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.

Im trying to test my rails applications javascript using jruby 1.3.1,celerity and culerity. The application itself runs under ruby 1.8.7 + phusion passenger (and runs fine, sans test :))

Everything installation-wise works fine but my app uses some_enumerable.each_slice(10) to split a larger array into smaller subarray with 10 elelents each.

Celerity need jruby and jruby is only ruby 1.8.6 compatible and therefor doesnt support a blockless each_slice.

So I'm thinking about defining an initalizer which adds this functionality if RUBY_PLATFORM == "java " (or RUBY_VERSION < 1.8.7)

This far I got (defunct code of cause):

if true #ruby 1.8.6
module Enumerable
  alias_method :original_each_slice, :each_slice
  def each_slice(count, &block)
    # call original method in 1.8.6
    if block_given?
      original_each_slice(count, block)
    else
      self.enum_for(:original_each_slice, count).to_a
    end
  end
end
end

This code obviously is not working and I would really appreciate someone pointing me to a solution.

Thanks!

Update: Solution thanks to sepp2k for pointing me to my errors:

if RUBY_VERSION < "1.8.7"
  require 'enumerator'
  module Enumerable
    alias_method :original_each_slice, :each_slice
    def each_slice(count, &block)
      if block_given?
        # call original method when used with block
        original_each_slice(count, &block)
      else
        # no block -> emulate
        self.enum_for(:original_each_slice, count)
      end
    end
  end
end
share|improve this question

2 Answers 2

up vote 1 down vote accepted

checkout the 'backports' gem :)

share|improve this answer
    
DOH! :) Should have searched first –  Frank Schumacher Sep 24 '09 at 8:30

original_each_slice(count, block) should be original_each_slice(count, &block).

Also if you leave out the to_a, you'll be closer to the behaviour of 1.8.7+, which returns an enumerator, not an array.

(Don't forget to require 'enumerator' btw)

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.