Visible Lattice Points Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 5636   Accepted: 3317 Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible fr…

SPOJ Problem Set (classical) 7001. Visible Lattice Points Problem code: VLATTICE Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from corner at (0,0,0) ? A point X is visible…

http://poj.org/problem?id=3090 Visible Lattice Points Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 6153   Accepted: 3662 Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other…

题目:http://acm.hust.edu.cn/vjudge/problem/viewProblem.action?id=37193   Visible Lattice Points Time Limit: 1368MS   Memory Limit: 1572864KB   64bit IO Format: %lld & %llu Submit Status Description Consider a N*N*N lattice. One corner is at (0,0,0) and…

P8 Visible Lattice Points Time Limit:1000ms,     Memory Limit:65536KB Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible from the origin if the line from (0, 0…

Visible Lattice Points Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 7705   Accepted: 4707 Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible fr…

/* * POJ3090 Visible Lattice Points * 欧拉函数 */ #include<cstdio> using namespace std; int C,N; //欧拉函数模板 int Euler(int n) { int num = n; for(int i = 2;i <= n;i++) { if(n % i == 0) { num = num / i * (i-1); } while(n % i == 0) { n /= i; } } return num…

Visible Lattice Points 题意 : 从(0,0,0)出发在(N,N,N)范围内有多少条不从重合的直线:我们只要求gcd(x,y,z) = 1; 的点有多少个就可以了: 比如 : 点(2,4,6)可以等价成(1,2,3)即经过(1,2,3)的线一定经过(2,4,6): 莫比乌斯反演的模板题, 由于点坐标可以为0 , 需要考虑 x, y, z 中两个为0 和一个为0 的情况 : 两个为0 时 : 有 三个点(在x , y, z 轴上): 一个为0 时 : mu[i] * (n/i…

VLATTICE - Visible Lattice Points no tags  Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from corner at (0,0,0) ? A point X is visible from point Y iff no other lattice poin…

7001. Visible Lattice Points Problem code: VLATTICE Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from corner at (0,0,0) ? A point X is visible from point Y iff no other lat…

/** 题目:Visible Lattice Points 链接:https://vjudge.net/contest/178455#problem/A 题意:一个n*n*n大小的三维空间.一侧为(0,0,0)另一侧为(n,n,n): 问从(0,0,0)出发的经过该范围三维空间内整数点坐标的射线有多少条. 思路: 类比二维的:求1<=x<=n,1<=y<=n; gcd(x,y)=1的对数.因为y/x,所以可以反过来. 三维的:求1<=x,y,z<=n; gcd(x,y,…

Visible Lattice Points Time Limit:7000MS     Memory Limit:0KB     64bit IO Format:%lld & %llu Submit Status Description Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from co…

Visible Lattice Points Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from corner at (0,0,0) ? A point X is visible from point Y iff no other lattice point lies on the segmen…

7001. Visible Lattice Points Problem code: VLATTICE Consider a N*N*N lattice. One corner is at (0,0,0) and the opposite one is at (N,N,N). How many lattice points are visible from corner at (0,0,0) ? A point X is visible from point Y iff no other lat…

Visible Lattice Points 题目链接(点击) Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 9031   Accepted: 5490 Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is v…

一.题目 A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible from the origin if the line from (0, 0) to (x, y) does not pass through any other lattice point. For example, the p…

Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible from the origin if the line from (0, 0) to (x, y) does not pass through any other lattice point. For example…

欧拉函数裸题,直接欧拉函数值乘二加一就行了.具体证明略,反正很简单. 题干: Description A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible from the origin if the line from (0, 0) to (x, y) does not pass throu…

A lattice point (x, y) in the first quadrant (x and y are integers greater than or equal to 0), other than the origin, is visible from the origin if the line from (0, 0) to (x, y) does not pass through any other lattice point. For example, the point…

题目 #define _CRT_SECURE_NO_WARNINGS #include<stdio.h> #include<string.h> #include<algorithm> #include<math.h> using namespace std; ]; ],prime[],N=; ]; void get_phi() { int i, j, k; k = ; //有些题目1的欧拉函数是1,请注意 //phi[1]=1; ; i < N; i+…

题意: UVa 10820 这两个题是同一道题目,只是公式有点区别. 给出范围为(0, 0)到(n, n)的整点,你站在原点处,问有多少个整点可见. 对于点(x, y), 若g = gcd(x, y) > 1,则该点必被点(x/g, y/g)所挡住. 因此所见点除了(1, 0)和(0, 1)满足横纵坐标互素. 最终答案为,其中的+3对应(1, 1) (1, 0) (0, 1)三个点 #include <cstdio> ; ]; void get_table() { ; i <= m…

