523. Continuous Subarray Sum

Description

Given an integer array nums and an integer k, return true if nums has a continuous subarray of size at least two whose elements sum up to a multiple of k, or false otherwise.

An integer x is a multiple of k if there exists an integer n such that x = n * k. 0 is always a multiple of k.

Example 1:

Input: nums = [23,2,4,6,7], k = 6
Output: true
Explanation: [2, 4] is a continuous subarray of size 2 whose elements sum up to 6.

Example 2:

Input: nums = [23,2,6,4,7], k = 6
Output: true
Explanation: [23, 2, 6, 4, 7] is an continuous subarray of size 5 whose elements sum up to 42.
42 is a multiple of 6 because 42 = 7 * 6 and 7 is an integer.

Example 3:

Input: nums = [23,2,6,4,7], k = 13
Output: false

Constraints:

1 <= nums.length <= 10⁵
0 <= nums[i] <= 10⁹
0 <= sum(nums[i]) <= 2³¹ - 1
1 <= k <= 2³¹ - 1

Solution

continuous-subarray-sum.py

class Solution:
    def checkSubarraySum(self, nums: List[int], k: int) -> bool:
        mp = {0:-1}
        s = 0

        for i, x in enumerate(nums):
            s = (s + x) % k
            if s not in mp:
                mp[s] = i

            if i - mp[s] >= 2:
                return True

        return False