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How to make sequence from the beginning of square number and then adding it to the previous result?

7 => 49, 56, 63, ...

def make_sequence(number)
  lambda { number*number ??? }
end

num = make_sequence(7)
num.call #=> 49
num.call #=> 56
...
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check out Enumerator: ruby-doc.org/core-1.9.3/Enumerator.html –  levinalex Oct 31 '12 at 10:01

3 Answers 3

up vote 2 down vote accepted

Following your initial idea using closures I'd write:

def make_sequence(n)
  x = n**2 - n
  lambda { x += n }
end

num = make_sequence(7)
p num.call #=> 49
p num.call #=> 56
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That's what I was looking for, thanks –  megas Oct 31 '12 at 10:12

use Enumerator

def make_sequence(start)
  pos = start**2
  Enumerator.new do |y|
    loop do
      y.yield(pos)
      pos += start
    end
  end
end

seq = make_sequence(7)
seq.next   #=> 49
seq.next   #=> 56

...
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A Fiber version:

def make_sequence(num)
  inc = num
  num = num*num
  Fiber.new do
    loop do
      Fiber.yield(num)
      num += inc
    end
  end
end

a = make_sequence(7)
p a.resume  #=> 49
p a.resume  #=> 56
p a.resume  #=> 63
...
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I'd keep num untouched (be nice with your callers) and update in-place local variables. –  tokland Oct 31 '12 at 10:19
    
In ruby, reassignment does not change the original variables contents. This code is safe. –  levinalex Oct 31 '12 at 12:57
    
sorry, I didn't see the num = num*num line. Now the problem is other then: why rebinding instead of creating a new variable? from a mathematical perspective num = num*num looks really bad. –  tokland Oct 31 '12 at 13:23

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