原题地址:https://oj.leetcode.com/problems/maximum-product-subarray/
解题思路:主要需要考虑负负得正这种情况,比如之前的最小值是一个负数,再乘以一个负数就有可能成为一个很大的正数。
代码:
class Solution:# @param A, a list of integers# @return an integerdef maxProduct(self, A):if len(A) == 0:return 0min_tmp = A[0]max_tmp = A[0]result = A[0]for i in range(1, len(A)):a = A[i] * min_tmpb = A[i] * max_tmpc = A[i]max_tmp = max(max(a,b),c)min_tmp = min(min(a,b),c)result = max_tmp if max_tmp > result else resultreturn result