- H-Index II
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: citations = [0,1,3,5,6]
Output: 3
Explanation: [0,1,3,5,6] means the researcher has 5 papers in total and each of them had
received 0, 1, 3, 5, 6 citations respectively.
Since the researcher has 3 papers with at least 3 citations each and the remaining
two with no more than 3 citations each, her h-index is 3.
Note:
If there are several possible values for h, the maximum one is taken as the h-index.
Follow up:
- This is a follow up problem to H-Index, where
citationsis now guaranteed to be sorted in ascending order. - Could you solve it in logarithmic time complexity?
解 h-index:和爱丁顿数一个定义。对于一个从小到大排列好的数组,h-index为:
[h = arg max {nums[n-i] >= i}
]
最简单是线性搜索,逐一判断即可。在有序数组中,可以使用二分查找
class Solution {
public:
int hIndex(vector<int>& citations) {
int l = 0, r = citations.size()-1;
while(l <= r){
int mid = (l+r)/2;
if(citations.size()-mid == citations[mid])return citations.size()-mid;
if(citations.size()-mid > citations[mid])l = mid+1;
else r = mid-1;
}
return citations.size()-l;
}
};