6

I have a hash %h and I want to process the data in a for statement in alphabetical order of keys.

But if I use a sort on the hash I get a list of Pairs, which is understandable. But how do I unpack this for a for statement.

Currently I'm using the following:

my %h = <xabsu ieunef runf awww bbv> Z=> 1..*; # create a hash with random key names
for %h.sort { 
  my ($name, $num) = (.key, .value);
  say "name: $name, num: $num"
}
# Output
# name: awww, num: 4
# name: bbv, num: 5
# name: ieunef, num: 2
# name: runf, num: 3
# name: xabsu, num: 1

But I would prefer something like the more idiomatic form:

my %h = <xabsu ieunef runf awww bbv> Z=> 1..*; # create a hash with random key names
for %h.sort -> $name, $num {   
  say "name: $name, num: $num"
}
# Output
# name: awww       4, num: bbv       5
# name: ieunef     2, num: runf      3
# Too few positionals passed; expected 2 arguments but got 1
#   in block <unit> at <unknown file> line 1

I'm sure there is a neater way to 'unpack' the Pair into a signature for the for statement.

10

The neater way:

for %h.sort -> (:key($name), :value($num)) {

This destructures the Pair by calling .key and .value on it, and then binding them to $name and $num respectively.

Perhaps a shorter, more understandable version:

for %h.sort -> (:$key, :$value) {

which would create variables with the same names the methods got called with.

| improve this answer | |
  • And because TIMTOWTDI / if you hate parentheses, you can also do for %h.sort.kv -> $name, $num { ... } (I know lizmat++ knows this, pointing this out for other users) – user0721090601 Aug 24 at 20:27
  • Have you tried that? The sort creates a Seq of Pairs, a kv on that creates a Seq of intermixed integers and Pairs. Try running this: my %h = a => 42, b => 666; for %h.sort.kv -> $key, $value { dd $key, $value } – Elizabeth Mattijsen Aug 24 at 22:31
  • Oops, indeed, it does, definitely a brain brainfart moment there =/ – user0721090601 Aug 25 at 0:51
  • 1
    The correct form of kv after sort would be either for %h.sort.map(*.kv) -> ($k, $v) { ... }, OR for %h.sort.map(|*.kv) -> $k, $v { ... } – Joshua Aug 25 at 1:48
  • 1
    /me remembers adding the Pair.kv method just for that :-) – Elizabeth Mattijsen Aug 25 at 9:31

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.