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In this regex

$line = 'this is a regular expression';
$line =~  s/^(\w+)\b(.*)\b(\w+)$/$3 $2 $1/;

print $line;

Why is $2 equal to " is a regular "? My thought process is that (.*) should be greedy and match all characters until the end of the line and therefore $3 would be empty.

That's not happening, though. The regex matcher is somehow stopping right before the last word boundary and populating $3 with what's after the last word boundary and the rest of the string is sent to $2.

Any explanation? Thanks.

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4 Answers 4

$3 can't be empty when using this regex because the corresponding capturing group is (\w+), which must match at least one word character or the whole match will fail.

So what happens is (.*) matches "is a regular expression", \b matches the end of the string, and (\w+) fails to match. The regex engine then backtracks to (.*) matching "is a regular " (note the match includes the space), \b matches the word boundary before e, and (\w+) matches "expression".

If you change(\w+) to (\w*) then you will end up with the result you expected, where (.*) consumes the whole string.

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$ is a zero-width assertion; I don't think anything consuming (if that's at all possible) the end of string would be an issue. See: codepad.org/CwTlhn3z –  NullUserException Oct 14 '12 at 2:50
    
@NullUserException I thought so too but ^(\w+)\b(.*)\b(\w*)$ still matches expression to the last group. Making the word boundary optional results in an empty match as I expected. I'm not really sure what is going on actually... –  verdesmarald Oct 14 '12 at 3:00
    
It does look like Ruby's regex engine is different from Perl's. –  NullUserException Oct 14 '12 at 3:01
1  
I think the problem is with Rubular. When I switch to 1.8.7 or change the final \b to the equivalent lookarounds, it works right. It also works correctly at codepad and ideone. –  Alan Moore Oct 14 '12 at 5:49
1  
One additional note: if you want the .* to be really greedy, even if it makes the match fail, use (?>.*) (or the equivalent possesive quantifier .*+) –  ysth Oct 14 '12 at 6:52

Greedy doesn't mean it gets to match absolutely everything. It just means it can take as much as possible and still have the regex succeed.

This means that since you use the + in group 3 it can't be empty and still succeed as + means 1 or more.

If you want 3 to be empty, just change (\w+) to (\w?). Now since ? means 0 or 1 it can be empty, and therefore the greedy .* takes everything. Note: This seems to work only in Perl, due to how perl deals with lines.

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rubular.com/r/1XFcnXANWJ, although in Perl it works as you described. Is the end of string a word boundary in Perl? –  NullUserException Oct 14 '12 at 2:42
    
(\w?) means 0, or 1. (\w*) means 0 or more. –  Brad Gilbert Oct 14 '12 at 2:44
    
@BradGilbert How's that a problem? –  NullUserException Oct 14 '12 at 2:45
    
@BradGilbert youre right, edited –  jozefg Oct 14 '12 at 2:45
    
@jozefg works fine with ?: codepad.org/khnu5vFl –  NullUserException Oct 14 '12 at 2:46

In order for the regex to match the whole string, ^(\w+)\b requires that the entire first word be \1. Likewise, \b(\w+)$ requires that the entire last word be \3. Therefore, no matter how greedy (.*) is, it can only capture ' is a regular ', otherwise the pattern won't match. At some point while matching the string, .* probably did take up the entire ' is a regular expression', but then it found that it had to backtrack and let the \w+ get its match too.

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The way that you wrote your regexp it doesn't matter if .* is being greedy, or non-greedy. It will still match.

The reason is that you used \b between .* and \w+.

use strict;
use warnings;

my $string = 'this is a regular expression';

sub test{
  my($match,$desc) = @_;
  print '# ', $desc, "\n" if $desc;
  print "test( qr'$match' );\n";
  if( my @elem = $string =~ $match ){
    print ' 'x4,'[\'', join("']['",@elem), "']\n\n"
  }else{
    print ' 'x4,"FAIL\n\n";
  }
}

test( qr'^ (\w+) \b (.*)  \b (\w+) $'x, 'original' );
test( qr'^ (\w+) \b (.*+) \b (\w+) $'x, 'extra-greedy' );
test( qr'^ (\w+) \b (.*?) \b (\w+) $'x, 'non-greedy' );
test( qr'^ (\w+) \b (.*)  \b (\w*) $'x, '\w* instead of \w+' );
test( qr'^ (\w+) \b (.*)     (\w+) $'x, 'no \b');
test( qr'^ (\w+) \b (.*?)    (\w+) $'x, 'no \b, non-greedy .*?' );
# original
test( qr'(?^x:^ (\w+) \b (.*)  \b (\w+) $)' );
    ['this'][' is a regular ']['expression']

# extra-greedy
test( qr'(?^x:^ (\w+) \b (.*+) \b (\w+) $)' );
    FAIL

# non-greedy
test( qr'(?^x:^ (\w+) \b (.*?) \b (\w+) $)' );
    ['this'][' is a regular ']['expression']

# \w* instead of \w+
test( qr'(?^x:^ (\w+) \b (.*)  \b (\w*) $)' );
    ['this'][' is a regular expression']['']

# no \b
test( qr'(?^x:^ (\w+) \b (.*)     (\w+) $)' );
    ['this'][' is a regular expressio']['n']

# no \b, non-greedy .*?
test( qr'(?^x:^ (\w+) \b (.*?)    (\w+) $)' );
    ['this'][' is a regular ']['expression']
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I'm not sure that answers the question... –  Nathan Fellman Oct 14 '12 at 7:37
    
It shows various slight modifications to the original regex. –  Brad Gilbert Oct 14 '12 at 17:57

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