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One possible way to check if at least one number from a list is in one range of other list is like the following:

# Input example:
# numbers = [123, 345, 567]
# ranges =[(1..10), (60..80), (200..400)]
def is_in(numbers, ranges)
  numbers.each do |n|
    ranges.each do |r|
      return true if r.include?(n)
    end
  end
  false
end

What is the fastest way for each one of this cases:

  1. Only numbers list is big
  2. Only ranges list is big
  3. Both are big
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3 Answers 3

up vote 3 down vote accepted

If your number array is large AND ordered, you could speed up the range coverage check from O(N) complexity to O(logN) using Ruby 2.0's new binary search Array#bsearch method.

class Range
  def fast_cover_any?(ordered_arr)
    lo = first
    probe = ordered_arr.bsearch {|x| x >= lo}
    probe && exclude_end? ? probe < last : probe <= last
  end
end

ranges.any? { |r| r.fast_cover_any?(numbers) }
share|improve this answer
    
great answer. I think I'll have to benchmark that. thanks. –  fotanus Apr 30 '13 at 21:17
    
@fotanus I notice you accepted my answer -- does that mean you did a benchmark and saw substantial improvement? If so I'd love to see the results, perhaps you could update your question with benchmark results and a link to a gist of the benchmark? –  dbenhur May 2 '13 at 2:06

The simple answer is store one of the data structures in a organized structure and search the other list's elements.

Assume you have two lists x and y with lengths m and n respectively.

If m << n: sort x and and find elements from y in the sorted list

If m >> n: sort y and and find elements from x in the sorted list

If they are of same size choose any of them to sort.

How to organize ranges: Sort the list using start of each range. If two ranges overlap merge them. At the end you will have a list of non-overlapping ranges sorted according to start of the range.

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Actually would be faster in speed to just extend the ranges and use a hash, however memory would explode. Thanks, that was an answer more like this I was looking for. Let's see if @Priti knowledge of ruby can help. –  fotanus Apr 30 '13 at 21:15
ranges =[(1..10), (60..80), (200..400)]

numbers = [123, 700, 567]
numbers.any?{|x| ranges.any? {|y| y.include? x}} #=> false

numbers = [123, 400, 567]
numbers.any?{|x| ranges.any? {|y| y.include? x}} #=> true

Using ordered list:

ranges =[(1..10), (60..80), (200..400)]

numbers = [123, 300, 567]
p numbers.sort.any?{|y| ranges.sort_by(&:first).bsearch{|x| x.include? y}} #=> true

numbers = [123, 700, 567]
p numbers.sort.any?{|y| ranges.sort_by(&:first).bsearch{|x| x.include? y}} #=> false
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Do you think this code is fast? –  ElKamina Apr 30 '13 at 20:21
    
@ElKamina If you have any point to mention not to be fast,please fire. As looking at the OP's code,I think any? and include? is better choice. –  Arup Rakshit Apr 30 '13 at 20:23
    
It looks like worst case complexity of your code is o(mn). Can you do better? –  ElKamina Apr 30 '13 at 20:32
    
@ElKamina please check now. –  Arup Rakshit Apr 30 '13 at 20:43
    
You are close, but your complexity is still O(mn). You need to use binary search. –  ElKamina Apr 30 '13 at 21:04

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