The Bottom of a Graph

Time Limit: 3000MS		Memory Limit: 65536K
Total Submissions: 11981		Accepted: 4931

We will use the following (standard) definitions from graph theory. Let V be a nonempty and finite set, its elements being called vertices (or nodes). Let E be a subset of the Cartesian product V×V, its elements being called edges. Then G=(V,E) is called a directed graph. 
Let n be a positive integer, and let p=(e₁,...,e_n) be a sequence of length n of edges e_i∈E such that e_i=(v_i,v_i+1) for a sequence of vertices (v₁,...,v_n+1). Then p is called a path from vertex v₁to vertex v_n+1 in G and we say that v_n+1 is reachable from v₁, writing (v₁→v_n+1). 
Here are some new definitions. A node v in a graph G=(V,E) is called a sink, if for every node w in G that is reachable from v, v is also reachable from w. The bottom of a graph is the subset of all nodes that are sinks, i.e., bottom(G)={v∈V|∀w∈V:(v→w)⇒(w→v)}. You have to calculate the bottom of certain graphs.

The input contains several test cases, each of which corresponds to a directed graph G. Each test case starts with an integer number v, denoting the number of vertices of G=(V,E), where the vertices will be identified by the integer numbers in the set V={1,...,v}. You may assume that 1<=v<=5000. That is followed by a non-negative integer e and, thereafter, e pairs of vertex identifiers v₁,w₁,...,v_e,w_e with the meaning that (v_i,w_i)∈E. There are no edges other than specified by these pairs. The last test case is followed by a zero.

For each test case output the bottom of the specified graph on a single line. To this end, print the numbers of all nodes that are sinks in sorted order separated by a single space character. If the bottom is empty, print an empty line.

3 3

1 3 2 3 3 1

2 1

1 2

0

1 3

2

#include<iostream>

#include<cstdio>

#include<vector>

#include<stack>

#include<cstring>

using namespace std;

int n,m;

int book[50008];

int low[50008],num[50008],cnt=1,index;

int color[50008];

bool flag[50008];

vector<int>u[50008];

stack<int>st;

int sig=0;

void Tarjan(int t)

{

    num[t]=low[t]=++index;

    st.push(t);

    book[t]=true;

    int siz=u[t].size();

    for(int i=0;i<siz;i++){

        if(!num[u[t][i]]){

            Tarjan(u[t][i]);

            low[t]=min(low[t],low[u[t][i]]);

        }

        else if(book[u[t][i]]){low[t]=min(low[t],low[u[t][i]]);}

    }

    if(num[t]==low[t]){

        sig++;

        while(1){

            cnt=st.top();

            st.pop();

            color[cnt]=sig;

            book[cnt]=0;

            if(cnt==t){break;}

        }

    }

}

bool init()

{

    scanf("%d",&n);

    for(int i=1;i<=n;i++){

        u[i].clear();

    }

    while(!st.empty()){

        st.pop();

    }

    memset(book,0,sizeof(book));

    memset(low,0,sizeof(low));

    memset(flag,0,sizeof(flag));

    memset(color,0,sizeof(color));

    memset(num,0,sizeof(num));

    index=0;

    if(n==0){return false;}

    scanf("%d",&m);

    int x,y;

    for(int i=1;i<=m;i++){

        scanf("%d%d",&x,&y);

        u[x].push_back(y);

    }

    return true;

}

void solve()

{

    int siz;

    int tle=0;

    for(int i=1;i<=n;i++){

        siz=u[i].size();

        for(int j=0;j<siz;j++){

            if(color[u[i][j]]!=color[i]){flag[color[i]]=true;}

        }

    }

    for(int i=1;i<=n;i++){

        if(!flag[color[i]]){

            tle++?printf(" %d",i):printf("%d",i);

        }

    }

    printf("\n");

}

int main()

{

    while(init()){

        for(int i=1;i<=n;i++){

            if(!num[i]){Tarjan(i);cnt++;}

        }

        solve();

    }

}