- Best Time to Buy and Sell Stock IV
Say you have an array for which the i-th element is the price of a given stock on day i.
Design an algorithm to find the maximum profit. You may complete at most k transactions.
Note:
You may not engage in multiple transactions at the same time (ie, you must sell the stock before you buy again).
Example 1:
Input: [2,4,1], k = 2
Output: 2
Explanation: Buy on day 1 (price = 2) and sell on day 2 (price = 4), profit = 4-2 = 2.
Example 2:
Input: [3,2,6,5,0,3], k = 2
Output: 7
Explanation: Buy on day 2 (price = 2) and sell on day 3 (price = 6), profit = 6-2 = 4.
Then buy on day 5 (price = 0) and sell on day 6 (price = 3), profit = 3-0 = 3.
解 动态规划
用一个二维矩阵trans,矩阵的列表示交易的价格,矩阵的行表示交易的次数,矩阵的值表示当前能够获得的最大利润
以允许3交易为例,考察第3天的最大利润trans[3][3]
- 第3天什么都不做,(trans[3][3] = trans[3][2])
- 以第1天价格买入,第3天价格卖出,(trans[3][3]=prices[3]-prices[1] + trans[2][1])
- 以第2天价格买入,第3天价格卖出,(trans[3][3]=prices[3]-prices[2] + trans[2][2])
取最大值即为结果。实现如下:
用两个数组buy和sell来分别表示第i次买入交易的最大收益值和第i次卖出交易的最大收益值
1.第i次买操作买下当前股票之后剩下的最大利润为第(i-1)次卖掉股票之后的利润-当前的股票价格.状态转移方程为:
buy[i] = max(sell[i-1]- curPrice, buy[i]);
2.第i次卖操作卖掉当前股票之后剩下的最大利润为第i次买操作之后剩下的利润+当前股票价格.状态转移方程为:
sell[i] = max(buy[i]+curPrice, sell[i]);
class Solution {
public:
int maxProfit(int k, vector<int>& prices) {
if(prices.size() ==0) return 0;
int len = prices.size(), ans =0;
if(k >= len/2){
for(int i = 1; i < len; i++)
if(prices[i]-prices[i-1]>0)ans += prices[i]-prices[i-1];
return ans;
}
vector<int> buy(len+1, INT_MIN), sell(len+1, 0);
for(auto val: prices)
{
for(int i =1; i <= k; i++)
{
buy[i] = max(sell[i-1]-val, buy[i]);
sell[i] = max(buy[i]+val, sell[i]);
}
}
return sell[k];
}
};
Best Time to Buy and Sell Stock II
Best Time to Buy and Sell Stock III
[Best Time to Buy and Sell Stock IV](