一:Majority Element
Given an array of size n, find the majority element. The majority element is the element that appears more than ⌊ n/2 ⌋ times.
You may assume that the array is non-empty and the majority element always exist in the array.
class Solution { public: int majorityElement(vector<int>& nums) { int numsSize = nums.size(); int times = 0; int res = 0; for(int i=0;i<nums.size();i++){ if(i==0){ res = nums[i]; times = 1; }else{ if(nums[i]!=res){ times--; if(times==0){ res = nums[i]; times = 1; } }else{ times++; } } } return res; } };
二:Majority Element II
Given an integer array of size n, find all elements that appear more than ⌊ n/3 ⌋ times. The algorithm should run in linear time and in O(1) space.
出现 ⌊ n/3 ⌋的数,在数组中至多只有两个,可以画图理解。
class Solution { public: vector<int> majorityElement(vector<int>& nums) { vector<int> res; int numsSize = nums.size(); int resval1 = 0,resval2=0; int times1 = 0,times2=0; for(int i=0;i<numsSize;i++){ if(i==0){ resval1 = nums[i]; times1++; }else{ if(nums[i]==resval1){ times1++; }else if(times2==0){ times2=1; resval2 = nums[i]; }else if(nums[i]==resval2){ times2++; }else{ times1--; times2--; if(times1==0){ times1=1; resval1=nums[i]; } } } } int cnt1=0,cnt2=0; for(int i=0;i<numsSize;i++){ if(nums[i]==resval1) cnt1++; if(nums[i]==resval2) cnt2++; } if(cnt1>(numsSize/3)) res.push_back(resval1); if(cnt2!=numsSize && cnt2>(numsSize/3)) res.push_back(resval2); return res; } };