[SDOI2015]约数个数和

Sol

首先有个结论
\(\sum_{i=1}^{m}\sum_{j=1}^{n}d(i*j)=\sum_{i=1}^{m}\sum_{j=1}^{n}\sum_{x|i}\sum_{y|i}[gcd(x,y)==1]\)
证明：可以看po姐的博客

接着这个式子推

\[原式=\sum_{x=1}^{n}\sum_{y=1}^{m}([gcd(x, y)==1] * \sum_{x|i}\sum_{y|i} 1)\\ =\sum_{x=1}^{n}\sum_{y=1}^{m}[gcd(x, y)==1\lfloor\frac{n}{x}\rfloor\lfloor\frac{m}{y}\rfloor]\\ 设f(i)=\sum_{x=1}^{n}\sum_{y=1}^{m}[gcd(x, y)==i\lfloor\frac{n}{x}\rfloor\lfloor\frac{m}{y}\rfloor]\\ 设g(i)=\sum_{x|d}f(d) \]

f(i)可以通过莫比乌斯反演求出
考虑求g(i)

\[g(i)=\sum_{i|gcd(x,y)}\lfloor\frac{n}{x}\rfloor\lfloor\frac{m}{y}\rfloor\\ =\sum_{i|x}\sum_{i|y}\lfloor\frac{n}{x}\rfloor\lfloor\frac{m}{y}\rfloor\\ =\sum_{x=1}^{\lfloor\frac{n}{i}\rfloor}\sum_{y=1}^{\lfloor\frac{m}{y}\rfloor}\lfloor\frac{n}{x*i}\rfloor\lfloor\frac{m}{y*i}\rfloor\\ 换个元=\sum_{i=1}^{x}\sum_{j=1}^{y}\lfloor\frac{x}{i}\rfloor\lfloor\frac{y}{j}\rfloor\\ \]

这个东西\(\sum_{i=1}^{x}\lfloor\frac{x}{i}\rfloor\)就是每个数的倍数的个数和的和，就是每个数约数的个数和的和预处理一下，前缀和一下就好，于是每个g(i)就可以O(1) 求。。。（约数的个数是积性函数，也可以线性筛）
数论分块什么的就不说了

# include <bits/stdc++.h>
# define RG register
# define IL inline
# define Fill(a, b) memset(a, b, sizeof(a))
using namespace std;
typedef long long ll;
const int _(5e4 + 1);

IL ll Read(){
    char c = '%'; ll x = 0, z = 1;
    for(; c > '9' || c < '0'; c = getchar()) if(c == '-') z = -1;
    for(; c >= '0' && c <= '9'; c = getchar()) x = x * 10 + c - '0';
    return x * z;
}

int prime[_], mu[_], d[_], pred[_], num;
bool isprime[_];

IL void Prepare(){
	isprime[1] = 1; mu[1] = d[1] = 1;
	for(RG int i = 2; i < _; ++i){
		if(!isprime[i]){  prime[++num] = i; mu[i] = -1; d[i] = 2; pred[i] = 1;  }
		for(RG int j = 1; j <= num && i * prime[j] < _; ++j){
			isprime[i * prime[j]] = 1;
			if(i % prime[j]){  mu[i * prime[j]] = -mu[i]; d[i * prime[j]] = d[i] * 2; pred[i * prime[j]] = 1;  }
			else{
				mu[i * prime[j]] = 0;
				pred[i * prime[j]] = pred[i] + 1;
				d[i * prime[j]] = d[i] / (pred[i] + 1) * (pred[i] + 2);
				break;
			}
		}
		d[i] += d[i - 1]; mu[i] += mu[i - 1];
	}
}

int main(RG int argc, RG char *argv[]){
	Prepare();
	for(RG int T = Read(); T; --T){
		RG int n = Read(), m = Read(); RG ll ans = 0;
		if(n > m) swap(n, m);
		for(RG int i = 1, j; i <= n; i = j + 1){
			j = min(n / (n / i), m / (m / i));
			ans += 1LL * (mu[j] - mu[i - 1]) * d[n / i] * d[m / i];
		}
		printf("%lld\n", ans);
	}
	return 0;
}