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#!perl6
use v6;

my $list = 'a' .. 'f';

sub my_function( $list ) {
    for ^$list.elems -> $e {
        $list[$e].say;
    }
}

my_function( $list );

First I tried this in perl5-style, but it didn't work:

for @$list -> $e {
    $e.say;
}
# Non-declarative sigil is missing its name at line ..., near "@$list -> "

How could I do this in perl6?

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What exactly is it you want to do? The code in the first code block works fine on Rakudo HEAD at least. –  arnsholt Feb 17 '11 at 16:42
    
The first block should be an explanation for what I want in the second block. –  sid_com Feb 17 '11 at 18:48

2 Answers 2

up vote 5 down vote accepted

You don't dereference variables like this in Perl 6. Just use for $list

But that proably won't do what you want to do. 'a'..'f' doesn't construct a list in Perl 6, but rather a built-in data type called Range. You can check that with say $list.WHAT. To turn it into a list and iterate over each element, you'd use for $list.list

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These should work:

.say for @( $list );
.say for $list.list;
.say for $list.flat;

Since $listis a scalar, for $list will just iterate over a single item.

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