# 被围绕的区域 给你一个 m x n 的矩阵 board ,由若干字符 'X''O' ,找到所有被 'X' 围绕的区域,并将这些区域里所有的 'O''X' 填充。

 

示例 1:

输入:board = [["X","X","X","X"],["X","O","O","X"],["X","X","O","X"],["X","O","X","X"]]
输出:[["X","X","X","X"],["X","X","X","X"],["X","X","X","X"],["X","O","X","X"]]
解释:被围绕的区间不会存在于边界上,换句话说,任何边界上的 'O' 都不会被填充为 'X'。 任何不在边界上,或不与边界上的 'O' 相连的 'O' 最终都会被填充为 'X'。如果两个元素在水平或垂直方向相邻,则称它们是“相连”的。

示例 2:

输入:board = [["X"]]
输出:[["X"]]

 

提示:

## template ```cpp #include using namespace std; class Solution { public: int m, n; void solve(vector> &board) { m = board.size(); if (!m) return; n = board[0].size(); if (!n) return; for (int i = 0; i < m; ++i) { if (i == 0 || i == m - 1) { for (int j = 0; j < n; ++j) { if (board[i][j] == 'O') dfs(board, i, j); } } else { if (board[i][0] == 'O') dfs(board, i, 0); if (board[i][n - 1] == 'O') dfs(board, i, n - 1); } } for (int i = 0; i < m; ++i) for (int j = 0; j < n; ++j) { if (board[i][j] == 'A') board[i][j] = 'O'; else board[i][j] = 'X'; } } void dfs(vector> &board, int i, int j) { board[i][j] = 'A'; if (i - 1 < m && i - 1 >= 0 && j < n && j >= 0 && board[i - 1][j] == 'O') { dfs(board, i - 1, j); } if (i + 1 < m && i + 1 >= 0 && j < n && j >= 0 && board[i + 1][j] == 'O') { dfs(board, i + 1, j); } if (i < m && i >= 0 && j - 1 < n && j - 1 >= 0 && board[i][j - 1] == 'O') { dfs(board, i, j - 1); } if (i < m && i >= 0 && j + 1 < n && j + 1 >= 0 && board[i][j + 1] == 'O') { dfs(board, i, j + 1); } } }; ``` ## 答案 ```cpp ``` ## 选项 ### A ```cpp ``` ### B ```cpp ``` ### C ```cpp ```