Given an array nums of size n, return the majority element.
The majority element is the element that appears more than ⌊n / 2⌋ times. You may assume that the majority element always exists in the array.
Example 1:
Input: nums = [3,2,3] Output: 3
Example 2:
Input: nums = [2,2,1,1,1,2,2] Output: 2
Constraints:
n == nums.length1 <= n <= 5 * 104-109 <= nums[i] <= 109
Follow-up: Could you solve the problem in linear time and in
O(1) space?
Solution 1: Moore Voting Algorithm
The basic steps of the Moore voting algorithm are as follows:
Initialize the element
- If
$cnt = 0$ , then$m = x$ and$cnt = 1$ ; - Otherwise, if
$m = x$ , then$cnt = cnt + 1$ , otherwise$cnt = cnt - 1$ .
In general, the Moore voting algorithm requires two passes over the input list. In the first pass, we generate the candidate value
The time complexity is
class Solution:
def majorityElement(self, nums: List[int]) -> int:
cnt = m = 0
for x in nums:
if cnt == 0:
m, cnt = x, 1
else:
cnt += 1 if m == x else -1
return mclass Solution {
public int majorityElement(int[] nums) {
int cnt = 0, m = 0;
for (int x : nums) {
if (cnt == 0) {
m = x;
cnt = 1;
} else {
cnt += m == x ? 1 : -1;
}
}
return m;
}
}class Solution {
public:
int majorityElement(vector<int>& nums) {
int cnt = 0, m = 0;
for (int& x : nums) {
if (cnt == 0) {
m = x;
cnt = 1;
} else {
cnt += m == x ? 1 : -1;
}
}
return m;
}
};func majorityElement(nums []int) int {
var cnt, m int
for _, x := range nums {
if cnt == 0 {
m, cnt = x, 1
} else {
if m == x {
cnt++
} else {
cnt--
}
}
}
return m
}function majorityElement(nums: number[]): number {
let cnt: number = 0;
let m: number = 0;
for (const x of nums) {
if (cnt === 0) {
m = x;
cnt = 1;
} else {
cnt += m === x ? 1 : -1;
}
}
return m;
}/**
* @param {number[]} nums
* @return {number}
*/
var majorityElement = function (nums) {
let cnt = 0;
let m = 0;
for (const x of nums) {
if (cnt === 0) {
m = x;
cnt = 1;
} else {
cnt += m === x ? 1 : -1;
}
}
return m;
};public class Solution {
public int MajorityElement(int[] nums) {
int cnt = 0, m = 0;
foreach (int x in nums) {
if (cnt == 0) {
m = x;
cnt = 1;
} else {
cnt += m == x ? 1 : -1;
}
}
return m;
}
}impl Solution {
pub fn majority_element(nums: Vec<i32>) -> i32 {
let mut m = 0;
let mut cnt = 0;
for &x in nums.iter() {
if cnt == 0 {
m = x;
cnt = 1;
} else {
cnt += if m == x { 1 } else { -1 };
}
}
m
}
}class Solution {
/**
* @param Integer[] $nums
* @return Integer
*/
function majorityElement($nums) {
$m = 0;
$cnt = 0;
foreach ($nums as $x) {
if ($cnt == 0) {
$m = $x;
}
if ($m == $x) {
$cnt++;
} else {
$cnt--;
}
}
return $m;
}
}