hdu2588 GCD 给定n，m。求x属于[1,n]。有多少个x满足gcd(x,n)>=m; 容斥或者欧拉函数 - 相关文章

【hdu2588 GCD 给定n，m。求x属于[1,n]。有多少个x满足gcd(x,n)>=m; 容斥或者欧拉函数】的更多相关文章

【hdu-2588】GCD(容斥定理+欧拉函数+GCD()原理)

GCD Time Limit : 2000/1000ms (Java/Other) Memory Limit : 32768/32768K (Java/Other) Total Submission(s) : 3 Accepted Submission(s) : 2 Problem Description The greatest common divisor GCD(a,b) of two positive integers a and b,sometimes written (a,b…

hdu2588 GCD 给定n，m。求x属于[1,n]。有多少个x满足gcd(x,n)>=m; 容斥或者欧拉函数

GCD Time Limit: / MS (Java/Others) Memory Limit: / K (Java/Others) Total Submission(s): Accepted Submission(s): Problem Description The greatest common divisor GCD(a,b) of two positive integers a and b,sometimes written (a,b),,)=,(,)=. (a,b) can be e…

hdoj 1787 GCD Again【欧拉函数】

GCD Again Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 2673 Accepted Submission(s): 1123 Problem Description Do you have spent some time to think and try to solve those unsolved problem af…

BZOJ2818: Gcd 欧拉函数求前缀和

给定整数N,求1<=x,y<=N且Gcd(x,y)为素数的数对(x,y)有多少对. 如果两个数的x,y最大公约数是z,那么x/z,y/z一定是互质的然后找到所有的素数,然后用欧拉函数求一下前缀和就行 #include <iostream> #include <stdio.h> #include <string.h> #include <algorithm> using namespace std; ; const int INF=0x3f3f3…

Trees in a Wood. UVA 10214 欧拉函数或者容斥定理给定a,b求 |x|<=a, |y|<=b这个范围内的所有整点不包括原点都种一棵树。求出你站在原点向四周看到的树的数量/总的树的数量的值。

/** 题目:Trees in a Wood. UVA 10214 链接:https://vjudge.net/problem/UVA-10214 题意:给定a,b求 |x|<=a, |y|<=b这个范围内的所有整点不包括原点都种一棵树.求出你站在原点向四周看到的树的数量/总的树的数量的值. 思路: 坐标轴上结果为4,其他四个象限和第一个象限看到的数量一样.所以求出x在[1,a]和y在[1,b]的x/y互质对数即可. 由于a比较小,所以枚举x,然后求每一个x与[1,b]的互质对数. 方法: 1…

hdu2588 GCD （欧拉函数）

GCD 题意:输入N,M(2<=N<=1000000000, 1<=M<=N), 设1<=X<=N,求使gcd(X,N)>=M的X的个数. (文末有题) 知识点: 欧拉函数.http://www.cnblogs.com/shentr/p/5317442.html 题解一: 当M==1时,显然答案为N. 当M!=1. X是N的因子的倍数是 gcd(X,N)>1 && X<=N 的充要条件.so 先把N素因子分解, N= …

HDU2588:GCD（欧拉函数的应用）

题目链接:传送门题目需求:Given integers N and M, how many integer X satisfies 1<=X<=N and (X,N)>=M.(2<=N<=1000000000, 1<=M<=N), 题目解析: 求(X,N),不用想要分解N的因子,分解方法如下,我一开始直接分解for(int i=2;i<=n/2;i++),这样的话如果n==10^9,那么直接超时,因为这点失误直接浪费了一中午的时间,要这么分解for(in…

(hdu step 7.2.2)GCD Again(欧拉函数的简单应用——求[1,n)中与n不互质的元素的个数)

题目: GCD Again Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 125 Accepted Submission(s): 84 Problem Description Do you have spent some time to think and try to solve those unsolved problem afte…

hdu2588 gcd 欧拉函数

GCD Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 1567 Accepted Submission(s): 751 Problem Description The greatest common divisor GCD(a,b) of two positive integers a and b,sometimes writte…

BZOJ 2818: Gcd [欧拉函数质数线性筛]【学习笔记】

2818: Gcd Time Limit: 10 Sec Memory Limit: 256 MBSubmit: 4436 Solved: 1957[Submit][Status][Discuss] Description 给定整数N,求1<=x,y<=N且Gcd(x,y)为素数的数对(x,y)有多少对. 1<=N<=10^7 uva上做过gcd(x,y)=1的题 gcd(x,y)=p ---> gcd(x/p,y/p)=1 每个质数做一遍行了答案是欧拉函数的前缀和*2…