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10%的数据中,1 <= N <= 50;
20%的数据中,1 <= N <= 1000;
40%的数据中,1 <= N <= 100000;
100%的数据中,1 <= G <= 1000000000,1 <= N <= 1000000000。
1 #include<cstdio> 2 #define ll long long 3 const int P=999911659; 4 int t[4]={2,3,4679,35617}; 5 int fac[5][40000],M[5],G,N; 6 int pow(ll a,ll b,ll x){ 7 ll ans=1; 8 while (b>0){ 9 if (b&1==1) ans=(ans*a)%x; 10 b=b>>1;a=(a*a)%x; 11 } 12 return ans; 13 } 14 15 int C(int a,int b,int x){ 16 if (b>a) return 0; 17 return fac[x][a]*pow(fac[x][a-b]*fac[x][b],t[x]-2,t[x])%t[x]; 18 } 19 20 int lucas(int a,int b,int x){ 21 if(!b) return 1; 22 return C(a%t[x],b%t[x],x)*lucas(a/t[x],b/t[x],x)%t[x]; 23 } 24 25 void exgcd(int a,int b,ll &x,ll &y){ 26 if (b==0){x=1,y=0;return;} 27 exgcd(b,a%b,x,y); 28 int t=x;x=y,y=t-(a/b)*y; 29 } 30 31 ll CRT() 32 { 33 ll N=1; 34 ll i,d,x0,y0,ans=0; 35 for(i=0;i<4;i++) 36 N*=t[i]; 37 for(i=0;i<4;i++) 38 { 39 d=N/t[i]; 40 exgcd(d,t[i],x0,y0); 41 ans=(ans+d*x0*M[i])%N; 42 } 43 while(ans<= 0) 44 ans+=N; 45 return ans; 46 } 47 int main(){ 48 scanf("%d%d",&N,&G); 49 if (G==P) { 50 printf("0"); 51 return 0; 52 } 53 G%=P; 54 for (int i=0;i<4;i++){//这里求阶乘 55 fac[i][0]=1; 56 for (int j=1;j<=t[i];j++) fac[i][j]=(fac[i][j-1]*j)%t[i]; 57 } 58 for (int i=1;i*i<=N;i++){ 59 if(N%i==0){ 60 int tmp=N/i; 61 for (int j=0;j<4;j++){ 62 if (tmp!=i) M[j]=(M[j]+lucas(N,i,j))%t[j]; 63 M[j]=(M[j]+lucas(N,tmp,j))%t[j]; 64 } 65 } 66 } 67 printf("%d",pow(G,CRT(),P)); 68 }
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原文地址:http://www.cnblogs.com/wuminyan/p/5188551.html