【题目】
Determine whether an integer is a palindrome. Do this without extra space.
click to show spoilers.
Some hints:
Could negative integers be palindromes? (ie,⑴)
If you are thinking of converting the integer to string,note the restriction of using extra space.
You Could also try reversing an integer. However,if you have solved the problem Reverse Integer,you kNow that the reversed integer might overflow. How would you handle such case?
There is a more generic way of solving this problem.
【分析】
将整数反转,然后与原来的数比较,如果相等则为palindrome Number否则不是
【代码】
/*********************************
* 日期:2015-01⑵0
* 作者:SJF0115
* 题目: 9.palindrome Number
* 网址:https://oj.leetcode.com/problems/palindrome-number/
* 结果:AC
* 来源:LeetCode
* 博客:
**********************************/
#include <iostream>
using namespace std;
class Solution {
public:
bool ispalindrome(int x) {
// negative integer
if(x < 0){
return false;
}//if
int tmp = x;
int n = 0;
// reverse an integer
while(tmp){
n = n * 10 + tmp % 10;
tmp /= 10;
}//while
return (x == n);
}
};
int main(){
Solution solution;
int num = 1234321;
bool result = solution.ispalindrome(num);
// 输出
cout<<result<<endl;
return 0;
}
【分析2】
上1种思路,将整数反转时有可能会溢出。
这里的思路是不断的取第1位和最后1位(10进制)进行比较,相等则取第2位和倒数第2位.......直到完成比较或中途不相等退出。
【代码2】
class Solution {
public:
bool ispalindrome(int x) {
// negative integer
if(x < 0){
return false;
}//if
// 位数
int divisor = 1;
while(x / divisor >= 10){
divisor *= 10;
}//while
int first,last;
while(x){
first = x / divisor;
last = x % 10;
// 高位和低位比较 是不是相等
if(first != last){
return false;
}//if
// 去掉1个最高位和1个最低位
x = x % divisor / 10;
divisor /= 100;
}//while
return true;
}
};
版权声明:本文内容由互联网用户自发贡献,该文观点与技术仅代表作者本人。本站仅提供信息存储空间服务,不拥有所有权,不承担相关法律责任。如发现本站有涉嫌侵权/违法违规的内容, 请发送邮件至 dio@foxmail.com 举报,一经查实,本站将立刻删除。
