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1.2 你的收获
- 增强自信,搞定面试:在求职中,SQL是经常遇到的技能点,而这些题目也多数是真实的面试题,刷题可以让我们更好地备战面试,增强自信,提升自己的核心竞争力。
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🍅 2、今日真题
题目介绍: The Most Recent Three Orders the-most-recent-three-orders
难度中等
SQL架构
Table:
Customers
+---------------+---------+ | Column Name | Type | +---------------+---------+ | customer_id | int | | name | varchar | +---------------+---------+ customer_id is the primary key for this table. This table contains information about customers.
Table:
Orders
+---------------+---------+ | Column Name | Type | +---------------+---------+ | order_id | int | | order_date | date | | customer_id | int | | cost | int | +---------------+---------+ order_id is the primary key for this table. This table contains information about the orders made by customer_id. Each customer has one order per day.
Write an SQL query to find the most recent 3 orders of each user. If a user ordered less than 3 orders return all of their orders.
Return the result table sorted by
customer_name
in ascending order and in case of a tie by the
customer_id
in ascending order. If there still a tie, order them by the
order_date
in descending order.
The query result format is in the following example:
``` Customers +-------------+-----------+ | customer_id | name | +-------------+-----------+ | 1 | Winston | | 2 | Jonathan | | 3 | Annabelle | | 4 | Marwan | | 5 | Khaled | +-------------+-----------+
Orders +----------+------------+-------------+------+ | order_id | order_date | customer_id | cost | +----------+------------+-------------+------+ | 1 | 2020-07-31 | 1 | 30 | | 2 | 2020-07-30 | 2 | 40 | | 3 | 2020-07-31 | 3 | 70 | | 4 | 2020-07-29 | 4 | 100 | | 5 | 2020-06-10 | 1 | 1010 | | 6 | 2020-08-01 | 2 | 102 | | 7 | 2020-08-01 | 3 | 111 | | 8 | 2020-08-03 | 1 | 99 | | 9 | 2020-08-07 | 2 | 32 | | 10 | 2020-07-15 | 1 | 2 | +----------+------------+-------------+------+
Result table: +---------------+-------------+----------+------------+ | customer_name | customer_id | order_id | order_date | +---------------+-------------+----------+------------+ | Annabelle | 3 | 7 | 2020-08-01 | | Annabelle | 3 | 3 | 2020-07-31 | | Jonathan | 2 | 9 | 2020-08-07 | | Jonathan | 2 | 6 | 2020-08-01 | | Jonathan | 2 | 2 | 2020-07-30 | | Marwan | 4 | 4 | 2020-07-29 | | Winston | 1 | 8 | 2020-08-03 | | Winston | 1 | 1 | 2020-07-31 | | Winston | 1 | 10 | 2020-07-15 | +---------------+-------------+----------+------------+ Winston has 4 orders, we discard the order of "2020-06-10" because it is the oldest order. Annabelle has only 2 orders, we return them. Jonathan has exactly 3 orders. Marwan ordered only one time. We sort the result table by customer_name in ascending order, by customer_id in ascending order and by order_date in descending order in case of a tie. ```
Follow-up: Can you write a general solution for the most recent
n
orders?
sql select name customer_name ,customer_id,order_id,order_date from ( select name ,o.customer_id,order_id,order_date ,rank()over(partition by o.customer_id order by order_date desc) rk from Orders o left join Customers c on o.customer_id=c.customer_id )t1 where rk <=3 order by customer_name ,customer_id,order_date desc
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