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I need to capture string between quote chars (") to change quotes for fancy ones, thus i created substitution, my code:

my $pk = qq|IV Baltic Sea NGO Forum "Challenges for Baltic Sea civil society"|;
$pk =~ s/"(\p{Word}+.?+)"/«$1»/g;
say $pk;

I meant regex as that:

  1. quoting char
  2. followed by at least one word char
  3. followed by any char
  4. until next quoting char (non-greedy capture)

I don't get captured when there is any non-word char between quotes. Why?

I found another solution too, but i'd like to understand, why my regex does not work?

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1 Answer 1

up vote 4 down vote accepted

.?+ is not reluctant quantifier. It is in fact a possessive ? quantifier.

You need to use .+? instead.

So, try this:

$pk =~ s/"(\p{Word}+.+?)"/«$1»/g;

or, you can even use [^"]+ instead of reluctant quantifier. It will automatically stop at the first " character:

$pk =~ s/"(\p{Word}+[^"]+)"/«$1»/g;
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I can't memorize is there .+? or .?+ and .= or =.. I should have to check this over myself, thank you for pointing and offering other way too! Will accept it in short. – w.k Feb 14 '13 at 8:22
@w.k. You're welcome :) And there is nothing special about .= or =. You have only 3 types of quantifiers in regex - *, + and ?. – Rohit Jain Feb 14 '13 at 8:24
@w.k. By default those quauntifiers are greedy, i.e., they match as much as they can. So, you add a ? at the end of each of them to make them reluctant. Also, you add a + at the end of them to make them possessive. With which, the string that they match, will not be backtracked. – Rohit Jain Feb 14 '13 at 8:25
Don't forget {n,m}, that's a quantifier, too. – Tim Pietzcker Feb 14 '13 at 8:27
@TimPietzcker. Ah! Forgot that. – Rohit Jain Feb 14 '13 at 8:28

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