原题链接在这里:https://leetcode.com/problems/largest-plus-sign/
题目:
In a 2D grid from (0, 0) to (N-1, N-1), every cell contains a 1, except those cells in the given list mines which are 0. What is the largest axis-aligned plus sign of 1s contained in the grid? Return the order of the plus sign. If there is none, return 0.
An "axis-aligned plus sign of 1s of order k" has some center grid[x][y] = 1 along with 4 arms of length k-1 going up, down, left, and right, and made of 1s. This is demonstrated in the diagrams below. Note that there could be 0s or 1s beyond the arms of the plus sign, only the relevant area of the plus sign is checked for 1s.
Examples of Axis-Aligned Plus Signs of Order k:
Order 1: 000 010 000 Order 2: 00000 00100 01110 00100 00000 Order 3: 0000000 0001000 0001000 0111110 0001000 0001000 0000000
Example 1:
Input: N = 5, mines = [[4, 2]] Output: 2 Explanation: 11111 11111 11111 11111 11011 In the above grid, the largest plus sign can only be order 2. One of them is marked in bold.
Example 2:
Input: N = 2, mines = [] Output: 1 Explanation: There is no plus sign of order 2, but there is of order 1.
Example 3:
Input: N = 1, mines = [[0, 0]] Output: 0 Explanation: There is no plus sign, so return 0.
Note:
Nwill be an integer in the range[1, 500].mineswill have length at most5000.mines[i]will be length 2 and consist of integers in the range[0, N-1].- (Additionally, programs submitted in C, C++, or C# will be judged with a slightly smaller time limit.)
题解:
For each cell, plus sign is its min of left, right, up and down reach.
We could use brute force. It would take O(N) for each cell and totally O(N^3).
Otherwise, we could iterate each row left to right, calculate farest left reach for each cell. Unless cell is 0, keep accumlate length.
Iterate each row right to left, calculate farest right reach for each cell.
Same for columns to get farest up and down reach.
Get the minimum from farest left, right, up and down reach. Update final result.
Time Complexity: O(N^2).
Space: O(N^2).
AC Java:
1 class Solution { 2 public int orderOfLargestPlusSign(int N, int[][] mines) { 3 if(N <= 0){ 4 return 0; 5 } 6 7 int [][] matrix = new int[N][N]; 8 for(int i = 0; i<N; i++){ 9 Arrays.fill(matrix[i], N); 10 } 11 12 for(int [] mine : mines){ 13 matrix[mine[0]][mine[1]] = 0; 14 } 15 16 for(int i = 0; i<N; i++){ 17 for(int col = 0, l = 0; col<N; col++){ 18 l = matrix[i][col] == 0 ? 0 : l+1; 19 matrix[i][col] = Math.min(matrix[i][col], l); 20 } 21 22 for(int col = N-1, r = 0; col>=0; col--){ 23 r = matrix[i][col] == 0 ? 0 : r+1; 24 matrix[i][col] = Math.min(matrix[i][col], r); 25 } 26 27 for(int row = 0, u = 0; row<N; row++){ 28 u = matrix[row][i] == 0 ? 0 : u+1; 29 matrix[row][i] = Math.min(matrix[row][i], u); 30 } 31 32 for(int row = N-1, d = 0; row>=0; row--){ 33 d = matrix[row][i] == 0 ? 0 : d+1; 34 matrix[row][i] = Math.min(matrix[row][i], d); 35 } 36 } 37 38 int res = 0; 39 for(int i = 0; i<N; i++){ 40 for(int j = 0; j<N; j++){ 41 res = Math.max(res, matrix[i][j]); 42 } 43 } 44 45 return res; 46 } 47 }