Codeforces Round #360 (Div. 2) C. NP-Hard Problem (BFS)

C. NP-Hard Problem
time limit per test
2 seconds
memory limit per test
256 megabytes
input
standard input
output
standard output

Recently, Pari and Arya did some research about NP-Hard problems and they found the minimum vertex cover problem very interesting.

Suppose the graph G is given. Subset A of its vertices is called a vertex cover of this graph, if for each edge uv there is at least one endpoint of it in this set, i.e.  or  (or both).

Pari and Arya have won a great undirected graph as an award in a team contest. Now they have to split it in two parts, but both of them want their parts of the graph to be a vertex cover.

They have agreed to give you their graph and you need to find two disjoint subsets of its vertices A and B, such that both A and B are vertex cover or claim it's impossible. Each vertex should be given to no more than one of the friends (or you can even keep it for yourself).

Input

The first line of the input contains two integers n and m (2 ≤ n ≤ 100 000, 1 ≤ m ≤ 100 000) — the number of vertices and the number of edges in the prize graph, respectively.

Each of the next m lines contains a pair of integers ui and vi (1  ≤  ui,  vi  ≤  n), denoting an undirected edge between ui and vi. It's guaranteed the graph won't contain any self-loops or multiple edges.

Output

If it's impossible to split the graph between Pari and Arya as they expect, print "-1" (without quotes).

If there are two disjoint sets of vertices, such that both sets are vertex cover, print their descriptions. Each description must contain two lines. The first line contains a single integer k denoting the number of vertices in that vertex cover, and the second line contains kintegers — the indices of vertices. Note that because of m ≥ 1, vertex cover cannot be empty.

Examples
input
4 2
1 2
2 3
output
1
2
2
1 3
input
3 3
1 2
2 3
1 3
output
-1
Note

In the first sample, you can give the vertex number 2 to Arya and vertices numbered 1 and 3 to Pari and keep vertex number 4 for yourself (or give it someone, if you wish).

In the second sample, there is no way to satisfy both Pari and Arya.

 

bfs一遍,保证每条边的两端的标记不同,如果有的点是不存在边的,那就不扫了。如果有有冲突的就可以直接输出-1了。再数一数两种标记的数量和id,输出就好了。

#include 
#include 
#include 
#include 
#include 
using namespace std;
const int maxn = 1e5 + 10;
int n, m;
int mark[maxn];
vector<int> edge[maxn];
int BigFlag = 1;

void bfs(int v) {
    int now, next;
    now = v;
    queue<int> q;
    q.push(v);
    while(!q.empty()) {
        now = q.front(); q.pop();
        for(int i = 0; i < edge[now].size(); i++) {
            if(!mark[edge[now][i]])
                q.push(edge[now][i]);
            if(mark[edge[now][i]] == mark[now]) {
                //printf("edge check %d %d\n", now, edge[now][i]);
                BigFlag = 0;
                return;
            }
            else mark[edge[now][i]] = -mark[now];
        }
    }
}

int main() {
    while(~scanf("%d %d", &n, &m)) {
        BigFlag = 1;
        memset(mark, 0, sizeof(mark));
        for(int i = 1; i <= m; i++) edge[i].clear();
        int tmp = 1;
        for(int i = 1; i <= m; i++) {
            int u, v;
            scanf("%d %d", &u, &v);
            edge[u].push_back(v);
            edge[v].push_back(u);
            tmp = u;
        }
        for(int i = 1; i <= n; i++) {
            if(!mark[i] && edge[i].size() > 0) {
                mark[i] = 1;
                bfs(i);
            }
        }
        if(!BigFlag) {
            puts("-1");
            continue;
        }
        int cnt1, cnt2;
        cnt1 = cnt2 = 0;
        for(int i = 1; i <= n; i++) {
            if(mark[i] == 1) cnt1++;
            if(mark[i] == -1) cnt2++;
        }
        if(cnt1 == 0 || cnt2 == 0) {
            puts("-1");
            continue;
        }
        printf("%d\n", cnt1);
        for(int i = 1; i <= n; i++) {
            if(mark[i] == 1) printf("%d ", i);
        }puts("");
        printf("%d\n", cnt2);
        for(int i = 1; i <= n; i++) {
            if(mark[i] == -1) printf("%d ", i);
        }puts("");
    }
}

 

 

转载于:https://www.cnblogs.com/lonewanderer/p/5648048.html

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