, kernel version by unique dc – PeterG Nov 10 '12 at 0:39
up vote 1 down vote accepted

I'd do something like this:

#!/usr/bin/perl
use warnings;
use strict;

my %kernels;
open INPUT,"<inputfile";

while (<INPUT>)
{
    my ($version, $hostname) = split(/\s+/,$_);
    if ($kernels{$version}) { $kernels{$version} .= ", $hostname" }
    else { $kernels{$version} = $hostname }
}
close INPUT;    

# Print the summary
foreach my $kernel (keys(%kernels)) {   print "$kernel\t$kernels{$kernel}\n"; }

Warning: I did not test this script. I am not responsible for any syntax errors, race conditions, or velociraptor attacks that may be caused by this code.. but it should get you started

Edit: I have now tested it. One syntactical error that has been rectified, and no major velociraptor attacks.

share|improve this answer
    
Does as it says on the tin. Thanks! – PeterG Nov 10 '12 at 0:53
    
from commandline: perl -ne <inputfile '$str{$1}->{$2}++ if /(\S+)\s[^.]+\.([^.]+)\./;END { map { printf "%s %s\n", $_, join(", ",keys %{$str{$_}}); } keys %str;}' – F. Hauri Nov 10 '12 at 12:45

This might work for you:

sed 's/ [^\.]*\.\([^.]*\).*/ \1/' file |
sort -u |
sed ':a;$!N;s/^\(\(.*\) .*\)\n.*\2/\1,/;ta;P;D'

This gives the result but not in original order, for original order use:

sed 's/ [^\.]*\.\([^.]*\).*/ \1/' file |
cat -n - |
sort -uk2,3 |
sed ':a;$!N;s/^\(.\{7\}\(.*\) .*\)\n.*\2/\1,/;ta;P;D' |
sort -n | 
sed 's/^.\{7\}//'
share|improve this answer
    
Well and nice! (the condition $! seem not to be necessary, as P;D as sed will anyway print each lines: the second sed could be simplier: :a;N;s/^\(.*\) \(.*\)\n\1 /\1 \2, /;ta ) – F. Hauri Nov 10 '12 at 12:44
    
@F.Hauri the P;D is necessary when 2 or more dc's are collected because the N appends the next record and this might then have a dc collected to it etc. $!N although not necessary with all seds is logically correct and is a catch-all condition. – potong Nov 10 '12 at 17:07

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.