Query on A Tree(dfs序)

Query on A Tree

HDU - 6191

Time Limit: 20000/10000 MS (Java/Others)    Memory Limit: 132768/132768 K (Java/Others)
Total Submission(s): 1732    Accepted Submission(s): 566

Problem Description

Monkey A lives on a tree, he always plays on this tree.

One day, monkey A learned about one of the bit-operations, xor. He was keen of this interesting operation and wanted to practise it at once.

Monkey A gave a value to each node on the tree. And he was curious about a problem.

The problem is how large the xor result of number x and one node value of label y can be, when giving you a non-negative integer x and a node label u indicates that node y is in the subtree whose root is u(y can be equal to u).

Can you help him?

Input

There are no more than 6 test cases.

For each test case there are two positive integers n and q, indicate that the tree has n nodes and you need to answer q queries.

Then two lines follow.

The first line contains n non-negative integers V1,V2,⋯,Vn, indicating the value of node i.

The second line contains n-1 non-negative integers F1,F2,⋯Fn−1, Fi means the father of node i+1.

And then q lines follow.

In the i-th line, there are two integers u and x, indicating that the node you pick should be in the subtree of u, and x has been described in the problem.

2≤n,q≤105

0≤Vi≤109

1≤Fi≤n, the root of the tree is node 1.

1≤u≤n,0≤x≤109

Output

For each query, just print an integer in a line indicating the largest result.

Sample Input

2 2 1 2 1 1 3 2 1

Sample Output

2 3

引：好久不写dfs序了，竟然忘了怎么写，正好借这个题熟悉一下。

我们先来弄明白dfs可以用来求什么。给你如下一棵树：

先上dfs序的代码：

void dfs(int x,int fa)
{
    in[x]=++time;
    num[time]=x;
    for(int i=0;i<v[x].size();i++)
    {
        int to=v[x][i];
        if(to==fa)
            continue;
        dfs(to,x);
    }
    out[x]=time;
}

其中in数组表示的是该节点第一次被访问到的时间，out数组表示的是遍历完该节点所有孩子后最后访问该节点的时间。num数组记录的是每个节点第一次被访问时的时间。对于上图，每个节点的信息如下：

所以假设我们想知道以4为根节点的子节点有哪些，就直接可以写

for(int i=in[4];i<=out[4];i++)
{
    printf("%d
",num[i]);
}

本题题解：

　　先求出给出树的dfs序，然后遍历询问节点的子节点就好了。

#include<iostream> 
#include<cstdio>
#include<cstring>
#include<vector>
#include<algorithm>
using namespace std;
const int maxn=1e5+10;
vector<int>v[maxn];
int val[maxn];
int in[maxn],out[maxn],num[maxn];
int n,q;
int time=0;
void dfs(int x,int fa)
{
    in[x]=++time;
    num[time]=x;
    for(int i=0;i<v[x].size();i++)
    {
        int to=v[x][i];
        if(to==fa)
            continue;
        dfs(to,x);
    }
    out[x]=time;
}
int main()
{
    while(~scanf("%d%d",&n,&q))
    {
        time=0;
        for(int i=1;i<=n;i++)
        {
            scanf("%d",&val[i]);
            v[i].clear();
        }
        for(int i=2;i<=n;i++)
        {
            int x;
            scanf("%d",&x);
            v[x].push_back(i);
        }
        dfs(1,0);
        while(q--)
        {
            int ans=0;
            int u,x;
            scanf("%d%d",&u,&x);
            for(int i=in[u];i<=out[u];i++)
            {
                int tmp=x^val[num[i]];
                if(tmp>ans)
                    ans=tmp;
            }
            printf("%d
",ans);
        }
    }
}