标签:weak solution nat exp tin mono app public input
Given a m * n
matrix mat
of ones (representing soldiers) and zeros (representing civilians), return the indexes of the k
weakest rows in the matrix ordered from the weakest to the strongest.
A row i is weaker than row j, if the number of soldiers in row i is less than the number of soldiers in row j, or they have the same number of soldiers but i is less than j. Soldiers are always stand in the frontier of a row, that is, always ones may appear first and then zeros.
Example 1:
Input: mat = [[1,1,0,0,0], [1,1,1,1,0], [1,0,0,0,0], [1,1,0,0,0], [1,1,1,1,1]], k = 3 Output: [2,0,3] Explanation: The number of soldiers for each row is: row 0 -> 2 row 1 -> 4 row 2 -> 1 row 3 -> 2 row 4 -> 5 Rows ordered from the weakest to the strongest are [2,0,3,1,4]
Example 2:
Input: mat = [[1,0,0,0], [1,1,1,1], [1,0,0,0], [1,0,0,0]], k = 2 Output: [0,2] Explanation: The number of soldiers for each row is: row 0 -> 1 row 1 -> 4 row 2 -> 1 row 3 -> 1 Rows ordered from the weakest to the strongest are [0,2,3,1]
Constraints:
m == mat.length
n == mat[i].length
2 <= n, m <= 100
1 <= k <= m
matrix[i][j]
is either 0 or 1.class Solution { public int[] kWeakestRows(int[][] mat, int k) { int le = mat.length; int[][] help = new int[le][2]; for(int i = 0; i < le; i++){ help[i][1] = helper(mat[i]); help[i][0] = i; } Arrays.sort(help, (a, b) -> a[1] - b[1]); int t = k; int[] res = new int[k]; for(int i = 0; i < k; i++){ res[i] = help[i][0]; } return res; } public int helper(int[] arr){ int res = 0; for(int i: arr) res = i == 1 ? res + 1 : res; return res; } }
lambda表达式??
1341. The K Weakest Rows in a Matrix
标签:weak solution nat exp tin mono app public input
原文地址:https://www.cnblogs.com/wentiliangkaihua/p/12254555.html