제출 #655104

#제출 시각아이디문제언어결과실행 시간메모리
655104jophyyjh게임 (IOI14_game)C++14
42 / 100
1089 ms1616 KiB
/** * A pretty straight-forward problem. The problem asks us to "confuse" the player by * only letting him/her know the graph's connectivity at the very last moment. * * In order to be "between" connected and disconnected, it makes sense to have a * small (~O(n)) number of edges. Moreover, whether each edge is present shall be * determined by what edges are actually asked by the player. Here's my solution: * First imagine that all edges have the state "undecided". At the beginning, * all edges are "by default" present (we'll find out the actual ans when * the player asks for it). When the player asks for a new edge {u,v}, we * see whether not including {u,v} makes the graph disconnected, assuming * that all "undecided" edges are included. * If it does, we must include {u,v}; otherwise, we exclude it from the * graph since there're other undecided edges that preserve connectivity. * Finally, we flag the edge as "decided". * One can prove by induction that nC2 queries are required before we can determine * connectivity. * * Time Complexity: O(n^2) * Implementation 1 (connectivity) */ #include <bits/stdc++.h> #include "game.h" typedef std::vector<int> vec; int n; std::vector<vec> graph; // -1: undecided, 0: not included, 1: present void initialize(int _n) { n = _n; graph.assign(n, vec(n, -1)); } bool connected() { std::vector<bool> visited(n, false); visited[0] = true; std::queue<int> bfs_queue; bfs_queue.emplace(0); int non_visited = n; while (!bfs_queue.empty()) { int t = bfs_queue.front(); bfs_queue.pop(); non_visited--; for (int neighb = 0; neighb < n; neighb++) { if (!visited[neighb] && graph[neighb][t] != 0) { visited[neighb] = true; bfs_queue.emplace(neighb); } } } return non_visited == 0; } int hasEdge(int u, int v) { if (graph[u][v] == -1) { graph[u][v] = graph[v][u] = 0; if (!connected()) graph[u][v] = graph[v][u] = 1; } return graph[u][v]; }
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