Probably I'm doing something totally wrong, but is there some way to modify and combine regexes using subroutines? The program below wouldn't compile.

sub a(Regex $r1) {
  return rx/ <$r1> a /
}

my regex letter_b { b };

my $new = a(letter_b);
say $new;
up vote 8 down vote accepted

Looking at the documentation for Regex, it says:

A named regex can be defined with the regex declarator followed by its definition in curly braces. Since any regex does Callable introspection requires referencing via &-sigil.

my regex R { \N };
say &R.^name; # OUTPUT: «Regex␤»

Also, the Grammar documentation (for the concept, not the Type), it explains more about this:

The main ingredient of grammars is named regexes. While the syntax of Perl 6 Regexes is outside the scope of this document, named regexes have a special syntax, similar to subroutine definitions:

my regex number { \d+ [ \. \d+ ]? }

In this case, we have to specify that the regex is lexically scoped using the my keyword, because named regexes are normally used within grammars.

Being named gives us the advantage of being able to easily reuse the regex elsewhere:

say so "32.51" ~~ &number;                                    # OUTPUT: «True␤»
say so "15 + 4.5" ~~ / <number> \s* '+' \s* <number> /        # OUTPUT: «True␤»

So, to pass your named regex as a parameter into your a subroutine, all you have to do is prefix it with an ampersand:

my $new = a(&letter_b);
#           ^
#  This is what you need!

say $new;
say so "ba" ~~ $new;         # OUTPUT: «True␤»
say so "ca" ~~ $new;         # OUTPUT: «False␤»

To refer to a function as a first class value, prepend its name with a &.

Also, no need to write <$r1> given that P6 already knows $r1 is a Regex. So:

sub a(Regex $r1) {
  return rx/ $r1 a /
}

my regex letter_b { b };

my $new = a(&letter_b);
say $new;                # rx/ $r1 a /
say 'ba' ~~ $new;        # 「ba」

You didn't show your error but...

a(letter_b) calls letter_b to get its value. (And then a would get called, with the value returned by letter_b passed as the first argument to a.)

But letter_b is a regex, and

say Regex ~~ Method; # True

And all methods require at least an invocant arg:

say &letter_b.signature; # (Mu $: *%_)

But you called it with zero arguments. Which yields:

Too few positionals passed; expected 1 argument but got 0

I'm guessing that's what your error message was.

  • The more I learn about Perl 6, the more I become convinced that it can do absolutely everything! :) Thanks especially for the explanation on calling r1 syntax! – Eugene Barsky Oct 28 '17 at 6:24
  • 1
    And yes, the compiler's complaint was exactly what you say — Too few positionals. – Eugene Barsky Oct 28 '17 at 6:25
  • 1
    @EugeneBarsky Thanks. I'm glad you're enjoying P6. :) – raiph Oct 29 '17 at 17:42

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