这样的点分成三类 1 不含0,要求三个数的最大公约数为1 2 含一个0,两个非零数互质 3 含两个0,这样的数只有三个,可以讨论 针对 1情况 定义f[n]为所有满足三个数最大公约数为n的三元组数量 F[n]为所有满足三个数的最大公约数能被n整除的三元组数量 显然 F[n]=∑n|df[d] 然后由莫比乌斯反演,f[n]=∑n|dμ[d/n]*F[d] 情况三也是一样的 #include<iostream> #include<algorithm> #include<set&g…

题目链接:http://www.spoj.com/problems/VLATTICE/ 题意:求gcd(a, b, c) = 1    a,b,c <=N 的对数. 思路:我们令函数g(x)为gcd(a, b, c) = x的对数,那么这题就是要求g(1).我们令f(x)为x | gcd(a, b, c)的对数,显然f(n) = sigma(n | d, g(d)) .f(d) = (n/d) * (n/d) * (n/d),那么我们就可以用莫比乌斯反演公式了, g(n) = sigma(n |…

链接:http://poj.org/problem?id=3090 题意:在坐标系中,从横纵坐标 0 ≤ x, y ≤ N中的点中选择点,而且这些点与(0,0)的连点不经过其它的点. 思路:显而易见,x与y仅仅有互质的情况下才会发生(0,0)与(x,y)交点不经过其它的点的情况,对于x,y等于N时,能够选择的点均为小于等于N而且与N互质的数,共Euler(N)个,而且不重叠.所以能够得到递推公式aa[i]=aa[i]+2*Euler(N). 代码: #include <iostream> #i…

这是好久之前做过的题,算是在考察欧拉函数的定义吧. 先把欧拉函数讲好:其实欧拉函数还是有很多解读的.emmm,最基础同时最重要的算是,¢(n)表示范围(1, n-1)中与n互质的数的个数 好了,我把规律都放在图上了. 代码就自己写吧.…

题意:求一个正方体里面,有多少个顶点可以在(0,0,0)位置直接看到,而不被其它点阻挡.也就是说有多少个(x,y,z)组合,满足gcd(x,y,z)==1或有一个0,另外的两个未知数gcd为1 定义f(t)为gcd(x,y,z)==t或有一个0,另外的两个未知数gcd为t的组合数 定义F(x)为 ∑p(t)   x|t  =  (n/x)* (n/x) * (n/x+3) 那么满足下面的 则 求出f(1)即为答案 代码: #include<bits/stdc++.h> using namesp…

#include<bits/stdc++.h> #define ll long long using namespace std; ; int vis[maxn]; int mu[maxn]; int prime[maxn]; ; int sum1[maxn]; int sum2[maxn]; void get_mu() { mu[]=; vis[]=; ;i<maxn;i++) { ; prime[++tot]=i; } ;j<=tot && i*prime[j]…

<题目链接> 题目大意: 给出范围为(0, 0)到(n, n)的整点,你站在(0,0)处,问能够看见几个点. 解题分析:很明显,因为 N (1 ≤ N ≤ 1000) ,所以无论 N 为多大,(0,1),(1,1),(1,0)这三个点一定能够看到,除这三个点以外,我们根据图像分析可得,设一个点的坐标为(x,y) ,那么只有符合gcd(x,y)=1的点才能被看到.又因为 (0,0)---(n,n)对角线两端的点对称,所以我们只需算一边即可,而一边的点数根据欧拉函数可得: $\sum_{i=2}^…

题目大意:求 \[\sum\limits_{i=2}^n\phi(i)\] 题解:利用与埃筛类似的操作,可在 \(O(nlogn)\) 时间求出结果. 代码如下 #include <cstdio> using namespace std; const int maxn=3010; int kase,n,phi[maxn]; int main(){ int T;scanf("%d",&T); while(T--){ scanf("%d",&…

题目链接 /* http://www.spoj.com/problems/VLATTICE/ 题意:求一个n*n*n的晶体,有多少点可以在(0,0,0)处可以直接看到. 同BZOJ.2301 题目即要求gcd(i,j,k)=1的(i,j,k)数对个数,1<=i,j,k<=n 由于是立体,所以最后再算上平面的点和坐标轴上的三个点就行了 */ #include<cstdio> #include<cctype> #define gc() getchar() typedef l…