Farey Sequence
| Time Limit: 1000MS | Memory Limit: 65536K | |
| Total Submissions: 17744 | Accepted: 7109 |
Description
The Farey Sequence Fn for any integer n with n >= 2 is the set of irreducible rational numbers a/b with 0 < a < b <= n and gcd(a,b) = 1 arranged in increasing order. The first few are
F2 = {1/2}
F3 = {1/3, 1/2, 2/3}
F4 = {1/4, 1/3, 1/2, 2/3, 3/4}
F5 = {1/5, 1/4, 1/3, 2/5, 1/2, 3/5, 2/3, 3/4, 4/5}
You task is to calculate the number of terms in the Farey sequence Fn.
F2 = {1/2}
F3 = {1/3, 1/2, 2/3}
F4 = {1/4, 1/3, 1/2, 2/3, 3/4}
F5 = {1/5, 1/4, 1/3, 2/5, 1/2, 3/5, 2/3, 3/4, 4/5}
You task is to calculate the number of terms in the Farey sequence Fn.
Input
There are several test cases. Each test case has only one line, which contains a positive integer n (2 <= n <= 106). There are no blank lines between cases. A line with a single 0 terminates the input.
Output
For each test case, you should output one line, which contains N(n) ---- the number of terms in the Farey sequence Fn.
Sample Input
2 3 4 5 0
Sample Output
1 3 5 9
Source
POJ Contest,Author:Mathematica@ZSU
std的玄学做法没看懂
给n,求ans[n]。其中$ans[n]=ans[n-1]+phi[n]$,且n的范围比较大,在10的6次以内。则考虑打表解决。
先得到能整除i的最小正整数$md[i]$(一定是个素数),再利用性质3,得到$phi[i]$
不过我用线性筛水过去啦。
#include<iostream> #include<cstdio> #include<cmath> #include<cstring> #define LL long long using namespace std; const LL MAXN=3*1e6+10; LL prime[MAXN],tot=0,vis[MAXN],phi[MAXN],N; void GetPhi() { for(LL i=2;i<=N;i++) { if(!vis[i]) { prime[++tot]=i; phi[i]=i-1; } for(LL j=1;j<=tot&&prime[j]*i<=N;j++) { vis[ i*prime[j] ] = 1; if(i%prime[j]==0) { phi[ i*prime[j] ]=phi[i]*prime[j]; break; } else phi[ i*prime[j] ]=phi[i]*(prime[j]-1); } } for(LL i=1;i<=N;i++) phi[i]=phi[i]+phi[i-1]; } int main() { N=2*1e6+10; GetPhi(); while(cin>>N&&N!=0) printf("%lld ",phi[N]); return 0; }