169.Majority Element:修订间差异
创建页面,内容为“=Description= {{LeetCode |id=majority-elemen |no=169 |difficulty=Easy |category=Array |collection=Top 150 |title=Majority Element |summary=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: <syntaxhighlight lang="bash"> Input: nums = [3,2,3] Output: 3 </syntaxhighlight> Example 2: <syntaxhi…” |
无编辑摘要 |
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(未显示同一用户的3个中间版本) | |||
第23行: | 第23行: | ||
Output: 2 | Output: 2 | ||
</syntaxhighlight> | </syntaxhighlight> | ||
===HashMap=== | |||
{{Submission|runtime=12ms|memory=49.68MB|rp=33.25|mp=68.75}} | |||
<syntaxhighlight lang="java"> | |||
class Solution { | |||
public int majorityElement(int[] nums) { | |||
Map<Integer, Integer> counts = new HashMap<>(); | |||
float half = nums.length / 2.0f; | |||
for(int i = 0; i < nums.length; i++) { | |||
int count = counts.getOrDefault(nums[i], 0) + 1; | |||
if(count > half) return nums[i]; | |||
counts.put(nums[i], count); | |||
} | |||
throw new RuntimeException("No majority element found"); | |||
} | |||
} | |||
</syntaxhighlight> | |||
===Sort and return middle=== | |||
The element must be at n/2 after sorted! | |||
{{Submission|runtime=5ms|memory=53.59MB|rp=42.68|mp=6.56}} | |||
<syntaxhighlight lang="java"> | |||
class Solution { | |||
public int majorityElement(int[] nums) { | |||
Arrays.sort(nums); | |||
return nums[nums.length / 2]; | |||
} | |||
} | |||
</syntaxhighlight> | |||
===Bit Manipulation === | |||
For each number, if it's the majority, then each bit must also be the majority! | |||
<syntaxhighlight lang="bash"> | |||
5 5 2 1 2 2 2 => | |||
1 0 1 | |||
1 0 1 | |||
0 1 0 | |||
0 0 1 | |||
0 1 0 | |||
0 1 0 | |||
0 1 0 | |||
</syntaxhighlight> | |||
{{Submission|runtime=6ms|memory=52.97MB|rp=40.94|mp=6.97}} | |||
<syntaxhighlight lang="java"> | |||
class Solution { | |||
public int majorityElement(int[] nums) { | |||
int n = nums.length, ans = 0; | |||
int half = n / 2; | |||
for(int i = 0; i < 32; i++) { | |||
int count = 0, mask = 1 << i; | |||
for(int j = 0; j < n; j++) { | |||
if((nums[j] & mask) == mask) | |||
count ++; | |||
} | |||
if(count > half) ans |= 1 << i; | |||
} | |||
return ans; | |||
} | |||
} | |||
</syntaxhighlight> | |||
==Boyer-Moore Majority Vote Algorithm== | |||
{{Submission|runtime=1ms|memory=53.97MB|rp=99.71|mp=6.56}} | |||
<syntaxhighlight lang="java"> | |||
class Solution { | |||
public int majorityElement(int[] nums) { | |||
int element = 0, count = 0; | |||
for(int i = 0; i < nums.length; i++) { | |||
if(count == 0) { | |||
count = 1; | |||
element = nums[i]; | |||
continue; | |||
} | |||
if(nums[i] == element) count ++; | |||
else count --; | |||
} | |||
return element; | |||
} | |||
} | |||
</syntaxhighlight> | |||
[[Category:Algorithm]] | |||
[[Category:Array]] | |||
[[Category:LeetCode]] |
2024年2月19日 (一) 14:23的最新版本
Description
#169 | Majority Element | Easy | ||
---|---|---|---|---|
Array | Top 150 | |||
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
HashMap
Runtime 12ms |
|
Memory 49.68MB |
|
class Solution {
public int majorityElement(int[] nums) {
Map<Integer, Integer> counts = new HashMap<>();
float half = nums.length / 2.0f;
for(int i = 0; i < nums.length; i++) {
int count = counts.getOrDefault(nums[i], 0) + 1;
if(count > half) return nums[i];
counts.put(nums[i], count);
}
throw new RuntimeException("No majority element found");
}
}
Sort and return middle
The element must be at n/2 after sorted!
Runtime 5ms |
|
Memory 53.59MB |
|
class Solution {
public int majorityElement(int[] nums) {
Arrays.sort(nums);
return nums[nums.length / 2];
}
}
Bit Manipulation
For each number, if it's the majority, then each bit must also be the majority!
5 5 2 1 2 2 2 =>
1 0 1
1 0 1
0 1 0
0 0 1
0 1 0
0 1 0
0 1 0
Runtime 6ms |
|
Memory 52.97MB |
|
class Solution {
public int majorityElement(int[] nums) {
int n = nums.length, ans = 0;
int half = n / 2;
for(int i = 0; i < 32; i++) {
int count = 0, mask = 1 << i;
for(int j = 0; j < n; j++) {
if((nums[j] & mask) == mask)
count ++;
}
if(count > half) ans |= 1 << i;
}
return ans;
}
}
Boyer-Moore Majority Vote Algorithm
Runtime 1ms |
|
Memory 53.97MB |
|
class Solution {
public int majorityElement(int[] nums) {
int element = 0, count = 0;
for(int i = 0; i < nums.length; i++) {
if(count == 0) {
count = 1;
element = nums[i];
continue;
}
if(nums[i] == element) count ++;
else count --;
}
return element;
}
}