Problem 188: Best Time to Buy and Sell Stock IV

https://leetcode.com/problems/best-time-to-buy-and-sell-stock-iv/

思路

  • 对于一次交易来说,永远是先 buy 后 sell。对于 buy 来说,对于 profit 的影响永远是负数,因为是要花钱的。

  • 当前sell[j]的大小,取决于当前的 prices[i] 和当前的 buy[j];而当前 buy[j] 的大小,取决于上一次的 sell[j - 1]

  • 这里有一个 trick:当 k >= len / 2 的时候,说明最多每次都可以进行交易,想交易几次交易几次,也就是化归成了 Best Time to Buy and Sell Stock II

public class Solution {
    public int maxProfit(int k, int[] prices) {
        if (k < 1) return 0;
        if (prices == null || prices.length <= 1) return 0;

        int len = prices.length;
        if (k >= len / 2) {
            return helper(prices);
        }

        int[] buy = new int[k + 1];
        int[] sell = new int[k + 1];
        Arrays.fill(buy, Integer.MIN_VALUE);
        for (int i = 0; i < prices.length; i++) {
            for (int j = k; j > 0; j--) {
                sell[j] = Math.max(sell[j], prices[i] + buy[j]);
                buy[j] = Math.max(buy[j], sell[j - 1] - prices[i]);
            }
        }

        return sell[k];
    }

    private int helper(int[] prices) {
        int profit = 0;
        for (int i = 0; i < prices.length - 1; i++) {
            int diff = prices[i + 1] - prices[i];
            if (diff > 0) {
                profit += diff;
            }
        }

        return profit;
    }
}

易错点

  1. buy[]sell[] 的初始化

    buy[] 数组里的元素都是负数,因为买要花钱的,盈利就是负数。所以我们在初始化的时候为最小值。sell[] 也初始化了其实,因为创建数组的时候,所有值默认为 0,所以我们没有进行额外的操作。

  2. 核心方程

    sell[j] = Math.max(sell[j], prices[i] + buy[j]);
buy[j] = Math.max(buy[j], sell[j - 1] - prices[i]);

    注意 index 到底是 i 还是 j。

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