标签:solution 前缀和 for use bre printf cpp 莫比乌斯反演 include
求\(\sum_{i=1}^n\sum_{i=1}^n\varphi(gcd(i,j)),T\leqslant 5\times 10^3,n\leqslant 10^7\)
数论分块+莫比乌斯反演.
化式子
\(\sum_{i=1}^n\sum_{i=1}^n\varphi(gcd(i,j))\)
\(=\sum_d\varphi(d)\sum_{i=1}^n\sum_{j=1}^n[(i,j)=d]\)
\(=\sum_d\varphi(d)(\sum_{i=1}^{\lfloor \frac{n}{d}\rfloor}\sum_{j=1}^{\lfloor \frac{n}{d}\rfloor}[(i,j)=1])\)
\(=\sum_d\varphi(d)(\sum_{p}\mu(p)\sum_{i=1}^{\lfloor \frac{n}{pd}\rfloor}\sum_{j=1}^{\lfloor \frac{n}{pd}\rfloor})\)
\(\text{Let T=pd}\)
\(=\sum_{T}\lfloor \frac{n}{T}\rfloor\lfloor \frac{n}{T}\rfloor\sum_{p}\mu(p)\varphi(\frac{T}{p})\)
因为积性函数的狄利克雷前缀和也是积性函数,并且因为\(\mu\)的存在这个式子还是很好筛的.
/************************************************************** Problem: 4804 User: BeiYu Language: C++ Result: Accepted Time:4272 ms Memory:128240 kb ****************************************************************/ #include <bits/stdc++.h> using namespace std; typedef long long LL; const int N = 10000050; int pr[N],cp; bool b[N]; LL f[N]; void pre() { f[1]=1; for(int i=2;i<N;i++) { if(!b[i]) pr[++cp]=i,f[i]=i-2; for(int j=1;j<=cp && (LL)i*pr[j]<N;j++) { b[i*pr[j]]=1; if(i%pr[j]) f[i*pr[j]]=f[i]*f[pr[j]]; else { if(i/pr[j]%pr[j]) f[i*pr[j]]=f[i/pr[j]]*(pr[j]-1)*(pr[j]-1); else f[i*pr[j]]=f[i]*pr[j]; break; } } }for(int i=2;i<N;i++) f[i]+=f[i-1]; } int T,n; int main() { pre(); for(scanf("%d",&T);T--;) { scanf("%d",&n); LL ans=0; for(int i=1,j;i<=n;i=j+1) { j=n/(n/i); ans+=1LL*(n/i)*(n/i)*(f[j]-f[i-1]); }printf("%lld\n",ans); } return 0; }
标签:solution 前缀和 for use bre printf cpp 莫比乌斯反演 include
原文地址:http://www.cnblogs.com/beiyuoi/p/6721189.html