https://cn.vjudge.net/problem/SPOJ-COT2 这个是树上莫队模版啊.. 树上莫队有两种,第一种就是括号序莫队 设节点i在括号序中首次出现位置为pl[i] 那么路径(i,j)上的节点,相当于括号序中pl[i]到pl[j]中所有只出现1次的节点,可能还要加上i,j,lca(i,j) 更精确的描述:https://blog.csdn.net/xianhaoming/article/details/52201761 这样很容易用序列莫队+lca(i,j),i,j的特判解…
Count on a tree II 思路: 树上莫队: 先分块,然后,就好办了: 来,上代码: #include <cmath> #include <cstdio> #include <cstring> #include <iostream> #include <algorithm> using namespace std; #define maxn 40005 #define maxm 100005 struct QueryType { in…
COT2 - Count on a tree II http://www.spoj.com/problems/COT2/ #tree You are given a tree with N nodes. The tree nodes are numbered from 1 to N. Each node has an integer weight. We will ask you to perform the following operation: u v : ask for how many…
COT2 - Count on a tree II #tree You are given a tree with N nodes. The tree nodes are numbered from 1 to N. Each node has an integer weight. We will ask you to perform the following operation: u v : ask for how many different integers that represent…
SPOJ10707 COT2 Count on a tree II Solution 我会强制在线版本! Solution戳这里 代码实现 #include<stdio.h> #include<stdlib.h> #include<string.h> #include<math.h> #include<algorithm> #include<queue> #include<set> #include<map>…
BZOJ2589 Spoj 10707 Count on a tree II Solution 吐槽:这道题目简直...丧心病狂 如果没有强制在线不就是树上莫队入门题? 如果加了强制在线怎么做? 考虑分块(莫队与分块真是基友) 我们按照深度为\(\sqrt{n}\)的子树分块,那么这一棵树最多不超过\(\sqrt{n}\)个块. 维护每一个块的根节点到树上每一个节点的答案,暴力即可.然后用可持久化块状数组维护一下遍历时出现的最深的颜色的深度. 查询答案的做法: 在一个块内,直接暴力查. 不在一个…
[SPOJ]Count On A Tree II(树上莫队) 题面 洛谷 Vjudge 洛谷上有翻译啦 题解 如果不在树上就是一个很裸很裸的莫队 现在在树上,就是一个很裸很裸的树上莫队啦. #include<iostream> #include<cstdio> #include<cstdlib> #include<cstring> #include<cmath> #include<algorithm> #include<set&…
COT2 - Count on a tree II You are given a tree with N nodes. The tree nodes are numbered from 1 to N. Each node has an integer weight. We will ask you to perform the following operation: u v : ask for how many different integers that represent the we…
[BZOJ2589][SPOJ10707]Count on a tree II 题面 bzoj 题解 这题如果不强制在线就是一个很\(sb\)的莫队了,但是它强制在线啊\(qaq\) 所以我们就用到了另一个东西:树分块 具体是怎么分块的呢:根据深度,从最深的叶子节点往上分,同一子树内的节点在一个块 比如说上面那张图, 有\(7\)个点,那么我们每隔\(2\)的深度就分一块 但是我们又要保证同一子树内的在一块,且要从最深的叶子节点一直往下 所以最后分块的结果:\((1,2)(7,6,3)(4,5)…
「SPOJ10707」Count on a tree II 传送门 树上莫队板子题. 锻炼基础,没什么好说的. 参考代码: #include <algorithm> #include <cstdio> #include <cmath> #define rg register #define file(x) freopen(x".in", "r", stdin), freopen(x".out", "w…