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CF 936B Sleepy Game(判环+BFS)

时间:2018-03-03 00:37:26      阅读:343      评论:0      收藏:0      [点我收藏+]

标签:petya   one   min   com   with   als   air   表示   return   

题目链接:http://codeforces.com/problemset/problem/936/B

题目:

Petya and Vasya arranged a game. The game runs by the following rules. Players have a directed graph consisting of n vertices and medges. One of the vertices contains a chip. Initially the chip is located at vertex s. Players take turns moving the chip along some edge of the graph. Petya goes first. Player who can‘t move the chip loses. If the game lasts for 106 turns the draw is announced.

Vasya was performing big laboratory work in "Spelling and parts of speech" at night before the game, so he fell asleep at the very beginning of the game. Petya decided to take the advantage of this situation and make both Petya‘s and Vasya‘s moves.

Your task is to help Petya find out if he can win the game or at least draw a tie.

Input

The first line of input contain two integers n and m — the number of vertices and the number of edges in the graph (2 ≤ n ≤ 105, 0 ≤ m ≤ 2·105).

The next n lines contain the information about edges of the graph. i-th line (1 ≤ i ≤ n) contains nonnegative integer ci — number of vertices such that there is an edge from i to these vertices and ci distinct integers ai, j — indices of these vertices (1 ≤ ai, j ≤ nai, j ≠ i).

It is guaranteed that the total sum of ci equals to m.

The next line contains index of vertex s — the initial position of the chip (1 ≤ s ≤ n).

Output

If Petya can win print «Win» in the first line. In the next line print numbers v1, v2, ..., vk (1 ≤ k ≤ 106) — the sequence of vertices Petya should visit for the winning. Vertex v1 should coincide with s. For i = 1... k - 1 there should be an edge from vi to vi + 1 in the graph. There must be no possible move from vertex vk. The sequence should be such that Petya wins the game.

If Petya can‘t win but can draw a tie, print «Draw» in the only line. Otherwise print «Lose».

Examples
input
Copy
5 6
2 2 3
2 4 5
1 4
1 5
0
1
output
Win
1 2 4 5
input
Copy
3 2
1 3
1 1
0
2
output
Lose
input
Copy
2 2
1 2
1 1
1
output
Draw
Note

In the first example the graph is the following:

技术分享图片

Initially the chip is located at vertex 1. In the first move Petya moves the chip to vertex 2, after that he moves it to vertex 4 for Vasya. After that he moves to vertex 5. Now it is Vasya‘s turn and there is no possible move, so Petya wins.

In the second example the graph is the following:

技术分享图片

Initially the chip is located at vertex 2. The only possible Petya‘s move is to go to vertex 1. After that he has to go to 3 for Vasya. Now it‘s Petya‘s turn but he has no possible move, so Petya loses.

In the third example the graph is the following:

技术分享图片

Petya can‘t win, but he can move along the cycle, so the players will draw a tie.

题解:先手以自己最优选择,即选一个路线,奇数条边且最后一个点出度为0,则Win;如果形成环,Draw,否则Lose。path[u][t]表示当前顶点u能否通过奇数条(t=1)或偶数条(t=0)到达。BFS,最后再判环。

 1 #include <bits/stdc++.h>
 2 using namespace std;
 3 
 4 #define PI acos(-1.0)
 5 #define INF 0x3f3f3f3f
 6 #define FAST_IO ios::sync_with_stdio(false)
 7 #define eps 1e-8
 8 
 9 const int N=1e5+10;
10 typedef long long LL;
11 vector <int> E[N];
12 int out[N],f[N];
13 queue < pair<int,int> > Q;
14 int path[N][2],ok;
15 
16 void print(int u,int t){
17     if(path[u][t]!=-1) print(path[u][t],t^1);
18     printf("%d ",u);
19 }
20 
21 void dfs(int u){
22     if(ok) return ;
23     f[u]=-1;
24     for(int i=0;i<E[u].size();i++){
25         int v=E[u][i];
26         if(f[v]==-1) {ok=1;return ;}
27         else dfs(v);
28     }
29     f[u]=0;
30 }
31 
32 int main(){
33     int n,m,s;
34     scanf("%d%d",&n,&m);
35     for(int i=1;i<=n;i++){
36         int t,x;
37         scanf("%d",&t);
38         out[i]=t;
39         for(int j=1;j<=t;j++){
40             scanf("%d",&x);
41             E[i].push_back(x);
42         }
43     }
44     scanf("%d",&s);
45     pair <int,int> p,now;
46     p.first=s;p.second=0;
47     path[s][0]=-1;
48     Q.push(p);
49     while(!Q.empty()){
50         now=Q.front();Q.pop();
51         int t1=now.second^1;
52         for(int i=0;i<E[now.first].size();i++){
53             int v=E[now.first][i];
54             if(path[v][t1]==0){
55                 path[v][t1]=now.first;
56                 p.first=v;p.second=t1;
57                 Q.push(p);
58             }
59         }
60     }
61     for(int i=1;i<=n;i++){
62         if(!out[i]&&path[i][1]){
63             printf("Win\n");
64             print(i,1);
65             return 0;
66         }
67     }
68     dfs(s);
69     if(ok) printf("Draw\n");
70     else printf("Lose\n");
71     return 0;
72 }

 

CF 936B Sleepy Game(判环+BFS)

标签:petya   one   min   com   with   als   air   表示   return   

原文地址:https://www.cnblogs.com/Leonard-/p/8495515.html

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