Codeforces Round #261 (Div. 2)[ABCDE] ACM 题目地址:Codeforces Round #261 (Div. 2) A - Pashmak and Garden 题意:  一个正方形,它的边平行于坐标轴,给出这个正方形的两个点,求出另外两个点. 分析:  推断下是否平行X轴或平行Y轴,各种if. 代码: /* * Author: illuz <iilluzen[at]gmail.com> * File: A.cpp * Create Date: 2014…

链接:http://codeforces.com/contest/459/problem/B B. Pashmak and Flowers time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output Pashmak decided to give Parmida a pair of flowers from the garden. Ther…

http://codeforces.com/contest/459/problem/E 不明确的是我的代码为啥AC不了,我的是记录we[i]以i为结尾的点的最大权值得边,然后wa在第35  36组数据 然后參考答案了,然后----网上一份题解 大意: 给出一个带权有向图,求经过的边权绝对上升的最长路径(可能是非简单路径,就可以能经过一个点多次)所包括的边数. 题解: 对边按权值排序后,从小到大搞. 设q[x]为已经搞过的边组成的以x点为终点的最长路径包括的边数. 设当前边e[i]为从u到v的边,…

题目链接:http://codeforces.com/contest/459/problem/D D. Pashmak and Parmida's problem time limit per test 3 seconds memory limit per test 256 megabytes input standard input output standard output Parmida is a clever girl and she wants to participate in O…

题目连接:http://codeforces.com/contest/459/problem/E 题目大意:给定一张有向图,无自环无重边,每条边有一个边权,求最长严格上升路径长度.(1≤n,m≤3 *10^5) 初见此题觉得以边为点,以点为边,重建一张图,小边权向(通过点)相邻的大边权连边,然后得到一张DAG,跑最长DAG路即可.然而仔细一想,这样新图边数上限可以达到m^2.被否决. 后来想到边权有序化思想(并不知道怎么想到的…可能受kruskal思想影响),按边从大到小排序,然后一条边一条边加…

题目链接:http://codeforces.com/problemset/problem/459/B 题意: 给出n支花,每支花都有一个漂亮值.挑选最大和最小漂亮值得两支花,问他们的差值为多少,并且有多少种选法(无先后顺序). 现场做时,想到的是:用multimap记录每个漂亮值出现的次数,并不断更新最大最小值. 这个方法很笨,而且multimap的val值是多余的. 需要注意特殊情况:max==min 代码如下: #include<iostream>//A - Pashmak and Fl…

题目链接:http://codeforces.com/problemset/problem/459/A A. Pashmak and Garden time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output Pashmak has fallen in love with an attractive girl called Parmida s…

题意:n个点,m条边,每条边有一个权值,找一条边数最多的边权严格递增的路径,输出路径长度. 解法:先将边权从小到大排序,然后从大到小遍历,dp[u]表示从u出发能够构成的严格递增路径的最大长度. dp[u] = max(dp[u],dp[v]+1),因为有重复的边权值,所以用dis数组先记录,到不重复时一起更新重复的那些边权. 代码: (非原创) #include <iostream> #include <cstdio> #include <cstring> #incl…

题意:给出数组A,定义f(l,r,x)为A[]的下标l到r之间,等于x的元素数.i和j符合f(1,i,a[i])>f(j,n,a[j]),求有多少对这样的(i,j). 解法:分别从左到右,由右到左预处理到某个下标为止有多少个数等于该下标,用map维护. 然后树状数组更新每个f(j,n,a[j]),预处理完毕,接下来,从左往右扫过去,每次从树状数组中删去a[i],因为i != j,i不能用作后面的统计,然后统计getsum(inc[a[i]]-1), (inc表示从左到右),即查询比此时的a[i]…

第一场难得DIV2简单+AK人数多: E:给出一张图,求最多的边数,满足:在这个边的集合中后面的边的权值大于前面的边; 思路:我们将图按权值排列,以为只可能边权值小的跟新权值大的所以对于一条边我们只跟新一次,所以是O(N); 我们这里用两个数组进行跟新维护: #include<iostream> #include<string> #include<string.h> #include<vector> #include<algorithm> #in…

题目链接 题意:给出数组A,定义f(l,r,x)为A[]的下标l到r之间,等于x的元素数.i和j符合f(1,i,a[i])>f(j,n,a[j]),求i和j的种类数. 我们可以用map预处理出 f(1, i, a[i]) 和 f(j, n, a[j]) ,记为s1[n], s2[n]. 这样就变成求满足 s1[i] > s[j], i < j 情况的数量了,你会发现跟求逆序对一样 分析: 做题的时候想到过逆序数,但是很快放弃了,还是理解不深刻吧,,,233. 看了这个博客以后才明白这些过…

看着题意:[1,i]中等于a[i]的个数要大于[,jn]中等于a[j]的个数 且i<j,求有多少对这种(i,j)  ,i<j可是 i前面的合法个数 要大于j后面的 看起来非常像逆序数的样子,所以非常easy往树状数组想去,可是处理就看个人了,像我比赛的时候就处理得非常的麻烦,虽做出了可是花时间也多,经过杰哥的教育,事实上正着塞进树状数组 反着来找就能够了,灰常的简单清晰明了,贴一发纪念我的搓比... int n; int aa[1000000 + 55]; int bb[1000000 + 5…

题目链接 题意: n个人,k个车,d天.每一个人每天能够坐随意一个车.输出一种情况保证:不存在两个人,每天都在同一辆车上 (1 ≤ n, d ≤ 1000; 1 ≤ k ≤ 109). 分析: 比赛中用的方法麻烦至极...基本想法是均分,这样答案肯定比較优.第一天分到同一辆车上的人在第二天再均分,一直到结束就可以 学习了别人的方法:一个人在所有d天中每天坐哪辆车,能够表示为d位k进制数x. 那么2个人每天都在同一辆车上,就是两个人的x相等.所以我们仅仅要构造出n个不同的d位k进制数即可 这种方法…

