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I find myself repeatedly wanting to count the number of occurrences of an item in an array and display the top items along with their actual count. I have written code like the following so many times I recognize it as a recurring, RSI-inducing pattern:

hits = Hash[ array.group_by{|o|o}.map{|o,a|[o,a.length]}.sort_by{|o,ct|[-ct,o]} ]

require 'pp'
pp hits

I could move this into a monkeypatch on Enumerable…

module Enumerable
  def counts(&blk)
    blk ||= ->(o){o}
    Hash[ group_by(&blk).map{|o,a| [o,a.length] }.sort_by{|o,ct| [-ct,o] } ]
  end
end

a = %w[a b a b c d e g j a e c d k o k i l p a e c f d e a d e f s d v c ]
pp a.counts
#=> {"a"=>5,
#=>  "d"=>5,
#=>  "e"=>5,
#=>  "c"=>4,
#=>  "b"=>2,
#=>  "f"=>2,
#=>  "k"=>2,
#=>  "g"=>1,
#=>  "i"=>1,
#=>  "j"=>1,
#=>  "l"=>1,
#=>  "o"=>1,
#=>  "p"=>1,
#=>  "s"=>1,
#=>  "v"=>1}

…but I wonder if there's a more elegant way to accomplish this (less typing would suffice) using core Ruby methods.

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1  
It looks good to me, though using Hash.new(0)+inject (or each_with_object) would be more efficient than group_by. Note that there are already quite a lot of questions answering "frequency of elements in an array" showing both group_by and inject solutions. –  tokland May 31 '12 at 22:50
    
@tokland I'll happily close this answer for a duplicate (I didn't find one) or accept an answer showing this iff the result has the hash keys or paired array sorted by descending hits. –  Phrogz May 31 '12 at 22:59
    
Phrogz, I've found your recent Ruby questions interesting (particularly the ones involving combinatorics), so am having a look at some of your older questions. I'll probably post comments and solutions from time-to-time. –  Cary Swoveland Mar 21 '14 at 6:13

3 Answers 3

ruby-1.9.2-p290 :041 > Hash[*[1,1,2,3,4,5,5,5].inject(Hash.new(0)) { |h,v| h[v] += 1; h }.sort_by{|k,v| v}.reverse.flatten]

=> {5=>3, 1=>2, 4=>1, 2=>1, 3=>1}

Listen if you are looking to rank the list based on no of occurrences, the following works well,

ruby-1.9.2-p290 :045 > [1,1,2,3,4,5,5,5].group_by{|x| x}.sort_by{|k, v| -v.size}.map(&:first)

=> [5, 1, 2, 4, 3] 
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Note that under Ruby 1.8.7+ you can just use Hash[ array_of_tuples ] instead of Hash[ *array_of_tuples.flatten ] –  Phrogz May 31 '12 at 23:04
    
Thanks man. I will note it. –  beck03076 May 31 '12 at 23:05

Without sorting in advance, which might be slow for high n:

a = %w[a b a b c d e g j a e c d k o k i l p a e c f d e a d e f s d v c ]
a.each_with_object( {} ) {|e, h| h[e] ||= 0; h[e] += 1 }.sort_by {|o, ct| [-ct, o] }

If you care about elegance, use #with_object / #each_with_object when suitable.

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up vote 0 down vote accepted

Looks like the code I have is about as terse as it's going to get. Moved into a non-monkeypatching method:

def count_items(enum,&blk)
  blk ||= ->(o){o}
  Hash[ enum.group_by(&blk).map{|o,a| [o,a.length] }.sort_by{|o,ct| [-ct,o] } ]
end
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