感觉像是HDU Keyboard的加强版，先推出3张牌时的所有组合，然后递推出n张牌

看到n=1e18时吓尿了

最后24那里还是推错了..

(5行1列 dp[1][n],dp[2][n],dp[3][n],dp[4][n],dp[5][n]) = A^(n-3) * (5行1列 4,12,12,12,24)

其中,A=

1,0,0,1,0

3,0,0,3,0

0,1,1,0,1

0,1,1,0,1

0,2,2,0,1

#include<bits/stdc++.h>

#define rep(i,j,k) for(register int i=j;i<=k;i++)

using namespace std;

typedef long long ll;

const int maxn  = 100;

const ll MOD = 1e9+9;

inline ll mod(ll a){return a%MOD;}

int b[6][6]={

    {0,0,0,0,0,0},

    {0,1,0,0,1,0},

    {0,3,0,0,3,0},

    {0,0,1,1,0,1},

    {0,0,1,1,0,1},

    {0,0,2,2,0,1},

};

ll c[6]={0,4,12,12,12,24};

struct Mat{

    ll m[7][7],r,c;

    void node(int rr,int cc,bool unit=0){

        r=rr;c=cc;

        memset(m,0,sizeof m);

        if(unit) rep(i,1,rr) m[i][i]=1;

    }

};

Mat operator * (Mat a,Mat b){

    Mat ans;ans.node(a.r,b.c);

    rep(i,1,a.r){

        rep(j,1,b.c){

            int t=max(a.r,b.c);

            rep(k,1,t){

                ans.m[i][j]+=mod(a.m[i][k]*b.m[k][j]);

                ans.m[i][j]=mod(ans.m[i][j]);

            }

        }

    }

    return ans;

}

Mat qmod(Mat a,ll n){

    Mat ans;ans.node(5,5,1);

    while(n){

        if(n&1) ans=ans*a;

        n>>=1;

        a=a*a;

    }

    return ans;

}

ll qmod(ll a,ll n){

    ll ans=1;

    while(n){

        if(n&1) ans=mod(mod(ans)*mod(a));

        n>>=1;

        a=mod(mod(a)*mod(a));

    }

    return mod(ans);

}

int main(){

    ll n;

    Mat base,base2; base.node(5,5); base2.node(5,1);

    rep(i,1,5) rep(j,1,5) base.m[i][j]=b[i][j];

    rep(i,1,5) base2.m[i][1]=c[i];

    while(scanf("%lld",&n)!=EOF){

        Mat tmp=qmod(base,n-3);

        Mat res=tmp*base2;

        ll ans=0;

        rep(i,1,5) {ans+=mod(res.m[i][1]);ans=mod(ans);}

        ans=mod(qmod(4,n)-ans);

        printf("%lld\n",ans<0?ans+MOD:ans);

    }

    return 0;

}