Nearest Common Ancestors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 20983   Accepted: 11017 Description A rooted tree is a well-known data structure in computer science and engineering. An example is shown below:    In the figure, e…

Nearest Common Ancestors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 27316   Accepted: 14052 Description A rooted tree is a well-known data structure in computer science and engineering. An example is shown below:  In the figure, eac…

/* *********************************************** Author :kuangbin Created Time :2013-9-5 9:45:17 File Name :F:\2013ACM练习\专题学习\LCA\POJ1330_3.cpp ************************************************ */ #include <stdio.h> #include <string.h> #inclu…

POJ 1330 Nearest Common Ancestors 题意:最近公共祖先的裸题 思路:LCA和ST我们已经很熟悉了,但是这里的f[i][j]却有相似却又不同的含义.f[i][j]表示i节点的第2j个父亲是多少   这个代码不是我的,转自 邝斌博客 /* *********************************************** Author :kuangbin Created Time :2013-9-5 9:45:17 File Name :F:\2013AC…

POJ 1330 Nearest Common Ancestors / UVALive 2525 Nearest Common Ancestors (最近公共祖先LCA) Description A rooted tree is a well-known data structure in computer science and engineering. An example is shown below: In the figure, each node is labeled with an…

Nearest Common Ancestors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 14902   Accepted: 7963 Description A rooted tree is a well-known data structure in computer science and engineering. An example is shown below:  In the figure, each…

1.输入树中的节点数N,输入树中的N-1条边.最后输入2个点,输出它们的最近公共祖先. 2.裸的最近公共祖先. 3. dfs+ST在线算法: /* LCA(POJ 1330) 在线算法 DFS+ST */ #include<iostream> #include<stdio.h> #include<string.h> using namespace std; ; *MAXN];//rmq数组,就是欧拉序列对应的深度序列 struct ST{ *MAXN]; *MAXN][…

LCA 最近公共祖先 Tarjan(离线)算法的基本思路及其算法实现 小广告:METO CODE 安溪一中信息学在线评测系统(OJ) //由于这是第一篇博客..有点瑕疵...比如我把false写成了flase...看的时候注意一下! //还有...这篇字比较多 比较杂....毕竟是第一次嘛 将就将就 后面会重新改!!! 首先是最近公共祖先的概念(什么是最近公共祖先?): 在一棵没有环的树上,每个节点肯定有其父亲节点和祖先节点,而最近公共祖先,就是两个节点在这棵树上深度最大的公共的祖先节点. 换句…

      树上倍增求LCA LCA指的是最近公共祖先(Least Common Ancestors),如下图所示: 4和5的LCA就是2 那怎么求呢?最粗暴的方法就是先dfs一次,处理出每个点的深度 然后把深度更深的那一个点(4)一个点地一个点地往上跳,直到到某个点(3)和另外那个点(5)的深度一样 然后两个点一起一个点地一个点地往上跳,直到到某个点(就是最近公共祖先)两个点"变"成了一个点 不过有没有发现一个点地一个点地跳很浪费时间? 如果一下子跳到目标点内存又可能不支持,相对来说…

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…