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According to perlretut

... in scalar context, $time =~ /(\d\d):(\d\d):(\d\d)/ returns a true or false value. In list context, however, it returns the list of matched values ($1,$2,$3) .

But I can't find an explanation of what is returned in list context if the pattern matches when there are no capturing groups in the regexp. Testing shows that it is the list (1) (single element, integer 1). (Ancillary question - will it always be this, where is it defined?)

This makes it difficult to do what I want:

if (my @captures = ($input =~ $regexp)) {
    furtherProcessing(@captures);
}

I want furtherProcessing to be called if there is a match, with any captured groups passed as arguments. The problem comes when the $regexp contains no capturing groups because then I want furtherProcessing to be called with no arguments, not with the value 1 which is what happens in the above. I can't test for (1) as a special case, like this

if (my @captures = ($input =~ $regexp)) {
    shift @captures if $captures[0] == 1;
    furtherProcessing(@captures);
}

because in the case of

$input = 'a value:1';
$regexp = qr/value:(\S+)/;

there is a captured value in @captures that happens to look the same as what I get when the $regexp matches but has no capturing groups.

Is there a way to do what I want?

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1 Answer

up vote 8 down vote accepted

You can use $#+ to find out how many groups were in the last successful match. If that's 0, then there were no groups and you have (1). (Yes, it will always be (1) if there are no groups, as documented in perlop.)

So, this will do what you want:

if (my @captures = ($input =~ $regexp)) {
    @captures = () unless $#+; # Only want actual capture groups
    furtherProcessing(@captures);
}

Note that $#+ counts all groups, whether they matched or not (as long as the entire RE matched). So, "hello" =~ /hello( world)?/ will return 1 group, even though the group didn't match (the value in @captures will be undef).

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Looks exactly like what I want thanks –  Day May 21 '11 at 23:46
    
Tested and it works a treat. Also a thumbs up for answering my ancillary question. Thanks. –  Day May 21 '11 at 23:56
1  
or (perhaps overly obfu for some) my @captures = ($input =~ $regexp) x !!$#+ –  ysth May 22 '11 at 7:06
2  
@ysth, I think $#+ all by itself is probably obfuscated enough. :-) –  cjm May 22 '11 at 7:12
    
Isn't $1 a lot less obfuscated--especially if you're only using it as a predicate: furtherProcessing( defined( $1 ) ? @captures : ()) –  Axeman May 23 '11 at 15:39
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