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In Ruby I have the following array of hashes:

[
  {:qty => 1, :unit => 'oz', :type => 'mass'},
  {:qty => 5, :unit => 'oz', :type => 'vol'},
  {:qty => 4, :unit => 'oz', :type => 'mass'},
  {:qty => 1, :unit => 'lbs', :type => 'mass'}
]

What I need to be able to do is compare the elements by the :unit and :type and then sum the :qty when they are the same. The resulting Array should look like follows:

[
  {:qty => 5, :unit => 'oz', :type => 'mass'},
  {:qty => 5, :unit => 'oz', :type => 'vol'},
  {:qty => 1, :unit => 'lbs', :type => 'mass'}
]

If the array has multiple hashes where the :qty is nil and the :unit is empty (""), then it would only return one of those. So to extend the above example, this:

[
  {:qty => 1, :unit => 'oz', :type => 'mass'},
  {:qty => nil, :unit => '', :type => 'Foo'},
  {:qty => 5, :unit => 'oz', :type => 'vol'},
  {:qty => 4, :unit => 'oz', :type => 'mass'},
  {:qty => 1, :unit => 'lbs', :type => 'mass'},
  {:qty => nil, :unit => '', :type => 'Foo'}
]

would become this:

[
  {:qty => 5, :unit => 'oz', :type => 'mass'},
  {:qty => nil, :unit => '', :type => 'Foo'},
  {:qty => 5, :unit => 'oz', :type => 'vol'},
  {:qty => 1, :unit => 'lbs', :type => 'mass'}
]

EDIT: Sorry, made a mistake in the second example... it shouldn't have the o.

share|improve this question
2  
How are you going to give bonus points? –  sawa Aug 24 '13 at 17:57
1  
Your second example doesn’t make sense, why is there no hash with unit 'o' in the result? –  Andrew Marshall Aug 24 '13 at 18:12
    
You're right, just edited it. –  Nick Burdick Aug 24 '13 at 19:37
    
Are you expecting there are lots of such data and work to do? –  Billy Chan Aug 24 '13 at 19:46

3 Answers 3

up vote 6 down vote accepted

Start by using group_by with the keys you want, then reduce the qtys in each value into a single hash, or instead using nil if they are all nil:

properties.group_by do |property|
  property.values_at :type, :unit
end.map do |(type, unit), properties|
  quantities = properties.map { |p| p[:qty] }
  qty = quantities.all? ? quantities.reduce(:+) : nil
  { type: type, unit: unit, qty: qty }
end

#=> [{:type=>"mass", :unit=>"oz", :qty=>5},
#    {:type=>"Foo", :unit=>"", :qty=>nil},
#    {:type=>"vol", :unit=>"oz", :qty=>5},
#    {:type=>"mass", :unit=>"lbs", :qty=>1}]

Where properties is your second sample input data.

share|improve this answer
    
reduce(:+) => sum(0) (if you're using activesupport) –  Marian Theisen Aug 24 '13 at 18:13
1  
@MarianTheisen Ruby doesn't have a sum method. –  naomik Aug 24 '13 at 18:13
1  
@MarianTheisen Ruby has no sum method, it only exists in ActiveSupport. –  Andrew Marshall Aug 24 '13 at 18:13
    
@AndrewMarshall But you missed one entry... that Bonus matter.. :) :) –  Arup Rakshit Aug 24 '13 at 18:14
    
did not realize that, thanks naomik, andrew marshall –  Marian Theisen Aug 24 '13 at 18:14

You're going to want enumberable.group_by

This should get you started

items.group_by { |item| item.values_at(:unit, :type) }

Output

{
  ["oz", "mass"]=> [
    {:qty=>1, :unit=>"oz", :type=>"mass"},
    {:qty=>4, :unit=>"oz", :type=>"mass"}
  ],
  ["oz", "vol"]=>[
    {:qty=>5, :unit=>"oz", :type=>"vol"}
  ],
  ["lbs", "mass"]=>[
    {:qty=>1, :unit=>"lbs", :type=>"mass"}
  ]
}
share|improve this answer
ar = [{:qty => 1, :unit => 'oz', :type => 'mass'}, {:qty => nil, :unit => '', :type => 'Foo'}, 
      {:qty => 5, :unit => 'oz', :type => 'vol'}, 
      {:qty => 4, :unit => 'oz', :type => 'mass'}, {:qty => 1, :unit => 'lbs', :type => 'mass'}, 
      {:qty => nil, :unit => 'o', :type => 'Foo'}]

result = ar.each_with_object(Hash.new(0)) do |e,hsh|
    if hsh.has_key?({:unit => e[:unit], :type => e[:type]})
        hsh[{:unit => e[:unit], :type => e[:type]}] += e[:qty]
    else
        hsh[{:unit => e[:unit], :type => e[:type]}] = e[:qty]
    end
end

result.map{|k,v| k[:qty] = v;k }.delete_if{|h| h[:qty].nil? and !h[:unit].empty? }
# => [{:unit=>"oz", :type=>"mass", :qty=>5},
#     {:unit=>"", :type=>"Foo", :qty=>nil},
#     {:unit=>"oz", :type=>"vol", :qty=>5},
#     {:unit=>"lbs", :type=>"mass", :qty=>1}]

Taking @Andrew Marshall under consideration

ar = [{:qty => 1, :unit => 'oz', :type => 'mass'}, {:qty => nil, :unit => '', :type => 'Foo'}, 
      {:qty => 5, :unit => 'oz', :type => 'vol'}, 
      {:qty => 4, :unit => 'oz', :type => 'mass'}, {:qty => 1, :unit => 'lbs', :type => 'mass'}, 
      {:qty => nil, :unit => 'o', :type => 'Foo'}]

result = ar.each_with_object(Hash.new(0)) do |e,hsh|
    if hsh.has_key?({:unit => e[:unit], :type => e[:type]})
        hsh[{:unit => e[:unit], :type => e[:type]}] += e[:qty]
    else
        hsh[{:unit => e[:unit], :type => e[:type]}] = e[:qty]
    end
end

result.map{|k,v| k[:qty] = v;k }.delete_if{|h| h[:qty].nil? and h[:unit].empty? }
# => [{:unit=>"oz", :type=>"mass", :qty=>5},
#     {:unit=>"oz", :type=>"vol", :qty=>5},
#     {:unit=>"lbs", :type=>"mass", :qty=>1},
#     {:unit=>"o", :type=>"Foo", :qty=>nil}]
share|improve this answer
    
The result you say your code gives is not the actual result. –  Andrew Marshall Aug 24 '13 at 18:15
    
Yes it is.. See the line If the array has multiple hashes where the :qty is nil AND the unit is empty (""), then it would only return one of those.. –  Arup Rakshit Aug 24 '13 at 18:15
    
No, I mean that the result you have at the end of your answer is not what your code actually returns. And is not the format desired by the OP. –  Andrew Marshall Aug 24 '13 at 18:17
    
@AndrewMarshall Umm,,But the result has been produced from my code.. –  Arup Rakshit Aug 24 '13 at 18:23
    
I see what I did. I was looking at the value of result. Futher, you did not follow the OP’s criteria. You delete the element if :unit is not empty. –  Andrew Marshall Aug 24 '13 at 18:26

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