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For example

Given an array:

array = [[:a,:b],[:a,:c],[:c,:b]]

Return the following hash:

hash = { [:a => [:b,:c]] , [:c => :b] }

Hash[array] overwrites previous associations, producing:

hash = { [:a => :c] , [:c => :b] }
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Is this some flavour of homework? How do you intend to do this? Hashes aren't delimited with square brackets. –  tadman Feb 14 '12 at 2:55
1  
Have you tried using group_by? –  mu is too short Feb 14 '12 at 3:13
    
Sorry - you're right about hashes, I'm still learning. This isn't a flavour of homework, though it is a part of a solution I'm working on for a wider problem. Our lecturer recommended SO for programming help. –  smallsense Feb 14 '12 at 11:02
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2 Answers

up vote 20 down vote accepted

Using functional baby steps:

irb:01.0> array = [[:a,:b],[:a,:c],[:c,:b]]
#=> [[:a, :b], [:a, :c], [:c, :b]]

irb:02.0> array.group_by(&:first)
#=> {:a=>[[:a, :b], [:a, :c]], :c=>[[:c, :b]]}

irb:03.0> array.group_by(&:first).map{ |k,a| [k,a.map(&:last)] }
#=> [[:a, [:b, :c]], [:c, [:b]]]

irb:04.0> Hash[ array.group_by(&:first).map{ |k,a| [k,a.map(&:last)] } ]
#=> {:a=>[:b, :c], :c=>[:b]}

Using imperative style programming:

irb:10.0> h = Hash.new{ |h,k| h[k]=[] }
#=> {}

irb:11.0> array.each{ |k,v| h[k] << v }
#=> [[:a, :b], [:a, :c], [:c, :b]]

irb:12.0> h
#=> {:a=>[:b, :c], :c=>[:b]}

As an imperative one-liner:

irb:13.0> h = Hash.new{ |h,k| h[k]=[] }.tap{ |h| array.each{ |k,v| h[k] << v } }
#=> {:a=>[:b, :c], :c=>[:b]}

Or using everyone's favorite inject:

irb:14.0> array.inject(Hash.new{ |h,k| h[k]=[] }){ |h,(k,v)| h[k] << v; h }
#=> {:a=>[:b, :c], :c=>[:b]}

If you really want to have single values not collided as an array, you can either un-array them as a post-processing step, or use a different hash accumulation strategy that only creates an array upon collision. Alternatively, wrap your head around this:

irb:17.0> hashes = array.map{ |pair| Hash[*pair] } # merge many mini hashes
#=> [{:a=>:b}, {:a=>:c}, {:c=>:b}]

irb:18.0> hashes.inject{ |h1,h2| h1.merge(h2){ |*a| a[1,2] } }
#=> {:a=>[:b, :c], :c=>:b}
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Thank you, this is really helpful :) –  smallsense Feb 14 '12 at 11:02
    
I'm happy with single values being arrays, and to me at least the functional version makes more sense. It will take ms some time to figure all this out; thank you. –  smallsense Feb 14 '12 at 11:22
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The public [] method on the Hash class accepts a key-value pair array and returns a hash with the first element of the array as key and the second as value.

The last value in the key-value pair will be the actual value when there are key duplicates.

Hash[[[:a,:b],[:a,:c],[:c,:b]]]
    => {:a=>:c, :c=>:b}

This syntax is valid in 1.9.3+ ; I'm not sure about earlier Ruby versions (it's not valid in 1.8.7)

ref: http://www.ruby-doc.org/core-2.1.0/Hash.html#method-c-5B-5D

Another interesting way of doing it would be using the inject method: (obviously the method above is more succinct and recommended for this specific problem)

[ [:a, :b], [:a, :c], [:c, :b] ].inject({}) { |memo, obj| 
   memo[obj.first] = obj.last
   memo 
}

=> {:a=>:c, :c=>:b}

inject iterates over the enumerable, your array in this case, starting with the injected parameter, in this case the empty hash {}.

For each object in the enumerable, the block is called with the variables memo and obj:

  • obj is the current object in the array

  • memo is the value that has been returned by your block's last iteration (for the first iteration, it's what you inject)

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