组合两个表
SELECT
FirstName, LastName, City, State
FROM
Person a
LEFT JOIN
Address b ON a.PersonId = b.PersonId;
第二高的薪水
SELECT
CASE
WHEN FirstHighestSalary = SecondHighestSalary THEN NULL
ELSE SecondHighestSalary
END AS SecondHighestSalary
FROM
(SELECT
MIN(Salary) AS SecondHighestSalary,
MAX(Salary) AS FirstHighestSalary
FROM
(SELECT
*
FROM
Employee
ORDER BY Salary DESC
LIMIT 2) a) a;
第N高的薪水
SELECT
CASE
WHEN rank_min < N THEN NULL
ELSE a.Salary
END AS salary
FROM
(SELECT
Salary, MIN(rank) AS rank_min
FROM
(SELECT
a.Salary, rank
FROM
(SELECT
Salary
FROM
(SELECT
Salary, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
*, @row_num:=0
FROM
Employee
ORDER BY Salary DESC) a) a
WHERE
rank = N) a
INNER JOIN (SELECT
Salary, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
*, @row_num:=0
FROM
Employee
ORDER BY Salary DESC) a) b ON a.Salary = b.Salary) a) a;
分数排名
SELECT
a.Score, rank
FROM
(SELECT
Score, num, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
Score, COUNT(1) AS num, @row_num:=0
FROM
Scores
GROUP BY Score
ORDER BY Score DESC) a) a
INNER JOIN
Scores b ON a.Score = b.Score
ORDER BY a.Score DESC;
连续出现的数字
SELECT DISTINCT
c.Num AS ConsecutiveNums
FROM
(SELECT
Num, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
*, @row_num:=0
FROM
Logs) a) a
LEFT JOIN
(SELECT
Num, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
*, @row_num:=0
FROM
Logs) a) b ON a.rank = b.rank + 1
LEFT JOIN
(SELECT
Num, @row_num:=@row_num + 1 AS rank
FROM
(SELECT
*, @row_num:=0
FROM
Logs) a) c ON a.rank = c.rank + 2
WHERE
a.Num = b.Num AND a.Num = c.Num;
超过经理收入的员工
SELECT
a.Name AS Employee
FROM
(SELECT
Name, Salary, ManagerId
FROM
Employee
WHERE
ManagerId IS NOT NULL) a
LEFT JOIN
(SELECT
Id, Salary
FROM
Employee) b ON a.ManagerId = b.id
WHERE
a.Salary > b.Salary
查找重复的电子邮箱
SELECT
Email
FROM
(SELECT
Email, COUNT(1) AS num
FROM
Person
GROUP BY Email) a
WHERE
a.num > 1
从不订购的客户
SELECT
a.Name AS Customers
FROM
Customers a
LEFT JOIN
Orders b ON a.Id = b.CustomerId
WHERE
b.CustomerId IS NULL
部门工资最高的员工
SELECT
c.Name AS Department, b.Name AS Employee, Salary
FROM
(SELECT
DepartmentId, MAX(Salary) AS max_salary
FROM
(SELECT
DepartmentId, salary
FROM
Employee) a
GROUP BY DepartmentId) a
INNER JOIN
(SELECT
Name, Salary, DepartmentId
FROM
Employee) b ON a.DepartmentId = b.DepartmentId
AND a.max_salary = b.Salary
INNER JOIN
Department c ON a.DepartmentId = c.Id
换座位
SELECT
id - 1 AS id,
student
FROM
seat
WHERE
id MOD 2 = 0
UNION
SELECT
CASE
WHEN id + 1 <= id_max THEN
id + 1
ELSE
id
END AS id,
student
FROM
(
SELECT
*
FROM
seat
LEFT JOIN (SELECT max(id) AS id_max FROM seat) c ON seat.id <= c.id_max
) a
WHERE
id MOD 2 = 1
ORDER BY
id
