题目链接 题意:题目定义了Carmichael Numbers 即 a^p % p = a.并且p不是素数.之后输入p,a问p是否为Carmichael Numbers? 坑点:先是各种RE,因为poj不能用srand()...之后各种WA..因为里面(a,p) ?= 1不一定互素,即这时Fermat定理的性质并不能直接用欧拉定理来判定..即 a^(p-1)%p = 1判断是错误的..作的 #include<iostream> #include<cstdio> #include&l…

题目连接 http://poj.org/problem?id=3641 Pseudoprime numbers Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power and divide by p, the remainder is a. Some (but…

题目链接:POJ 3641 Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power and divide by p, the remainder is a. Some (but not very many) non-prime values of p, know…

Pseudoprime numbers Time Limit: 1000MS Memory Limit: 65536K Total Submissions: 7954 Accepted: 3305 Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power and…

Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power and divide by p, the remainder is a. Some (but not very many) non-prime values of p, known as base-a ps…

模板题,直接用 /********************* Template ************************/ #include <set> #include <map> #include <list> #include <cmath> #include <ctime> #include <deque> #include <queue> #include <stack> #include &…

Pseudoprime numbers Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 11336   Accepted: 4891 Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power…

题目传送:http://poj.org/problem?id=2409 Description "Let it Bead" company is located upstairs at 700 Cannery Row in Monterey, CA. As you can deduce from the company name, their business is beads. Their PR department found out that customers are inte…

Description Here is a simple game. In this game, there are several piles of matches and two players. The two player play in turn. In each turn, one can choose a pile and take away arbitrary number of matches from the pile (Of course the number of mat…

Description You are a member of the space station engineering team, and are assigned a task in the construction process of the station. You are expected to write a computer program to complete the task.The space station is made up with a number of un…

Pseudoprime numbers Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 10903   Accepted: 4710 Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power…

Pseudoprime numbers Descriptions 费马定理指出,对于任意的素数 p 和任意的整数 a > 1,满足 ap = a (mod p) .也就是说,a的 p 次幂除以 p 的余数等于 a .p 的某些 (但不是很多) 非素数的值,被称之为以 a 为底的伪素数,对于某个 a 具有该特性.并且,某些 Carmichael 数,对于全部的 a 来说,是以 a为底的伪素数. 给定 2 < p ≤ 1000000000 且 1 < a < p ,判断 p 是否为以 …

http://poj.org/problem?id=3641 练手用,结果念题不清,以为是奇偶数WA了一发 #include<iostream> #include<cstdio> #include<cmath> using namespace std; typedef long long ll; bool judge_prime(ll k) { ll i; ll u=int(sqrt(k*1.0)); ;i<=u;i++) { ) ; } ; } ll mod_p…

Pseudoprime numbers Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 6044   Accepted: 2421 Description Fermat's theorem states that for any prime number p and for any integer a > 1, ap = a (mod p). That is, if we raise a to the pth power…

POJ3641 Pseudoprime numbers p是Pseudoprime numbers的条件: p是合数,(p^a)%p=a;所以首先要进行素数判断,再快速幂. 此题是大白P122 Carmichael Number 的简化版 /* * Created: 2016年03月30日 22时32分15秒 星期三 * Author: Akrusher * */ #include <cstdio> #include <cstdlib> #include <cstring&g…

Charm Bracelet Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 38909   Accepted: 16862 Description Bessie has gone to the mall's jewelry store and spies a charm bracelet. Of course, she'd like to fill it with the best charms possible fro…

题目:http://poj.org/problem?id=1201 差分约束裸套路:前缀和 本题可以不把源点向每个点连一条0的边,可以直接把0点作为源点.这样会快许多! 可能是因为 i-1 向 i 都连着一条0的边. 别忘了约束条件不仅有s[ i ] - s[ i-1 ] >= 0,还有s[ i ] - s[ i - 1] <= 1! 别忘了s的范围不是n而是mx! #include<iostream> #include<cstdio> #include<cstr…

一.题目大意 本题要求写出前5482个仅能被2,3,5, 7 整除的数. 二.题解 这道题从本质上和Poj 1338 Ugly Numbers(数学推导)是一样的原理,只需要在原来的基础上加上7的运算即可.还有一个不同之处在于输出上,这个题要求第n的英语表示.而英语中的表示呢,如果n的个位数是1,用nst表示个位数是2的用,nnd表示:个位数是3的,用nrd表示.但是n的最后两位是11.12.13的还是用nth表示,其他的也是用th表示. 三.java代码 import java.util.Sc…

