标签:blog io ar for 2014 c on log r
最近一直忙着写paper,很久没做题,一下子把题目搞复杂了。。思路理清楚了非常简单,每次只需更新2个值:当前子序列最大乘积和当前子序列的最小乘积。最大乘积被更新有三种可能:当前A[i]>0,乘以前面最大的数(>0),得到新的最大乘积;当前A[i]<0,乘以前面最小的数(<0),得到新的最大乘积;A[i]它自己>0,(A[i-1]==0。最小乘积同理。。
class Solution {
public:
int Max(int a, int b, int c)
{
int max = -1 << 30;
if (a >= b)
max = a;
else
max = b;
if (c > max)
max = c;
return max;
}
int Min(int a, int b, int c)
{
int min = 1 << 30;
if (a <= b)
min = a;
else
min = b;
if (c < min)
min = c;
return min;
}
int maxProduct(int A[], int n) {
int maxPPrev=A[0], maxP;
int minPPrev = A[0], minP;
int max = A[0];
for (int i = 1; i < n; i++)
{
maxP = Max(maxPPrev * A[i], minPPrev * A[i], A[i]);
minP = Min(maxPPrev * A[i], minPPrev * A[i], A[i]);
maxPPrev = maxP;
minPPrev = minP;
if (maxPPrev > max)
max = maxPPrev;
if (minPPrev > max)
max = minPPrev;
}
return max;
}
};DP Leetcode - Maximum Product Subarray
标签:blog io ar for 2014 c on log r
原文地址:http://blog.csdn.net/tspatial_thunder/article/details/39726859
