[BZOJ 1412][ZJOI 2009] 狼和羊的故事

题目大意

有一个 (n times m) 的网格，每一个格子上是羊、狼、空地中的一种，羊和狼可以走上空地。现要在格子边上建立围栏，求把狼羊分离的最少围栏数。

(1 leqslant n, ; m leqslant 100)

题目链接

BZOJ 1412

CodeVS 2351

题解

最小割。

从源点向羊／狼连一条容量无限的边，从狼／羊向汇点连一条容量无限的边。考虑相邻的两格，若是一狼一羊，则连一条容量为 (1) 的边（分割狼羊），若至少有一方为空地，也连一条容量为 (1) 的边（狼羊会走上空地）。

代码


#include <climits>
#include <queue>
#include <algorithm>
const int MAXN = 105;
struct ;
struct Node {
    Edge *e, *curr;
    int level;
} N[MAXN * MAXN];
struct  {
    Node *u, *v;
    Edge *next, *rev;
    int cap, flow;
    Edge(Node *u, Node *v, int cap) : u(u), v(v), cap(cap), flow(0), next(u->e) {}
};
void addEdge(int u, int v, int cap) {
    N[u].e = new Edge(&N[u], &N[v], cap);
    N[v].e = new Edge(&N[v], &N[u], 0);
    N[u].e->rev = N[v].e;
    N[v].e->rev = N[u].e;
}
struct Dinic {
    bool makeLevelGraph(Node *s, Node *t, int n) {
        for (int i = 0; i < n; i++) N[i].level = 0;
        std::queue<Node *> q;
        q.push(s);
        s->level = 1;
        while (!q.empty()) {
            Node *u = q.front();
            q.pop();
            for (Edge *e = u->e; e; e = e->next) {
          大专栏  [BZOJ 1412][ZJOI 2009] 狼和羊的故事       if (e->cap > e->flow && e->v->level == 0) {
                    e->v->level = u->level + 1;
                    if (e->v == t) return true;
                    q.push(e->v);
                }
            }
        }
        return false;
    }
    int findPath(Node *s, Node *t, int limit = INT_MAX) {
        if (s == t) return limit;
        for (Edge *&e = s->curr; e; e = e->next) {
            if (e->cap > e->flow && e->v->level == s->level + 1) {
                int flow = findPath(e->v, t, std::min(limit, e->cap - e->flow));
                if (flow > 0) {
                    e->flow += flow;
                    e->rev->flow -= flow;
                    return flow;
                }
            }
        }
        return 0;
    }
    int operator()(int s, int t, int n) {
        int res = 0;
        while (makeLevelGraph(&N[s], &N[t], n)) {
            for (int i = 0; i < n; i++) N[i].curr = N[i].e;
            int flow;
            while ((flow = findPath(&N[s], &N[t])) > 0) res += flow;
        }
        return res;
    }
} dinic;
int n, m;
int getID(int x, int y) {
    return (x - 1) * m + y;
}
bool valid(int x, int y) {
    return (x > 0) && (y > 0) && (x <= n) && (y <= m);
}
int main() {
    scanf("%d %d", &n, &m);
    const int s = 0, t = n * m + 1;
    static int mat[MAXN][MAXN];
    for (int i = 1; i <= n; i++) for (int j = 1; j <= m; j++) {
        scanf("%d", &mat[i][j]);
        if (mat[i][j] == 2) addEdge(s, getID(i, j), INT_MAX);
        if (mat[i][j] == 1) addEdge(getID(i, j), t, INT_MAX);
    }
    static int d[4][2] = {
        {0, 1},
        {0, -1},
        {1, 0},
        {-1, 0}
    };
    for (int i = 1; i <= n; i++) for (int j = 1; j <= m; j++) {
        for (int k = 0; k < 4; k++) {
            int x = i + d[k][0], y = j + d[k][1];
            if (!valid(x, y)) continue;
            if (mat[i][j] != mat[x][y] || (mat[i][j] == mat[x][y] && mat[x][y] == 0))
                addEdge(getID(i, j), getID(x, y), 1);
        }
    }
    printf("%dn", dinic(s, t, t + 1));
    return 0;
}

[BZOJ 1412][ZJOI 2009] 狼和羊的故事

题目大意

题目链接

题解

代码

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