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Given that I have an array with two attributes: 'n_parents' and 'class', which looks like this:

my_arr = [{n_parents: 10, class: 'right'}, {n_parents: 10, class: 'right'}, {n_parents: 5, class: 'left'}, {n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}]

I would like to get an array with the objects that share most of those two attributes. So in the previous example:

result = [{n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}]

Because there are three objects that share n_parents = 2, and class = 'center'.

So far, I know how can I group by dos two attributes, but after that I am not sure how to get the set that has more elements.

Right now I have:

my_arr.group_by { |x| [x[:n_parents], x[:class]] }
share|improve this question
up vote 2 down vote accepted

This should work for you. It groups the hashes by the hash itself and then gets the largest group by the array count

 my_arr = [{n_parents: 10, class: 'right'}, {n_parents: 10, class: 'right'}, {n_parents: 5, class: 'left'}, {n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}, {n_parents: 2, class: 'center'}]
 my_arr.group_by { |h| h }.max_by { |h,v| v.count }.last
 #=>[{:n_parents=>2, :class=>"center"}, {:n_parents=>2, :class=>"center"}, {:n_parents=>2, :class=>"center"}]
share|improve this answer
    
You missed #last at end. So I was thinking, without the method, how you got the output.. ;) – Arup Rakshit Mar 26 '14 at 18:58
1  
@ArupRakshit I noticed and added it in why did you need to add spaces? clarity? – engineersmnky Mar 26 '14 at 18:59
    
sure, as Ruby lover like that way to write. See here.. – Arup Rakshit Mar 26 '14 at 19:00
1  
Okay I was just wondering since it obviously works either way. I am a huge ruby lover as well and my favorite part is that the syntax is almost white space ignorant. (Major reason I am not as big a fan of Python) – engineersmnky Mar 26 '14 at 19:05
    
No Issue.. Then rollback my edit. :-) – Arup Rakshit Mar 26 '14 at 19:21

something like below :

my_arr.group_by(&:values).max_by { |_,v| v.size }.last
# => [{:n_parents=>2, :class=>"center"},
#     {:n_parents=>2, :class=>"center"},
#     {:n_parents=>2, :class=>"center"}]
share|improve this answer

I am using code used by OP and extending over that to get result he wants:--

my_arr.group_by { |x| [x[:n_parents], x[:class]] }.max_by{|k,v| v.size}.last

Output

#=> [{:n_parents=>2, :class=>"center"}, {:n_parents=>2, :class=>"center"}, {:n_parents=>2, :class=>"center"}]
share|improve this answer

This is the fourth answer to be posted. The three earlier answers all employed group_by/max_by/last. Sure, that may be the best approach, but is it the most interesting, the most fun? Here are a couple other ways to generate the desired result. When

my_arr = [{n_parents: 10, class: 'right' }, {n_parents: 10, class: 'right' },
          {n_parents:  5, class: 'left'  }, {n_parents:  2, class: 'center'},
          {n_parents:  2, class: 'center'}, {n_parents:  2, class: 'center'}]

the desired result is:

  #=> [{:n_parents=>2, :class=>"center"},
  #    {:n_parents=>2, :class=>"center"},
  #    {:n_parents=>2, :class=>"center"}]

#1

# Create a hash `g` whose keys are the elements of `my_arr` (hashes)
# and whose values are counts for the elements of `my_arr`.
# `max_by` the values (counts) and construct the array. 

el, nbr = my_arr.each_with_object({}) { |h,g| g[h] = (g[h] ||= 0) + 1 }
                .max_by { |_,v| v } 
arr = [el]*nbr

#2

# Sequentially delete the elements equal to the first element of `arr`,
# each time calculating the number of elements deleted, by determining
# `arr.size` before and after the deletion. Compare that number with the
# largest number deleted so far to find the element with the maximum
# number of instances in `arr`, then construct the array. 

arr = my_arr.map(&:dup)
most_plentiful = { nbr_copies: 0, element: [] }
until arr.empty? do
  sz = arr.size
  element = arr.delete(arr.first)
  if sz - arr.size > most_plentiful[:nbr_copies]
    most_plentiful = { nbr_copies: sz - arr.size, element: element }
  end
end
arr = [most_plentiful[:element]]* most_plentiful[:nbr_copies]
share|improve this answer
    
Yes your code certainly works and is an interesting approach but at the same time down the road it would be refactored as it lacks the conciseness and readability of the other answers. – engineersmnky Mar 29 '14 at 14:55
    
@engineersmnky,I agree 100%. If this were real-life, I would use group_by/max_by, like everyone else. I've learned a lot about Ruby, however, by trying to think up different, sometimes unconventional, solutions to SO questions, especially when I'm late to the party, as here. I post these musings in the hope they may have some educational value. Try it! – Cary Swoveland Mar 29 '14 at 16:30

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