PAT (Top Level) Practice 1003 Universal Travel Sites (35 分)

题目链接:https://pintia.cn/problem-sets/994805148990160896/problems/994805155688464384

题很难理解,但其实就是普通的 网络流最大流(从源点到汇点可以运送的最大乘客)。建图用stl。

算法:网络流最大流(Dinic)

#include
#include
#include
#include
#include
#include
#include
#include
using namespace std;
#define N 1005
#define inf 0x3f3f3f
vectorq[N];
maprt;
setrq;
int res[N][N];
vectorrs;
int n;
int dist[N];
bool bfs(int s, int e) {
	memset(dist, 0, sizeof(dist));
	queueQ;
	Q.push(s);
	dist[s] = 1;
	while (!Q.empty()) {
		int cmt = Q.front();
	//	cout << cmt << endl;
		Q.pop();
		for (int i = 0; i < q[cmt].size(); i++) {
			if (!dist[q[cmt][i]] && res[cmt][q[cmt][i]]) {
				dist[q[cmt][i]] = dist[cmt] + 1;
				Q.push(q[cmt][i]);
			}
		}
	}
	return dist[e];
}
int dini(int s, int e,int sum) {
	if (s == e) {
		return sum;
	}
	for (int i = 0; i < q[s].size(); i++) {
		if (dist[q[s][i]] == dist[s] + 1 && res[s][q[s][i]]) {
			int fd = dini(q[s][i], e, min(sum, res[s][q[s][i]]));
			if (fd) {
				res[s][q[s][i]] -= fd;
				res[q[s][i]][s] += fd;
				return fd;
			}
		}
	}
	return 0;
}
int main() {
	int sum = 0;
	memset(res, 0, sizeof(res));
	int cnt = 0, wt;
	string str1, str2, s1, s2;
	cin >> s1 >> s2 >> n;
	for (int i = 0; i < n; i++) {
		cin >> str1 >> str2 >> wt;
		if (!rq.count(str1)) {
			rs.push_back(str1);
			rt[str1] = rs.size() - 1;
			rq.insert(str1);
		}
		if (!rq.count(str2)) {
			rs.push_back(str2);
			rt[str2] = rs.size() - 1;
			rq.insert(str2);
		}
		if (!res[rt[str1]][rt[str2]]&&!res[rt[str2]][rt[str1]]) {
			q[rt[str1]].push_back(rt[str2]);
			q[rt[str2]].push_back(rt[str1]);
		}
		res[rt[str1]][rt[str2]] = wt;
	}
	/*for (int i = 0; i < rs.size(); i++) {
		cout << i << " " << rs[i] << endl;
	}*/
	while (bfs(rt[s1],rt[s2])) {
		sum += dini(rt[s1],rt[s2], inf);
	}
	cout << sum << endl;
	return 0;
}

 

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