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_714.java
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_714.java
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package com.fishercoder.solutions;
/**
* 714. Best Time to Buy and Sell Stock with Transaction Fee
*
* Your are given an array of integers prices, for which the i-th element is the price of a given stock on day i;
* and a non-negative integer fee representing a transaction fee.
* You may complete as many transactions as you like,
* but you need to pay the transaction fee for each transaction.
* You may not buy more than 1 share of a stock at a time (ie. you must sell the stock share before you buy again.)
Return the maximum profit you can make.
Example 1:
Input: prices = [1, 3, 2, 8, 4, 9], fee = 2
Output: 8
Explanation: The maximum profit can be achieved by:
Buying at prices[0] = 1
Selling at prices[3] = 8
Buying at prices[4] = 4
Selling at prices[5] = 9
The total profit is ((8 - 1) - 2) + ((9 - 4) - 2) = 8.
Note:
0 < prices.length <= 50000.
0 < prices[i] < 50000.
0 <= fee < 50000.
*/
public class _714 {
public static class Solution1 {
/**O(n) time
* O(n) space
* credit: https://discuss.leetcode.com/topic/108009/java-c-clean-code-dp-greedy
* */
public int maxProfit(int[] prices, int fee) {
int n = prices.length;
if (n < 2) {
return 0;
}
int[] hold = new int[n];
int[] sell = new int[n];
hold[0] = -prices[0];
for (int i = 1; i < prices.length; i++) {
hold[i] = Math.max(hold[i - 1], sell[i - 1] - prices[i]);
sell[i] = Math.max(sell[i - 1], hold[i - 1] - fee + prices[i]);
}
return sell[n - 1];
}
}
public static class Solution2 {
/**O(n) time
* O(1) space
* credit: https://leetcode.com/articles/best-time-to-buy-and-sell-stock-with-transaction-fee/
*
* cash: the max profit we could have if we did not have a share of stock in hand
* hold: the max profit we could have if we hold one share of stack in hand
*
* to transition from the i-th day to the i+1 th day, we have two options:
* 1. sell our stock: cash = Math.max(cash, hold + prices[i] - fee)
* 2. buy a stock: hold = Math.max(hold, cash - prices[i])
* */
public int maxProfit(int[] prices, int fee) {
int cash = 0;
int hold = -prices[0];
for (int i = 1; i < prices.length; i++) {
cash = Math.max(cash, hold + prices[i] - fee);
hold = Math.max(hold, cash - prices[i]);
}
return cash;
}
}
}