Count numbers which are divisible by all the numbers from 2 to 10

Given an integer N, the task is to find the count of numbers from 1 to N which are divisible by all the numbers from 2 to 10.

Examples:  

Input: N = 3000 
Output: 1 
2520 is the only number below 3000 which is divisible by all the numbers from 2 to 10.

Input: N = 2000 
Output: 0 
 

Approach: Let’s factorize numbers from 2 to 10. 

2 = 2 
3 = 3 
4 = 2² 
5 = 5 
6 = 2 * 3 
7 = 7 
8 = 2³ 
9 = 3² 
10 = 2 * 5 
 

If a number is divisible by all the numbers from 2 to 10, its factorization should contain 2 at least in the power of 3, 3 at least in the power of 2, 5 and 7 at least in the power of 1. So it can be written as: 

x * 2³ * 3² * 5 * 7 i.e. x * 2520. 
 

So any number divisible by 2520 is divisible by all the numbers from 2 to 10. So, the count of such numbers is N / 2520.

Below is the implementation of the above approach: 

1

Time Complexity: O(1), since there is a basic arithmetic operation that takes constant time.
Auxiliary Space: O(1), since no extra space has been taken.