Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 5651    Accepted Submission(s): 2357 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the nex…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 4185    Accepted Submission(s): 1759 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 7152    Accepted Submission(s): 2998 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the nex…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 8838    Accepted Submission(s): 3684 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next…

首先,记50的为0,100的为1. 当m=4,n=3时,其中的非法序列有0110010; 从不合法的1后面开始,0->1,1->0,得到序列式0111101 也就是说,非法序列变为了n-1个0,m+1个1. 总的数目=C(m+n,n),非法的=C(m+n,m+1) 符合数目=(C(m+n,n)-C(m+n,m+1))*m!*n!; 化简得:(m+n)!*(m+1-n)/(m+1). Java代码: import java.io.*; import java.math.*; import jav…

Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next few days. As a crazy fan of Harry Potter, you will go to the cinema and have the first sight, won't you? Suppose the cinema only has one ticket-office and…

设50元的人为+1 100元的人为-1 满足前随意k个人的和大于等于0 卡特兰数 C(n+m, m)-C(n+m, m+1)*n!*m! import java.math.*; import java.util.*; public class Main { /** * @param args */ public static void main(String[] args) { Scanner sc = new Scanner(System.in); int cas = 1; while(tru…

Buy the Ticket Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next few days. As a crazy fan of Harry Potter, you will go to the cinema and have the first sight, won’t you? Suppose the cinema only has one tic…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 3614    Accepted Submission(s): 1522 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next…

Buy the TicketTime Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 6517 Accepted Submission(s): 2720 Problem DescriptionThe "Harry Potter and the Goblet of Fire" will be on show in the next few day…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 4726    Accepted Submission(s): 1993 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the nex…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 1886 Accepted Submission(s): 832   Problem Description The \\\\\\\"Harry Potter and the Goblet of Fire\\\\\\\" will be on show i…

题目链接:Buy a Ticket 题意: 给出n个点m条边,每个点每条边都有各自的权值,对于每个点i,求一个任意j,使得2×d[i][j] + a[j]最小. 题解: 这题其实就是要我们求任意两点的最短路,但是从点的个数上就知道这题不可以用floyd算法,其实多元最短路可以用dijkstra算.@.@!把所有的点的权值和点放到结构体里面,放入优先队列,其实这样就能保证每次拓展到的点就是这个点的最短路(因为是优先队列,保证拓展到的点这时候的值是最小的),其实就是这个点想通就很简单. #inclu…

D. Buy a Ticket time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Musicians of a popular band "Flayer" have announced that they are going to "make their exit" with a world tou…

题目链接  Buy a Ticket 题意   给定一个无向图.对于每个$i$ $\in$ $[1, n]$, 求$min\left\{2d(i,j) + a_{j}\right\}$ 建立超级源点$n+1$, 对于每一条无向边$(x, y, z)$,$x$向$y$连一条长度为$2z$的边,反之亦然. 对于每个$a_{i}$, 从$i$到$n+1$连一条长度为$a_{i}$的边,反之亦然. 然后跑一边最短路即可. #include <bits/stdc++.h> using namespace…

题目链接:https://vjudge.net/problem/HDU-1133 Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 7427    Accepted Submission(s): 3105 Problem Description The "Harry Potter and the Goblet…

Buy a Ticket 题意要求:求出每个城市看演出的最小费用, 注意的一点就是车票要来回的. 题解:dijkstra 生成优先队列的时候直接将在本地城市看演出的费用放入队列里, 然后直接跑就好了,  dis数组存的是, 当前情况下的最小花费是多少. 代码: #include<iostream> #include<cstring> #include<string> #include<queue> #include<vector> #includ…

Buy the Ticket Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 5566    Accepted Submission(s): 2326 Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the nex…

Buy A Ticket 题目大意 每个点有一个点权,每个边有一个边权,求对于每个点u的\(min(2*d(u,v)+val[v])\)(v可以等于u) solution 想到了之前的虚点,方便统计终点的权值,将所有点和虚点建边,边权不变,这样只需要求虚点到其他点的最短路即可,就将多源最短路问题转换成了单源最短路 #include <cstdio> #include <cstring> #include <queue> using namespace std; stru…

题目连接: http://acm.hdu.edu.cn/showproblem.php?pid=1133 题目大意: 有m+n个人去买电影票,每张电影票50元,  m个人是只有50元一张的,  n个人是只有100元一张的, 电影院自己本身是没有零钱的. 那么要收到100元的钱必须找人家50, 那么再次之前就必须 收到一个50元的, 问你有多少种不同的排列方式. (注意: 这里每个人都看成了不同的元素) 题目分析: 我们要是能找人家钱首先必须要有 m >= n 我们dp[m][n] 再加一个人 只…

