Count 1’s in a sorted binary array

Input: arr[] = {1, 1, 0, 0, 0, 0, 0}
Output: 2

Input: arr[] = {1, 1, 1, 1, 1, 1, 1}
Output: 7

Input: arr[] = {0, 0, 0, 0, 0, 0, 0}
Output: 0

A simple solution is to linearly traverse the array. The time complexity of the simple solution is O(n). We can use Binary Search to find count in O(Logn) time. The idea is to look for last occurrence of 1 using Binary Search. Once we find the index last occurrence, we return index + 1 as count.
The following is the implementation of above idea. 

Count of 1's in given array is 4

Time complexity of the above solution is O(Logn)

Space complexity o(log n) (function call stack)

The same approach with iterative solution would be

Count of 1's in given array is 4

Time complexity of the above solution is O(Logn)

Space complexity is O(1)

Method 2: Using C++ STL  upper_bound() 

The function will return the pointer to the index after the last occurrence of the element which we pass into the function.

We can use it here as the array is sorted in non-increasing order. 

For example:

int arr[] = {1,1,1,1,0,0,0,0};
int size = sizeof(arr)/sizeof(arr[0]);
auto ptr = upper_bound( arr, arr + size, 1, greater<int>() );

upper_bound() will return the iterator to the index after the last occurrence of 1. 

Here, ptr will point to index 4 of the array, i.e, after the last 1.

We need to use the greater<int>() function since the array is reverse sorted, i.e, 1s occur before 0s.

Now, subtracting the pointer to the array beginning from ptr ( ptr – arr ) will give us the number of 1s.

since the (pointer to first 0 – pointer to array beginning) = number of 1s

just like index of first 0 (4) – index of array beginning (0) = number of 1s 

int no_of_1 = ptr - arr;

Output:

Count of 1's in given array is 4

The time complexity of the above solution is O(Logn).

Space complexity is O(1).

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