• [Swift]LeetCode436. 寻找右区间 | Find Right Interval


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    Given a set of intervals, for each of the interval i, check if there exists an interval j whose start point is bigger than or equal to the end point of the interval i, which can be called that j is on the "right" of i.

    For any interval i, you need to store the minimum interval j's index, which means that the interval j has the minimum start point to build the "right" relationship for interval i. If the interval j doesn't exist, store -1 for the interval i. Finally, you need output the stored value of each interval as an array.

    Note:

    1. You may assume the interval's end point is always bigger than its start point.
    2. You may assume none of these intervals have the same start point. 

    Example 1:

    Input: [ [1,2] ]
    
    Output: [-1]
    
    Explanation: There is only one interval in the collection, so it outputs -1. 

    Example 2:

    Input: [ [3,4], [2,3], [1,2] ]
    
    Output: [-1, 0, 1]
    
    Explanation: There is no satisfied "right" interval for [3,4].
    For [2,3], the interval [3,4] has minimum-"right" start point;
    For [1,2], the interval [2,3] has minimum-"right" start point. 

    Example 3:

    Input: [ [1,4], [2,3], [3,4] ]
    
    Output: [-1, 2, -1]
    
    Explanation: There is no satisfied "right" interval for [1,4] and [3,4].
    For [2,3], the interval [3,4] has minimum-"right" start point.

    给定一组区间,对于每一个区间 i,检查是否存在一个区间 j,它的起始点大于或等于区间 i 的终点,这可以称为 j 在 i 的“右侧”。

    对于任何区间,你需要存储的满足条件的区间 j 的最小索引,这意味着区间 j 有最小的起始点可以使其成为“右侧”区间。如果区间 j 不存在,则将区间 i 存储为 -1。最后,你需要输出一个值为存储的区间值的数组。

    注意:

    1. 你可以假设区间的终点总是大于它的起始点。
    2. 你可以假定这些区间都不具有相同的起始点。

    示例 1:

    输入: [ [1,2] ]
    输出: [-1]
    
    解释:集合中只有一个区间,所以输出-1。
    

    示例 2:

    输入: [ [3,4], [2,3], [1,2] ]
    输出: [-1, 0, 1]
    
    解释:对于[3,4],没有满足条件的“右侧”区间。
    对于[2,3],区间[3,4]具有最小的“右”起点;
    对于[1,2],区间[2,3]具有最小的“右”起点。
    

    示例 3:

    输入: [ [1,4], [2,3], [3,4] ]
    输出: [-1, 2, -1]
    
    解释:对于区间[1,4]和[3,4],没有满足条件的“右侧”区间。
    对于[2,3],区间[3,4]有最小的“右”起点。

    5324ms
     1 /**
     2  * Definition for an interval.
     3  * public class Interval {
     4  *   public var start: Int
     5  *   public var end: Int
     6  *   public init(_ start: Int, _ end: Int) {
     7  *     self.start = start
     8  *     self.end = end
     9  *   }
    10  * }
    11  */
    12 class Solution {
    13     func findRightInterval(_ intervals: [Interval]) -> [Int] {
    14         var res:[Int] = [Int]()
    15         var v:[Int] = [Int]()
    16         var m:[Int:Int] = [Int:Int]()
    17         for i in 0..<intervals.count
    18         {
    19             m[intervals[i].start] = i
    20             v.append(intervals[i].start)
    21         }
    22         v = v.sorted(by:>)
    23         for a in intervals
    24         {
    25             var i:Int = 0
    26             while(i < v.count)
    27             {
    28                 if v[i] < a.end
    29                 {
    30                     break
    31                 }
    32                 i += 1                
    33             }
    34             res.append((i > 0) ? m[v[i - 1]]! : -1)
    35         }
    36         return res
    37     }
    38 }
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  • 原文地址:https://www.cnblogs.com/strengthen/p/10334621.html
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