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Eg

:a=[["hello", "world"], ["good", "lord"], ["hello", "lord"]]

I need to find and record the indexes of each word with respect to the super-array. i.e

hello => 0,2
world => 0
lord => 1,2.

here's my shot ,but its very amateurish and lengthy.

all_tokens=tokens.flatten
all_tokens.each do|keyword|                                                                                      
    tokens.each do|token_array|
        if token_array.include?keyword
            x << i
        end
        i=i+1
    end    
    y[k] = x.clone
    y=y.clear
end 
share|improve this question
    
Sorry.Please substitute "tokens" for "a". And "keyword" is just a looping variable. – Shreyas Apr 8 '10 at 2:42
    
And as flOOr mentioned, getting an array,rather a multi-dimensional array, as a result is the goal.But, once the hash is processed, and even this works ! – Shreyas Apr 8 '10 at 2:57
up vote 4 down vote accepted

Slight improvement (imho) on vava's solution:

tokens = [["hello", "world"], ["good", "lord"], ["hello", "lord"]]

tokens_hash = Hash.new{|h, k| h[k] = []}

tokens.each_with_index do |subarr, i|
  subarr.each do |word|
    tokens_hash[word] << i
  end
end
share|improve this answer
    
actually, looks like this is the faster method... – j.. Apr 7 '10 at 16:58
    
I've suggested same solution :) – fl00r Apr 7 '10 at 17:29
ret = []
a.each_with_index {|x, i| if x.include?(keyword) then ret << i end }
share|improve this answer
    
this is much faster. – j.. Apr 7 '10 at 16:14
1  
What's keyword? – Mladen Jablanović Apr 7 '10 at 16:15
    
I suppose keyword can be "hello", "world", "good" and "lord". – j.. Apr 7 '10 at 16:55
1  
So this is an update of the part of the code from the question? Wouldn't be useful to have quoted complete working snippet here then? – Mladen Jablanović Apr 7 '10 at 17:19
    
generally it is not working solution. firstly keyword is not defined, secondly, even if we will define keyword ret will return array of numbers, not hash that is the goal – fl00r Apr 7 '10 at 17:23
a.each_with_index.inject({}){|acc,(elem,i)|
  elem.each{|e|
    acc[e] ||= []
    acc[e] << i
  }
  acc
}
#=> {"hello"=>[0, 2], "world"=>[0], "good"=>[1], "lord"=>[1, 2]}
share|improve this answer
    
you can't use each_with_index without block – fl00r Apr 7 '10 at 17:25
    
I can, in Ruby >= 1.8.7. It's returning Enumerator instance. – Mladen Jablanović Apr 7 '10 at 17:40
    
oh, sorry. I still use 1.8.6 – fl00r Apr 7 '10 at 17:43
1  
(acc[e] ||= []) << i :) – vava Apr 8 '10 at 1:29
tokens = [["hello", "world"], ["good", "lord"], ["hello", "lord"]]

tokens_hash = Hash.new([])

tokens.each_with_index do |subarr, i|
    subarr.each do |word|
        tokens_hash[word] = tokens_hash[word] + [i]
    end
end

p tokens_hash #=>{"good"=>[1], "world"=>[0], "lord"=>[1, 2], "hello"=>[0, 2]}

My solution will scan the whole structure just once.

share|improve this answer

Just for grins, a functional solution:

#!/usr/bin/ruby1.8

a = [["hello", "world"], ["good", "lord"], ["hello", "lord"]]

b = a.flatten.uniq.inject({}) do |hash, word|
  hash.merge(word => a.each_with_index.collect do |list, i|
               list.index(word) && i
             end.compact)
end

p b    # => {"world"=>[0], "good"=>[1], "lord"=>[1, 2], "hello"=>[0, 2]}
share|improve this answer
a=[["hello", "world"], ["good", "lord"], ["hello", "lord"]]
result = Hash.new{|k,v| k[v] = []}
a.each_with_index{|b,i| b.each{|c| result[c] << i} }
result
#=> {"good"=>[1], "world"=>[0], "lord"=>[1, 2], "hello"=>[0, 2]}
share|improve this answer

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