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I read and did not find the answer. I want to read a log file and print out everything after the ":" but some of the log have space before some dont. I want to match only the one with not space at the beginning.

_thisnot: this one has space
thisyes: this one has not space at the beginning.

I want to do that for every line in the file.

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"_" is not "space", its underscore. " " is space. –  TLP Mar 9 '12 at 17:04

3 Answers 3

up vote 1 down vote accepted

How about:

#!/usr/bin/perl 
use strict;
use warnings;
use 5.010;

my %result;
while(<DATA>) {
    chomp;
    next if /^\s/;
    if (/^([^:]*):\s*(.*)$/) {
        $result{$1} = $2;
    }
}

__DATA__
 thisnot: this one has space
thisyes: this one has not space at the beginning.
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this is perfect,but keep in mind im scanning a log file. So I need to go over all the lines and use whatever is before the : as key, and everything after the : as value. –  NewLearner Mar 9 '12 at 16:03
    
@NewLearner: I don't really understand what you mean. Do you want to keep all stuff in a hash? –  JE SUIS CHARLIE Mar 9 '12 at 16:22
    
Yesssss. That what I wanted. sorry I'm new to all this. –  NewLearner Mar 9 '12 at 16:39
    
@NewLearner: see my edit. –  JE SUIS CHARLIE Mar 9 '12 at 16:47
2  
@NewLearner Be aware that if you use a hash, the keys will be overwritten. E.g. if you have foo: bar and foo: baz, only the later value will be in the resulting hash. –  TLP Mar 9 '12 at 17:05
# Assuming you opened log filehandle for reading...
foreach my $line (<$filehandle>) {
    # You can chomp($line) if you don't want newlines at the end
    next if $line =~ /^ /; # Skip stuff that starts with a space
              # Use  /^\s/ to skip ALL whitespace (tabs etc)
    my ($after_first_colon) = ($line =~ /^[^:]*:(.+)/);
    print $after_first_colon if $after_first_colon; # False if no colon. 

}
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Or you could use a one liner like:

perl -ne 's/^\S.*?:\s*// && print' file.log
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