题目地址:CF1097D Makoto and a Blackboard
首先考虑 \(n=p^c\) ( \(p\) 为质数)的情况,显然DP:
令 \(f_{i,j}\) 为第 \(i\) 次替换后出现 \(p^j\) 的概率
边界:
\[f_{0,c}=1\]
状态转移方程:
\[f_{i,j}=\sum_{t=j}^{c} \frac{f_{i-1,t}}{t+1}\]
目标:
\[\sum_{j=0}^{c}\ f_{k,j}\ p^j\]
考虑一般情况,将 \(n\) 分解质因数:
\[n=\prod_{i=1}^{m} {p_i}^{c_i}\]
按照上述方法DP每个 \({p_i}^{c_i}\)
由于期望是积性函数,直接将所有答案乘起来即可 (我就是卡在这一步上,难受QWQ)
代码:
#include <bits/stdc++.h>
#define ll long long
using namespace std;
const int K = 10006, C = 56, P = 1000000007;
ll n, f[K][C], inv[C];
int k;
vector<pair<ll, int> > d;
void divide(ll n) {
for (ll i = 2; i <= sqrt(n); i++)
if (n % i == 0) {
int c = 0;
while (n % i == 0) {
n /= i;
++c;
}
d.push_back(make_pair(i, c));
}
if (n > 1ll) d.push_back(make_pair(n, 1));
}
ll work(ll p, int c) {
for (int i = 0; i <= k; i++)
for (int j = 0; j <= c; j++)
f[i][j] = 0;
f[0][c] = 1;
for (int i = 1; i <= k; i++)
for (int j = c; j >= 0; j--)
for (int t = j; t <= c; t++)
f[i][j] = (f[i][j] + f[i-1][t] * inv[t+1] % P) % P;
ll ans = 0, now = 1;
for (int j = 0; j <= c; j++) {
ans = (ans + f[k][j] * now % P) % P;
now = now * p % P;
}
return ans;
}
int main() {
inv[1] = 1;
for (int i = 2; i < C; i++)
inv[i] = -(P / i) * inv[P%i] % P;
cin >> n >> k;
divide(n);
ll ans = 1;
for (unsigned int i = 0; i < d.size(); i++)
ans = ans * work(d[i].first, d[i].second) % P;
cout << (ans + P) % P << endl;
return 0;
}