给出一个整数,写一个函数来确定这个数是不是3的一个幂.后续挑战:你能不使用循环或者递归完成本题吗? 详见:https://leetcode.com/problems/power-of-three/description/ C++: 方法一: class Solution { public: bool isPowerOfThree(int n) { while(n&&n%3==0) { n/=3; } return n==1; } }; 方法二: class Solution { publi…

leetcode 326. Power of Three(不用循环或递归) Given an integer, write a function to determine if it is a power of three. Follow up: Could you do it without using any loop / recursion? 题意是判断一个数是否是3的幂,最简单的也最容易想到的办法就是递归判断,或者循环除. 有另一种方法就是,求log以3为底n的对数.类似 如果n=9,则…

这三道题目都是一个意思,就是判断一个数是否为2/3/4的幂,这几道题里面有通用的方法,也有各自的方法,我会分别讨论讨论. 原题地址:231 Power of Two:https://leetcode.com/problems/power-of-two/description/ 326 Power of Three:https://leetcode.com/problems/power-of-three/description/ 342 Power of Four :https://leetcod…

326. Power of Three Given an integer, write a function to determine if it is a power of three. Follow up: Could you do it without using any loop / recursion? 思路:看这个数取以3为底的对数结果是否为整数,C++中只有自然对数函数log()和以10为底的对数函数log10(),所以要借助换底公式.此处用自然对数会有精度问题,用以10为底的对数…

326. Power of Three Question Total Accepted: 1159 Total Submissions: 3275 Difficulty: Easy 推断给定整数是否是3的某次方. Given an integer, write a function to determine if it is a power of three. Follow up: Could you do it without using any loop / recursion? 完毕此题.…

翻译 给定一个整型数,写一个函数决定它是否是3的幂(翻译可能不太合适-- 跟进: 你能否够不用不论什么循环或递归来完毕. 原文 Given an integer, write a function to determine if it is a power of three. Follow up: Could you do it without using any loop / recursion? 分析 题意我事实上不是满懂,比方说12究竟可不能够呢?还是说仅仅有:3.9.27.81这样的才行…

Problem: Given an integer, write a function to determine if it is a power of three. Could you do it without using any loop / recursion? Summary: 用非循环/递归的方法判断数n是否为3的整数幂. Analysis: 1. 循环:将n逐次除以3,判断是否为3的整数幂. class Solution { public: bool isPowerOfThree(…

题目描述: Given an integer, write a function to determine if it is a power of three. Follow up:Could you do it without using any loop / recursion? 解题思路: 对给定的数求以3为底的对数,然后再将结果用于3的次幂,看是否与原来的数相同. 代码如下: public class Solution { public boolean isPowerOfThree(in…

Matrix Power Series Time Limit: 3000MS Memory Limit: 131072K Total Submissions: 19338 Accepted: 8161 Description Given a n × n matrix A and a positive integer k, find the sum S = A + A2 + A3 + - + Ak. Input The input contains exactly one test case. T…

作者: 负雪明烛 id: fuxuemingzhu 个人博客: http://fuxuemingzhu.cn/ 目录 题目描述 题目大意 解题方法 循环 递归 取对数 判断是不是最大3的倍数的因子 日期 [LeetCode] 题目地址:https://leetcode.com/problems/power-of-three/ Total Accepted: 38705 Total Submissions: 105634 Difficulty: Easy 题目描述 Given an integer…