Going from u to v or from v to u?

Time Limit: 2000MS		Memory Limit: 65536K
Total Submissions: 13040		Accepted: 3383

In order to make their sons brave, Jiajia and Wind take them to a big cave. The cave has n rooms, and one-way corridors connecting some rooms. Each time, Wind choose two rooms x and y, and ask one of their little sons go from one to the other. The son can either go from x to y, or from y to x. Wind promised that her tasks are all possible, but she actually doesn't know how to decide if a task is possible. To make her life easier, Jiajia decided to choose a cave in which every pair of rooms is a possible task. Given a cave, can you tell Jiajia whether Wind can randomly choose two rooms without worrying about anything?

The first line contains a single integer T, the number of test cases. And followed T cases.

The first line for each case contains two integers n, m(0 < n < 1001,m < 6000), the number of rooms and corridors in the cave. The next m lines each contains two integers u and v, indicating that there is a corridor connecting room u and room v directly.

The output should contain T lines. Write 'Yes' if the cave has the property stated above, or 'No' otherwise.

1

3 3

1 2

2 3

3 1

Yes

POJ Monthly--2006.02.26,zgl & twb

这题要注意,边是单向边,先用强连通分量缩点,建图,再拓扑排序若是单向链刚对,否刚为错就可以a了!

#include <iostream>

#include <stdio.h>

#include <string.h>

#include <stdlib.h>

#define N 1051

#define E 30000

#define M 1000000

using namespace std;

int head[N],head2[N],next2[E],vec2[E],sta[M],re,ans,next[E],id[N],in[N],vec[E],vis[N],dfn[N],low[N],clock_m,edge_m,edge_m2;

int addedge(int s,int e){

    vec[edge_m]=e;next[edge_m]=head[s];head[s]=edge_m++;

}

int addedge2(int s,int e){

    vec2[edge_m2]=e;next2[edge_m2]=head2[s];head2[s]=edge_m2++;

}

int init(){

    memset(vis,0,sizeof(vis));

    memset(dfn,0,sizeof(dfn));

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

    memset(head,-1,sizeof(head));

    memset(head2,-1,sizeof(head2));

    memset(id,0,sizeof(id));

    memset(in,0,sizeof(in));

    edge_m=0;clock_m=0;ans=0;re=0;edge_m2=0;

}

int tarjan(int x){

    dfn[x]=low[x]=++clock_m;

    sta[++ans]=x;

    vis[x]=1;

    for(int i=head[x];i!=-1;i=next[i]){

        int goal=vec[i];

        if(!dfn[goal]){

            tarjan(goal);

            low[x]=min(low[x],low[goal]);

        }

        else if(/*vis[goal]*/!id[goal])

            low[x]=min(low[x],dfn[goal]);

    }

    if(low[x]==dfn[x]){

        re++;int v;

       do{

            v=sta[ans--];

            vis[v]=0;

            id[v]=re;

        }while(v!=x);

    }

    return 1;

}

int topsort(int n){

    ans=0;

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

        if(in[i]==0){

            sta[ans++]=i;

        }

    }

    if(ans>1)return 0;

    while(ans>0){

        ans--;

        int qtop=sta[ans];

        for(int j=head2[qtop];j!=-1;j=next2[j]){

            in[vec2[j]]--;

            if(in[vec2[j]]==0)

            sta[ans++]=vec2[j];

        }

        if(ans>1)

        return 0;

    }

    return 1;

}

int main()

{

    int tcase,n,m,s,e;

    scanf("%d",&tcase);

    while(tcase--){

        //system("PAUSE");

        init();

        scanf("%d%d",&n,&m);

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

            scanf("%d%d",&s,&e);

            addedge(s,e);

        }

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

        if(!dfn[i])

        {

           tarjan(i);

        }

       if(re==1){

            printf("Yes\n");

            continue;

        }

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

            for(int j=head[i];j!=-1;j=next[j]){

                if(id[vec[j]]!=id[i]){

                    in[id[vec[j]]]++;

                    addedge2(id[i],id[vec[j]]);

                }

            }

        }

        if(topsort(re))printf("Yes\n");

        else printf("No\n");

    }

    return 0;

}