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so I'm trying to use the divide and conquer method to find the maximum subarray with lua. Every time I call the function to do so I get a stack overflow error. I'm not really sure what's wrong...

Here is my code:

function find_max_crossing(a,left,mid,right) 
   left_val = -99999999
   sum = 0
   for i=mid,low,-1 do
      sum = sum + a[i]
      if(sum > left_val)
         then
            left_val = sum
            max_start = i
      end
   end
   right_val = -99999999
   sum = 0
   for j=mid+1,right do
      sum = sum + a[j]
      if(sum > right_val)
         then
            right_val = sum
            max_end = j
      end
   end
   return max_start, max_end, (left_val + right_val)
end 

function find_maximum_subarray_rec(a, left, right)   
   if left == right
      then
         return left, right, a[left]
   else
      mid = math.floor((left/right)/2)
      l_start, l_end, l_sum = find_maximum_subarray_rec(a, left, mid)
      r_start, r_end, r_sum = find_maximum_subarray_rec(a, (mid + 1), right)
      cross_left, cross_right, cross_sum = find_max_crossing(a, left, mid, right)
   end

   if ((l_sum >= r_sum) and (l_sum >= cross_sum))
      then
         return l_start, l_end, l_sum
   elseif ((r_sum >= l_sum) and (r_sum >= cross_sum))
      then return r_start, r_end, r_sum
   else
      return cross_left, cross_right, cross_sum
   end
end 
share|improve this question
1  
What is a maximum "subarray"? –  Nicol Bolas Dec 7 '12 at 2:36
    
It is a contiguous group of numbers that add to be the maximum possible from an array. For example in the array {-1, 5, 9, 2, -1, 10, -6, -7} the maximum subarray is {5, 9, 2, -1, 10} and the sum is 25. –  Olivia Dec 7 '12 at 2:44
    
So I have figured out the stack overflow issue I was having. When finding the midpoint to use I accidentally did floor((left/right)/2) instead of floor((left+right) / 2) –  Olivia Dec 7 '12 at 3:12
2  
Perhaps you could add you last comment as an answer so your question is not left answered. You could then accept your answer. –  lhf Dec 7 '12 at 10:19

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