LeetCode 2644. Find the Maximum Divisibility Score Solution in Java, C++, Python & More | Explanation + Code

CoderIndeed
0
2644. Find the Maximum Divisibility Score

Description

You are given two integer arrays nums and divisors.

The divisibility score of divisors[i] is the number of indices j such that nums[j] is divisible by divisors[i].

Return the integer divisors[i] with the maximum divisibility score. If multiple integers have the maximum score, return the smallest one.

 

Example 1:

Input: nums = [2,9,15,50], divisors = [5,3,7,2]

Output: 2

Explanation:

The divisibility score of divisors[0] is 2 since nums[2] and nums[3] are divisible by 5.

The divisibility score of divisors[1] is 2 since nums[1] and nums[2] are divisible by 3.

The divisibility score of divisors[2] is 0 since none of the numbers in nums is divisible by 7.

The divisibility score of divisors[3] is 2 since nums[0] and nums[3] are divisible by 2.

As divisors[0]divisors[1], and divisors[3] have the same divisibility score, we return the smaller one which is divisors[3].

Example 2:

Input: nums = [4,7,9,3,9], divisors = [5,2,3]

Output: 3

Explanation:

The divisibility score of divisors[0] is 0 since none of numbers in nums is divisible by 5.

The divisibility score of divisors[1] is 1 since only nums[0] is divisible by 2.

The divisibility score of divisors[2] is 3 since nums[2], nums[3] and nums[4] are divisible by 3.

Example 3:

Input: nums = [20,14,21,10], divisors = [10,16,20]

Output: 10

Explanation:

The divisibility score of divisors[0] is 2 since nums[0] and nums[3] are divisible by 10.

The divisibility score of divisors[1] is 0 since none of the numbers in nums is divisible by 16.

The divisibility score of divisors[2] is 1 since nums[0] is divisible by 20.

 

Constraints:

  • 1 <= nums.length, divisors.length <= 1000
  • 1 <= nums[i], divisors[i] <= 109

Solutions

Solution 1: Enumeration

We can enumerate each element div in divisors, and calculate how many elements in nums can be divided by div, denoted as cnt.

  • If cnt is greater than the current maximum divisibility score mx, then update mx = cnt, and update ans = div.
  • If cnt equals mx and div is less than ans, then update ans = div.

Finally, return ans.

The time complexity is O(m × n), where m and n are the lengths of nums and divisors respectively. The space complexity is O(1).

PythonJavaC++GoTypeScriptRust
class Solution: def maxDivScore(self, nums: List[int], divisors: List[int]) -> int: ans, mx = divisors[0], 0 for div in divisors: cnt = sum(x % div == 0 for x in nums) if mx < cnt: mx, ans = cnt, div elif mx == cnt and ans > div: ans = div return ans(code-box)

Post a Comment

0Comments

Post a Comment (0)

#buttons=(Accept !) #days=(20)

Our website uses cookies to enhance your experience. Check Now
Accept !