LeetCode7 Reverse Integer
题意:
Reverse digits of an integer.
Example1: x = 123, return 321
Example2: x = -123, return -321 (Easy)
分析:
思路很简单,注意特殊情况如10,100等和int溢出情况即可;
开始采用的是用一个数组把各位先存起来,再以此乘以相应的系数组成结果,但是这样写代码冗长而且费空间;
直接采用一个while循环即可;
代码1:
1 class Solution { 2 public: 3 int reverse(int x) { 4 long long result = 0; 5 while (x != 0) { 6 int temp = x % 10; 7 x /= 10; 8 result = result * 10 + temp; 9 if (result > 0x7FFFFFFF || result < -0x7FFFFFFF) { 10 return 0; 11 } 12 } 13 return result; 14 } 15 };
查看讨论区,发现有一种不用0x7FFFFFFF判断的实现方式,作为参考;
代码2:
1 class Solution { 2 public: 3 int reverse(int x) { 4 int result = 0; 5 while (x != 0) { 6 int temp = x % 10; 7 x /= 10; 8 int newResult = result * 10 + temp; 9 if ( (newResult - temp) / 10 != result) { 10 return 0; 11 } 12 result = newResult; 13 } 14 return result; 15 } 16 };