传送门 [http://acm.hdu.edu.cn/showproblem.php?pid=1133] 题目描述和分析 代码 #include<iostream> #include<string.h> using namespace std; void Multiply(int a[],int z)//大数a[]和小数z相乘,结果存储在a[]中 { int maxn = 2000; int c = 0; for(int j=maxn-1;j>=0;j--)//用z乘以a[]…

Problem Description The "Harry Potter and the Goblet of Fire" will be on show in the next few days. As a crazy fan of Harry Potter, you will go to the cinema and have the first sight, won’t you? Suppose the cinema only has one ticket-office and…

题意: 演唱会门票售票处,那里最开始没有零钱.每一张门票是50元,人们只会拿着100元和50元去买票,有n个人是拿着50元买票,m个人拿着100元去买票. n+m个人按照某个顺序按序买票,如果一个人拿着100元买票,而你没有零钱去找给他,那么买票结束. 题目问你,这n+m个人按照某个顺序按序买票,中间买票没有暂停的排队方式有多少种 题解: 我们设dp[i][j]表示一共有i个人,其中有j个人拿着50元买票的有效排队方式 说一下转移方程: 如果第i个人准备在前i-1个人的排队方式基础上拿着50元去…

题意:有m个人有一张50元的纸币,n个人有一张100元的纸币.他们要在一个原始存金为0元的售票处买一张50元的票,问一共有几种方案数. 解法:(学习了他人的推导后~) 1.Catalan数的应用7的变形.(推荐阅读:http://www.cnblogs.com/chenhuan001/p/5157133.html).P.S.不知我之前自己推出的公式"C(n,m)*C(2*m,m)/(m+1)*P(n,n)*P(m,m)"是否是正确的. (1)在不考虑m人和n人本身组内的排列时,总方案数…

import java.math.BigInteger; import java.util.*; public class Main { public static void main(String []args) { Scanner cin=new Scanner(System.in); int n,m,i; int t1=0; while(cin.hasNextBigInteger()) { t1++; m=cin.nextInt(); n=cin.nextInt(); if(m==0&&am…

题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=2126 题意:给你n个物品,m元钱,问你最多能买个多少物品,并且有多少种解决方案. 一开始想到的是,先解决给m元钱因为我花的钱少就一定能购买够多的物品,因此是个贪心算法. 记买最多的物品数为c. 然后就是设计状态dp[i][j]代表我从前i个物品里花了j元钱,买c个物品有多少种方案. 后来发现状态维数不够,得重新想想. 于是就想到: 设计状态dp[i][j][k]代表我从前i个物品里买了j个,花的钱不…

题意:给出t组数据 每组数据给出n和m,n代表商品个数,m代表你所拥有的钱,然后给出n个商品的价值 问你所能买到的最大件数,和对应的方案数.思路: 如果将物品的价格看做容量,将它的件数1看做价值的话,那么用01背包就可以求的花费m钱所能买到的最大件数dp[m]. 但是题目还要求方案数,因此很容易想到再建立一个数组f[j],存储j元钱能买dp[j]个物品的方案数. 在求解01背包的过程中,要分两种情况讨论: 设当前所选的物品为i 1.   若选了物品i后,能买的件数比不选物品i的件数大,即dp[j…

题目:http://acm.hdu.edu.cn/showproblem.php?pid=1133 题目的意思是,m个人只有50元钱,n个人只有100元整钱,票价50元/人.现在售票厅没钱,只有50元钱的人可以不用找钱顺利买票,而拿着100元整钱的人只有在前面有50元的情况下才能买票,因为只有这样,才能找零50元.所有的人能否买票和排队的方式有一定关系,问使得所有的人能够顺利买票的排队方式有多少种? 上述问题可以抽象为下面的数学模型,数学模型及求解过程如下图: 本题中每个人是不一样的,所以本题的…

  题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=1133   题意:排队买50块一张的票,初始票台没有零钱可找,有m个人持有50元,n人持有100元,每人编号各不相同.问有多少种排队方案? 题解: 当 m<n时,肯定方案数是0. 当m>=n时,将队伍看成一个栈,持有50的人用0表示,持有100的人用1表示. 对于n+m个数我们能有的总方案数有C(n+m,n)种. 不符合的方案数:(以下是百度百科的解释) 考虑一个含n个1.n个0的2n位二进制数…

Buy the souvenirs Time Limit: 10000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Problem Description When the winter holiday comes, a lot of people will have a trip. Generally, there are a lot of souvenirs to sell, and sometimes…