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a = [ "a", "b", "c", "d" ]
a.rotate         #=> ["b", "c", "d", "a"]

#rotate is a method of Array in Ruby 1.9. I want this functionality in Ruby 1.8.7. What is the ideal code?

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4 Answers 4

up vote 10 down vote accepted

If you require 'backports/1.9.2/array/rotate', you will get Array#rotate and rotate! in older versions of Ruby.

Either way, you avoid reinventing the wheel, and more importantly you gain the advantage of an implementation that passes RubySpec. It will work for all corner cases and ensure compatibility with Ruby 1.9.

For example, none of the two answers given work for []!

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How would I include backports if I was working from Cygwin? –  Hunter McMillen Jan 14 '12 at 0:10
    
Backports is a gem, so you need to gem install backports as per the installation instructions. –  Marc-André Lafortune Jan 14 '12 at 3:19
    
Thank you, I installed and used the gem fine; Cygwin makes installing things that aren't in the default package frustrating. –  Hunter McMillen Jan 14 '12 at 4:23

You can achieve the same with a.push(a.shift). It basically removes the first element (shift) and appends it to the end (push).

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but it changes the original array also..is there a way without changing the original array? –  rubyprince Mar 11 '11 at 7:27
    
This would be for rotate!, which mutates the array, but it fails for []. It's also not quite compatible with 1.9 as it doesn't accept an argument for how many elements to rotate. See my answer. –  Marc-André Lafortune Mar 11 '11 at 15:44

Nothing like coming way late to the party... ;)

Similar to a.rotate!(n):

a += a.shift(n)

And it works with a = []. However, unlike a.rotate!(n), it doesn't do anything if n is greater than the length of a.

The following preserves the value of a and allow n greater than a.length to work, at the expense of being a little more elaborate:

a.last(a.length - (n % a.length)) + a.first(n % a.length)

This would obviously be best if n % a.length is computed once separately and the whole thing wrapped in a method monkey patched into Array.

class Array
  def rot(n)
    m = n % self.length
    self.last(self.length - m) + self.first(m)
  end
end
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your rotate version do change the original array a –  rubyprince May 26 '14 at 7:00
    
@rubyprince ah yes, indeed it does. I think Ruby is a little inconsistent in its method definitions. I think shift should leave the Array alone, and they should have a shift! to actually modify it directly. –  lurker May 26 '14 at 10:50
    
shift method actually returns the shifted element, and it shifts the original array. very useful. –  rubyprince May 27 '14 at 5:19
    
@rubyprince yes, I'm aware of that. That's what makes it work in the short "rotate" expression, but with the side effect of modifying the original array. –  lurker May 28 '14 at 10:21

For the rotate! version without the parameter, gnab's is good. If you want the non-destructive one, with an optional parameter:

class Array
  def rotate n = 1; self[n..-1]+self[0...n] end
end

If n may become larger than the length of the array:

class Array
  def rotate n = 1; return self if empty?; n %= length; self[n..-1]+self[0...n] end
end
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Both fail for []. See my answer. –  Marc-André Lafortune Mar 11 '11 at 15:42
    
I fixed the second example after Marc-Andre's point, but I agree that backports will be better. I did not fix the first one since it's probably of no use. –  sawa Mar 11 '11 at 17:35

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