Description Recently Pashmak has been employed in a transportation company. The company has kbuses and has a contract with a school which has n students. The school planned to take the students to d different places for d days (each day in one place)…

Description Pashmak has fallen in love with an attractive girl called Parmida since one year ago... Today, Pashmak set up a meeting with his partner in a romantic garden. Unfortunately, Pashmak has forgotten where the garden is. But he remembers that…

Description Pashmak's homework is a problem about graphs. Although he always tries to do his homework completely, he can't solve this problem. As you know, he's really weak at graph theory; so try to help him in solving the problem. You are given a w…

Description Parmida is a clever girl and she wants to participate in Olympiads this year. Of course she wants her partner to be clever too (although he's not)! Parmida has prepared the following test problem for Pashmak. There is a sequence a that co…

题目链接 题意: n个点.m个边的有向图.每条边有一个权值,求一条最长的路径,使得路径上边值严格递增.输出路径长度 )) 分析: 由于路径上会有反复点,而边不会反复.所以最開始想的是以边为状态进行DP,get TLE--后来想想.这个问题的复杂度一直分析的不太好. 对于新图.每条边仅仅訪问了一次,单单考虑这个是O(E),可是訪问时也訪问了全部点,所以是O(V+E) 考虑一下裸的DP怎样做:路径上有反复点,能够将状态具体化.dp[i][j]表示i点以j为结束边值的最长路.可是数据不同意这样.想想这…

E. Pashmak and Graph Pashmak's homework is a problem about graphs. Although he always tries to do his homework completely, he can't solve this problem. As you know, he's really weak at graph theory; so try to help him in solving the problem. You are…

Codeforces Round #372 (Div. 2) 不知不觉自己怎么变的这么水了,几百年前做A.B的水平,现在依旧停留在A.B水平.甚至B题还不会做.难道是带着一种功利性的态度患得患失?总共才打的几场 CF 节节掉分.学了快一年了成了个水货. 废话就不多说了,来看这次的这两题吧.很多CF的题是不想写博客的,如果题目质量很好的话我倒是愿意留在我的博客里: A. Crazy Computer time limit per test 2 seconds memory limit per te…

Codeforces Round #366 (Div. 2) A I hate that I love that I hate it水题 #I hate that I love that I hate it n = int(raw_input()) s = "" a = ["I hate that ","I love that ", "I hate it","I love it"] for i in ran…

Codeforces Round #354 (Div. 2) Problems     # Name     A Nicholas and Permutation standard input/output 1 s, 256 MB    x3384 B Pyramid of Glasses standard input/output 1 s, 256 MB    x1462 C Vasya and String standard input/output 1 s, 256 MB    x1393…

直达–>Codeforces Round #368 (Div. 2) A Brain’s Photos 给你一个NxM的矩阵,一个字母代表一种颜色,如果有”C”,”M”,”Y”三种中任意一种就输出”#Color”,如果只有”G”,”B”,”W”就输出”#Black&White”. #include <cstdio> #include <cstring> using namespace std; const int maxn = 200; const int INF =…

 cf之路,1,Codeforces Round #345 (Div. 2) ps:昨天第一次参加cf比赛,比赛之前为了熟悉下cf比赛题目的难度.所以做了round#345连试试水的深浅.....       其实这个应该是昨天就写完的,不过没时间了,就留到了今天.. 地址:http://codeforces.com/contest/651/problem/A A. Joysticks time limit per test 1 second memory limit per test 256…

Codeforces Round #279 (Div. 2) 做得我都变绿了! Problems     # Name     A Team Olympiad standard input/output 1 s, 256 MB  x2377 B Queue standard input/output 2 s, 256 MB  x1250 C Hacking Cypher standard input/output 1 s, 256 MB  x740 D Chocolate standard in…

Codeforces Round #262 (Div. 2) 1003 C. Present time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Little beaver is a beginner programmer, so informatics is his favorite subject. Soon his info…

Codeforces Round #262 (Div. 2) 1004 D. Little Victor and Set time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output Little Victor adores the sets theory. Let us remind you that a set is a group of…

A: 题目大意: 在一个multiset中要求支持3种操作: 1.增加一个数 2.删去一个数 3.给出一个01序列,问multiset中有多少这样的数,把它的十进制表示中的奇数改成1,偶数改成0后和给出的01序列相等(比较时如果长度不等各自用0补齐) 题解: 1.我的做法是用Trie数来存储,先将所有数用0补齐成长度为18位,然后就是Trie的操作了. 2.官方题解中更好的做法是,直接将每个数的十进制表示中的奇数改成1,偶数改成0,比如12345,然后把它看成二进制数10101,还原成十进制是2…

CF469 Codeforces Round #268 (Div. 2) http://codeforces.com/contest/469 开学了,时间少,水题就不写题解了,不水的题也不写这么详细了. A 水题 //#pragma comment(linker, "/STACK:102400000,102400000") #include<cstdio> #include<cmath> #include<iostream> #include<…

题目传送门 /* 贪心 + 模拟:首先,如果蜡烛的燃烧时间小于最少需要点燃的蜡烛数一定是-1(蜡烛是1秒点一支), num[g[i]]记录每个鬼访问时已点燃的蜡烛数,若不够,tmp为还需要的蜡烛数, 然后接下来的t秒需要的蜡烛都燃烧着,超过t秒,每减少一秒灭一支蜡烛,好!!! 详细解释:http://blog.csdn.net/kalilili/article/details/43412385 */ #include <cstdio> #include <algorithm> #i…