这些天一直在看线段树,因为临近期末,所以看得断断续续,弄得有些知识点没能理解得很透切,但我也知道不能钻牛角尖,所以配合着刷题来加深理解. 然后,这是线段树裸题,而且是最简单的区间增加与查询,我参考了ACdreamer的模板,在此基础上自己用宏定义来精简了一下代码: #include<cstdio> typedef long long LL; #define root int rt, int l, int r #define lson rt*2, l, mid #define rson rt*2…

给出一个n*m的图,其中m是人,H是房子,.是空地,满足人的个数等于房子数. 现在让每个人都选择一个房子住,每个人只能住一间,每一间只能住一个人. 每个人可以向4个方向移动,每移动一步需要1$,问所有人移动到房子里的最少花费. 其中,n,m<=100,最多有100个人. 最小给用流裸题. 建立一个超级源点,跟每一个房子连一条边,容量为1,花费为0 每一个人与超级汇点连一条边,容量为1,花费为0 一个房子与每一个人建一条边,房子指向人,容量为1,花费用2者的距离(不是直线距离) 然后跑最小费用流算…

Roads in the North Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 2359   Accepted: 1157 Description Building and maintaining roads among communities in the far North is an expensive business. With this in mind, the roads are build such…

A Plug for UNIX Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 15597   Accepted: 5308 Description You are in charge of setting up the press room for the inaugural meeting of the United Nations Internet eXecutive (UNIX), which has an int…

Number Sequence Time Limit: 10000/5000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 27028    Accepted Submission(s): 11408 Problem Description Given two sequences of numbers : a[1], a[2], ...... , a[N], and b[1],…

2017-09-02 17:07:42 writer:pprp 通过这个题温习了一下刚学的LCS 代码如下: /* @theme:hdu1159 @writer:pprp @begin:17:01 @end:17:06 @declare:LCS的裸题,温习一下 @error:从1开始读入的话,用strlen也要从1开始测才可以 @date:2017/9/2 */ #include <bits/stdc++.h> using namespace std; ],s2[]; ][]; int mai…

最近BZOJ炸了,而我的博客上又更新了一些基本知识,所以这里刷一些裸题,用以丰富知识性博客 POJ2823   滑动的窗口 这是一道经典的单调队题,我记得我刚学的时候就是用这道题作为单调队列的例题,算一道比较基本的题目 先贴题目 Description An array of size n ≤ 106 is given to you. There is a sliding window of size k which is moving from the very left of the arr…

Economic times these days are tough, even in Byteland. To reduce the operating costs, the government of Byteland has decided to optimize the road lighting. Till now every road was illuminated all night long, which costs 1 Bytelandian Dollar per meter…

人生第一道splay不出所料是一道裸题,一道水题,一道2k代码都不到的题 #include <cstdio> ,n,p,q; ],c[][],size[],sp[]; void rot(int x) { ]==x); size[y]=size[c[y][k]]+size[c[x][k]]+;size[x]=size[c[x][!k]]+size[y]+; c[y][!k]=c[x][k];fa[c[y][!k]]=y; fa[x]=fa[y];]==y]=x; c[x][k]=y;fa[y]=…

主要借助这道比较裸的题来讲一下tarjan这种算法 tarjan是一种求解有向图强连通分量的线性时间的算法.(用dfs来实现) 如果两个顶点可以相互通达,则称两个顶点强连通.如果有向图G的每两个顶点都强连通,称G是一个强连通图.有向图的极大强连通子图,称为强连通分量. 在上面这张有向图中1,2,3,4形成了一个强连通分量,而1,2,4,和1,3,4并不是(因为它们并不是极大强连通子图). tarjan是用dfs来实现的(用了tarjan后我们就可以对图进行缩点(当然这道裸题用不到)) 这道题只要…

①洞穴勘测 bzoj2049 题意:由若干个操作,每次加入/删除两点间的一条边,询问某两点是否连通.保证任意时刻图都是一个森林.(两点之间至多只有一条路径) 这就是个link+cut+find root的裸题啦. LCT实现的时候注意在splay的时候要提前把所有点pushdown一下,详见代码. #include <iostream> #include <stdio.h> #include <stdlib.h> #include <algorithm> #…

[bzoj4034][HAOI2015]T2 试题描述 有一棵点数为 N 的树,以点 1 为根,且树点有边权.然后有 M 个 操作,分为三种: 操作 1 :把某个节点 x 的点权增加 a . 操作 2 :把某个节点 x 为根的子树中所有点的点权都增加 a . 操作 3 :询问某个节点 x 到根的路径中所有点的点权和. 输入 第一行包含两个整数 N, M .表示点数和操作数. 接下来一行 N 个整数,表示树中节点的初始权值. 接下来 N-1 行每行三个正整数 fr, to , 表示该树中存在一条边…