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.

Can you help me refactor the solution I came up with for Ruby Koans #182? This is the koan in which you write a score method to calculate points for the Greed game. Following code works and all tests pass.

However, it feels long and un-ruby like. How can I make it better?

def score(dice)
rollGreedRoll = Hash.new
rollRollCount = Hash.new
(1..6).each do |roll|
    rollGreedRoll[roll] = roll == 1 ? GreedRoll.new(1000, 100) :
            GreedRoll.new(  100 * roll, roll == 5 ? 50 : 0)
    rollRollCount[roll] = dice.count { |a| a == roll }
end


  score =0 


  rollRollCount.each_pair do |roll, rollCount|
    gr = rollGreedRoll[roll]  
    if rollCount < 3
        score += rollCount * gr.individualPoints
    else
        score += gr.triplePoints + ((rollCount - 3) * gr.individualPoints)

    end 
  end

  return score
end

class GreedRoll
    attr_accessor :triplePoints
    attr_accessor :individualPoints

    def initialize(triplePoints, individualPoints)
        @triplePoints = triplePoints
        @individualPoints = individualPoints
    end
end
share|improve this question
    
Would be more on-topic here: codereview.stackexchange.com –  Merlyn Morgan-Graham Jul 18 '11 at 20:08
    
Thanks, I did not know about the codereview site. However, it looks like it is still in beta. –  Alper Jul 18 '11 at 20:12

4 Answers 4

up vote 6 down vote accepted

I've put up a walkthrough of refactorings at https://gist.github.com/1091265. Final solution looks like:

def score(dice)
  (1..6).collect do |roll|
    roll_count = dice.count(roll)
    case roll
      when 1 : 1000 * (roll_count / 3) + 100 * (roll_count % 3)
      when 5 : 500 * (roll_count / 3) + 50 * (roll_count % 3)
      else 100 * roll * (roll_count / 3)
    end
  end.reduce(0) {|sum, n| sum + n}
end

note: .reduce is a synonym for .inject

share|improve this answer
    
Looks great. Thanks for taking the time to share your refactorings. –  Alper Jul 19 '11 at 13:52
    
I'm a crappy programmer. Can you please give me an example of what the "dice" parameter would be, and what "dice.count(roll)" will give you? I understand the use of (1..6).collect etc. I'm confused because it seems to me that (1..6).collect and the dice parameter are doing the same thing. Note, I understand the longer answer (by Eric Hutzleman) but yours is very dense for me. Would appreciate if you can elaborate with comments. –  Leahcim Aug 26 '12 at 4:03

You can put the rollRollCount inside the first "each", can't you? Then you don't have to iterate over the (1..6) twice.

share|improve this answer
    
ah yes. Thanks Wes. –  Alper Jul 18 '11 at 20:16

Here's another take on it, extracting the method into its own class. A little long winded, but easy to read and understand:

def score(dice)
  GreedScore.new(dice).calculate
end

And the implementation:

class GreedScore
  def initialize(dice)
    @values = dice.sort
  end

  def calculate
    @score = 0
    score_triples
    score_singles
    @score
  end

  private

  def score_triples
    (1..6).each do |match|
      if @values.count(match) >= 3
        @score += match * (match == 1 ? 1000 : 100)
        @values = @values.drop(3)
      end
    end
  end

  def score_singles
    @values.each do |value|
      @score += 100 if value == 1
      @score += 50 if value == 5
    end
  end
end
share|improve this answer
    
It is definitely much easier to read. Thanks Eric. –  Alper Jul 19 '11 at 13:46
    
thanks for this. –  Leahcim Aug 26 '12 at 3:58

Here was my approach. I used a hash for performance, assuming the number of dice can be large. Plus I love using inject wherever possible.

def score(dice)
  tally = 0

  return tally if dice.length == 0

  hash = dice.inject(Hash.new(0)) { |h,v| h[v] += 1; h }

  (1..6).collect do |roll|
    case roll
    when 5
      tally += (hash[roll] / 3) * 500 + (hash[roll] % 3) * 50
    when 1
      tally += (hash[roll] / 3) * 1000 + (hash[roll] % 3) * 100
    else
      tally += (hash[roll] / 3) * roll * 100
    end
  end

  ap "dice = #{dice}, " + "hash = #{hash}, " + "tally = #{tally}"

  tally
end
share|improve this answer

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.