HDU 5446 中国剩余定理+lucas

Unknown Treasure

Time Limit: 1500/1000 MS (Java/Others)    Memory Limit: 131072/131072 K (Java/Others)
Total Submission(s): 2389    Accepted Submission(s): 885

Problem Description

On the way to the next secret treasure hiding place, the mathematician discovered a cave unknown to the map. The mathematician entered the cave because it is there. Somewhere deep in the cave, she found a treasure chest with a combination lock and some numbers on it. After quite a research, the mathematician found out that the correct combination to the lock would be obtained by calculating how many ways are there to pick m different apples among n of them and modulo it with M . M is the product of several different primes.

 

Input

On the first line there is an integer T(T≤20) representing the number of test cases.

Each test case starts with three integers n,m,k(1≤m≤n≤1018,1≤k≤10) on a line where k is the number of primes. Following on the next line are k different primes p1,...,pk . It is guaranteed that M=p1⋅p2⋅⋅⋅pk≤1018 and pi≤105 for every i∈{1,...,k} .

 

Output

For each test case output the correct combination on a line.

 

Sample Input

1 9 5 2 3 5

 

Sample Output

6

 

Source

2015 ACM/ICPC Asia Regional Changchun Online

 

题意：C(n,m)%p1*p2*p3..pk

题解：中国剩余定理+lucas

#include<iostream>
#include<cstring>
#include<cstdio>
#include<algorithm>
#define ll __int64
#define mod 10000000007
using namespace std;
ll n,m,k;
int t;
ll exm;
ll f[1000010];
void init(int p) {                 //f[n] = n!
    f[0] = 1;
    for (int i=1; i<=p; ++i) f[i] = f[i-1] * i % p;
}
ll mulmod(ll x,ll y,ll m)
{
    ll ans=0;
    while(y)
    {
        if(y%2)
        {
            ans+=x;
            ans%=m;
        }
        x+=x;
        x%=m;
        y/=2;
    }
    ans=(ans+m)%m;
    return ans;
}

void exgcd(ll a, ll b, ll &x, ll &y)
{
    if(b == 0)
    {
        x = 1;
        y = 0;
        return;
    }
    exgcd(b, a % b, x, y);
    ll tmp = x;
    x = y;
    y = tmp - (a / b) * y;
}

ll pow_mod(ll a, ll x, int p)   {
    ll ret = 1;
    while (x)   {
        if (x & 1)  ret = ret * a % p;
        a = a * a % p;
        x >>= 1;
    }
    return ret;
}
ll CRT(ll a[],ll m[],ll n)
{
    ll M = 1;
    ll ans = 0;
    for(ll i=0; i<n; i++)
        M *= m[i];
    for(ll i=0; i<n; i++)
    {
        ll x, y;
        ll Mi = M / m[i];
        exgcd(Mi, m[i], x, y);
        ans = (ans +mulmod( mulmod( x , Mi ,M ), a[i] , M ) ) % M;
    }
    ans=(ans + M )% M;
    return ans;
}

ll Lucas(ll n, ll k, ll p) {       //C (n, k) % p
     init(p);
     ll ret = 1;
     while (n && k) {
        ll nn = n % p, kk = k % p;
        if (nn < kk) return 0;                   //inv (f[kk]) = f[kk] ^ (p - 2) % p
        ret = ret * f[nn] * pow_mod (f[kk] * f[nn-kk] % p, p - 2, p) % p;
        n /= p, k /= p;
     }
     return ret;
}
int main ()
{
    scanf("%d",&t);
    {
        for(int i=1;i<=t;i++)
        {
            ll ee[15];
            ll gg[15];
            scanf("%I64d %I64d %I64d",&n,&m,&k);
            for(ll j=0;j<k;j++)
            {
                scanf("%I64d",&exm);
                gg[j]=exm;;
                ee[j]=Lucas(n,m,exm);
            }
            printf("%I64d
",CRT(ee,gg,k));
        }
    }
    return 0;
}