Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

i am new in Perl and i need to do some regexp. I read, when array is used like integer value, it gives count of elements inside.

So i am doing for example

if (@result = $pattern =~ /(\d)\.(\d)/) {....}

and i was thinking it should return empty array, when pattern matching fails, but it gives me still array with 2 elements, but with uninitialized values.

So how i can put pattern matching inside if condition, is it possible?


foreach (keys @ARGV) {

    if (my @result = $ARGV[$_] =~ /^--(?:(help|br)|(?:(input|output|format)=(.+)))$/) {

        if (defined $params{$result[0]}) {
            print STDERR "Cmd option error\n";

        $params{$result[0]} = (defined $result[1] ? $result[1] : 1);

    else {
        print STDERR "Cmd option error\n";
        exit ERROR_CMD;


It is regexp pattern for command line options, cmd options are in long format with two hyphens preceding and possible with argument, so --CMD[=ARG]. I want elegant solution, so this is why i want put it to if condition without some prolog etc.

EDIT2: oh sry, i was thinking groups in @result array are always counted from 0, but accesible are only groups from branch, where the pattern is success. So if in my code command is "input", it should be in $result[0], but actually it is in $result[1]. I thought if $result[0] is uninitialized, than pattern fails and it goes to the if statement.

share|improve this question
You should provide sample input, and what you expect it to do. – Lone Shepherd Feb 19 '13 at 18:34
If the pattern match fails, it will give you the empty list, not two undefined values. Perhaps you should post the code that makes you think that is what happens. – TLP Feb 19 '13 at 18:36
@LoneShepherd No, the assignment will still happen in list context, it is equal to doing @result = ...; if (@result). – TLP Feb 19 '13 at 18:50

3 Answers 3

up vote 2 down vote accepted

Consider the following:

use strict;
use warnings;

my $pattern = 42.42;

my @result = $pattern =~ /(\d)\.(\d)/;

print @result, ' elements';


24 elements

Context tells Perl how to treat @result. There certainly aren't 24 elements! Perl has printed the array's elements which resulted from your regex's captures. However, if we do the following:

print 0 + @result, ' elements';

we get:

2 elements

In this latter case, Perl interprets a scalar context for @result, so adds the number of elements to 0. This can also be achieved through scalar @results.

Edit to accommodate revised posting: Thus, the conditional in your code:

if(my @result = $ARGV[$_] =~ /^--(?:(help|br)|(?:(input|output|format)=(.+)))$/) { ...

evaluates to true if and only if the match was successful.

share|improve this answer
Yeah thx, it was my fault. – Krab Feb 19 '13 at 19:05
@results = $pattern =~ /(\d)\.(\d)/ ? ($1,$2) : ();
share|improve this answer
This is what the original code already does. – TLP Feb 19 '13 at 19:10
In the fail to match case, the original code returned a list with two elements, both undefined. This returns an empty list. – rjh Feb 19 '13 at 23:59
No, the original code returned the empty list when the match failed. If it does not match, it doesn't return captured elements. – TLP Feb 20 '13 at 0:22

Try this:

@result = ();
if ($pattern =~ /(\d)\.(\d)/)
 push @result, $1;
 push @result, $2;

=~ is not an equal sign. It's doing a regexp comparison.

So my code above is initializing the array to empty, then assigning values only if the regexp matches.

share|improve this answer

Your Answer


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.