本文介绍了一种用于分解不超过10,000,000的大数为两个不同整数乘积的方法,通过算法解析,实现了输入数据的分解,并输出了多种分解方式。
Code Refactoring
Time Limit: 2 seconds
| "Harry, my dream is a code waiting to be broken. Break the code, solve the crime." |
Agent Cooper
Several algorithms in modern cryptography are based on the fact that factoring large numbers is difficult. Alicia and Bobby know this, so they have decided to design their own encryption scheme based on factoring. Their algorithm depends on a secret code, K, that Alicia sends to Bobby before sending him an encrypted message. After listening carefully to Alicia's description, Yvette says, "But if I can intercept K and factor it into two positive integers, A and B, I would break your encryption scheme! And the K values you use are at most 10,000,000. Hey, this is so easy; I can even factor it twice, into two different pairs of integers!"
Input
The first line of input gives the number of cases, N (at most 25000). N test cases follow. Each one contains the code, K, on a line by itself.
Output
For each test case, output one line containing "Case #x: K = A * B = C * D", where A, B, C and D are different positive integers larger than 1. A solution will always exist.
| Sample Input | Sample Output |
3 120 210 10000000 |
Case #1: 120 = 12 * 10 = 6 * 20 Case #2: 210 = 7 * 30 = 70 * 3 Case #3: 10000000 = 10 * 1000000 = 100 * 100000 |
Problemsetter: Igor Naverniouk
大水题一道,把一个数分解成两个数的乘积,要求出两种分法。
1 #include<cstdio> 2 #include<cmath> 3 4 using namespace std; 5 6 int main() 7 { 8 int kase; 9 10 scanf("%d",&kase); 11 12 for(int n=1;n<=kase;n++) 13 { 14 int k,a=-1,b=-1,c,d; 15 16 scanf("%d",&k); 17 18 int mid=sqrt(k)+0.5; 19 20 for(int i=2;i<=mid;i++) 21 { 22 int j=k/i; 23 if(i*j==k) 24 { 25 if(a==-1&&b==-1) 26 { 27 a=i; 28 b=j; 29 } 30 else if(i!=a&&i!=b) 31 { 32 c=i; 33 d=j; 34 break; 35 } 36 } 37 } 38 39 printf("Case #%d: %d = %d * %d = %d * %d\n",n,k,a,b,c,d); 40 } 41 42 return 0; 43 }
扫一扫
被折叠的 条评论
为什么被折叠?
到【灌水乐园】发言
