7

I keep record of how many times a letter occur in a word e.g. 'embeddedss'

my %x := {e => 3, m => 1, b => 1, d => 3, s => 2};

I'd like to print the elements by grouping their values like this:

# e and d 3 times
# m and b 1 times
# s 2 times

How to do it practically i.e. without constructing loops (if there is any)?

Optional Before printing the hash, I'd like to convert and assing it to a temporary data structure such as ( <3 e d>, <1 m b>, <2 s> ) and then print it. What could be the most practical data structure and way to print it?

  • I'm slightly confused by the output format you'd like to produce. When elements have the same value, do you want to group them and print them on a single line (the way you do with # e and d 3 times)? Or do you want to print them on separate lines (the way you do with m and b)? Or are you intentionally wanting to treat elements with a value of 1 differently from elements with other values? – codesections Sep 5 at 13:37
  • @codesections Ops! You're correct. I've just edited the question. – Lars Malmsteen Sep 5 at 13:52
  • 2
    say %x.categorize(*.value).map({ .value».key.join(" ") ~ " " ~ .key ~ " times"}).join("\n") Have to run, but so I'll leave it to someone else to formulate into an answer / handle using "and" – user0721090601 Sep 5 at 14:27
  • @user0721090601 I've run it and it works :) – Lars Malmsteen Sep 5 at 14:39
  • I hope you didn't write code to create a Hash for keeping track of the count of letters when you can just use .Bag. 'embeddedss'.comb.Bag – Brad Gilbert Sep 11 at 14:21
8

Using .categorize as suggested in the comments, you can group them together based on the value.

%x.categorize(*.value)

This produces a Hash, with the keys being the value used for categorization, and the values being Pairs from your original Hash ($x). This can be looped over using for or .map. The letters you originally counted are the key of the Pairs, which can be neatly extracted using .map.

for %x.categorize(*.value) {
    say "{$_.value.map(*.key).join(' and ')} {$_.key} times";
}

Optionally, you can also sort the List by occurrences using .sort. This will sort the lowest number first, but adding a simple .reverse will make the highest value come first.

for %x.categorize(*.value).sort.reverse {
     say "{$_.value.map(*.key).join(' and ')} {$_.key} times";
}
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