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This was asked me in a coding quesiton, and I gave kind of an ugly, though working solution. Would love to see a master's beautiful solution to this question.

Given a string that includes letters and numbers i.e. "abCd1_k", return an array of every variant string with the capitalization of the letters changed, i.e., "AbCd1_k", "ABcd1_k"....

A more simple problem case then 'AbCd1_k' would be 'ab', which should return ->

['ab', 'Ab', 'aB' 'AB']

It seems to me that even the most beautiful solution will still have an expensive time complexity by definition. (at worst, you could 2 combinations for each character, which would mean 2^n growth). Even if this is true, there must be a really beautiful way to do this in Ruby.

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2  
The question is not clear. 1. In the title, you ask for permutations but in the question, you ask for combinations. Which? 2. You wrote "capitalization of the letters changed", but in `""AbCd1_k"", some letters case are retained. Which? –  sawa Jun 19 at 5:16
    
ohp, apologies guys, I think I was confusing my terminology. I updated the question to be a bit more clear, suggestions are welcome too :) –  Stepan Parunashvili Jun 19 at 16:22

2 Answers 2

up vote 4 down vote accepted

How about this:

def case_permutations(string)
  string
    .each_char
    .reduce(['']) do |acc, char_string|
      acc.flat_map do |prefix|
        [char_string.upcase, char_string.downcase]
          .uniq
          .map do |modified_char|
            "#{prefix}#{modified_char}"
          end
    end
  end
end

You're not going to do better than (2^n)*n time complexity because your return value will have 2^n items of length n in the worst case.

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2  
Nice solution. You could replace .split('') with .chars or (maybe better, the enumerator) .each_char. –  Cary Swoveland Jun 19 at 4:44
    
Good call! Updated. –  econerd4ever Jun 19 at 4:57
def case_combos(str)
    c = str.split('').map { |x| [x.upcase, x.downcase]}
    (0...1<<str.size).to_a.map do |x|
        z = ""
        0.upto(c.size-1) do |y|
            z += c[y][0] if (1<<y)&x == 0
            z += c[y][1] if (1<<y)&x != 0
        end
        z
    end.uniq
end
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