Given an 2D board, count how many battleships are in it. The battleships are represented with 'X's, empty slots are represented with '.'s. You may assume the following rules:
- You receive a valid board, made of only battleships or empty slots.
- Battleships can only be placed horizontally or vertically. In other words, they can only be made of the shape
1xN(1 row, N columns) orNx1(N rows, 1 column), where N can be of any size. - At least one horizontal or vertical cell separates between two battleships - there are no adjacent battleships.
Example:
X..X ...X ...X
In the above board there are 2 battleships.
Invalid Example:
...X XXXX ...X
This is an invalid board that you will not receive - as battleships will always have a cell separating between them.
Follow up:
Could you do it in one-pass, using only O(1) extra memory and without modifying the value of the board?
使用DFS来遍历board
如果遇到X并标记,并沿水平和垂直方向继续遍历,
如果遇到.直接返回。
class Solution { public: int countBattleships(vector<vector<char>>& board) { if (board.empty()) return 0; // Count battleships int res = 0; int m = board.size(), n = board[0].size(); vector<vector<bool>> visited(m, vector<bool>(n, false)); // Traversal board and judge battleships. for (int i = 0; i < m; i++) { for (int j = 0; j < n; j++) { if (!visited[i][j] && board[i][j] == 'X') { dfs(board, visited, i, j); res += 1; } } } return res; } void dfs(vector<vector<char>>& board, vector<vector<bool>>& visited, int i, int j) { if (visited[i][j] == true) return; visited[i][j] = true; if (board[i][j] == '.') { return; } else { if (i + 1 < board.size() && board[i + 1][j] == 'X') dfs(board, visited, i + 1, j); if (j + 1 < board[0].size() && board[i][j + 1] == 'X') dfs(board, visited, i, j + 1); } return; } }; // 9 ms