Given a rows x cols matrix mat, where mat[i][j] is either 0 or 1, return the number of special positions in mat.
A position (i,j) is called special if mat[i][j] == 1 and all other elements in row i and column j are 0 (rows and columns are 0-indexed).
Example 1:
Input: mat = [[1,0,0], [0,0,1], [1,0,0]] Output: 1 Explanation: (1,2) is a special position because mat[1][2] == 1 and all other elements in row 1 and column 2 are 0.
Example 2:
Input: mat = [[1,0,0], [0,1,0], [0,0,1]] Output: 3 Explanation: (0,0), (1,1) and (2,2) are special positions.
Example 3:
Input: mat = [[0,0,0,1], [1,0,0,0], [0,1,1,0], [0,0,0,0]] Output: 2
Example 4:
Input: mat = [[0,0,0,0,0], [1,0,0,0,0], [0,1,0,0,0], [0,0,1,0,0], [0,0,0,1,1]] Output: 3
Constraints:
rows == mat.lengthcols == mat[i].length1 <= rows, cols <= 100mat[i][j]is0or1.
class Solution { public int numSpecial(int[][] mat) { int res = 0; int m = mat.length, n = mat[0].length; for(int i = 0; i < m; i++) { for(int j = 0; j < n; j++) { if(mat[i][j] == 1 && check(i, j, mat)) res++; } } return res; } public boolean check(int i, int j, int[][] mat) { int m = mat.length, n = mat[0].length; for(int k = 0; k < m; k++) { if(k != i && mat[k][j] == 1) return false; } for(int k = 0; k < n; k++) { if(k != j && mat[i][k] == 1) return false; } return true; } }
或者再用一个数组记录每行列中有几个1,如果只有一个就res++
public int numSpecial(int[][] mat) { int m = mat.length, n = mat[0].length, res = 0, col[] = new int[n], row[] = new int[m]; for (int i = 0; i < m; i++) for (int j = 0; j < n; j++) if (mat[i][j] == 1){ col[j]++; row[i]++; } for (int i = 0; i < m; i++) for (int j = 0; j < n; j++) if (mat[i][j] == 1 && row[i] == 1 && col[j] == 1) res++; return res; }