HDU——1395 2^x mod n = 1(取模运算法则)
2^x mod n = 1
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 15197 Accepted Submission(s): 4695
Problem Description
Give a number n, find the minimum x(x>0) that satisfies 2^x mod n = 1.
Input
One positive integer on each line, the value of n.
Output
If the minimum x exists, print a line with 2^x mod n = 1.
Print 2^? mod n = 1 otherwise.
You should replace x and n with specific numbers.
Print 2^? mod n = 1 otherwise.
You should replace x and n with specific numbers.
Sample Input
2
5
Sample Output
2^? mod 2 = 1
2^4 mod 5 = 1
题目不难,就是要知道取模运算的基本法则这题主要是(a*b)%c=(a%c * b%c)%c.
代码:
#include<iostream> #include<cstdio> #include<algorithm> using namespace std; int main(void) { int n; while (cin>>n) { if(n%2==0||n==1)//n为1或者偶数一定无解 printf("2^? mod %d = 1\n",n); else//奇数一定有解 { int ans=1,t=2; while (t%n!=1) { t=(t*2)%n;//每次都求余数据就不会溢出 ans++; } printf("2^%d mod %d = 1\n",ans,n); } } return 0; }