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I have a factorised array of n dimensions and I would like to develop it.

Here is an example:

develop([:a, :aa]) #=> [[:a, :aa]]

...which is the same as: [:a].product([:aa]).

Or, more complicated:

develop([:a, [:aa, :bb]]) #=> [[:a, :aa],
                               [:a, :bb]]

I'm working with Ruby 1.9. Thank you for any idea.

Edit:

Another example, with 3 levels of embedded arrays:

develop([:a, [[:b, [:ba, :bb]],
              [:c, [:ca, :cb]],
              [:d, [:da, :db]]]]) #=> [[:a, :b, :ba],
                                       [:a, :b, :bb],
                                       [:a, :c, :ca],
                                       [:a, :c, :cb],
                                       [:a, :d, :da],
                                       [:a, :d, :db]]

I wonder if we could use Array's product method (http://ruby-doc.org/core-1.9.3/Array.html#method-i-product), even if we have some embedded arrays.

share|improve this question
    
Fun problem. Homework? :) You can do the shallow case with a simple use of map. Have fun with the deep case. These algorithms are great to write in Ruby. –  Ray Toal Jul 16 '11 at 20:44
    
No no, it's not a homework ;) Hmm, I see. But perhaps deep case is overkill... I hope there's also a more light way to do this. –  Zag zag.. Jul 16 '11 at 20:47
    
No answers after 8 minutes? Okay well here is the shallow case for you: def develop(a); a[1].map{|x| [a[0],x]}; end Let us know if you have trouble extending it to the deep case, unless of course it is a real homework problem. –  Ray Toal Jul 16 '11 at 20:49
    
Didn't see your last comment when I wrote my last one. I can whip up the deep case for you. Might take a couple minutes, though. –  Ray Toal Jul 16 '11 at 20:51
    
Actually, I suppose there's an other way than a deeped case map n time... Do you see if it's possible, @Ray? –  Zag zag.. Jul 16 '11 at 21:02

1 Answer 1

up vote 2 down vote accepted

I'm not sure I fully understand what you are trying to do to these poor arrays, but I managed to make a function that gives the correct output for both the cases you specified. Here is the complete code:

def develop(x)
  return x unless x.is_a? Array
  y = []
  x[1].each do |s|
    d = develop(s)
    d = [d] unless d.is_a? Array
    d.each do |t|
      t = [t] unless t.is_a? Array
      y << [x.first] + t
    end
  end
  return y
end

x = [:a,
        [
            [:b, [:ba, :bb]],
            [:c, [:ca, :cb]],
            [:d, [:da, :db]]
        ]
    ]

p develop(x)

p develop [:a, [:aa, :bb]]

The output is:

C:\Users\David\Documents\scraps\test_ruby>ruby test.rb
[[:a, :b, :ba], [:a, :b, :bb], [:a, :c, :ca], [:a, :c, :cb], [:a, :d, :da], [:a, :d, :db]]
[[:a, :aa], [:a, :bb]]

EDIT 1: Here's a shorter version that also gives the right output:

def develop(x)
  return [x] unless x.is_a? Array
  Array(x.last).collect do |s|
    develop(s).collect do |t|
      [x.first] + Array(t)
    end
  end.flatten 1
end
share|improve this answer
    
Yay, working like a charme! Thanks you @David! –  Zag zag.. Jul 17 '11 at 9:59
    
Actually, I made a mistake through my last example. Apologies. I rewrite my post with some other example, in order to clarify it. –  Zag zag.. Jan 29 '12 at 16:48
    
Does my answer still work? Could you please click the Check Mark to accept my answer or tell me why it is now wrong? –  David Grayson Jan 29 '12 at 18:29
    
Omg, in fact it was me. Sorry, your version is perfect! –  Zag zag.. Jan 29 '12 at 18:57
    
I took the liberty of making two small changes to the short version: one to make it work for the OP's first example, and another to shorten it slightly. –  Wayne Conrad Jan 29 '12 at 19:12

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