程序媛詹妮弗
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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

题意:

给定一个10进制整数,翻转它。

 

Solution1: directly do the simulation

Two tricky parts to be handled:

(1) overflow :  32-bit signed integer range: [−231,  231 − 1],  whihc means [−2,147,483,648  2,147,483,647].  What if input is 2,147,483,647, after reversing, it will be 7,463,847,412.

(2) negative numbers: for each iteration, we do multiplication or division with a position number -- 10 , which means if sign is '-' , the sign will be kept all the time.

 

code:

 1 /*
 2   Time Complexity:  O(log(n))  coz we just travese half part of original input
 3   Space Complexity: O(1) 
 4 */
 5 class Solution {
 6     public int reverse(int input) {
 7         long sum = 0; 
 8         while(input !=0){
 9             sum = sum*10 + input %10;
10             input = input /10;
11             
12             if(sum > Integer.MAX_VALUE || sum < Integer.MIN_VALUE){
13                 return 0;  // returns 0 when the reversed integer overflows    
14             }
15         }  
16         return (int)sum;
17     }
18 }

 

posted on 2019-04-04 03:34  程序媛詹妮弗  阅读(164)  评论(0编辑  收藏  举报