[Swift]LeetCode275. H指数 II | H-Index II
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Given an array of citations?sorted?in ascending order?(each citation is a non-negative integer) of a researcher,write a function to compute the researcher‘s h-index. According to the?definition of h-index on Wikipedia: "A scientist has index?h?if?h?of his/her?N?papers have?at least?h?citations each,and the other?N ? h?papers have?no more than?h?citations each." Example: Input:
Output: 3
Explanation: means the researcher has papers in total and each of them had
received 0 citations respectively.
? Since the researcher has papers with at least citations each and the remaining
? two with no more than citations each,her h-index is .citations = [0,1,3,5,6][0,6]5,63333
Note: If there are several possible values for?h,the maximum one is taken as the h-index. Follow up:
给定一位研究者论文被引用次数的数组(被引用次数是非负整数),数组已经按照升序排列。编写一个方法,计算出研究者的?h?指数。 h 指数的定义: “h 代表“高引用次数”(high citations),一名科研人员的 h 指数是指他(她)的 (N 篇论文中)至多有 h 篇论文分别被引用了至少?h 次。(其余的?N - h?篇论文每篇被引用次数不多于?h?次。)" 示例: 输入: 输出: 3 解释: 给定数组表示研究者总共有 篇论文,每篇论文相应的被引用了 0 次。 ? 由于研究者有 篇论文每篇至少被引用了 次,其余两篇论文每篇被引用不多于 次,所以她的 h 指数是 。citations = [0,63333 说明: 如果?h?有多有种可能的值 ,h?指数是其中最大的那个。 进阶:
208ms 1 class Solution { 2 func hIndex(_ citations: [Int]) -> Int { 3 let count = citations.count 4 var left = 0,right = count - 1 5 while left <= right { 6 let mid = (left + right) / 2 7 if citations[mid] == count - mid { 8 return count - mid 9 }else if citations[mid] > count - mid { 10 right = mid - 1 11 }else { 12 left = mid + 1 13 } 14 } 15 16 return count - left 17 } 18 } 232ms 1 class Solution { 2 func hIndex(_ citations: [Int]) -> Int { 3 guard citations.count > 0 else { 4 return 0 5 } 6 for (index,value) in citations.enumerated() { 7 if value >= (citations.count - index){ 8 return citations.count - index 9 } 10 } 11 return 0 12 } 13 } (编辑:李大同) 【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容! |