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Turning long fixed number to array Ruby

Well, I have to iterate over the digits of a integer in Ruby. Right now I was just splitting it up into an array, and then iterating over that. However I was wondering if there was a faster way to do this?

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marked as duplicate by mu is too short, meagar, sawa, Adam Eberlin, Holger Just Oct 29 '12 at 7:59

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What do you mean by faster? More performant or more concise? –  Alex Peattie Oct 26 '12 at 17:28
2  
@link Btw, is it an integer as String or Fixnum ? (1233 or "1233") –  robertodecurnex Oct 26 '12 at 17:30
    
please show how are you doing it now so we have a reference. –  tokland Oct 26 '12 at 17:38
    
@robertodecurnex, it is a Fixnum, which is converted to an array of strings, which is converted to integers. –  Link Oct 26 '12 at 18:10
    
That's a very interesting question. The "normal" way would be (as already said in one answer) number.to_s.each_char(&:to_i) or number.to_s.chars.map(&:to_i) . But if you want to have some speed... nice answers in this thread! –  musicmatze Oct 26 '12 at 21:45

6 Answers 6

up vote 13 down vote accepted

The shortest solution I can think ok:

1234.to_s.chars.map(&:to_i)
#=> [1, 2, 3, 4]

Here's a more orthodox mathematical (and functional) approach:

class Fixnum
  def digits(base = 10)
    quotient, remainder = divmod(base)
    (quotient > 0 ? quotient.digits : []) + [remainder]
  end
end

0.digits #=> [0]
1234.digits #=> [1, 2, 3, 4]
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This is the solution I would use, but calling it "pretty fast" is a little misleading, as it's the slowest possible way to solve this problem and also the worst for memory consumption. That said, neither speed or memory consumption should matter for this problem... –  meagar Oct 26 '12 at 18:18
    
This is perfect, exactly what I needed. thank you. @meagar, thats fine most numbers are just 5 to 6 digits. –  Link Oct 26 '12 at 18:18
    
@meagar: yeah, you are right, edited. I am curious how much slower that finding the factors by divisions this is (but too lazy to the BM). –  tokland Oct 26 '12 at 18:22

You can use the old trick of modulus/divide by 10, but this won't be measurably faster unless you have huge numbers, and it will give the digits to you backwards:

i = 12345

while i > 0 
  digit = i % 10
  i /= 10
  puts digit
end

Output:

5
4
3
2
1
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This is fine, the backwards digits are okay. –  Link Oct 26 '12 at 18:10
split=->(x, y=[]) {x < 10 ? y.unshift(x) : split.(x/10, y.unshift(x%10))}

split.(1000) #=> [1,0,0,0]
split.(1234) #=> [1,2,3,4]
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+1 just for how cool that function is. –  Link Oct 26 '12 at 18:36
    
Having fun with Pirate Procs! :P –  robertodecurnex Oct 26 '12 at 18:41
    
What the hell is =-> ? Anyway, it looks really beautiful! Is it fast and scalable? –  musicmatze Oct 26 '12 at 21:46
    
@musicmatze ->(x) {puts x} is the same as lambda {|x| puts x}. –  robertodecurnex Oct 28 '12 at 18:32
    
@musicmatze It's recursive so it gets slower the bigger the number is and can cause an stack overflow, but just for really huge integers. –  robertodecurnex Oct 28 '12 at 20:34

Ruby has divmod, which will calculate both x%10and x/10 in one go:

class Integer
  def split_digits
    return [0] if zero?
    res = []
    quotient = self.abs #take care of negative integers
    until quotient.zero? do
      quotient, modulus = quotient.divmod(10) #one go!
      res.unshift(modulus) #put the new value on the first place, shifting all other values
    end
    res # done
  end
end

p 135.split_digits #=>[1, 3, 5]

For things like Project Euler, where speed is of some importance, this is nice to have. Defining it on Integer causes it to be available on Bignum too.

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I like Enumerator goodness. I wrote this code for a project of mine:

class Integer
  def digits
    Enumerator.new do |x|
      to_s.chars.map{|c| x << c.to_i }
    end
  end
end

This gives you access to all the good Enumerator stuff:

num = 1234567890

# use each to iterate over the digits
num.digits.each do |digit|
  p digit
end

# make them into an array
p num.digits.to_a     # => [1, 2, 3, 4, 5, 6, 7, 8, 9, 0]

# or take only some digits
p num.digits.take(5)  # => [1, 2, 3, 4, 5]

# you can also use next and rewind
digits = num.digits
p digits.next         # => 1
p digits.next         # => 2
p digits.next         # => 3
digits.rewind
p digits.next         # => 1
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Try mod by 10 (will give you the last digit), then divide by 10 (will give you the rest of digits), repeat this until you're down to the final digit. Of course, you'll have to reverse the order if you want to go through the digits from left to right.

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I am doubtful whether it will be a faster method than looping through an array. –  Arun Manivannan Oct 26 '12 at 17:31
    
Mod 10 is about ten times faster that converting to a string according to the benchmark I just ran. –  Zach Kemp Oct 26 '12 at 17:51
    
Think of it like this: The string has to be created from the number right? What does it actually do to create the string? It does this internally to create the string and it also has to allocate memory for that string and populate the characters. Then you loop through that string and process it. Wouldn't a simple mathematical operation be way faster? Mod and Div are single operations in the processor and I believe they happen on registers. –  Mohamed Nuur Oct 26 '12 at 18:05
    
@ArunManivannan Mod/division will be faster than string operations, and consume far less memory. This is inarguable. The question is, who cares? Shorter, more maintainable code is more important that an barely measurable increase in performance. You're writing Ruby. The entire language is founded on the principle that clean, concise, maintainable code is more important than performance. –  meagar Oct 26 '12 at 18:21
    
@meagar Nice. And I take it from you that even with bigger numbers, the mod performs better than array allocations –  Arun Manivannan Oct 26 '12 at 18:31

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