1.题目描述:点击打开链接
2.解题思路:本题利用BFS解决。由于行走的时候有两种情况,当遇到‘X’时会掉到下一层,当遇到’.’时还在本层,只不过’.’要变为’X’。那么直接用BFS进行搜索即可。如果遇到了’X’,,只需要判断是不是终点即可,否则跳过,如果遇到了‘.’,那么将它改为‘X’,并入队列即可。比赛时我一直在DFS和BFS之间徘徊不定,但其实不难发现,如果用DFS的话,可能有走不动的情况,需要往回撤。时间复杂度会比较高,因此自然会想到BFS。
3.代码:
#define _CRT_SECURE_NO_WARNINGS #include<iostream>#include<algorithm>#include<string>#include<sstream>#include<set>#include<vector>#include<stack>#include<map>#include<queue>#include<deque>#include<cstdlib>#include<cstdio>#include<cstring>#include<cmath>#include<ctime>#include<functional>using namespace std;#define N 500+5int n, m;int s, t, e, d;int dx[] = { 1, -1, 0, 0 };int dy[] = { 0, 0, 1, -1 };char g[N][N];typedef pair<int, int>P;bool bfs(){queue<P>q;q.push(P(s,t));g[s][t] = 'X';while (!q.empty()){s = q.front().first, t = q.front().second; q.pop();for (int i = 0; i < 4; i++){int xx = s + dx[i];int yy = t + dy[i];if (xx < 0 || xx >= n || yy < 0 || yy >= m)continue;if (g[xx][yy] == 'X'){if (xx == e&&yy == d)return true;continue;}g[xx][yy] = 'X';q.push(P(xx, yy));}}return false;}int main(){//freopen("t.txt", "r", stdin);while (~scanf("%d%d", &n, &m)){for (int i = 0; i < n; i++)scanf("%s", g[i]);scanf("%d%d%d%d", &s, &t, &e, &d);s–, t–, e–, d–;printf("%s\n", bfs() ? "YES" : "NO");}return 0;}
挫折其实就是迈向成功所应缴的学费。
