本题目输入格式同1984,这里的数据范围坑死我了!!!1984上的题目说边数m的范围40000,因为双向边,我开了80000+的大小,却RE.后来果断尝试下开了400000的大小,AC.题意:给出n个点,m条边. 接下来m行,每行对应u,v,len,字符(字符表示v位于u的哪个方向,在本题没有丝毫用处) 表示u和v的路径长度为len.注意本题是双向边! 给出k个查询,让你求两点间的距离.思路:可以这样处理:先处理出每个节点i到根的距离dist[i]. 设根节点1到a的路径和1到b的路径的最后一个…

POJ 1986 Distance Queries / UESTC 256 Distance Queries / CJOJ 1129 [USACO]距离咨询(最近公共祖先) Description Farmer John's cows refused to run in his marathon since he chose a path much too long for their leisurely lifestyle. He therefore wants to find a path…

标题来源:POJ 1986 Distance Queries 意甲冠军:给你一棵树 q第二次查询 每次你问两个点之间的距离 思路:对于2点 u v dis(u,v) = dis(root,u) + dis(root,v) - 2*dis(roor,LCA(u,v)) 求近期公共祖先和dis数组 #include <cstdio> #include <cstring> #include <vector> using namespace std; const int max…

POJ.1986 Distance Queries ( LCA 倍增 ) 题意分析 给出一个N个点,M条边的信息(u,v,w),表示树上u-v有一条边,边权为w,接下来有k个询问,每个询问为(a,b),求a,b两点到lca(a,b)的边权之和为多少. 倍增维护树上前缀和,求得LCA之后,相应做差即可. 代码总览 #include <cstdio> #include <algorithm> #include <cstring> #include <cmath>…

任意门:http://poj.org/problem?id=1986 Distance Queries Time Limit: 2000MS   Memory Limit: 30000K Total Submissions: 16648   Accepted: 5817 Case Time Limit: 1000MS Description Farmer John's cows refused to run in his marathon since he chose a path much t…

题目链接 Description Farmer John's cows refused to run in his marathon since he chose a path much too long for their leisurely lifestyle. He therefore wants to find a path of a more reasonable length. The input to this problem consists of the same input…

Distance Queries Time Limit: 2000MS   Memory Limit: 30000K Total Submissions: 12846   Accepted: 4552 Case Time Limit: 1000MS Description Farmer John's cows refused to run in his marathon since he chose a path much too long for their leisurely lifesty…

Distance Queries [题目链接]Distance Queries [题目类型]LCA Tarjan法 &题意: 输入n和m,表示n个点m条边,下面m行是边的信息,两端点和权,后面的那个字母无视掉,没用的.接着k,下面k个询问lca,输出即可 &题解: 首先看的这个 http://www.cnblogs.com/JVxie/p/4854719.html 大致懂了方法,之后又找了这个代码 http://blog.csdn.net/lianai911/article/details…

1.一颗树中,给出a,b,求最近的距离.(我没考虑不联通的情况,即不是一颗树的情况) 2.用最近公共祖先来求, 记下根结点到任意一点的距离dis[],这样ans = dis[u] + dis[v] - 2 * dis[lca(u, v)] 3. /* 离线算法,LCATarjan 复杂度O(n+Q); */ #include<iostream> #include<stdio.h> #include<string.h> using namespace std; ; ;//…

题目链接:http://poj.org/problem?id=1986 Description Farmer John's cows refused to run in his marathon since he chose a path much too long for their leisurely lifestyle. He therefore wants to find a path of a more reasonable length. The input to this prob…