• 419. Battleships in a Board


    https://leetcode.com/problems/battleships-in-a-board/

    Given an 2D board, count how many different 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) or Nx1 (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 not a valid board - as battleships will always have a cell separating between them.

    Your algorithm should not modify the value of the board.

    考察的是深度优先遍历的使用

    思路:

    通过DFS遍历四个方向 


    (i - 1, j)
    (i, j - 1) (i, j) (i, j + 1)

    (i + 1, j)  
    X的一堆区域(都是X)就是一个战舰,求一共有多少战舰。

    为了防止重复访问,用visited数组标记下已访问的结点

    解答:

    #include <iostream>
    #include <vector>
    using namespace std;
    
    class Solution {
    public:
    	void dfs(vector<vector<char>>& board, int i, int j)
    	{
    		visited[i][j] = true;
    		//left
    		if (i >= 0 && i < n && j - 1 >= 0 && j - 1 < m && !visited[i][j - 1] && board[i][j - 1] == 'X')
    		{
    			dfs(board, i, j - 1);
    		}
    		//right
    		if (i >= 0 && i < n && j + 1 >= 0 && j + 1 < m && !visited[i][j + 1] && board[i][j + 1] == 'X')
    		{
    			dfs(board, i, j + 1);
    		}
    		//top
    		if (i - 1 >= 0 && i - 1 < n && j >= 0 && j < m && !visited[i - 1][j] && board[i - 1][j] == 'X')
    		{
    			dfs(board, i - 1, j);
    		}
    		//bottom
    		if (i + 1 >= 0 && i + 1 < n && j >= 0 && j < m && !visited[i + 1][j] && board[i + 1][j] == 'X')
    		{
    			dfs(board, i + 1, j);
    		}
    	}
    
    	int countBattleships(vector<vector<char>>& board) {
    		n = board.size();
    		m = board[0].size();
    		num = 0;
    		for (int i = 0; i < n; ++i)
    		{
    			for (int j = 0; j < m; ++j)
    			{
    				visited[i][j] = false;
    			}
    		}
    		for (int i = 0; i < n; ++i)
    		{
    			for (int j = 0; j < m; ++j)
    			{
    				if (board[i][j] == 'X' && !visited[i][j])
    				{
    					num++;
    					dfs(board, i, j);
    				}
    			}
    		}
    		return num;
    	}
    private:
    	int n;
    	int m;
    	int num;
    	bool visited[1000][1000];
    };
    
    int main()
    {
    	Solution s;
    	vector<vector<char> >vec{ { 'X', '.', '.', 'X' }, { '.', '.', '.', 'X' }, { '.', '.', '.', 'X' } };
    	cout << s.countBattleships(vec);
    
    	return 0;
    }




    Keep it simple!
    作者:N3verL4nd
    知识共享,欢迎转载。
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  • 原文地址:https://www.cnblogs.com/lgh1992314/p/6616337.html
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