uva12489 Combating cancer(树同构)

时间:2021-05-29 06:16:36

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https://uva.onlinejudge.org/index.php?option=com_onlinejudge&Itemid=8&page=show_problem&problem=3933

给你两棵无根树,让你判断这两棵树是否同构

不会判断树同构,果断抄了个模板,乱搞给过掉了。

首先由于给的是无根树,而要判断无根树是否同构得以重心为根,然后做一个括号序列的哈希。

于是我们需要先找出重心,要找树的重心得先知道直径。

找出直径,直径上的点的个数是偶数,那么重心是中间的两个点,如果是奇数个,那么重心是中间那个。

或者说是根据拓排,每次度数为1的点入队,留下的最后一批就是。

然而我当时脑抽了一下,求好直径,后用第二种再去搞。。。其实求直径的时候保存一下路径就好了。

最后,如果有两个重心就做两次哈希,得到两个哈希值,一个就一次。

最后把两棵树的哈希值比一下是否有相同的。

/**

 * code generated by JHelper

 * More info: https://github.com/AlexeyDmitriev/JHelper

 * @author xyiyy @https://github.com/xyiyy

 */

#include <iostream>

#include <fstream>

//#####################

//Author:fraud

//Blog: http://www.cnblogs.com/fraud/

//#####################

//#pragma comment(linker, "/STACK:102400000,102400000")

#include <iostream>

#include <sstream>

#include <ios>

#include <iomanip>

#include <functional>

#include <algorithm>

#include <vector>

#include <string>

#include <list>

#include <queue>

#include <deque>

#include <stack>

#include <set>

#include <map>

#include <cstdio>

#include <cstdlib>

#include <cmath>

#include <cstring>

#include <climits>

#include <cctype>

using namespace std;

#define pb(X) push_back(X)

#define rep(X, N) for(int X=0;X<N;X++)

#define ALL(X) (X).begin(),(X).end()

typedef unsigned long long ull;

const int maxNode = ;

const int maxEdge = (maxNode << );

//

// Created by xyiyy on 2015/8/14.

//

#ifndef ICPC_HASHTREE_HPP

#define ICPC_HASHTREE_HPP

//树的同构,返回哈希值

//输入有根树的根,或者无根树的重心

typedef unsigned long long ull;

const ull MAGIC = ;

//

// Created by xyfra_000 on 2015/8/14.

//

#ifndef ICPC_ADJLIST_ARRAY_HPP

#define ICPC_ADJLIST_ARRAY_HPP

#define Foredge(A, X) for(int A = From[X];A!=-1;A = Next[A])

int From[maxEdge], To[maxEdge];

int Next[maxEdge];

int Edgecnt;

void init(int n) {

    rep(i, n + )From[i] = -;

    Edgecnt = ;

}

void addedge(int u, int v) {

    To[Edgecnt] = v;

    Next[Edgecnt] = From[u];

    From[u] = Edgecnt++;

}

#endif //ICPC_ADJLIST_ARRAY_HPP

ull powMod(ull a, int n) {

    ull ret = 1ULL;

    while (n) {

        if (n & )ret *= a;

        a *= a;

        n >>= ;

    }

    return ret;

}

struct Hash {

    int length;

    ull value;

    Hash() : length(), value() { }

    Hash(char c) : length(), value(c) { }

    Hash(int l, int v) : length(l), value(v) { }

};

bool operator<(const Hash &a, const Hash &b) {

    return a.value < b.value;

}

Hash operator+(const Hash &a, const Hash &b) {

    return Hash(a.length + b.length, a.value * powMod(MAGIC, b.length) + b.value);

}

void operator+=(Hash &a, Hash &b) {

    a = a + b;

}

vector<Hash> childs[maxNode];

Hash dfs(int pre, int cur) {

    Hash ret;

    childs[cur].clear();

    for (int iter = From[cur]; iter != -; iter = Next[iter]) {

        if (To[iter] != pre) {

            childs[cur].pb(dfs(cur, To[iter]));

        }

    }

    sort(ALL(childs[cur]));

    for (vector<Hash>::iterator iter = childs[cur].begin(); iter != childs[cur].end(); iter++) {

        ret += *iter;

    }

    Hash retL = Hash('(');

    ret = '(' + ret + ')';

    return ret;

}

ull getHash(int root) {

    return dfs(-, root).value;

}

#endif //ICPC_HASHTREE_HPP

//

// Created by xyfra_000 on 2015/8/14.

//

#ifndef ICPC_TREEDIAMETER_HPP

#define ICPC_TREEDIAMETER_HPP

//求树的直径

//可以通过修改dfs部分变成求带权的树的直径

vector<int> dist;

void dfs(int p, int u, int d) {

    dist[u] = d;

    Foredge(i, u) {

        if (To[i] != p) {

            dfs(u, To[i], d + );

        }

    }

}

int getDiameter(int n) {

    dist.resize(n);

    dfs(-, , );

    int u = max_element(ALL(dist)) - dist.begin();

    dfs(-, u, );

    return *max_element(ALL(dist));

}

#endif //ICPC_TREEDIAMETER_HPP

int deg[maxNode];

int vis[maxNode];

class TaskH {

public:

    void solve(std::istream &in, std::ostream &out) {

        int n;

        while (in >> n) {

            vector<ull> ans[];

            rep(times, ) {

                int u, v;

                init(n);

                rep(i, n + )deg[i] = ;

                rep(i, n + )vis[i] = ;

                queue<int> q;

                rep(i, n - ) {

                    in >> u >> v;

                    u--, v--;

                    deg[u]++;

                    deg[v]++;

                    addedge(u, v);

                    addedge(v, u);

                }

                int dia = getDiameter(n);

                int num = n;

                rep(i, n) {

                    if (deg[i] == ) {

                        q.push(i);

                    }

                }

                int gao = ;

                if (dia & )gao++;

                while (num > gao && !q.empty()) {

                    u = q.front();

                    q.pop();

                    vis[u] = ;

                    num--;

                    deg[u]--;

                    for (int i = From[u]; i != -; i = Next[i]) {

                        int v = To[i];

                        if (!vis[v]) {

                            deg[v]--;

                            if (deg[v] == ) {

                                q.push(v);

                            }

                        }

                    }

                }

                rep(i, n) {

                    if (!vis[i]) {

                        ans[times].pb(getHash(i));

                    }

                }

            }

            bool ok = ;

            rep(i, ans[].size()) {

                rep(j, ans[].size()) {

                    if (ans[][i] == ans[][j])ok = ;

                }

            }

            if (ok)out << "S" << endl;

            else out << "N" << endl;

        }

    }

};

int main() {

    std::ios::sync_with_stdio(false);

    std::cin.tie();

    TaskH solver;

    std::istream &in(std::cin);

    std::ostream &out(std::cout);

    solver.solve(in, out);

    return ;

}

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