二次联通门 : BZOJ 1066: [SCOI2007]蜥蜴
/* BZOJ 1066: [SCOI2007]蜥蜴 拆点最大流 */ #include <cstdio> #include <iostream> #define rg register inline void read (int &n) { rg char c = getchar (); for (n = 0; !isdigit (c); c = getchar ()); for (; isdigit (c); n = n * 10 + c - ‘0‘, c = getchar ()); } #define Max 900 int S, T; #define INF 1e9 inline int abs (int x) { return x < 0 ? -x : x; } namespace net { const int MaxE = 200005; int _n[MaxE], _v[MaxE], list[Max], _f[MaxE], EC = 1, d[Max], q[Max], tc[Max]; inline void In (int u, int v, int f) { _v[++ EC] = v, _n[EC] = list[u], list[u] = EC, _f[EC] = f; _v[++ EC] = u, _n[EC] = list[v], list[v] = EC, _f[EC] = 0; } bool Bfs () { int h = 1, t = 1; q[t] = S; rg int i, n; for (i = 0; i <= T; ++ i) d[i] = -1; for (d[S] = 0; h <= t; ++ h) for (n = q[h], i = list[n]; i; i = _n[i]) if (_f[i] && d[_v[i]] < 0) { d[_v[i]] = d[n] + 1, q[++ t] = _v[i]; if (_v[i] == T) return true; } return false; } int Flowing (int n, int f) { if (n == T || f == 0) return f; int p, r = 0; for (rg int &i = tc[n]; i; i = _n[i]) if (_f[i] && d[_v[i]] == d[n] + 1) { p = Flowing (_v[i], std :: min (_f[i], f)); if (p > 0) { r += p, f -= p, _f[i] -= p, _f[i ^ 1] += p; if (f == 0) return r; } } if (r != f) d[n] = -1; return r; } int Dinic () { int res = 0; for (; Bfs (); res += Flowing (S, INF)) for (rg int i = 0; i <= T; ++ i) tc[i] = list[i]; return res; } } char s[Max]; int a[Max][Max], t[Max][Max]; inline int max (int a, int b) { return a > b ? a : b; } inline int min (int a, int b) { return a < b ? a : b; } int main (int argc, char *argv[]) { int R, C, D; read (R), read (C), read (D); rg int i, j, k, e; S = 0, T = 2 * R * C + 1; int A, B, E = 0, c = 0; for (i = 1; i <= R; ++ i) { scanf ("%s", s + 1); for (j = 1; s[j]; ++ j) if ((a[i][j] = s[j] - ‘0‘)) t[i][j] = ++ c, net :: In (c, c + R * C, a[i][j]); } for (i = 1; i < R; ++ i) for (j = 1; j < C; ++ j) if (a[i][j]) for (k = max (i - D, 1), A = min (i + D, R); k <= A; ++ k) for (e = max (j - D, 1), B = min (j + D, C); e <= B; ++ e) if (abs (k - i) + abs (e - j) <= D && a[k][e] && (k != i || e != j)) net :: In (t[i][j] + R * C, t[k][e], INF); for (i = 1; i <= R; ++ i) for (j = 1; j <= C; ++ j) if (a[i][j] && (i <= D || j <= D || R + 1 - i <= D || C + 1 - j <= D)) net :: In (t[i][j] + R * C, T, INF); for (i = 1; i <= R; ++ i) { scanf ("%s", s + 1); for (j = 1; s[j]; ++ j) if (s[j] == ‘L‘) ++ E, net :: In (S, t[i][j], 1); } printf ("%d", E - net :: Dinic ()); return 0; }