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MMAPI_CLOCK_OUTPUTS = 1,        /*clock outputs system*/

parsing the above with this:

$TheLine =~ /\s*(.*)\s*=\s*(.*),\s*\/\*(.*)\*\//)

The variable $1 contains white space at the end, e.g. we have "MMAPI_CLOCK_OUTPUTS " and not "MMAPI_CLOCK_OUTPUTS". Why are those spaces captured as well? I thought they should have be removed with the parser code

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3 Answers 3

The regex capture (.*) is a greedy match, meaning it will match as many characters as possible. Since the following \s* can be zero-length, the preceding string including a space is included in the capture.

Change it to a non-greedy patern by adding a question mark (.*?), and use a different delimiter to avoid having to escape the slashes in the pattern

$TheLine =~ m<\s*(.*?)\s*=\s*(.*),\s*/\*(.*)\*/>
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Learnt something new today, +1 –  Bee Dec 21 '12 at 12:25

TIMTOWTDI, or "I haven't used Regexp::Grammars in a while"

#!/usr/bin/env perl

use strict;
use warnings;

use Regexp::Grammars;
my $parser = qr{
  <nocontext:>

  <Definitions>

  <rule: Definitions>   <[Definition]>*
  <rule: Definition>    <Variable> = <Value>
  <rule: Variable>  <Word>
  <rule: Value>     <Word>
  <rule: Word>      [\w\d_]+
}xms;

my $str = 'MMAPI_CLOCK_OUTPUTS = 1,        /*clock outputs system*/';

$str =~ $parser;

# see the whole matched structure
use Data::Dumper;
print Dumper \%/; 

# or walk the structure for results
for my $def (@{ $/{Definitions}{Definition} }) {
  print $def->{Variable}{Word} . ' => ' . $def->{Value}{Word} . "\n";
}
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If the word before = sign doesn't have spaces in it, change (.*) to (\S+)

$TheLine =~ /\s*(\S+)\s*=\s*(.*),\s*\/\*(.*)\*\//)
           here __^
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We haven't been told that the label before the = cannot contain whitespace –  Borodin Dec 21 '12 at 11:09
    
@Borodin: You're right, It's just a supposition from I. –  M42 Dec 21 '12 at 11:12

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