#include<cstdio> #include<cmath> #include<iostream> #include<cstring> #include<algorithm> #include<map> #include<vector> using namespace std; typedef long long ll; typedef vector<ll>vec; typedef vector<vec>mat; ll M=998244353; map<ll,ll>cc; mat mul(mat &A,mat &B){ mat C(A.size(),vec(B[0].size())); for(int i=0;i<A.size();i++) for(int k=0;k<B.size();k++) for(int j=0;j<B[0].size();j++) { C[i][j]=(C[i][j]+A[i][k]*B[k][j])%M; } return C; } mat pow(mat A,ll n) { mat B(A.size(),vec(A.size())); for(int i=0;i<A.size();i++) { B[i][i]=1; } while(n>0) { if(n&1) B=mul(B,A); A=mul(A,A); n>>=1; } return B; } map<ll,ll>kkk; int main() { mat A(2,vec(2)); A[0][0]=3,A[0][1]=2,A[1][0]=1,A[1][1]=0; mat B(2,vec(2)); ll q,n; kkk.clear(); scanf("%lld%lld",&q,&n); ll dns=0,k,kk1; while(q--) { B=pow(A,n); ll kk=dns; // cout<<B[1][0]<<' '<<n<<endl;; dns^=B[1][0]; kkk[n]=B[1][0]; n=n^(B[1][0]*B[1][0]); if(dns==kk1) { if(q%2==1) dns=kk; else dns=kk1; break; } kk1=kk; //cout<<dns<<endl; } printf("%lld ",dns); }
For a series F:
F(0)=0,F(1)=1F(n)=3∗F(n−1)+2∗F(n−2),(n≥2)
We have some queries. For each query N, the answer A is the value F(N) modulo 998244353.
Moreover, the input data is given in the form of encryption, only the number of queries Q and the first query N1are given. For the others, the query Ni(2≤i≤Q) is defined as the xor of the previous Ni−1 and the square of the previous answer Ai−1. For example, if the first query N1 is 2, the answer A1 is 3, then the second query N2 is 2 xor (3∗3)=11.
Finally, you don't need to output all the answers for every query, you just need to output the xor of each query's answer A1 xor A2...xor AQ.
Input
The input contains two integers, Q,N, 1 ≤ Q≤107,0 ≤ N≤1018. Q representing the number of queries and N representing the first query.
Output:
An integer representing the final answer.
样例输入
17 473844410
样例输出
903193081