CF B. Fox And Two Dots

B. Fox And Two Dots
time limit per test
2 seconds
memory limit per test
256 megabytes
input
standard input
output
standard output

Fox Ciel is playing a mobile puzzle game called "Two Dots". The basic levels are played on a board of size n × m cells, like this:

Each cell contains a dot that has some color. We will use different uppercase Latin characters to express different colors.

The key of this game is to find a cycle that contain dots of same color. Consider 4 blue dots on the picture forming a circle as an example. Formally, we call a sequence of dots d1, d2, ..., dk a cycle if and only if it meets the following condition:

  1. These k dots are different: if i ≠ j then di is different from dj.
  2. k is at least 4.
  3. All dots belong to the same color.
  4. For all 1 ≤ i ≤ k - 1: di and di + 1 are adjacent. Also, dk and d1 should also be adjacent. Cells x and y are called adjacent if they share an edge.

Determine if there exists a cycle on the field.

Input

The first line contains two integers n and m (2 ≤ n, m ≤ 50): the number of rows and columns of the board.

Then n lines follow, each line contains a string consisting of m characters, expressing colors of dots in each line. Each character is an uppercase Latin letter.

Output

Output "Yes" if there exists a cycle, and "No" otherwise.

Sample test(s)
input
3 4
AAAA
ABCA
AAAA
output
Yes
input
3 4
AAAA
ABCA
AADA
output
No
input
4 4
YYYR
BYBY
BBBY
BBBY
output
Yes
input
7 6
AAAAAB
ABBBAB
ABAAAB
ABABBB
ABAAAB
ABBBAB
AAAAAB
output
Yes
input
2 13
ABCDEFGHIJKLM
NOPQRSTUVWXYZ
output
No
Note

In first sample test all 'A' form a cycle.

In second sample there is no such cycle.

The third sample is displayed on the picture above ('Y' = Yellow, 'B' = Blue, 'R' = Red).

 题意:判断图中是否存在长度大于4的回路(由同一种字母组成的)。

思路:DFS,注意每次不往回搜索,直到搜索结束或者搜到有标记的位置停止。

 1 #include<iostream>
 2 #include<cstdio>
 3 #include<cstdlib>
 4 #include<cstring>
 5 #include<string>
 6 #include<queue>
 7 #include<algorithm>
 8 #include<map>
 9 #include<iomanip>
10 #include<climits>
11 #include<string.h>
12 #include<numeric>
13 #include<cmath>
14 #include<stdlib.h>
15 #include<vector>
16 #include<stack>
17 #include<set>
18 #define FOR(x, b, e)  for(int x=b;x<=(e);x++)
19 #define REP(x, n)     for(int x=0;x<(n);x++)
20 #define INF 1e7
21 #define MAXN 100010
22 #define maxn 1000010
23 #define Mod 1000007
24 #define N 1010
25 using namespace std;
26 typedef long long LL;
27 
28 
29 char G[55][55];
30 int vis[55][55];
31 int dx[] = {-1, 0, 0, 1}, dy[] = {0, 1, -1, 0};
32 int n, m;
33 bool ok;
34 
35 void dfs(int x,int y, int d) 
36 {
37     vis[x][y] = 1;
38     REP(i, 4) {
39         if (i == 3 - d) continue;
40         int nx = x + dx[i];
41         int ny = y + dy[i];
42         if (nx == 0 || ny == 0 || ny == m+1 || nx == n+1) continue;
43         if (G[x][y] == G[nx][ny]) {
44             if (vis[nx][ny]) {
45                 ok = true;
46                 return;
47             }
48             else dfs(nx, ny, i);
49         }
50     }
51 }
52 
53 int main()
54 {
55     cin >> n >> m;
56     FOR(i, 1, n)
57         cin >> G[i] + 1;
58     FOR(i, 1, n)
59         FOR(j, 1, m) {
60             if (!vis[i][j]) 
61                 dfs(i, j, 4);
62         }
63     puts(ok ? "Yes" : "No");
64     return 0;
65 }

 

posted @ 2015-04-01 21:06  UsedRose  阅读(244)  评论(0编辑  收藏  举报