PAT1069:The Black Hole of Numbers
1069. The Black Hole of Numbers (20)
For any 4-digit integer except the ones with all the digits being the same, if we sort the digits in non-increasing order first, and then in non-decreasing order, a new number can be obtained by taking the second number from the first one. Repeat in this manner we will soon end up at the number 6174 -- the "black hole" of 4-digit numbers. This number is named Kaprekar Constant.
For example, start from 6767, we'll get:
7766 - 6677 = 1089
9810 - 0189 = 9621
9621 - 1269 = 8352
8532 - 2358 = 6174
7641 - 1467 = 6174
... ...
Given any 4-digit number, you are supposed to illustrate the way it gets into the black hole.
Input Specification:
Each input file contains one test case which gives a positive integer N in the range (0, 10000).
Output Specification:
If all the 4 digits of N are the same, print in one line the equation "N - N = 0000". Else print each step of calculation in a line until 6174 comes out as the difference. All the numbers must be printed as 4-digit numbers.
Sample Input 1:6767Sample Output 1:
7766 - 6677 = 1089 9810 - 0189 = 9621 9621 - 1269 = 8352 8532 - 2358 = 6174Sample Input 2:
2222Sample Output 2:
2222 - 2222 = 0000
思路
逻辑数学题
注意6174本身的判断和1111系列数字的判断,另外对于小于4位的数字也要进行插'0'处理。
代码
#include<iostream>
#include<algorithm>
#include<sstream>
using namespace std;
bool cmp(const char a,const char b)
{
return a > b;
}
bool isEquation(string s1)
{
int a = stoi(s1);
if( a == 0 || a % 1111 == 0)
return true;
return false;
}
int main()
{
string s;
while(cin >> s)
{
if(isEquation(s))
{
cout << s << " - " << s << " = 0000" << endl;
break;
}
if(s == "6174")
{
cout << "7641 - 1467 = 6174" << endl;
break;
}
int num1 = 0,num2 = 0;
while( num1 != 6174)
{
while(s.size() < 4)
s.push_back('0');
sort(s.begin(),s.end(),cmp);
num1 = stoi(s);
sort(s.begin(),s.end());
num2 = stoi(s);
printf("%04d - %04d = %04d\n",num1,num2,num1 - num2);
num1 -= num2;
s = to_string(num1);
}
}
}
