I would like to delete any element of a SetHash, so that its value be returned:

my SetHash $a;
$a<m n k> = 1..*;
my $elem = $a.mymethod;
say $elem; # n
say $a; # SetHash(m k)

I can do it in two steps as follows. Is there a better way?

my $elem = $a.pick;
$a{$elem}--;

And by the way, is there a more idiomatic way of adding several elements to a SetHash?

Is the following any better?

my SetHash $a;
$a{$_}++ for <m n k>;

or

my SetHash $a;
$a<m n k> X= True;
  • 1
    You can also add multiple elements using the hyper operator: $a<a b c>»++ – Håkon Hægland Nov 30 '17 at 14:20
  • Thanks, I found it. Probably a dot is missing in your variant. – Eugene Barsky Nov 30 '17 at 14:22
  • 1
    You don't need dots for operators. Note that hypers notionally / semantically process in parallel so only use them with operations such that execution order and side-effects work when executed in parallel. – raiph Nov 30 '17 at 15:21
  • Yes, I was wrong. – Eugene Barsky Nov 30 '17 at 15:26
up vote 4 down vote accepted

Since you want to remove any random element from the set and return the value you got, I'd recommend using the grab method on Setty things (only works properly on mutable sets like SetHash): https://docs.perl6.org/type/SetHash#(Setty)_method_grab

Depending on what exact return value you need, maybe grabpairs is better.

  • Oh, at last! That's exactly what I wanted, I strangely missed it in the docs. Thank you! – Eugene Barsky Dec 3 '17 at 15:36

UPD I'm leaving this answer up for now rather than deleting it, but see timotimo's answer.

I would like to delete an element of a SetHash, so that its value be returned

Use the :delete adverb.

Per the Subscript doc page, the :delete adverb will delete the element(s) from the collection or, if supported by the collection, create a hole at the given index(es), in addition to returning their value(s):

my %associative = << :a :b :c >> ;
my $deleted = %associative<< a c >> :delete ;
say $deleted ;     # (True True)
say %associative ; # {b => True}

UPD Integrating @piojo's and @EugeneBarsky's comments and answers:

my %associative = << :a :b :c >> ;
my $deleted = .{.keys.pick } :delete :k with %associative ;
say $deleted ;     # b 
say %associative ; # {a => True, c => True}

is there a more idiomatic way of adding several elements to a SetHash?

Plain assignment with a list on the right hand side works, e.g.

$a<m n k> = True, True, True;
$a<m n k> = True xx *;
$a<m n k> = True ... *;

I've used and seen others using both the formulations in your examples too.

  • Probably my question isn't clear enough. The problem is I don't know beforehand which element I want to delete, and I want to have its value (e.g. 'c'), not True. So, I want to do something like pop. – Eugene Barsky Nov 30 '17 at 14:34
  • 1
    :delete is like a general pop. I'm not sure what you're thinking there's a problem. For example, the element(s) can be chosen dynamically, e.g. %myhash<<@elems>>:delete. – raiph Nov 30 '17 at 15:00
  • @EugeneBarsky You mean you want to delete a list of elements without knowing whether they exist, and afterwards have your return value say which ones were formerly part of the set? – piojo Dec 1 '17 at 3:24

If I understand your comments correctly, you want to delete an element from a hash without knowing whether it exists, and get the element as a return value if it does exist. This can be done by combining the :delete and :k adverbs.

my %set := SetHash.new: ('a'..'g');
my @removed = %set<a e i o u>:delete :k;
say @removed; # output: [a e]
  • 1
    Thanks, I've learned a lot reading the answers! What I really wanted was to get any element of the SetHash as a return value and delete it from the SetHash. :) Like popping a random element (since there is no order in a Set). – Eugene Barsky Dec 1 '17 at 7:55
  • @EugeneBarsky Oh, I finally understand what you meant. You can't do that in a single operation, because it's not such a common thing. There aren't many algorithms which require removing a random element from a set. In the cases where I've had to remove elements from a set, I found an array to be a better data structure because it allows one-time or progressive randomization. Nonetheless, that is a valid need, but it's not in the same league as Array.pop. – piojo Dec 1 '17 at 8:03
  • Thanks! So, I'll use my method with pick. I feel that my question was very poorly formulated, but nevertheless I learned a lot from the answers. – Eugene Barsky Dec 1 '17 at 9:59
  • 1
    I've combined the answers, and seems managed to do what I wanted. Made an answer myself. :) – Eugene Barsky Dec 1 '17 at 13:52

Another approach to deleting the element and returning it, is to augment the SetHash class with a custom method:

use v6;
use MONKEY-TYPING;

augment class SetHash {
    method delete-elem(Any $elem) {
        self.DELETE-KEY( $elem );
        return $elem;
    }
}

my SetHash $a = <m n k>.SetHash;
$a<a b c>»++;  # add some more elements to the SetHash...

my $elem = $a.delete-elem( $a.pick );
say "Deleted: $elem";
say $a;

Output:

Deleted: m
SetHash(a b c k n)
  • 1
    Hi Håkon. I'm not seeing how your solution achieves something that isn't achieved by the built in :delete adverb (per my answer). Eugene seems to be saying I'm missing something but of course I'm not seeing what I'm not seeing... :) – raiph Nov 30 '17 at 15:26

Using a combination of the answers, it seems I've managed to do what I wanted:

my SetHash $s;
$s = <a b c d e f>.SetHash;
my $deleted = $s{ $s.pick } :delete :k;
say $deleted; # f
say $s; # SetHash(a b c d e)

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