Here I make a regex manually from Regex elements of an array.

my Regex @reg =
  / foo /,
  / bar /,
  / baz /,
  / pun /
  ;

my $r0 = @reg[0];
my $r1 = @reg[1];

my Regex $r = / 0 $r0 | 1 $r1 /;

"0foo_1barz" ~~ m:g/<$r>/;
say $/;  # (「0foo」 「1bar」)

How to do it with for @reg {...}?

up vote 6 down vote accepted

If a variable contains a regex, you can use it without further ado inside another regex.

The second trick is to use an array variable inside a regex, which is equivalent to the disjunction of the array elements:

my @reg =
  /foo/,
  /bar/,
  /baz/,
  /pun/
  ;

my @transformed = @reg.kv.map(-> $i, $rx { rx/ $i $rx /});

my @match =  "0foo_1barz" ~~ m:g/ @transformed /;

.say for @match;
  • That's simply marvelous! Though I have a question: say @transformed.perl gives [rx/ $i $rx /, rx/ $i $rx /, rx/ $i $rx /, rx/ $i $rx /]. So does that mean that the values will be evaluated every time the regex is used? – Eugene Barsky Nov 13 '17 at 22:02
  • 1
    @EugeneBarsky Regex.perl simply produces the string with which the regex was declared, no more, no less. I haven't done any performance analysis on the resulting regexes. – moritz Nov 14 '17 at 12:54
my @reg =
  /foo/,
  /bar/,
  /baz/,
  /pun/
  ;

my $i = 0;

my $reg = @reg
  .map({ $_ = .perl; $_.substr(1, $_.chars - 2); })
  .map({ "{$i++}{$_}" })
  .join('|');

my @match = "foo", "0foo_1barz" ~~ m:g/(<{$reg}>) /;

say @match[1][0].Str;
say @match[1][1].Str;

# 0foo
# 2baz

See the docs

Edit: Actually read the docs myself. Changed implicit eval to $() construct.

Edit: Rewrote answer to something that actually works

Edit: Changed answer to a terrible, terrible hack

  • Unable to parse expression in metachar:sym<assert>; couldn't find final '>' .../test.p6:13. Line 13 is the last from your code: >/; – Eugene Barsky Nov 13 '17 at 16:38
  • Try again, I updated the code. – Holli Nov 13 '17 at 16:44
  • Regex object coerced to string (please use .gist or .perl to do that) in block at combine4.p6 line 11 – Eugene Barsky Nov 13 '17 at 17:52
  • Not a problem of my code here. Apparenly you are doing somehing along the lines of say "$rx"; – Holli Nov 13 '17 at 18:23
  • 1
    No. I don't like manipulating the .perl it in order to combine the regex. But luckily moritz++ below knows a better way. – Holli Nov 13 '17 at 20:48

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