D. Water Tree   Mad scientist Mike has constructed a rooted tree, which consists of n vertices. Each vertex is a reservoir which can be either empty or filled with water. The vertices of the tree are numbered from 1 to n with the root at vertex 1. Fo…

D. Water Tree Time Limit: 1 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/343/problem/D Description Mad scientist Mike has constructed a rooted tree, which consists of n vertices. Each vertex is a reservoir which can be either empty or…

Water Tree 给出一棵树,有三种操作: 1 x:把以x为子树的节点全部置为1 2 x:把x以及他的所有祖先全部置为0 3 x:询问节点x的值 分析: 昨晚看完题,马上想到直接树链剖分,在记录时间戳时需要记录一下出去时的时间戳,然后就是很裸很裸的树链剖分了. 稳稳的黄名节奏,因为一点私事所以没做导致延迟了 (ps:后来想了一下,不用树链剖分直接dfs序维护也行...) #include <set> #include <map> #include <list> #i…

D. Water Tree time limit per test 4 seconds memory limit per test 256 megabytes input standard input output standard output Mad scientist Mike has constructed a rooted tree, which consists of n vertices. Each vertex is a reservoir which can be either…

C. Propagating tree Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/383/problem/C Description Iahub likes trees very much. Recently he discovered an interesting tree named propagating tree. The tree consists of n nodes numb…

C. Propagating tree Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/383/problem/C Description Iahub likes trees very much. Recently he discovered an interesting tree named propagating tree. The tree consists of n nodes numb…

思路: dfs序其实是很水的东西.  和树链剖分一样, 都是对树链的hash. 该题做法是:每次对子树全部赋值为1,对一个点赋值为0,查询子树最小值. 该题需要注意的是:当我们对一棵子树全都赋值为1的时候, 我们要查询一下赋值前子树最小值是不是0, 如果是的话, 要让该子树父节点变成0, 否则变0的信息会丢失. 细节参见代码: #include <cstdio> #include <cstring> #include <algorithm> #include <i…

简单的树链剖分+线段树 #include<bits\stdc++.h> using namespace std; #define pb push_back #define lson root<<1,l,midd #define rson root<<1|1,midd+1,r ; vector<int>g[M]; ],lazy[M<<],top[M],son[M],fa[M],sz[M],dfn[M],to[M],deep[M],cnt,n; vo…

题目链接:点击传送 E. Propagating tree time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Iahub likes trees very much. Recently he discovered an interesting tree named propagating tree. The tree consi…

https://codeforces.com/contest/1062/problem/E 题意 给一颗树n,然后q个询问,询问编号l~r的点,假设可以删除一个点,使得他们的最近公共祖先深度最大.每次询问,输出删除的点和祖先的深度 思路 考虑dfs序来判断v是否在u的子树里: dfn[u]<dfn[v]<=max(dfn[u的子树]) 那么进一步拓展,dfs序之差越大,点就在越分离的地方,这些点的lca一定是lca(max(dfn[u]),min(dfn[u])) 这不仅知道了需要去掉哪个点(…