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In Perl regex, the documentation says

... 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 how is it that when you provide an alternative option - when no match is found - TRUE or FALSE will be assigned even when in list context?

As an example, I want to assign the matched group to a variable and if not found, use the string value ALL.

my ($var) = $string =~ /myregex/ || 'ALL';

Is this possible? And what about multiple captured groups? E.g.

my ($var1, $var2) = $string =~ /(d.t)[^d]+(d.t)/ || 'dit', 'dat';

Where if the first group isn't matched, 'dit' is used, and if no match for the second is found 'dat'.

  • Does it have to be a one liner? An if else and using $1 and $2 will probably be more readable – Recct Feb 25 '16 at 10:25
  • @Recct It doesn't have to be - as long as it's efficient. – Bram Vanroy Feb 25 '16 at 10:41
  • Also after the || those are in void context if everything on the left is false, even if you use the weaker or assumedly to be applied if the regex fails still nothing happens on the right. – Recct Feb 25 '16 at 10:41
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For the first requirement, you can use the ternary operator:

my $string = 'abded';
for my $f ('a' .. 'f') {
    my ($v1) = $string =~ /($f)/ ? ($1) : ('ALL') ;
    say "$f : $v1";
}

Output:

a : a
b : b
c : ALL
d : d
e : e
f : ALL

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