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below is my quicksort implementation in ruby(using the first element as pivot). But there's an error I cannot figure out why

def quicksort(items)
   return items if items.nil? or items.length <= 1

   first=items[0]

   left,right=parti(items,0,items.length)

   quicksort(left) + [first] + quicksort(right)

end

def parti(s,l,r)
  p=s[l]
  i=l+1
  (l+1..r).each do |x|
      if s[x] < p
          s[x],s[i] = s[i],s[x]
          i+=1
      end
  end
  s[l],s[i-1] = s[i-1],s[l]
  return [s[0..i-2],s[i..r]]
end

The error:

putarray.rb:38:in `block in parti': undefined method `<' for nil:NilClass (NoM
hodError)
      from inputarray.rb:37:in `each'
      from inputarray.rb:37:in `parti'
      from inputarray.rb:22:in `quicksort'
      from inputarray.rb:47:in `<main>'

it says in

 if s[x] < p

s[x] is NilClass.

UPDATE: It turns out

left,right=parti(items,0,items.length) should be 
left,right=parti(items,0,items.length-1)

But after this change, an error

inputarray.rb:37: stack level too deep (SystemStackError)

point to

(l+1..r).each do |x|

Didn't find any good explanation on the internet.

share|improve this question
    
Presumably x is "outside the bounds" of the data so s[x] evaluates to nil (which is the only instance of NilClass). Now, the why is for you ;-) –  user166390 Jun 28 '12 at 21:20
    
The quickets way to debug this would be to insert: puts "#{s.length}, #{x}" right before the if s[x] < p. The last line of output before the exception will be probably have the same numbers. meaning it will output something like "5, 5". I haven't groked your code completely, but I have the feeling your right bound is off by one. –  Daniel Evans Jun 28 '12 at 21:30

1 Answer 1

Keep in mind that in Ruby, array index starts from 0, not 1.

Therefore items.length will return the value of 1 greater than the maximum index in the array.

Try right=parti(items,0,items.length-1) instead of right=parti(items,0,items.length).

share|improve this answer
    
That's true. I changed to items.length-1. But then there's "stack level too deep" error point at this line: (l+1..r).each do |x| –  alexZ Jun 28 '12 at 21:38
    
"stack level too deep" often happens, when you are in an infinite loop or recursion. As for why this is happening, I am not sure. I am somewhat suspicious of p=s[l]. Is your pivot always p=s[1]. Shouldn't it update? –  dmtri.com Jun 28 '12 at 21:48
    
I'm using first element for pivot, so the 2nd argument of parti is 0. so l=0 always –  alexZ Jun 28 '12 at 21:52
    
As a debugging technique, you can try puts "#{s[x]} - #{s[i]}" and try to find out why the code is failing. –  dmtri.com Jun 28 '12 at 21:57

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