给你一个由 '1'(陆地)和 '0'(水)组成的的二维网格,请你计算网格中岛屿的数量。
岛屿总是被水包围,并且每座岛屿只能由水平方向和/或竖直方向上相邻的陆地连接形成。
此外,你可以假设该网格的四条边均被水包围。
示例 1:
输入:grid = [
["1","1","1","1","0"],
["1","1","0","1","0"],
["1","1","0","0","0"],
["0","0","0","0","0"]
]
输出:1
示例 2:
输入:grid = [
["1","1","0","0","0"],
["1","1","0","0","0"],
["0","0","1","0","0"],
["0","0","0","1","1"]
]
输出:3
提示:
m == grid.lengthn == grid[i].length1 <= m, n <= 300grid[i][j]的值为'0'或'1'
相关标签:深度优先搜索、广度优先搜索、并查集、数组、矩阵
思路:题目给了一个矩阵,矩阵外可以看成全是‘0’组成的,岛屿的条件是被‘0’包裹的‘1’。那么可以这样想,如果一个岛屿是由很多个‘1’组成的,那么其中每个‘1’都与其他的‘1’相连接,这些连接起来的只能算一个岛。具体代码如下所示:
public int numIslands(char[][] grid) {
if(grid.length==0){
return 0;
}
//记录岛屿的数量
int res = 0;
for (int i = 0; i < grid.length; i++) {
for (int j = 0; j < grid[0].length; j++) {
//如果当前位置的值是‘1’
if(grid[i][j] == '1'){
//岛屿数量+1
res++;
//调用函数将当前位置所在的岛屿的值都置为‘0’
changeToZero(grid,i,j);
}
}
}
return res;
}
//这个方法可以将当前位置周围连接的‘1’全置为‘0’
public void changeToZero(char[][] grid,int i,int j){
//如果当前索引在矩阵中并且当前值是1的时候,进行转换
if(i >= 0 && i<grid.length && j >= 0 && j < grid[0].length && grid[i][j] == '1'){
grid[i][j] = '0';
//递归循环当前位置的上下左右四个位置
changeToZero(grid,i-1,j);//左
changeToZero(grid,i,j-1);//上
changeToZero(grid,i+1,j);//右
changeToZero(grid,i,j+1);//下
}
}
解法不唯一,如果有错误,欢迎指正~