标签:Sell Buy transactions int max 0188 jj prices dp
1. 题目描述
2. Solution 1
1、思路分析
1> dp[i, j] represents the max profit up until prices[j] using at most i transactions.
2> dp[0, j] = 0; 0 transactions makes 0 profit
dp[i, 0] = 0; if there is only one price data point you can't make any transaction.
3> dp[i, j] = max(dp[i, j-1], prices[j] - prices[jj] + dp[i-1, jj]) { jj in range of [0, j-1] }
= max(dp[i, j-1], prices[j] + max(dp[i-1, jj] - prices[jj]))
2、代码实现
package Q0199.Q0188BestTimetoBuyandSellStockIV;
/*
dp[i, j] represents the max profit up until prices[j] using at most i transactions.
dp[i, j] = max(dp[i, j-1], prices[j] - prices[jj] + dp[i-1, jj]) { jj in range of [0, j-1] }
= max(dp[i, j-1], prices[j] + max(dp[i-1, jj] - prices[jj]))
dp[0, j] = 0; 0 transactions makes 0 profit
dp[i, 0] = 0; if there is only one price data point you can't make any transaction.
*/
public class Solution {
public int maxProfit(int k, int[] prices) {
int n = prices.length;
if (n <= 1) return 0;
//if k >= n/2, then you can make maximum number of transactions.
if (k >= n / 2) {
int maxPro = 0;
for (int i = 1; i < n; i++) {
if (prices[i] > prices[i - 1])
maxPro += prices[i] - prices[i - 1];
}
return maxPro;
}
int[][] dp = new int[k + 1][n];
for (int i = 1; i <= k; i++) {
int localMax = dp[i - 1][0] - prices[0];
for (int j = 1; j < n; j++) {
dp[i][j] = Math.max(dp[i][j - 1], prices[j] + localMax);
localMax = Math.max(localMax, dp[i - 1][j] - prices[j]);
}
}
return dp[k][n - 1];
}
}
3、复杂度分析
时间复杂度: O(kn)
空间复杂度: O(kn)
标签:Sell,Buy,transactions,int,max,0188,jj,prices,dp 来源: https://www.cnblogs.com/junstat/p/16325561.html
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