【LetMeFly】1550.存在连续三个奇数的数组:遍历
力扣题目链接:https://leetcode.cn/problems/three-consecutive-odds/
给你一个整数数组 arr,请你判断数组中是否存在连续三个元素都是奇数的情况:如果存在,请返回 true ;否则,返回 false 。
示例 1:
输入:arr = [2,6,4,1]
输出:false
解释:不存在连续三个元素都是奇数的情况。示例 2:
输入:arr = [1,2,34,3,4,5,7,23,12]
输出:true
解释:存在连续三个元素都是奇数的情况,即 [5,7,23] 。提示:
1 <= arr.length <= 10001 <= arr[i] <= 1000
解题方法:遍历
从第3个元素(下标2)开始向后遍历,若遇到连续3个奇数则直接返回true,否则返回false。
- 时间复杂度 O ( l e n ( n u m s ) ) O(len(nums)) O(len(nums))
- 空间复杂度 O ( 1 ) O(1) O(1)
AC代码
C++
cpp
/*
* @Author: LetMeFly
* @Date: 2025-05-11 14:00:52
* @LastEditors: LetMeFly.xyz
* @LastEditTime: 2025-05-11 14:13:46
*/
class Solution {
public:
bool threeConsecutiveOdds(vector<int>& arr) {
for (int i = 2; i < arr.size(); i++) {
if (arr[i] % 2 && arr[i - 1] % 2 && arr[i - 2] % 2) {
return true;
}
}
return false;
}
};Python
python
'''
Author: LetMeFly
Date: 2025-05-11 14:00:52
LastEditors: LetMeFly.xyz
LastEditTime: 2025-05-11 14:16:01
Description: AC,100.00%,93.48%
'''
from typing import List
class Solution:
def threeConsecutiveOdds(self, arr: List[int]) -> bool:
for i in range(2, len(arr)):
if arr[i] % 2 and arr[i - 1] % 2 and arr[i - 2] % 2:
return True
return FalseJava
java
/*
* @Author: LetMeFly
* @Date: 2025-05-11 14:00:52
* @LastEditors: LetMeFly.xyz
* @LastEditTime: 2025-05-11 14:17:39
* @Description: 1550: AC,100.00%,88.19%
*/
class Solution {
public boolean threeConsecutiveOdds(int[] arr) {
for (int i = 2; i < arr.length; i++) {
if (arr[i] % 2 == 1 && arr[i - 1] % 2 == 1 && arr[i - 2] % 2 == 1) {
return true;
}
}
return false;
}
}Go
go
/*
* @Author: LetMeFly
* @Date: 2025-05-11 14:00:52
* @LastEditors: LetMeFly.xyz
* @LastEditTime: 2025-05-11 14:19:31
*/
package main
func threeConsecutiveOdds(arr []int) bool {
for i := 2; i < len(arr); i++ {
if arr[i] % 2 == 1 && arr[i - 1] % 2 == 1 && arr[i - 2] % 2 == 1 {
return true
}
}
return false;
}同步发文于CSDN和我的个人博客,原创不易,转载经作者同意后请附上原文链接哦~
千篇源码题解已开源