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题意:n(n <= 20)个项目,m(m <= 50)个技术问题,做完一个项目能够有收益profit (<= 1000),做完一个项目必须解决对应的技术问题,解决一个技术问题须要付出cost ( <= 1000),技术问题之间有先后依赖关系,求最大收益。
题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=4971
——>>项目必须解决相应的技术问题,技术问题之间也存在依赖,相应闭合图,最大收益相应最大权和。。于是,最大权闭合图,最小割,最大流上场。。
建图:
1)超级源S = n + m, 超级汇T = n + m + 1
2)对于每一个项目i:S -> i (profit[i])
3)对于每一个技术问题i:i + n -> T (cost[i])
4)对于项目 i 必须解决的技术问题 j:i -> j + n (INF)
5)对于技术问题 j 必须先解决的技术问题 i: i + n -> j + n (INF) (这里我认为应为:j + n -> i + n (INF),这样理解才对,但是对不上例子,提交也WA。。)
然后,Dinic上场。。
#include <cstdio> #include <cstring> #include <algorithm> #include <queue> using std::queue; using std::min; const int MAXN = 20 + 50 + 10; const int MAXM = 20 + 1000 + 2500 + 50 + 10; const int INF = 0x3f3f3f3f; int n, m, sum; int hed[MAXN]; int cur[MAXN], h[MAXN]; int ecnt; int S, T; struct EDGE { int to; int cap; int flow; int nxt; } edges[MAXM << 1]; void Init() { ecnt = 0; memset(hed, -1, sizeof(hed)); sum = 0; } void AddEdge(int u, int v, int cap) { edges[ecnt].to = v; edges[ecnt].cap = cap; edges[ecnt].flow = 0; edges[ecnt].nxt = hed[u]; hed[u] = ecnt++; edges[ecnt].to = u; edges[ecnt].cap = 0; edges[ecnt].flow = 0; edges[ecnt].nxt = hed[v]; hed[v] = ecnt++; } void Read() { int profit, cost, pc, tp; scanf("%d%d", &n, &m); S = n + m; T = n + m + 3; for (int i = 0; i < n; ++i) { scanf("%d", &profit); AddEdge(S, i, profit); sum += profit; } for (int i = 0; i < m; ++i) { scanf("%d", &cost); AddEdge(i + n, T, cost); } for (int i = 0; i < n; ++i) { scanf("%d", &pc); for (int j = 0; j < pc; ++j) { scanf("%d", &tp); AddEdge(i, tp + n, INF); } } for (int i = 0; i < m; ++i) { for (int j = 0; j < m; ++j) { scanf("%d", &tp); if (tp) { AddEdge(i + n, j + n, INF); } } } } bool Bfs() { memset(h, -1, sizeof(h)); queue<int> qu; qu.push(S); h[S] = 0; while (!qu.empty()) { int u = qu.front(); qu.pop(); for (int e = hed[u]; e != -1; e = edges[e].nxt) { int v = edges[e].to; if (h[v] == -1 && edges[e].cap > edges[e].flow) { h[v] = h[u] + 1; qu.push(v); } } } return h[T] != -1; } int Dfs(int u, int cap) { if (u == T || cap == 0) return cap; int flow = 0, subFlow; for (int e = cur[u]; e != -1; e = edges[e].nxt) { cur[u] = e; int v = edges[e].to; if (h[v] == h[u] + 1 && (subFlow = Dfs(v, min(cap, edges[e].cap - edges[e].flow))) > 0) { flow += subFlow; edges[e].flow += subFlow; edges[e ^ 1].flow -= subFlow; cap -= subFlow; if (cap == 0) break; } } return flow; } int Dinic() { int maxFlow = 0; while (Bfs()) { memcpy(cur, hed, sizeof(hed)); maxFlow += Dfs(S, INF); } return maxFlow; } int main() { int t, kase = 0; scanf("%d", &t); while (t--) { Init(); Read(); printf("Case #%d: %d\n", ++kase, sum - Dinic()); } return 0; }
hdu - 4971 - A simple brute force problem.(最大权闭合图)
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原文地址:http://www.cnblogs.com/gcczhongduan/p/4383955.html