LeetCode算法Reverse Integer

Posted 2020-11-06 嘉禾世兴

LeetCode第7题：

Given a 32-bit signed integer, reverse digits of an integer.

Example 1:

Input: 123
Output: 321

Example 2:

Input: -123
Output: -321

Example 3:

Input: 120
Output: 21

Note:
Assume we are dealing with an environment which could only store integers within the 32-bit signed integer range: [−231,  231 − 1]. For the purpose of this problem, assume that your function returns 0 when the reversed integer overflows.

解题思路：

假如:x=1234,y=0

1）y乘以10，x把末位4移除掉，加给y（x=123,y=4）

2）y乘以10，x把末位3移除掉，加给y（x=12,y=43）

3）y乘以10，x把末位2移除掉，加给y（x=1,y=432）

4）y乘以10，x把末位1移除掉，加给y（x=0,y=4321）

代码：

int y = 0;
while(x/10!=0){
    y*=10;
    y+=x%10;
    x/=10;
}
y=y*10 +x;

结果报错

原因是int的范围是-2147483647~2147483648

leetcode给的input是1534236469，倒转之后是9646324351，导致溢出了。所以要加上溢出判断

最后的代码

class Solution {
    public int reverse(int x) {
        
        int negative = 1;  
        if(x <= Integer.MIN_VALUE)  
            return 0;  
        if(x < 0){  
            x = -x;  
            negative = -1;  
        }  
          
        long y = 0;
        while(x/10!=0){
            y*=10;
            y+=x%10;
            x/=10;
        }
        y=y*10 +x;
          
        if(y > Integer.MAX_VALUE)  
            return 0;  
        else  
            return (int)y * negative; 
    }
}

这也是很坑啊，溢出就输出0，鬼知道啊