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1590\. Make Sum Divisible by P

Medium

Given an array of positive integers `nums`, remove the **smallest** subarray (possibly **empty**) such that the **sum** of the remaining elements is divisible by `p`. It is **not** allowed to remove the whole array.

Return _the length of the smallest subarray that you need to remove, or_ `-1` _if it's impossible_.

A **subarray** is defined as a contiguous block of elements in the array.

**Example 1:**

**Input:** nums = [3,1,4,2], p = 6

**Output:** 1

**Explanation:** The sum of the elements in nums is 10, which is not divisible by 6. We can remove the subarray [4], and the sum of the remaining elements is 6, which is divisible by 6.

**Example 2:**

**Input:** nums = [6,3,5,2], p = 9

**Output:** 2

**Explanation:** We cannot remove a single element to get a sum divisible by 9. The best way is to remove the subarray [5,2], leaving us with [6,3] with sum 9.

**Example 3:**

**Input:** nums = [1,2,3], p = 3

**Output:** 0

**Explanation:** Here the sum is 6. which is already divisible by 3. Thus we do not need to remove anything.

**Constraints:**

*   1 <= nums.length <= 105
*   1 <= nums[i] <= 109
*   1 <= p <= 109




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