leetcode

README

435. Non-overlapping Intervals

题目

Given a collection of intervals, find the minimum number of intervals you need to remove to make the rest of the intervals non-overlapping.

Note:

1. You may assume the interval's end point is always bigger than its start point.
2. Intervals like [1,2] and [2,3] have borders "touching" but they don't overlap each other.

Example 1:

Input: [ [1,2], [2,3], [3,4], [1,3] ]

Output: 1

Explanation: [1,3] can be removed and the rest of intervals are non-overlapping.

Example 2:

Input: [ [1,2], [1,2], [1,2] ]

Output: 2

Explanation: You need to remove two [1,2] to make the rest of intervals non-overlapping.

Example 3:

Input: [ [1,2], [2,3] ]

Output: 0

Explanation: You don't need to remove any of the intervals since they're already non-overlapping.

NOTE: input types have been changed on April 15, 2019. Please reset to default code definition to get new method signature.

题目大意

给定一个区间的集合，找到需要移除区间的最小数量，使剩余区间互不重叠。

注意:

1. 可以认为区间的终点总是大于它的起点。
2. 区间 [1,2] 和 [2,3] 的边界相互“接触”，但没有相互重叠。

解题思路

• 给定一组区间，问最少删除多少个区间，可以让这些区间之间互相不重叠。注意，给定区间的起始点永远小于终止点。[1,2] 和 [2,3] 不叫重叠。
• 这一题可以反过来考虑，给定一组区间，问最多保留多少区间，可以让这些区间之间相互不重叠。先排序，判断区间是否重叠。
• 这一题一种做法是利用动态规划，模仿最长上升子序列的思想，来解题。
• 这道题另外一种做法是按照区间的结尾进行排序，每次选择结尾最早的，且和前一个区间不重叠的区间。选取结尾最早的，就可以给后面留出更大的空间，供后面的区间选择。这样可以保留更多的区间。这种做法是贪心算法的思想。

Documentation

Index

• type Intervals
  • func (a Intervals) Len() int
  • func (a Intervals) Less(i, j int) bool
  • func (a Intervals) Swap(i, j int)

Types

type Intervals

type Intervals [][]int

Intervals define

func (Intervals) Len

func (a Intervals) Len() int

func (Intervals) Less

func (a Intervals) Less(i, j int) bool

func (Intervals) Swap

func (a Intervals) Swap(i, j int)