Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to search the lines of a file to see if any of them match one of a set of regexs.

something like this:

my @regs = (qr/a/, qr/b/, qr/c/);
foreach my $line (<ARGV>) {
   foreach my $reg (@regs) {
      if ($line =~ /$reg/) {
         printf("matched %s\n", $reg);
      }
   }
}

but this can be slow.

it seems like the regex compiler could help. Is there an optimization like this:

my $master_reg = join("|", @regs); # this is wrong syntax. what's the right way?
foreach my $line (<ARGV>) {
   $line =~ /$master_reg/;
   my $matched = special_function();
   printf("matched the %sth reg: %s\n", $matched, $regs[$matched]
}

}

where 'special_function' is the special sauce telling me which portion of the regex was matched.

share|improve this question

2 Answers 2

up vote 8 down vote accepted

Use capturing parentheses. Basic idea looks like this:

my @matches = $foo =~ /(one)|(two)|(three)/;
defined $matches[0]
    and print "Matched 'one'\n";
defined $matches[1]
    and print "Matched 'two'\n";
defined $matches[2]
    and print "Matched 'three'\n";
share|improve this answer

Add capturing groups:

"pear" =~ /(a)|(b)|(c)/;
if (defined $1) {
    print "Matched a\n";
} elsif (defined $2) {
    print "Matched b\n";
} elsif (defined $3) {
    print "Matched c\n";
} else {
    print "No match\n";
}

Obviously in this simple example you could have used /(a|b|c)/ just as well and just printed $1, but when 'a', 'b', and 'c' can be arbitrarily complex expressions this is a win.

If you're building up the regex programmatically you might find it painful to have to use the numbered variables, so instead of breaking strictness, look in the @- or @+ arrays instead, which contain offsets for each match position. $-[0] is always set as long as the pattern matched at all, but higher $-[$n] will only contain defined values if the nth capturing group matched.

share|improve this answer

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.