Codeforces 1106F Lunar New Year and a Recursive Sequence | BSGS/exgcd/矩阵乘法

我诈尸啦!

高三退役选手好不容易抛弃天利和金考卷打场CF,结果打得和shi一样……还因为queue太长而unrated了!一个学期不敲代码实在是忘干净了……

没分该没分,考题还是要订正的 =v= 欢迎阅读本题解!

P.S. 这几个算法我是一个也想不起来了 TAT

题目链接

Codeforces 1106F Lunar New Year and a Recursive Sequence 新年和递推数列

题意描述

某数列({f_i})递推公式:$$f_i = (prod_{j=1}^kf_{i-j}^{b_j}) mod p$$

其中(b)是已知的长度为(k)的数列,(p = 998244353)(f_1 = f_2 = ... = f_{k-1} = 1)(f_k)未知。

给出两个数(n, m),构造一个(f_k)使得(f_n = m),无解输出-1。

(k le 100, n le 10^9)

题解

数论!真令人头秃!

首先这个数据范围让人想到什么?矩阵乘法!

矩阵乘法想推这个全是乘法和乘方的递推数列咋办?取对数!离散对数!

于是这道题关键的两个考点就被你发现啦!

(然而我太菜了,并不能发现 = =)

什么是离散对数?

众所周知(众==学过NTT的人等),这个喜闻乐见的模数(p = 998244353)有个原根(g=3)(g^i(0le i < P - 1))(1le x < P)一一对应。那么类比我们学过的对数,称这个(i)(x)的离散对数。

令数列(h_i)(f_i)的离散对数。

那么有递推式:$$h_i = (sum_{j=1}^kb_jcdot h_{i-j}) mod (p - 1)$$

其中(h_1 = h_2 = ... = h_{k-1} = 0)。注意模数变成了(p - 1)(费马小定理)。

这个就可以用矩阵加速了!如果我们把(h_k)设为1带进去,求得(h_n = c),那么有(h_n = c cdot h_k mod (p - 1))

(h_n)即为(m)的离散对数,用BSGS可求;

exgcd解刚才这个同余方程即可得到(h_k)

(f_k = g^{h_k}),快速幂即可得到(f_k)

如果exgcd发现没有解的话就输出-1。

是不是思路非常清晰啊~

代码

#include <cstdio>
#include <cstring>
#include <cmath>
#include <algorithm>
#include <iostream>
#include <cassert>
#define space putchar(' ')
#define enter putchar('
')
using namespace std;
typedef long long ll;
template <class T>
void read(T &x){
    char c;
    bool op = 0;
    while(c = getchar(), c < '0' || c > '9')
        if(c == '-') op = 1;
    x = c - '0';
    while(c = getchar(), c >= '0' && c <= '9')
        x = x * 10 + c - '0';
    if(op) x = -x;
}
template <class T>
void write(T x){
    if(x < 0) putchar('-'), x = -x;
    if(x >= 10) write(x / 10);
    putchar('0' + x % 10);
}

const int N = 102, P = 998244353, P2 = 998244352, G = 3;
int K;
ll b[N], n, m, C;

namespace BSGS {
    const int S = 32000, M = 2000000;
    int cnt = 0, adj[M + 5], nxt[S + 5];
    ll key[S + 5], val[S + 5];
    void insert(ll K, ll V){
        int p = K % M;
        key[++cnt] = K;
        val[cnt] = V;
        nxt[cnt] = adj[p];
        adj[p] = cnt;
    }
    ll search(ll K){
        for(int u = adj[K % M]; u; u = nxt[u])
            if(key[u] == K) return val[u];
        return -1;
    }
    void init(){
        ll sum = 1;
        for(int i = 1; i <= S; i++)
            sum = sum * G % P;
        ll tot = 1;
        for(int i = 1; (i - 1) * S < P - 1; i++)
            tot = tot * sum % P, insert(tot, i * S);
    }
    ll log(ll x){
        ll sum = 1, ret;
        for(int i = 1; i <= S; i++){
            sum = sum * G % P;
            ret = search(sum * x % P);
            if(~ret && ret < P - 1) return ret - i;
        }
        assert(0);
        return -1;
    }
}

struct matrix {
    ll g[N][N];
    matrix(){
        memset(g, 0, sizeof(g));
    }
    matrix(int x){
        memset(g, 0, sizeof(g));
        for(int i = 1; i <= K; i++)
            g[i][i] = 1;
    }
    matrix operator * (const matrix &b){
        matrix c;
        for(int i = 1; i <= K; i++)
            for(int j = 1; j <= K; j++)
                for(int k = 1; k <= K; k++)
                    c.g[i][j] = (c.g[i][j] + g[i][k] * b.g[k][j]) % P2;
        return c;
    }
};

ll qpow(ll a, ll x){
    ll ret = 1;
    while(x){
        if(x & 1) ret = ret * a % P;
        a = a * a % P;
        x >>= 1;
    }
    return ret;
}
matrix qpow(matrix a, ll x){
    matrix ret(1);
    while(x){
        if(x & 1) ret = ret * a;
        a = a * a;
        x >>= 1;
    }
    return ret;
}
ll calcC(){
    matrix ret, op;
    ret.g[K][1] = 1;
    for(int i = 1; i < K; i++)
        op.g[i][i + 1] = 1;
    for(int i = 1; i <= K; i++)
        op.g[K][i] = b[K - i + 1];
    ret = qpow(op, n - K) * ret;
    return ret.g[K][1];
}
void exgcd(ll a, ll b, ll &g, ll &x, ll &y){
    if(!b) return (void)(x = 1, y = 0, g = a);
    exgcd(b, a % b, g, y, x);
    y -= x * (a / b);
}
ll solve(ll A, ll B){ //Ax % P2 == B, solve x
    ll a = A, b = P2, g, x, y;
    exgcd(a, b, g, x, y);
    if(B % g) return -1;
    x *= B / g, y *= B / g;
    ll t = b / g;
    x = (x % t + t) % t;
    return x;
}

int main(){

    BSGS::init();
    read(K);
    for(int i = 1; i <= K; i++) read(b[i]);
    read(n), read(m);
    C = calcC();
    m = BSGS::log(m);
    ll ans = solve(C, m);
    if(ans == -1) puts("-1");
    else write(qpow(G, ans)), enter;

    return 0;
}
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原文地址:https://www.cnblogs.com/RabbitHu/p/10349388.html