HDU1164_Eddy's research I【Miller Rabin素数测试】【Pollar Rho整数分解】

Eddy's research I

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)

Total Submission(s): 6664    Accepted Submission(s): 3997

Problem Description
Eddy's interest is very extensive, recently he is interested in prime number. Eddy discover the all number owned can be divided into the multiply of prime number, but he can't write program, so Eddy has to ask intelligent you to help him, he asks you to write a program which can do the number to divided into the multiply of prime number factor .

Input
The input will contain a number 1 < x<= 65535 per line representing the number of elements of the set.
 
Output
You have to print a line in the output for each entry with the answer to the previous question.
 
Sample Input
11
9412
 
Sample Output
11
2*2*13*181
 
Author

eddy

题目大意：随意一个数x，都能够被分解为几个素数(能够同样)相乘的形式。如今给你一个数x，

把它分解为几个素数相乘的形式。

思路：这里x的规模最大为65535。所以用简单的素性推断方法直接暴力也能够过。网上贴的

代码大多简单，这里贴一个用【Miller Rabin素数測试】+【Pollar Rho整数分解】来做的代码

#include<stdio.h>
#include<stdlib.h>
#include<time.h>
#include<math.h>
#include<algorithm>
using namespace std;
#define MAX_VAL (pow(2.0,60))
//miller_rabbin素性測试
__int64 mod_mul(__int64 x,__int64 y,__int64 mo)
{
    __int64 t,T,a,b,c,d,e,f,g,h,v,ans;
    T = (__int64)(sqrt(double(mo)+0.5));

    t = T*T - mo;
    a = x / T;
    b = x % T;
    c = y / T;
    d = y % T;
    e = a*c / T;
    f = a*c % T;
    v = ((a*d+b*c)%mo + e*t) % mo;
    g = v / T;
    h = v % T;
    ans = (((f+g)*t%mo + b*d)% mo + h*T)%mo;
    while(ans < 0)
        ans += mo;
    return ans;
}

__int64 mod_exp(__int64 num,__int64 t,__int64 mo)
{
    __int64 ret = 1, temp = num % mo;
    for(; t; t >>=1,temp=mod_mul(temp,temp,mo))
        if(t & 1)
            ret = mod_mul(ret,temp,mo);

    return ret;
}

bool miller_rabbin(__int64 n)
{
    if(n == 2)
        return true;
    if(n < 2 || !(n&1))
        return false;
    int t = 0;
    __int64 a,x,y,u = n-1;
    while((u & 1) == 0)
    {
        t++;
        u >>= 1;
    }
    for(int i = 0; i < 50; i++)
    {
        a = rand() % (n-1)+1;
        x = mod_exp(a,u,n);
        for(int j = 0; j < t; j++)
        {
            y = mod_mul(x,x,n);
            if(y == 1 && x != 1 && x != n-1)
                return false;
            x = y;
        }
        if(x != 1)
            return false;
    }
    return true;
}
//PollarRho大整数因子分解
__int64 minFactor;
__int64 gcd(__int64 a,__int64 b)
{
    if(b == 0)
        return a;
    return gcd(b, a % b);
}

__int64 PollarRho(__int64 n, int c)
{
    int i = 1;
    srand(time(NULL));
    __int64 x = rand() % n;
    __int64 y = x;
    int k = 2;
    while(true)
    {
        i++;
        x = (mod_exp(x,2,n) + c) % n;
        __int64 d = gcd(y-x,n);
        if(1 < d && d < n)
            return d;
        if(y == x)
            return n;
        if(i == k)
        {
            y = x;
            k *= 2;
        }
    }
}
__int64 ans[1100],cnt;
void getSmallest(__int64 n, int c)
{
    if(n == 1)
        return;
    if(miller_rabbin(n))
    {
        ans[cnt++] = n;
        return;
    }
    __int64 val = n;
    while(val == n)
        val = PollarRho(n,c--);
    getSmallest(val,c);
    getSmallest(n/val,c);
}

int main()
{
    __int64 X;
    while(~scanf("%I64d",&X))
    {
        cnt = 0;
        getSmallest(X,200);
        sort(ans, ans+cnt);
        for(int i = 0; i < cnt; i++)
        {
            if(i!=0)
                printf("*%I64d",ans[i]);
            else
                printf("%I64d",ans[i]);
        }
        printf("\n");
    }
    return 0;
}

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转载于:https://www.cnblogs.com/gcczhongduan/p/4843718.html