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题意:

G^{\sum d|{N\choose d}}\bmod 999911659

1 \le G \le 10^9,1 \le N \le 10^9

999911659是质数,根据欧拉定理:

G^{\sum d|{N\choose d}}\bmod 999911659 = G^{\sum d|{N\choose d} \bmod 999911658}\bmod 999911659

关键求\sum d|{N\choose d} \bmod 999911658

模数太大,直接lucas取模会炸

我们可以考虑将模数分解质因数

999911658=2\times 3 \times 4679 \times 35617

可以用lucas枚举约数算出

\begin{cases} a_1=\sum d|{N\choose d} \pmod 2 \\ a_2=\sum d|{N\choose d} \pmod 3 \\ a_3=\sum d|{N\choose d} \pmod {4679} \\ a_4=\sum d|{N\choose d} \pmod {35617} \end{cases}

然后通过crt求:

\begin{cases} x \equiv a_1 \pmod 2 \\ x \equiv a_2 \pmod 3 \\ x \equiv a_3 \pmod {4679} \\ x \equiv a_4 \pmod {35617} \end{cases}

#include<bits/stdc++.h>
namespace ZDY{
    #pragma GCC optimize(3)
    #define il __inline__ __attribute__ ((always_inline))
    #define ll long long
    #define ull unsigned long long
    #define db double
    #define sht short
    #define MB template <class T>il
    #define Fur(i,x,y) for(int i(x);i<=y;++i)
    #define Fdr(i,x,y) for(int i(x);i>=y;--i)
    #define fl(i,x) for(int i(head[x]),to;to=e[i].to,i;i=e[i].nxt)
    #define clr(x,y) memset(x,y,sizeof(x))
    #define cpy(x,y) memcpy(x,y,sizeof(x))
    #define fin(s) freopen(s".in","r",stdin)
    #define fout(s) freopen(s".out","w",stdout)
    #define fcin ios::sync_with_stdio(false)
    #define l2(n) ((int)(log2(n)))
    #define inf 2122219134
    MB T ABS(T x){return x>0?x:-x;}
    MB T MAX(T x,T y){return x>y?x:y;}
    MB T MIN(T x,T y){return x<y?x:y;}
    MB T GCD(T x,T y){return y?GCD(y,x%y):x;}
    MB void SWAP(T &x,T &y){T t=x;x=y;y=t;}
}using namespace ZDY;using namespace std;
namespace IO{const int str=1<<20;static char in_buf[str],*in_s,*in_t;bool __=0;il char gc(){return (in_s==in_t)&&(in_t=(in_s=in_buf)+fread(in_buf,1,str,stdin)),in_s==in_t?EOF:*in_s++;}il void in(string &ch){ch.clear();if(__)return;char c;while((c=gc())!=EOF&&isspace(c));if(c==EOF){__=1;return;}ch+=c;while((c=gc())!=EOF&&!isspace(c))ch+=c;if(c==EOF)__=1;}il void in(char &ch){if(__)return;char c;while((c=gc())!=EOF&&isspace(c));if(c==EOF)__=1;else ch=c;}il void in(char *ch){*ch='\0';if(__)return;char c;while((c=gc())!=EOF&&isspace(c));if(c==EOF){__=1;return;}*ch=c;ch++;while((c=gc())!=EOF&&!isspace(c))*ch=c,ch++;if(c==EOF)__=1;*ch='\0';}template<typename T>il void in(T &x){if(__)return;char c=gc();bool f=0;while(c!=EOF&&(c<'0'||c>'9'))f^=(c=='-'),c=gc();if(c==EOF){__=1;return;}x=0;while(c!=EOF&&'0'<=c&&c<='9')x=x*10+c-48,c=gc();if(c==EOF)__=1;if(f)x=-x;}template<typename T,typename ... arr>il void in(T &x,arr & ... y){in(x),in(y...);}const char ln='\n';static char out_buf[str],*out_s=out_buf,*out_t=out_buf+str;il void flush(){fwrite(out_buf,1,out_s-out_buf,stdout);out_s=out_buf;}il void pt(char c){(out_s==out_t)?(fwrite(out_s=out_buf,1,str,stdout),*out_s++=c):(*out_s++=c);}il void out(const char* s){while(*s)pt(*s++);}il void out(char* s){while(*s)pt(*s++);}il void out(char c){pt(c);}il void out(string s){for(int i=0;s[i];i++)pt(s[i]);}template<typename T>il void out(T x){if(!x){pt('0');return;}if(x<0)pt('-'),x=-x;char a[50],t=0;while(x)a[t++]=x%10,x/= 10;while(t--)pt(a[t]+'0');}template<typename T,typename ... arr>il void out(T x,arr & ... y){out(x),out(y...);}}using namespace IO;
const int N=100011,M=999911658;
ll n,G,fac[N],p,b[5]={0,2,3,4679,35617},a[5];
ll pw(ll x,ll b,ll mod=p){
    ll ans=1;
    while(b){
        if(b&1)ans=ans*x%mod;
        b>>=1;x=x*x%mod;
    }
    return ans;
}
ll inv(ll x){return pw(x,p-2);}
ll C(ll n,ll m){
    if(n<m)return 0;
    return fac[n]*inv(fac[m])%p*inv(fac[n-m])%p;
}
ll lucas(ll n,ll m){
    if(n<m)return 0;
    if(!n)return 1;
    return lucas(n/p,m/p)*C(n%p,m%p)%p;
}
ll crt(){
    ll ans=0;
    Fur(i,1,4){
        p=b[i];
        ans=(ans+a[i]*(M/p)%M*inv(M/p))%M;
    }
    return ans;
}
int main(){
    in(n,G);
    if(G%(M+1)==0)return puts("0"),0;
    fac[0]=1;
    Fur(t,1,4){
        p=b[t];
        Fur(i,1,p)fac[i]=fac[i-1]*i%p;
        for(int i=1;i*i<=n;++i)
        if(n%i==0){
            a[t]=(a[t]+lucas(n,i))%p;
            if(i*i!=n)a[t]=(a[t]+lucas(n,n/i))%p;
        }
    }
    printf("%lld\n",pw(G,crt(),M+1));
}
LG 2480 [SDOI2010]古代猪文
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