leetcode Daily Challenge on August 9th, 2020.
Difficulty : Medium
Related Topics : BFS
In a given grid, each cell can have one of three values:
- the value
0representing an empty cell;- the value
1representing a fresh orange;- the value
2representing a rotten orange.Every minute, any fresh orange that is adjacent (4-directionally) to a rotten orange becomes rotten.
Return the minimum number of minutes that must elapse until no cell has a fresh orange. If this is impossible, return
-1instead.
Input: [[2,1,1],[1,1,0],[0,1,1]] Output: 4Input: [[2,1,1],[0,1,1],[1,0,1]] Output: -1 Explanation: The orange in the bottom left corner (row 2, column 0) is never rotten, because rotting only happens 4-directionally.Input: [[0,2]] Output: 0 Explanation: Since there are already no fresh oranges at minute 0, the answer is just 0.
1 <= grid.length <= 101 <= grid[0].length <= 10grid[i][j]is only0,1, or2.
- mine
- Java
- BFS
Runtime: 2 ms, faster than 97.60%, Memory Usage: 39 MB, less than 85.21% of Java online submissions// O(r * c)time // O(Max(len(list)))space public int orangesRotting(int[][] grid) { LinkedList<int[]> list = new LinkedList<>(); int r = grid.length, c = grid[0].length; int freshCount = 0; for (int i = 0; i < r; i++) { for (int j = 0; j < c; j++) { if (grid[i][j] == 2) list.add(new int[]{i, j}); if (grid[i][j] == 1) freshCount++; } } int res = 0; while (!list.isEmpty() && freshCount != 0) { res++; int size = list.size(); while (size > 0) { size--; int[] t = list.removeFirst(); if (t[0] > 0 && grid[t[0] - 1][t[1]] == 1) { freshCount--; grid[t[0] - 1][t[1]] = 2; list.add(new int[]{t[0] - 1, t[1]}); } if (t[0] + 1 < r && grid[t[0] + 1][t[1]] == 1) { freshCount--; grid[t[0] + 1][t[1]] = 2; list.add(new int[]{t[0] + 1, t[1]}); } if (t[1] > 0 && grid[t[0]][t[1] - 1] == 1) { freshCount--; grid[t[0]][t[1] - 1] = 2; list.add(new int[]{t[0], t[1] - 1}); } if (t[1] + 1 < c && grid[t[0]][t[1] + 1] == 1) { freshCount--; grid[t[0]][t[1] + 1] = 2; list.add(new int[]{t[0], t[1] + 1}); } } } return freshCount == 0 ? res : -1; }
- BFS
- Java
- the most votes
- BFS
Runtime: 3 ms, faster than 82.65%, Memory Usage: 38.8 MB, less than 94.48% of Java online submissions// O(r * c)time // O(Max(len(queue)))space public int orangesRotting(int[][] grid) { if(grid == null || grid.length == 0) return 0; int rows = grid.length; int cols = grid[0].length; Queue<int[]> queue = new LinkedList<>(); int count_fresh = 0; //Put the position of all rotten oranges in queue //count the number of fresh oranges for(int i = 0 ; i < rows ; i++) { for(int j = 0 ; j < cols ; j++) { if(grid[i][j] == 2) { queue.offer(new int[]{i , j}); } else if(grid[i][j] == 1) { count_fresh++; } } } //if count of fresh oranges is zero --> return 0 if(count_fresh == 0) return 0; int count = 0; int[][] dirs = {{1,0},{-1,0},{0,1},{0,-1}}; //bfs starting from initially rotten oranges while(!queue.isEmpty()) { ++count; int size = queue.size(); for(int i = 0 ; i < size ; i++) { int[] point = queue.poll(); for(int dir[] : dirs) { int x = point[0] + dir[0]; int y = point[1] + dir[1]; //if x or y is out of bound //or the orange at (x , y) is already rotten //or the cell at (x , y) is empty //we do nothing if(x < 0 || y < 0 || x >= rows || y >= cols || grid[x][y] == 0 || grid[x][y] == 2) continue; //mark the orange at (x , y) as rotten grid[x][y] = 2; //put the new rotten orange at (x , y) in queue queue.offer(new int[]{x , y}); //decrease the count of fresh oranges by 1 count_fresh--; } } } return count_fresh == 0 ? count-1 : -1; }
- BFS