[LeetCode] 286. Walls and Gates
You are given an m x n grid rooms initialized with these three possible values.
-1A wall or an obstacle.0A gate.INFInfinity means an empty room. We use the value231 - 1 = 2147483647to representINFas you may assume that the distance to a gate is less than2147483647.
Fill each empty room with the distance to its nearest gate. If it is impossible to reach a gate, it should be filled with INF.
Example:
Given the 2D grid:
INF -1 0 INF INF INF INF -1 INF -1 INF -1 0 -1 INF INF
After running your function, the 2D grid should be:
3 -1 0 1 2 2 1 -1 1 -1 2 -1 0 -1 3 4
墙与门。
题意是给一个二维矩阵,里面的 -1 代表墙,0 代表门,INF 代表一个空的房间。请改写所有的 INF,表明每个 INF 到最近的门的距离。
这一题是带障碍物的 ,也是在矩阵内通过已知的一些距离去累加起来找未知坐标的距离。还有一道题也比较类似,也是带障碍物的 flood fill 类型的题目,。
具体思路是先找到矩阵中的 0,把这些 0 的坐标放入 queue。从 queue 中弹出这些0的时候,往四个方向扫描,看看这些 0 的周围是否有 INF。如果有,则这些 INF 就有一个具体的距离了,把这些有了距离的 INF 再放入 queue。这些 INF 有了具体的距离之后,别的 INF 也就有机会被计算出具体的距离了。
时间O(mn)
空间O(mn)
Java实现
1 class Solution { 2 public void wallsAndGates(int[][] rooms) { 3 // corner case 4 if (rooms == null || rooms.length == 0) { 5 return; 6 } 7 8 // normal case 9 Queue<int[]> queue = new LinkedList<>(); 10 for (int i = 0; i < rooms.length; i++) { 11 for (int j = 0; j < rooms[0].length; j++) { 12 if (rooms[i][j] == 0) { 13 queue.offer(new int[] { i, j }); 14 } 15 } 16 } 17 while (!queue.isEmpty()) { 18 int[] cur = queue.poll(); 19 int r = cur[0]; 20 int c = cur[1]; 21 if (r > 0 && rooms[r - 1][c] == Integer.MAX_VALUE) { 22 rooms[r - 1][c] = rooms[r][c] + 1; 23 queue.offer(new int[] { r - 1, c }); 24 } 25 if (c > 0 && rooms[r][c - 1] == Integer.MAX_VALUE) { 26 rooms[r][c - 1] = rooms[r][c] + 1; 27 queue.offer(new int[] { r, c - 1 }); 28 } 29 if (r < rooms.length - 1 && rooms[r + 1][c] == Integer.MAX_VALUE) { 30 rooms[r + 1][c] = rooms[r][c] + 1; 31 queue.offer(new int[] { r + 1, c }); 32 } 33 if (c < rooms[0].length - 1 && rooms[r][c + 1] == Integer.MAX_VALUE) { 34 rooms[r][c + 1] = rooms[r][c] + 1; 35 queue.offer(new int[] { r, c + 1 }); 36 } 37 } 38 } 39 }
相关题目
flood fill题型总结