598. Range Addition II
Given an m * n matrix M initialized with all 0's and several update operations.
Operations are represented by a 2D array, and each operation is represented by an array with two positive integers a and b, which means M[i][j] should be added by one for all 0 <= i < a and 0 <= j < b.
You need to count and return the number of maximum integers in the matrix after performing all the operations.
Example 1:
Input: m = 3, n = 3 operations = [[2,2],[3,3]] Output: 4 Explanation: Initially, M = [[0, 0, 0], [0, 0, 0], [0, 0, 0]] After performing [2,2], M = [[1, 1, 0], [1, 1, 0], [0, 0, 0]] After performing [3,3], M = [[2, 2, 1], [2, 2, 1], [1, 1, 1]] So the maximum integer in M is 2, and there are four of it in M. So return 4.
Note:
- The range of m and n is [1,40000].
- The range of a is [1,m], and the range of b is [1,n].
- The range of operations size won't exceed 10,000.
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public class Solution {
public int maxCount(int m, int n, int[][] ops) {
int min_a = Integer.MAX_VALUE;
int min_b = Integer.MAX_VALUE;
for (int[] temp : ops) {
if (temp[0] < min_a)
min_a = temp[0];
if (temp[1] < min_b)
min_b = temp[1];
}
return min_a != Integer.MAX_VALUE && min_b != Integer.MAX_VALUE ? min_a * min_b : m * n;
}
}
class Solution:
def maxCount(self, m, n, ops):
"""
:type m: int
:type n: int
:type ops: List[List[int]]
:rtype: int
"""
for temp in ops:
if m > temp[0]:
m = temp[0]
if n > temp[1]:
n = temp[1]
return m * n