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I am generating a fairly large set of permutations of an array for my algorithm:

argeArray.permutation(permSize) do |perm|
  # Do something with perm
end

Now I am working to update the application to be able to continue at the index where it got stopped.

After a bit of looking around I did not find an alternative method of permutation that has a starting index (to be able to skip 0..startIndex).

Next I found the drop() method which is able cut-off the first number of elements from the permutation enumerator:

startIndex = 3000000000 # skip first 3 billion combinations
argeArray.permutation(permSize).drop(startIndex) do |perm|
  # Do something with perm
end

But experimentation showed that this creates the complete set of combinations, which is not very efficient as it requires lots and lots of memory... Even when it just needs to skip the first 3 billion combinations...

Another solution is to skip the algorithm until startIndex is reached:

startIndex = 3000000000 # skip first 3 billion combinations
argeArray.permutation(permSize).with_index() do |perm, index|
  next if index < startIndex # Skip until startIndex is reached
  # Do something with perm
end

Disadvantage is that there are 3 billion combinations tested before the algorithm (finally) starts working (and wastefully keeps checking whether startIndex is reached)

Are there any other (more efficient) solutions for this problem? To be somehow able to tell permutation() to skip an initial amount of combinations? (assuming it always uses the same order)

share|improve this question
    
I think the only solution is to write your own implementation of permutation with an starting index as argument, the one in the core won't help you. – tokland Jun 4 '13 at 10:41
    
@tokland Unfortunately that is what I concluded, but I hoped I missed something... – Veger Jun 4 '13 at 11:06

Ruby 2.0 introduced Enumerator::Lazy. Maybe looking into that may help you.

module Enumerable
  def filter_map(&block)
    map(&block).compact
  end
end

class Enumerator::Lazy
  def filter_map
    Lazy.new(self) do |yielder, *values|
      result = yield *values
      yielder << result if result
    end
  end
end

(1..Float::INFINITY).lazy.filter_map{|i| i*i if i.even?}.first(5)
    # => [4, 16, 36, 64, 100]

You can probably create your permutation as an instance of Enumerator::Lazy and use drop to skip to a certain position.

share|improve this answer
    
This looks like a nice solution, thanks! Unfortunately, Ruby 2.0 is not yet available (i.e. packaged) for Ubuntu... :( I'll wait a bit until I am going to fiddle to install it manually... – Veger Jun 4 '13 at 8:49
    
I use Ubuntu with Ruby 2.0. – sawa Jun 4 '13 at 9:06
    
You manually installed it, or used a pre-build package? (I could not find one) – Veger Jun 4 '13 at 9:59
    
@sawa, I thought lazy enumerators were not indexable so a drop won't be much help, can you expand? – tokland Jun 4 '13 at 10:38
1  
@sawa: Well, yes, you can drop elements, but you'll have to calculate them first. The idea was to do this efficiently from a given index. I don't see how to do it without implementing a custom permutation method that has this new argument. – tokland Jun 4 '13 at 11:04

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