https://www.luogu.org/record/22874213
题目大意:给定n和m,求Σ(1<=i<=n)Σ(1<=j<=m)GCD(i,j)* 2-1
i和j的限制不同,传统的线性筛法失效了,这里我们考虑容斥原理
设:f(x) = ΣΣ[ gcd(i,j)==x ]
那么答案即为 Σf(x)* x, x:1->n //规定n<m, 即gcd(n,m)<=n
g(x) = Σ[ x | gcd(i,j) ] = n/x * m/x = f(x) + f(2x) + ... + f(n/x * x)
i: x, 2x...n/x * x, j: x, 2x...m/x * x。 所以gcd(i,j)为x倍数的有 (n/x) * (m/x)
移项一下,用原先预处理好的g[]算f[], f(x) = g(x) - f(2x) - f(3x) - ... - f(n/x* x)
倒过来算f(x),那么f(2x)...f(n/x * x)就都算好了
#include<cstdio>
#include<iostream>
using namespace std;
#define MAX 100000+999
#define ll long long
ll f[MAX];
int n,m;
int main() {
scanf("%d%d",&n,&m);
if(n > m) swap(n, m);
for(int i = 1; i <= n; i++) f[i] = (ll)(n/i) * (m/i);// 注意加括号!!! //注意变longlong
for(int i = n; i >= 1; i--) {//求f[i]
for(int j = i+i; j <= n; j+=i) {
f[i] -= f[j];
}
}
ll ans = 0;
for(int i = 1; i <= n; i++)
ans += f[i]*i;
// for(int i = 1; i <= n; i++) printf("%d
",f[i]);
printf("%lld",(ans<<1) - (ll)n*m);//把Σ变一下
}