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Java-based LeetCode algorithm problem solutions, regularly updated

There is a newer version: 1.37

2054\. Two Best Non-Overlapping Events

Medium

You are given a **0-indexed** 2D integer array of `events` where events[i] = [startTime_i, endTime_i, value_i]. The i^th event starts at startTime_i and ends at endTime_i, and if you attend this event, you will receive a value of value_i. You can choose **at most** **two** **non-overlapping** events to attend such that the sum of their values is **maximized**.

Return _this **maximum** sum._

Note that the start time and end time is **inclusive**: that is, you cannot attend two events where one of them starts and the other ends at the same time. More specifically, if you attend an event with end time `t`, the next event must start at or after `t + 1`.

**Example 1:**

![](https://assets.leetcode.com/uploads/2021/09/21/picture5.png)

**Input:** events = [[1,3,2],[4,5,2],[2,4,3]]

**Output:** 4

**Explanation:** Choose the green events, 0 and 1 for a sum of 2 + 2 = 4. 

**Example 2:**

![Example 1 Diagram](https://assets.leetcode.com/uploads/2021/09/21/picture1.png)

**Input:** events = [[1,3,2],[4,5,2],[1,5,5]]

**Output:** 5

**Explanation:** Choose event 2 for a sum of 5. 

**Example 3:**

![](https://assets.leetcode.com/uploads/2021/09/21/picture3.png)

**Input:** events = [[1,5,3],[1,5,1],[6,6,5]]

**Output:** 8

**Explanation:** Choose events 0 and 2 for a sum of 3 + 5 = 8.

**Constraints:**

*   2 <= events.length <= 10⁵
*   `events[i].length == 3`
*   1 <= startTime_i <= endTime_i <= 10⁹
*   1 <= value_i <= 10⁶