Query the customer_number from the orders table for the customer who has placed the largest number of orders.
It is guaranteed that exactly one customer will have placed more orders than any other customer.
The orders table is defined as follows:
| Column | Type |
|-------------------|-----------|
| order_number (PK) | int |
| customer_number | int |
| order_date | date |
| required_date | date |
| shipped_date | date |
| status | char(15) |
| comment | char(200) |
Sample Input
| order_number | customer_number | order_date | required_date | shipped_date | status | comment |
|--------------|-----------------|------------|---------------|--------------|--------|---------|
| 1 | 1 | 2017-04-09 | 2017-04-13 | 2017-04-12 | Closed | |
| 2 | 2 | 2017-04-15 | 2017-04-20 | 2017-04-18 | Closed | |
| 3 | 3 | 2017-04-16 | 2017-04-25 | 2017-04-20 | Closed | |
| 4 | 3 | 2017-04-18 | 2017-04-28 | 2017-04-25 | Closed | |
Sample Output
| customer_number |
|-----------------|
| 3 |
Explanation
The customer with number '3' has two orders, which is greater than either customer '1' or '2' because each of them only has one order.
So the result is customer_number '3'.
Follow up: What if more than one customer have the largest number of orders, can you find all the customer_number in this case?
Code
SELECT customer_number FROM orders GROUP BY customer_number HAVING count(*) >= ALL (SELECT count(*) FROM orders GROUP BY customer_number)