MySQL是工作中常用数据库,必须掌握,但小伙伴们又掌握了多少呢,今天一起来测试一下吧~
力扣SQL
⭐组合两个表
⭐第二高的薪水
⭐超过经理收入的员工
⭐查找重复的电子邮箱
⭐从不订购的客户
⭐大的国家
⭐删除重复的电子邮箱
⭐有趣的电影
⭐组合两个表
表1:
Person
+-------------+---------+ | 列名 | 类型 | +-------------+---------+ | PersonId | int | | FirstName | varchar | | LastName | varchar | +-------------+---------+ PersonId 是Person表主键
表2:
Address
+-------------+---------+ | 列名 | 类型 | +-------------+---------+ | AddressId | int | | PersonId | int | | City | varchar | | State | varchar | +-------------+---------+ AddressId 是Address表主键 PersonId 是表 Person 的外键
题目:
编写一个 SQL 查询,满足条件:无论 person 是否有地址信息,都需要基于表1和表2两表提供 person 的以下信息:
FirstName, LastName, City, State
有思路了嘛,先别着急往下看,先自己想想思路解决它~
这里我们使用的是左外连接
代码实现
select FirstName, LastName, City, State from Person left join Address on Person.PersonId = Address.PersonId;
恭喜第一题通过我们接着做第二道题!
⭐第二高的薪水
Employee
表Employee 表 +----+--------+ | Id | Salary | +----+--------+ | 1 | 100 | | 2 | 200 | | 3 | 300 | +----+--------+
题目:
📃编写一个 SQL 查询,获取Employee
表中第二高的薪水(Salary),如果不存在第二高的薪水,那么查询应返回null
。例如上述Employee
表,SQL查询应该返回200
作为第二高的薪水。+---------------------+ | SecondHighestSalary | +---------------------+ | 200 | +---------------------+
是不是也难不倒你呢~ 加油做出来他!
代码实现
方法1
select ifnull(( select max(salary) from Employee where salary < (select max(salary) from Employee)),null) as SecondHighestSalary;
方法2
select ifnull( (select distinct Salary from Employee order by Salary desc limit 1,1), null) as SecondHighestSalary;
⭐超过经理收入的员工
Employee
表+----+-------+--------+-----------+ | Id | Name | Salary | ManagerId | +----+-------+--------+-----------+ | 1 | Joe | 70000 | 3 | | 2 | Henry | 80000 | 4 | | 3 | Sam | 60000 | NULL | | 4 | Max | 90000 | NULL | +----+-------+--------+-----------+
题目:
Employee 表包含所有员工,他们的经理也属于员工。每个员工都有一个 Id,此外还有一列对应员工的经理的 Id。给定 Employee 表,编写一个 SQL 查询,该查询可以获取收入超过他们经理的员工的姓名。在上面的表格中,Joe 是唯一一个收入超过他的经理的员工。查询出的结果如下所示。
+----------+ | Employee | +----------+ | Joe | +----------+
是不是也难不倒你呢~ 加油做出来他!
