题目:
Consider a positive integer N written in standard notation with k+1 digits ai as ak⋯a1a0 with 0≤ai<10 for all i and ak>0. Then N is palindromic if and only if ai=ak−i for all i. Zero is written 0 and is also palindromic by definition.
Non-palindromic numbers can be paired with palindromic ones via a series of operations. First, the non-palindromic number is reversed and the result is added to the original number. If the result is not a palindromic number, this is repeated until it gives a palindromic number. Such number is called a delayed palindrome. (Quoted from https://en.wikipedia.org/wiki/Palindromic_number )
Given any positive integer, you are supposed to find its paired palindromic number.
Input Specification:
Each input file contains one test case which gives a positive integer no more than 1000 digits.
Output Specification:
For each test case, print line by line the process of finding the palindromic number. The format of each line is the following:
A + B = C
where A is the original number, B is the reversed A, and C is their sum. A starts being the input number, and this process ends until C becomes a palindromic number -- in this case we print in the last line C is a palindromic number.; or if a palindromic number cannot be found in 10 iterations, print Not found in 10 iterations. instead.
Sample Input 1:
97152
Sample Output 1:
97152 + 25179 = 122331
122331 + 133221 = 255552
255552 is a palindromic number.
Sample Input 2:
196
Sample Output 2:
196 + 691 = 887
887 + 788 = 1675
1675 + 5761 = 7436
7436 + 6347 = 13783
13783 + 38731 = 52514
52514 + 41525 = 94039
94039 + 93049 = 187088
187088 + 880781 = 1067869
1067869 + 9687601 = 10755470
10755470 + 07455701 = 18211171
Not found in 10 iterations.
注意点:
1、string字符串反转
使用 reverse(s.begin(), s.end());
头文件为 #include<algorithm>
2、大整数运算时,要重新开一个数组来存储运算结果,否则在例如 A + reverse(A)的情况下会出错
代码:
#include <iostream> #include <algorithm> using namespace std; string rev(string s) { reverse(s.begin(), s.end()); return s; } string add(string s1, string s2) { string s = s1; int carry = 0; for (int i = s1.size() - 1; i >= 0; i--) { s[i] = (s1[i] - '0' + s2[i] - '0' + carry) % 10 + '0'; carry = (s1[i] - '0' + s2[i] - '0' + carry) / 10; } if (carry > 0) s = "1" + s; return s; } int main() { string s, sum; int n = 10; cin >> s; if (s == rev(s)) { cout << s << " is a palindromic number.\n"; return 0; } while (n--) { sum = add(s, rev(s)); cout << s << " + " << rev(s) << " = " << sum << endl; if (sum == rev(sum)) { cout << sum << " is a palindromic number.\n"; return 0; } s = sum; } cout << "Not found in 10 iterations.\n"; return 0; }