[leetcode-414-Third Maximum Number]
Given a non-empty array of integers, return the third maximum number in this array. If it does not exist,
return the maximum number. The time complexity must be in O(n).
Example 1:
Input: [3, 2, 1]
Output: 1
Explanation: The third maximum is 1.
Example 2:
Input: [1, 2]
Output: 2
Explanation: The third maximum does not exist, so the maximum (2) is returned instead.
Example 3:
Input: [2, 2, 3, 1]
Output: 1
Explanation: Note that the third maximum here means the third maximum distinct number.
Both numbers with value 2 are both considered as second maximum.
思路:
首先想到的是用一个map存储数组中的值,作为key,因为map中的key是有序的,于是可以直接拿来用。
int thirdMax(vector<int>& nums) { map<int,int>m; map<int,int>::iterator it; for(int i=0;i<nums.size();i++) { m[nums[i]]++; } if(m.size()<3) { it = m.end(); it--; } else { it = m.end(); it--,it--,it--; } return it->first; }
又看到大神用的set,随时保持set的size不超过3个,这样更简洁!
int thirdMax(vector<int>& nums) { set<int> top3; for (int num : nums) { top3.insert(num); if (top3.size() > 3) top3.erase(top3.begin()); } return top3.size() == 3 ? *top3.begin() : *top3.rbegin(); }
参考:
https://discuss.leetcode.com/topic/63903/short-easy-c-using-set