[LeetCode]114. Power of Three 三的幂
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?
解法1:不断除去n的因子3,最后判断是否为1
class Solution { public: bool isPowerOfThree(int n) { while(n > 0) { if(n % 3 == 0) n /= 3; else break; } return n == 1; } };
解法2:将循环改为递归。
class Solution { public: bool isPowerOfThree(int n) { if(n != 0 && n % 3 == 0) { n /= 3; return isPowerOfThree(n); } else if(n == 1) return true; else return false; } };
解法3:不使用循环或递归。
class Solution { public: bool isPowerOfThree(int n) { return fmod(log10(n) / log10(3), 1) == 0; } };
因为n限制为int类型,最大为3^19=1162261467,所以只要判断在n不为0时是否能整除1162261467即可。
class Solution { public: bool isPowerOfThree(int n) { return n > 0 && 1162261467 % n == 0; } };
稍微改变一下,将3^0, 3^1,...,3^19这20个数存入数组中,判断n是否是数组中的某个元素即可。其实后面查找还是会用到循环或者递归。
class Solution { public: bool isPowerOfThree(int n) { int pow3[20] = {1, 3, 9, 27, 81, 243, 729, 2187, 6561, 19683, 59049, 177147, 531441, 1594323, 4782969, 14348907, 43046721, 129140163, 387420489, 1162261467}; return binary_search(pow3, pow3 + 20, n); } };
参考:https://leetcode.com/discuss/81699/1-line-c-no-recursion-loop,https://leetcode.com/discuss/80819/simple-solutions-without-recursion-iteration-time-and-space