Description
题库链接
记 \(f_i\) 为 \(fibonacci\) 数列的第 \(i\) 项
求 \[\prod_{i=1}^n\prod_{j=1}^mf_{gcd(i,j)}\]
对质数取模, 多组询问
- \(1\leq t\leq 1000,1\leq n,m\leq 10^6\)
- Solution
- \[\begin{aligned}\Rightarrow&\prod_{d=1}^{min\{n,m\}}f(d)^{\sum\limits_{i=1}^{\left\lfloor\frac{n}{d}\right\rfloor}\sum\limits_{j=1}^{\left\lfloor\frac{m}{d}\right\rfloor}[gcd(i,j)=1]}\\=&\prod_{d=1}^{min\{n,m\}}f(d)^{\sum\limits_{i=1}^{\left\lfloor\frac{n}{d}\right\rfloor}\sum\limits_{j=1}^{\left\lfloor\frac{m}{d}\right\rfloor}\sum\limits_{k\mid gcd(i,j)}\mu(k)}\\=&\prod_{d=1}^{min\{n,m\}}f(d)^{\sum\limits_{k=1}^{min\left\{\left\lfloor\frac{n}{d}\right\rfloor,\left\lfloor\frac{m}{d}\right\rfloor\right\}}\mu(k)\left\lfloor\frac{n}{kd}\right\rfloor\left\lfloor\frac{m}{kd}\right\rfloor}\end{aligned}\]
令 \(T=kd\) \[\prod_{T=1}^{min\{n,m\}}\prod_{d\mid T}f(d)^{\mu\left(\frac{T}{d}\right)\left\lfloor\frac{n}{T}\right\rfloor\left\lfloor\frac{m}{T}\right\rfloor}\]
我们把其中类似于狄利克雷卷积形式的东西记做 \(F(T)\) \[\prod_{T=1}^{min\{n,m\}}F(T)^{\left\lfloor\frac{n}{T}\right\rfloor\left\lfloor\frac{m}{T}\right\rfloor}\]
那么可以枚举因子来求 \(F(T)\) , 显然可以在近似于 \(O(n~ln~n)\) 的时限内预处理出来然后数论分块的复杂度为 \(O(t \sqrt n)\)
- Code
- //It is made by Awson on 2018.2.22
- #include <bits/stdc++.h>
- #define LL long long
- #define dob complex<double>
- #define Abs(a) ((a) < 0 ? (-(a)) : (a))
- #define Max(a, b) ((a) > (b) ? (a) : (b))
- #define Min(a, b) ((a) < (b) ? (a) : (b))
- #define Swap(a, b) ((a) ^= (b), (b) ^= (a), (a) ^= (b))
- #define writeln(x) (write(x), putchar('\n'))
- #define lowbit(x) ((x)&(-(x)))
- using namespace std;
- const int N = 1e6;
- const int yzh = 1e9+7;
- void read(int &x) {
- char ch; bool flag = 0;
- for (ch = getchar(); !isdigit(ch) && ((flag |= (ch == '-')) || 1); ch = getchar());
- for (x = 0; isdigit(ch); x = (x<<1)+(x<<3)+ch-48, ch = getchar());
- x *= 1-2*flag;
- }
- void print(LL x) {if (x > 9) print(x/10); putchar(x%10+48); }
- void write(LL x) {if (x < 0) putchar('-'); print(Abs(x)); }
- int n, m, t, mu[N+5], f[N+5], F[N+5];
- int isprime[N+5], prime[N+5], tot, inv[N+5];
- int quick_pow(int a, int b) {
- int ans = 1;
- while (b) {
- if (b&1) ans = 1ll*ans*a%yzh;
- b >>= 1, a = 1ll*a*a%yzh;
- }
- return ans;
- }
- void get_pre() {
- inv[1] = inv[2] = f[1] = f[2] = 1; for (int i = 3; i <= N; i++) f[i] = (f[i-1]+f[i-2])%yzh, inv[i] = quick_pow(f[i], yzh-2);
- for (int i = 0; i <= N; i++) isprime[i] = F[i] = 1; isprime[1] = 0, mu[1] = 1;
- for (int i = 2; i <= N; i++) {
- if (isprime[i]) prime[++tot] = i, mu[i] = -1;
- for (int j = 1; j <= tot && i*prime[j] <= N; j++)
- if (i%prime[j] != 0) isprime[i*prime[j]] = 0, mu[i*prime[j]] = -mu[i];
- else {isprime[i*prime[j]] = 0, mu[i*prime[j]] = 0; break; }
- }
- for (int i = 1; i <= N; i++)
- for (int j = 1; j*i <= N; j++)
- if (mu[j] == 1) F[i*j] = 1ll*F[i*j]*f[i]%yzh;
- else if (mu[j] == -1) F[i*j] = 1ll*F[i*j]*inv[i]%yzh;
- for (int i = 2; i <= N; i++) F[i] = 1ll*F[i]*F[i-1]%yzh;
- }
- void work() {
- get_pre(); read(t);
- while (t--) {
- read(n), read(m); if (n > m) Swap(n, m);
- int ans = 1;
- for (int i = 1, last; i <= n; i = last+1) {
- last = Min(n/(n/i), m/(m/i));
- ans = 1ll*ans*quick_pow(1ll*F[last]*quick_pow(F[i-1], yzh-2)%yzh, 1ll*(n/i)*(m/i)%(yzh-1))%yzh;
- }
- writeln(ans);
- }
- }
- int main() {
- work(); return 0;
- }