代码实现
SELECT staff.Name AS 'Employee' FROM Employee AS staff, Employee AS manager WHERE staff.ManagerId = manager.Id AND staff.Salary > manager.Salary
⭐查找重复的电子邮箱
Person表
+----+---------+ | Id | Email | +----+---------+ | 1 | a@b.com | | 2 | c@d.com | | 3 | a@b.com | +----+---------+
题目:
编写一个 SQL 查询,查找
Person
表中所有重复的电子邮箱。根据以上输入,你的查询应返回以下结果:
+---------+ | Email | +---------+ | a@b.com | +---------+
代码实现
方法一
select Email from (select Email, count(Email) as num from Person group by Email) as temporary where num > 1;
方法二
select Email from Person group by Email having count(Email) > 1;
⭐从不订购的客户
Customers
表:+----+-------+ | Id | Name | +----+-------+ | 1 | Joe | | 2 | Henry | | 3 | Sam | | 4 | Max | +----+-------+
Orders
表:+----+------------+ | Id | CustomerId | +----+------------+ | 1 | 3 | | 2 | 1 | +----+------------+
题目:
某网站包含两个表,
Customers
表和Orders
表。编写一个 SQL 查询,找出所有从不订购任何东西的客户。例如给定上述表格,你的查询应返回:
+-----------+ | Customers | +-----------+ | Henry | | Max | +-----------+
代码实现
方法一
select customers.name as 'Customers' from customers where customers.id not in (select customerid from orders);
方法二
select c.name as Customers from Customers c left join Orders o on c.id = o.CustomerId where o.id is null;
⭐大的国家
World
表:+-------------+---------+ | Column Name | Type | +-------------+---------+ | name | varchar | | continent | varchar | | area | int | | population | int | | gdp | int | +-------------+---------+
World 表: +-------------+-----------+---------+------------+--------------+ | name | continent | area | population | gdp | +-------------+-----------+---------+------------+--------------+ | Afghanistan | Asia | 652230 | 25500100 | 20343000000 | | Albania | Europe | 28748 | 2831741 | 12960000000 | | Algeria | Africa | 2381741 | 37100000 | 188681000000 | | Andorra | Europe | 468 | 78115 | 3712000000 | | Angola | Africa | 1246700 | 20609294 | 100990000000 | +-------------+-----------+---------+------------+--------------+
name 是这张表的主键。
这张表的每一行提供:国家名称、所属大陆、面积、人口和 GDP 值。
如果一个国家满足下述两个条件之一,则认为该国是 大国 :
面积至少为 300 平方公里(即,3000000 km2),或者
人口至少为 2500 万(即 25000000)编写一个 SQL 查询以报告 大国 的国家名称、人口和面积。按 任意顺序 返回结果表。
查询结果格式如下例所示。
输出: +-------------+------------+---------+ | name | population | area | +-------------+------------+---------+ | Afghanistan | 25500100 | 652230 | | Algeria | 37100000 | 2381741 | +-------------+------------+---------+
代码实现
方法一
SELECT name, population, area FROM world WHERE area >= 3000000 OR population >= 25000000;
方法二
SELECT name, population, area FROM world WHERE area > 3000000 UNION SELECT name, population, area FROM world WHERE population > 25000000;
⭐删除重复的电子邮箱
Person
表+----+------------------+ | Id | Email | +----+------------------+ | 1 | john@example.com | | 2 | bob@example.com | | 3 | john@example.com | +----+------------------+
Id 是这个表的主键。
题目:
编写一个 SQL 查询,来删除
Person
表中所有重复的电子邮箱,重复的邮箱里只保留 Id 最小 的那个。
代码实现
DELETE pson1 FROM Person pson1,Person pson2 WHERE pson1.Email = pson2.Email AND pson1.Id > pson2.Id
⭐有趣的电影
表
cinema
:+---------+-----------+--------------+-----------+ | id | movie | description | rating | +---------+-----------+--------------+-----------+ | 1 | War | great 3D | 8.9 | | 2 | Science | fiction | 8.5 | | 3 | irish | boring | 6.2 | | 4 | Ice song | Fantacy | 8.6 | | 5 | House card| Interesting| 9.1 | +---------+-----------+--------------+-----------+
题目:
某城市开了一家新的电影院,吸引了很多人过来看电影。该电影院特别注意用户体验,专门有个 LED显示板做电影推荐,上面公布着影评和相关电影描述。
作为该电影院的信息部主管,您需要编写一个 SQL查询,找出所有影片描述为非 boring (不无聊) 的并且 id 为奇数 的影片,结果请按等级 rating 降序排列。
代码实现
select * from cinema where mod(id, 2) = 1 and description != 'boring' order by rating DESC;
欢迎分享,转载请注明来源:内存溢出
评论列表(0条)