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Say you have the following Ruby hash,

hash = {:a => [[1, 100..300],
               [2, 200..300]],
        :b => [[1, 100..300], 
               [2, 301..400]]
       }

and the following functions,

def overlaps?(range, range2)
  range.include?(range2.begin) || range2.include?(range.begin)
end

def any_overlaps?(ranges)
  # This calls to_proc on the symbol object; it's syntactically equivalent to 
  # ranges.sort_by {|r| r.begin} 
  ranges.sort_by(&:begin).each_cons(2).any? do |r1, r2|
    overlaps?(r1, r2)
  end
end

and it's your desire to, for each key in hash, test whether any range overlaps with any other. In hash above, I would expect hash[:a] to make me mad and hash[:b] to not.

How is this best implemented syntactically?

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I like your solution and have nothing to add. Except of use some analogical methods it overlaps?, if wish to make code more compact. –  Nakilon Dec 22 '10 at 20:28

2 Answers 2

up vote 1 down vote accepted
hash.each{|k, v| puts "#{k} #{any_overlaps?( v.map( &:last )) ? 'overlaps' : 'is ok'}."}

output:

a overlaps.
b is ok.
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Brilliant, thank you –  mbm Dec 22 '10 at 21:12

Here's another way to write any_overlaps:

def any_overlaps?(ranges)
  (a = ranges.map { |r| [r.first, r.last] }.sort_by(&:first).flatten) != a.sort 
end

any_overlaps? [(51..60),(11..20),(18..30),(0..10),(31..40)] # => true
any_overlaps? [(51..60),(11..20),(21..30),(0..10),(31..40)] # => false
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