1023 Have Fun with Numbers(20 分)
Notice that the number 123456789 is a 9-digit number consisting exactly the numbers from 1 to 9, with no duplication. Double it we will obtain 246913578, which happens to be another 9-digit number consisting exactly the numbers from 1 to 9, only in a different permutation. Check to see the result if we double it again!
Now you are suppose to check if there are more numbers with this property. That is, double a given number with k digits, you are to tell if the resulting number consists of only a permutation of the digits in the original number.
Input Specification:
Each input contains one test case. Each case contains one positive integer with no more than 20 digits.
Output Specification:
For each test case, first print in a line "Yes" if doubling the input number gives a number that consists of only a permutation of the digits in the original number, or "No" if not. Then in the next line, print the doubled number.
Sample Input:
1234567899
Sample Output:
Yes
2469135798思路:这道题比较简单,难点在于不能使用常用的数据类型(超出范围),这里使用字符串模拟加法,另外,需要比较元素组成,可以用数组记录,这里我排序比较字符串
#include<iostream>
#include<string>
#include<algorithm>
using namespace std;
int main() {
string a, b, c;
int up=0;
cin >> a;
for (int i = a.length() - 1; i >= 0; i--) { //字符串模拟加法器
b = to_string((a[i]-'0') * 2 % 10 + up)+b;
up = (a[i]-'0') * 2 / 10;
}
if (up) //补上进位
b = to_string(up) + b;
c = b;
sort(a.begin(), a.end()); //排序,若数字组成相同,排序后字符串也相同
sort(b.begin(), b.end());
if (a == b)
cout << "Yes" << endl;
else
cout << "No" << endl;
cout << c;
return 0;
}
