Prime Distance On Tree Problem description. You are given a tree. If we select 2 distinct nodes uniformly at random, what's the probability that the distance between these 2 nodes is a prime number? Input The first line contains a number N: the numbe…

题意:求树上距离为k的点对个数: 解题关键:练习一下点分治不用容斥 而直接做的做法.注意先查询,后更新. 不过这个方法有个缺陷,每次以一个新节点为根,必须memset mp数组,或许使用map会好些,更新序号一类用ca这种形式更好些. 试了一下,map更慢,应该是带log的原因. 点分治解法: #pragma comment(linker,"/STACK:102400000,102400000") #include<cstdio> #include<cstring&g…

Tree     Description Give a tree with n vertices,each edge has a length(positive integer less than 1001). Define dist(u,v)=The min distance between node u and v. Give an integer k,for every pair (u,v) of vertices is called valid if and only if dist(u…

Tree Time Limit: 1000MS   Memory Limit: 30000K Total Submissions: 24258   Accepted: 8062 Description Give a tree with n vertices,each edge has a length(positive integer less than 1001). Define dist(u,v)=The min distance between node u and v. Give an…

Tree Time Limit: 1000MS   Memory Limit: 30000K       Description Give a tree with n vertices,each edge has a length(positive integer less than 1001). Define dist(u,v)=The min distance between node u and v. Give an integer k,for every pair (u,v) of ve…

1468: Tree Time Limit: 10 Sec  Memory Limit: 64 MBSubmit: 1025  Solved: 534[Submit][Status][Discuss] Description 给你一棵TREE,以及这棵树上边的距离.问有多少对点它们两者间的距离小于等于K Input N(n<=40000) 接下来n-1行边描述管道,按照题目中写的输入 接下来是k Output 一行,有多少对点之间的距离小于等于k Sample Input 7 1 6 13 6…

D Tree Problem Description   There is a skyscraping tree standing on the playground of Nanjing University of Science and Technology. On each branch of the tree is an integer (The tree can be treated as a connected graph with N vertices, while each br…

好久没做过树分治的题了,对上一次做是在南京赛里跪了一道很裸的树分治题后学的一道,多校的时候没有看这道题,哪怕看了感觉也看不出来是树分治,看出题人给了解题报告里写了树分治就做一下好了. 题意其实就是给你一个图,然后让你转换成一棵树,这棵树满足的是根节点1到其余各点的距离都是图里的最短距离,而且为了保证这棵树的唯一性,路径也必须是最小的.转化成树的方法其实就是跑一次spfa.spfa的时候记下所有到这个的前驱的边,然后这些边集反向的边补上就是构成所有最短路的边.然后在这些边上跑一次dfs,跑前将边按…

人生的第一道树分治,要是早点学我南京赛就不用那么挫了,树分治的思路其实很简单,就是对子树找到一个重心(Centroid),实现重心分解,然后递归的解决分开后的树的子问题,关键是合并,当要合并跨过重心的两棵子树的时候,需要有一个接近O(n)的方法,因为f(n)=kf(n/k)+O(n)解出来才是O(nlogn).在这个题目里其实就是将第一棵子树的集合里的每个元素,判下有没符合条件的,有就加上,然后将子树集合压进大集合,然后继续搞第二棵乃至第n棵.我的过程用了map,合并是nlogn的所以代码速度颇…

题目链接 Distance in Tree $k <= 500$ 这个条件十分重要. 设$f[i][j]$为以$i$为子树,所有后代中相对深度为$j$的结点个数. 状态转移的时候,一个结点的信息由他的儿子转移过来. 那么一边进行状态转移,一边统计答案即可. #include <bits/stdc++.h> using namespace std; ][], deep[]; vector <]; int n, k, x, y; long long ans; void dfs(int…