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I have a hash hash like so:

hash = {"Addaptive Accessibility"=>["one","two"],

        "Atmosphere (Feeling/Safety)"=>["three", "four"],

        "Aquatics (Size)"=>["five", "six"]}

I then have an array array:

array = ["one","seven"]

I need to search the hash for each word in my array, and if the word is found I need to return the associated key from the hash. Something like this:

array.each do |word|
  if hash.include? word
    puts key
  end
end

How can I write that, and write it better?

share|improve this question
    
What if several keys contain the same value? –  Sergio Tulentsev Oct 19 '13 at 18:36
    
They won't, if you'll notice my hash all of the values are different. This is intentional and will remain consistent. –  Luigi Oct 19 '13 at 18:37
2  
you're Hash is the wrong way around. The whole point of Hash is to use the key to look up the value. You need to rethink your data structure. eg hash={}; hash['one']=hash['two']='Adaptive Accessibility'; etc... –  Noel Walters Oct 19 '13 at 18:47

3 Answers 3

up vote 1 down vote accepted

How is this ?

hash.select{ |_,v| v.any?{|e| array.include? e } }.keys
# => ["Addaptive Accessibility"]
hash.select{ |_,v| v.any?(&array.method(:include?)) }.keys
# => ["Addaptive Accessibility"]
share|improve this answer
    
That works, and is much cleaner than what I was thinking. –  Luigi Oct 19 '13 at 18:43
1  
@Luigi, please read this: stackoverflow.com/help/someone-answers –  Gayot Fow Oct 19 '13 at 18:58
    
@GarryVass I'm not oblivious to how the voting and answering system works here. I am however new to programming, and have realized that when I jump to conclusions and accept the very first answer I see I hinder myself by not allowing others to share different methods which may work better. I'm here to learn, and therefore will leave my questions open to others opinions. –  Luigi Oct 19 '13 at 19:02
    
@Luigi, many thanks –  Gayot Fow Oct 19 '13 at 19:16

To answer your original question, I'll throw in another solution which I think is the easiest one to understand:

hash.find{|k,v| v.include? word }.first

This will only iterate until a match is found, i.e. you will probably save a few cycles. As opposed to @ArupRakshit's solution, this will however only find the first match.

I must however stress that you are indeed using the hash in the wrong direction – just flip keys and values around!

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1  
Variation of the same: hash.find{ |k,v| break k if v.include? word } –  Denis Oct 20 '13 at 11:38
hash.keys.select {|k| !(array & hash[k]).empty?}
  • array & hash[k] is an array composed of the elements common to both array and hash[k].
  • we are only concerned with whether this 'intersection' is empty ([]).
  • we could have used (array & hash[k]).any?, which is simpler, provided you never have keys false or nil, since [nil, false].any? => false.
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