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I have an simple array

array = ["apple", "orange", "lemon"] 

array2 = [["apple", "good taste", "red"], ["orange", "bad taste", "orange"], ["lemon" , "no taste", "yellow"]]

how can i convert in to this hash whenever element in array match the first element of each element in array2?

hash = {"apple" => ["apple" ,"good taste", "red"],
        "orange" => ["orange", "bad taste", "orange"], 
        "lemon" => ["lemon" , "no taste", "yellow"] }

I am quite new to ruby, and spend a lot to do this manipulation, but no luck, any help ?

share|improve this question
    
What do you exactly mean by "match the first element of each element in array2"? – Mischa Jun 8 '12 at 4:20
4  
Don't edit my answer, leave a comment – Mischa Jun 8 '12 at 4:24
up vote 6 down vote accepted

If the order of the mapping between the key and pairs should be based on the first element in array2, then you don't need array at all:

array2 = [
  ["apple", "good taste", "red"],
  ["lemon" , "no taste", "yellow"],
  ["orange", "bad taste", "orange"]
]

map = Hash[ array2.map{ |a| [a.first,a] } ]
p map
#=> {
#=>   "apple"=>["apple", "good taste", "red"],
#=>   "lemon"=>["lemon", "no taste", "yellow"],
#=>   "orange"=>["orange", "bad taste", "orange"]
#=> }

If you want to use array to select a subset of elements, then you can do this:

# Use the map created above to find values efficiently
array = %w[orange lemon]
hash  = Hash[ array.map{ |val| [val,map[val]] if map.key?(val) }.compact ]
p hash
#=> {
#=>   "orange"=>["orange", "bad taste", "orange"],
#=>   "lemon"=>["lemon", "no taste", "yellow"]
#=> }

The code if map.key?(val) and compact ensures that there is not a problem if array asks for keys that are not present in array2, and does so in O(n) time.

share|improve this answer
    
This doesn't take into consideration the following requirement: "whenever element in array match the first element of each element in array2". – Mischa Jun 8 '12 at 4:35
    
@Mischa It does now. :) – Phrogz Jun 8 '12 at 4:36

This gets you the desired result.

hash = {}

array.each do |element|
  i = array2.index{ |x| x[0] == element }
  hash[element] = array2[i] unless i.nil?
end
share|improve this answer
    
Hi, thx , what about if array2 is not in order? – Kit Ho Jun 8 '12 at 4:25
1  
Well that's not clear from your question. Next time reflect what you want in your example more clearly. Can apple, orange and lemon occur more than once in array2, if so how do you want the resulting hash to look. Please update your question with a clear example and expected output. – Mischa Jun 8 '12 at 4:29
    
@KitHo, this works if the array is not in order. – Mischa Jun 8 '12 at 4:46
1  
Yay, you fixed it! :) Note that while the sample data for the question was small, this answer is an O(n*m) algorithm for n elements in array and m elements in array2. If both are large, this could become too slow. – Phrogz Jun 8 '12 at 4:47
    
@Phrogz, thanks for pointing that out. – Mischa Jun 8 '12 at 4:55

ohh..I tempted to override rassoc

Check out the following on irb

class Array
  def rassoc obj, place=1
    if place
      place = place.to_i rescue -1
      return if place < 0
    end

    self.each do |item|
      next unless item.respond_to? :include? 

      if place
        return item if item[place]==obj
      else
        return item if item.include? obj
      end
    end

    nil
  end
end

array = ["apple", "orange", "lemon"] 
array2 = [["apple", "good taste", "red"], ["orange", "bad taste", "orange"], ["lemon" , "no taste", "yellow"]]

Hash[ array.map{ |fruit| [fruit, array2.rassoc(fruit, nil)]}]
# this is what you want

# order changed
array2 = [["good taste", "red", "apple"], ["no taste", "lemon", "yellow"], ["orange", "bad taste", "orange"]]

Hash[ array.map{ |fruit| [fruit, array2.rassoc(fruit, nil)]}]
# same what you want after order is changed
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