Count subarrays such that remainder after dividing sum of elements by K gives count of elements

Given an array arr[] of size N and an element K. The task is to find the number of sub-arrays of the given array such that the remainder when dividing the sum of its elements by K is equal to the number of elements in the subarray.

Examples: 

Input: arr[] = {1, 4, 2, 3, 5}, K = 4 
Output: 4 
{1}, {1, 4, 2}, {4, 2} and {5} 
are the only valid subarrays.
Input: arr[] = {4, 2, 4, 2, 4, 2, 4, 2}, K = 4 
Output: 7 

Approach: Let’s define a sequence S_n such that S_i = A₁ + A₂ + ··· + A_i and S₀ = 0. Then, the condition that a contiguous subsequence A_i+1, …, A_j is valid can be represented as (S_j – S_i) % K = j – i. 
This equation can then be transformed into the following equivalent conditions: 
(S_j – j) % K = (S_i – i) % K and j – i < K. 
Therefore, for each j(1 ? j ? N), count the number of j – K < i < j such that (S_j – j) % K = (S_i – i) % K. For j the segment needed to be searched is (j – K, j), and for j + 1, it is (j – K + 1, j + 1), and these differ only by one element at the leftmost and rightmost, so in order to search for (j + 1)^th after searching for j^th element, only discard the leftmost element and add the rightmost element. Operations of discarding or adding can be performed quickly by managing the number of S_i – i‘s by using associative arrays (such as map in C++ or dict in Python).

Below is the implementation of the above approach: 

Output:

4

Time Complexity: O(N* log(N))
Auxiliary Space: O(N)