Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an array:

a = [1,1,2,3,4]

And more arrays:

b =[[1,2,3], [1,1,4], [7,3,4], [1,5,6,1]]

For each element in b, b_i, I want to know:

  • is there some b_i such that a & b_i == b_i, and
  • what is that b_i

This is what I am thinking

def get_matching(a, b)
   b.each {|b_i|
      return b_i if (a & b_i) == b_i
   }
end

Where can I check whether the return value is nil or not to determine the answer to the first question? Though, maybe I can implement them as two separate functions so that checking whether such a matching exists doesn't need to actually return the matching.

Assume I only need the first matching if there are many.

Is there a more efficient way to do this?

share|improve this question

4 Answers 4

up vote 3 down vote accepted

This is probably not any more efficient but it is a little more ruby-esque using Enumerable#detect

def get_matching(a, b)
  b.detect{ |b_i| (a & b_i) == b_i }
end
share|improve this answer

You forgot to do return nil at the end of your function.

A better way is:

def get_matching(a, b)
   b.find do |b_i|
      (a & b_i) == b_i
   end
end

Also keep in mind that array equality cares about the order of the elements. It might be better to write:

(b_i - a).empty?
share|improve this answer
    
So it would be more like ((a & b_i) - b_i).empty? to ignore order. Thanks I didn't consider order of the elements. –  MxyL Oct 26 '12 at 18:28

It seems to me that there's a reason to use Ruby Set

require 'set'

def get_matching(a,b)
  a = a.to_set  
  b.detect { |b_i| b_i.to_set.subset?(a) }
end

Of course it's not the shortest answer but if you have a lot of similar tasks then using Set can be reasonable.

share|improve this answer

This should return all arrays where b_i is a subset or equal to a:

b.select { |b_i| (b_i - a).empty? }
share|improve this answer
    
Thanks, that will also be useful! –  MxyL Oct 27 '12 at 3:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.