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If I have a string such as 'abcde' and I want to get a 2d array of all combinations of 1 or 2 letters.

[ ['a', 'b', 'c', 'd', 'e'], ['ab', 'c', 'de'], ['a', 'bc', 'd', 'e'] ...

How would I go abouts doing so?

I want to do this in ruby, and think I should be using a regex. I've tried using

strn = 'abcde'
strn.scan(/[a-z][a-z]/)

but this is only going to give me the distinct sets of 2 characters

['ab', 'cd']
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1  
Why is it a 2D array? That is--what causes an item to appear in one sub-array vs. another? –  Palpatim Oct 17 '12 at 19:08
    
sorry, should have been more specific. Looking to an output an array with sub-arrays. Each sub-array contains all the characters of the original string broken into substrings of 1 or 2 characters. –  Khallil Mangalji Oct 17 '12 at 19:12
    
What determines whether a sub-string is one or two characters? Are they randomly decided? –  the Tin Man Oct 17 '12 at 19:44
    
You mean sequences, not combinations. –  sawa Oct 17 '12 at 20:22

4 Answers 4

up vote 1 down vote accepted

I think this should do it (haven't tested yet):

def find_letter_combinations(str)
  return [[]] if str.empty?
  combinations = []
  find_letter_combinations(str[1..-1]).each do |c|
    combinations << c.unshift(str[0])
  end
  return combinations if str.length == 1
  find_letter_combinations(str[2..-1]).each do |c|
    combinations << c.unshift(str[0..1])
  end
  combinations
end
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OK, it worked the first time (no bugs)! Sweet! –  Alex D Oct 17 '12 at 19:13
    
This works great! Thanks! –  Khallil Mangalji Oct 17 '12 at 19:16
    
If it solves your problem, then please accept the answer. –  Alex D Oct 17 '12 at 19:18
    
Note that this kind of mathematical-related algorithms tend to suffer from verbosity with imperative approaches. Recursion seems more fitting. –  tokland Oct 17 '12 at 20:21
    
@tokland: Very true. –  Alex D Oct 18 '12 at 5:16

Regular expressions will not help for this sort of problem. I suggest using the handy Array#combination(n) function in Ruby 1.9:

def each_letter_and_pair(s)
  letters = s.split('')
  letters.combination(1).to_a + letters.combination(2).to_a
end

ss = each_letter_and_pair('abcde')
ss # => [["a"], ["b"], ["c"], ["d"], ["e"], ["a", "b"], ["a", "c"], ["a", "d"], ["a", "e"], ["b", "c"], ["b", "d"], ["b", "e"], ["c", "d"], ["c", "e"], ["d", "e"]]
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clearyly the solution may benefit from using Array#combination, but isn't there still a long way to what the OP wants? –  tokland Oct 17 '12 at 20:02
    
@tokland: yes, there is probably a solution in parsing the regular expression (assuming it is constrained in a deterministic way) and generating all possible matching strings but that solution seems pretty complicated. Plus I'm lazy =) –  maerics Oct 17 '12 at 20:04

No, regex is not suitable here. Sure you can match either one or two chars like this:

strn.scan(/[a-z][a-z]?/)
# matches: ['ab', 'cd', 'e']

but you can't use regex to generate a (2d) list of all combinations.

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A functional recursive approach:

def get_combinations(xs, lengths)
  return [[]] if xs.empty?
  lengths.take(xs.size).flat_map do |n|
    get_combinations(xs.drop(n), lengths).map { |ys| [xs.take(n).join] + ys } 
  end
end

get_combinations("abcde".chars.to_a, [1, 2])
#=> [["a", "b", "c", "d", "e"], ["a", "b", "c", "de"], 
#    ["a", "b", "cd", "e"], ["a", "bc", "d", "e"], 
#    ["a", "bc", "de"], ["ab", "c", "d", "e"], 
#    ["ab", "c", "de"], ["ab", "cd", "e"]]
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