maze(bfs搜索)
maze
https://ac.nowcoder.com/acm/problem/15665
题目:
一个n*m的迷宫。问从起点走到终点最短用时。往上下左右走1格花费1s。用一次传送门花费3s。
做法:
简单题。从起点开始bfs搜到达所有点的最短用时就好了。从每个点转移到上下左右位置以及该点可以开启的传送门的位置。题目不难,细节比较多一点。
可以看看我的写法,用优先队列优化bfs。
代码:
#include <bits/stdc++.h> #define IOS ios::sync_with_stdio(false), cin.tie(0) #define debug(a) cout << #a ": " << a << endl using namespace std; typedef long long ll; const int N = 310; const int inf = 0x3f3f3f3f; const int dx[] = {0,1,0,-1}; const int dy[] = {1,0,-1,0}; char str[N][N]; int n, m, q; struct node{ int x, y, step; node(int x = 0, int y = 0, int s = 0):x(x),y(y),step(s){} bool operator < (const node& rh)const{ return step > rh.step; } }s, t; vector <pair<int,int> > tp[N*N]; int tim[N][N]; int get(int x, int y){ return (x-1)*m+y; } void bfs(void){ memset(tim, inf, sizeof tim); priority_queue<node> q; s.step = 0; q.push(s); tim[s.x][s.y] = 0; while (!q.empty()){ node u = q.top(); q.pop(); if (tim[u.x][u.y] != u.step) continue; for (int i = 0; i < 4; ++i){ int x = u.x+dx[i], y = u.y+dy[i]; if (x < 1 || x > n || y < 1 || y > m) continue; if (str[x][y] == '#') continue; if (tim[x][y] > u.step+1){ tim[x][y] = u.step+1; q.push(node(x, y, u.step+1)); } } int h = get(u.x, u.y); for (int i = 0; i < tp[h].size(); ++i){ int x = tp[h][i].first, y = tp[h][i].second; if (str[x][y] == '#') continue; if (tim[x][y] > u.step+3){ tim[x][y] = u.step+3; q.push(node(x, y, u.step+3)); } } } } int main(void){ IOS; while (cin >> n >> m >> q){ for (int i = 1; i <= n; ++i){ cin >> (str[i]+1); for (int j = 1; j <= m; ++j){ if (str[i][j] == 'S'){ s = node(i, j, 0); }else if (str[i][j] == 'T'){ t = node(i, j, 0); } } } for (int i = 1; i <= get(n, m); ++i) tp[i].clear(); for (int i = 1; i <= q; ++i){ int x1, y1, x2, y2; cin >> x1 >> y1 >> x2 >> y2; x1++, y1++, x2++, y2++; tp[get(x1, y1)].push_back(make_pair(x2, y2)); } bfs(); if (tim[t.x][t.y] == inf) cout << -1 << endl; else cout << tim[t.x][t.y] << endl; } return 0; }