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Poj 2109 / OpenJudge 2109 Power of Cryptography
1.Link:
http://poj.org/problem?id=2109
http://bailian.openjudge.cn/practice/2109/
2.Content:
Power of Cryptography
Time Limit: 1000MS Memory Limit: 30000K Total Submissions: 18872 Accepted: 9520 Description
Current work in cryptography involves (among other things) large prime numbers and computing powers of numbers among these primes. Work in this area has resulted in the practical use of results from number theory and other branches of mathematics once considered to be only of theoretical interest.
This problem involves the efficient computation of integer roots of numbers.
Given an integer n>=1 and an integer p>= 1 you have to write a program that determines the n th positive root of p. In this problem, given such integers n and p, p will always be of the form k to the nth. power, for an integer k (this integer is what your program must find).Input
The input consists of a sequence of integer pairs n and p with each integer on a line by itself. For all such pairs 1<=n<= 200, 1<=p<10101 and there exists an integer k, 1<=k<=109 such that kn = p.Output
For each integer pair n and p the value k should be printed, i.e., the number k such that k n =p.Sample Input
2 163 277 4357186184021382204544Sample Output
431234Source
México and Central America 2004
3.Method:
推导过程:
K^N = P
logk P = N
log(P) / log(k) = N (换底公式)
log(K) = 1/N * log(P)
K = e ^ ( 1/N * log(P)) = ( e ^ log(P)) ^ (1/N) = P ^ (1/N) = pow(P,1/N)
因此采用double读入,会损失部分精度,但是这题貌似精度没有那么高,所以可行
4.Code:
1 #include <iostream> 2 #include <cstdio> 3 #include <cmath> 4 5 using namespace std; 6 7 int main() 8 { 9 //freopen("D://input.txt","r",stdin);10 11 double p,n;12 13 while(cin >> n >> p)14 {15 cout << pow(p,1.0/n) << endl;16 }17 18 return 0;19 }
5.Reference:
Poj 2109 / OpenJudge 2109 Power of Cryptography
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