HDU 3046 Pleasant sheep and big big wolf

题目链接

题意：一个n * m平面上，1是羊。2是狼，问最少要多少围墙才干把狼所有围住，每有到达羊的路径

思路：有羊和狼。要分成两个集合互不可达。显然的最小割。建图源点连狼，容量无穷，羊连汇点，容量无穷。然后相邻格子连边。容量为1

代码：

#include <cstdio>

#include <cstring>

#include <queue>

#include <algorithm>

using namespace std;

const int MAXNODE = 40005;

const int MAXEDGE = 500005;

typedef int Type;

const Type INF = 0x3f3f3f3f;

struct Edge {

	int u, v;

	Type cap, flow;

	Edge() {}

	Edge(int u, int v, Type cap, Type flow) {

		this->u = u;

		this->v = v;

		this->cap = cap;

		this->flow = flow;

	}

};

struct Dinic {

	int n, m, s, t;

	Edge edges[MAXEDGE];

	int first[MAXNODE];

	int next[MAXEDGE];

	bool vis[MAXNODE];

	Type d[MAXNODE];

	int cur[MAXNODE];

	vector<int> cut;

	void init(int n) {

		this->n = n;

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

		m = 0;

	}

	void add_Edge(int u, int v, Type cap) {

		edges[m] = Edge(u, v, cap, 0);

		next[m] = first[u];

		first[u] = m++;

		edges[m] = Edge(v, u, 0, 0);

		next[m] = first[v];

		first[v] = m++;

	}

	bool bfs() {

		memset(vis, false, sizeof(vis));

		queue<int> Q;

		Q.push(s);

		d[s] = 0;

		vis[s] = true;

		while (!Q.empty()) {

			int u = Q.front(); Q.pop();

			for (int i = first[u]; i != -1; i = next[i]) {

				Edge& e = edges[i];

				if (!vis[e.v] && e.cap > e.flow) {

					vis[e.v] = true;

					d[e.v] = d[u] + 1;

					Q.push(e.v);

				}

			}

		}

		return vis[t];

	}

	Type dfs(int u, Type a) {

		if (u == t || a == 0) return a;

		Type flow = 0, f;

		for (int &i = cur[u]; i != -1; i = next[i]) {

			Edge& e = edges[i];

			if (d[u] + 1 == d[e.v] && (f = dfs(e.v, min(a, e.cap - e.flow))) > 0) {

				e.flow += f;

				edges[i^1].flow -= f;

				flow += f;

				a -= f;

				if (a == 0) break;

			}

		}

		return flow;

	}

	Type Maxflow(int s, int t) {

		this->s = s; this->t = t;

		Type flow = 0;

		while (bfs()) {

			for (int i = 0; i < n; i++)

				cur[i] = first[i];

			flow += dfs(s, INF);

		}

		return flow;

	}

	void MinCut() {

		cut.clear();

		for (int i = 0; i < m; i += 2) {

			if (vis[edges[i].u] && !vis[edges[i].v])

				cut.push_back(i);

		}

	}

} gao;

const int N = 205;

const int d[4][2] = {0, 1, 0, -1, 1, 0, -1, 0};

int n, m, g[N][N];

int main() {

	int cas = 0;

	while (~scanf("%d%d", &n, &m)) {

		gao.init(n * m + 2);

		int s = n * m, t = n * m + 1;

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

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

				scanf("%d", &g[i][j]);

			}

		}

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

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

				if (g[i][j] == 2) gao.add_Edge(s, i * m + j, INF);

				if (g[i][j] == 1) gao.add_Edge(i * m + j, t, INF);

				for (int k = 0; k < 4; k++) {

					int x = i + d[k][0];

					int y = j + d[k][1];

					if (x < 0 || x >= n || y < 0 || y >= m) continue;

					gao.add_Edge(i * m + j, x * m + y, 1);

				}

			}

		}

		printf("Case %d:\n", ++cas);

		printf("%d\n", gao.Maxflow(s, t));

	}

	return 0;

}