LeetCode 数据库
配合《SQL进阶教程》做的题
解法1:
CASE ... WHEN ..
ELSE END;
# Write your MySQL query statement below
UPDATE salary
SET
sex = CASE sex
WHEN "m" THEN "f"
ELSE "m"
END;
解法2:
使用MySQL的if函数,类似于java的三目运算, if(sex = 'm','f','m'),如果sex 为m,则返回f,如果为f,返回m。
update salary set sex = if(sex = 'm','f','m')
# Write your MySQL query statement below UPDATE salary set sex = if(sex = 'm','f','m');
解法1:
# Write your MySQL query statement below
select
`id`,
max(if(`month` = 'Jan', revenue, null)) as "Jan_Revenue",
max(if(`month` = 'Feb', revenue, null)) as "Feb_Revenue",
max(if(`month` = 'Mar', revenue, null)) as "Mar_Revenue",
max(if(`month` = 'Apr', revenue, null)) as "Apr_Revenue",
max(if(`month` = 'May', revenue, null)) as "May_Revenue",
max(if(`month` = 'Jun', revenue, null)) as "Jun_Revenue",
max(if(`month` = 'Jul', revenue, null)) as "Jul_Revenue",
max(if(`month` = 'Aug', revenue, null)) as "Aug_Revenue",
max(if(`month` = 'Sep', revenue, null)) as "Sep_Revenue",
max(if(`month` = 'Oct', revenue, null)) as "Oct_Revenue",
max(if(`month` = 'Nov', revenue, null)) as "Nov_Revenue",
max(if(`month` = 'Dec', revenue, null)) as "Dec_Revenue"
from
Department
group by `id`;
解法1:连接查询,然后组合两个条件
学到了DATEDIFF是两个日期的天数差集
select a.Id from Weather as a join Weather as b on a.Temperature> b.Temperature and dateDiff(a.RecordDate,b.RecordDate) = 1
select max(Salary) AS SecondHighestSalary from employee where salary < (select max(salary) from employee)
解法1:
# Write your MySQL query statement below
select s.Score,(select count(distinct Score)
from Scores where Score >= s.Score)
as Rank from Scores s
order by s.Score desc
应该是最简单的SQL题:
解法1:
# Write your MySQL query statement below select name,population,area from world where population > 25000000 or area > 3000000;
解法2:
select name,population,area from World where area > 3000000
union
select name,population,area from World where population > 25000000;
解法1:
左连接
# Write your MySQL query statement below select FirstName,LastName,City,State from Person left join Address on Person.PersonId = Address.PersonId
解法1:思路:
- 判断表中筛重row大于N,否则输出null
- 然后降序找出前N个,在升序获取第一个
CREATE FUNCTION getNthHighestSalary(N INT) RETURNS INT
BEGIN
RETURN (
# Write your MySQL query statement below.
select if(
(select count(*) from (select distinct Salary from Employee) a) < N,
null,
(select Salary as getNthHighestSalary from
(select distinct Salary from Employee order by Salary desc limit N) b
order by Salary asc limit 1)
)
);
END
新知识:
要注意的是:插入数据的表必须有主键或者是唯一索引!否则的话,replace into 会直接插入数据,这将导致表中出现重复的数据。
replace into 跟 insert 功能类似,不同点在于:replace into 首先尝试插入数据到表中, 1. 如果发现表中已经有此行数据(根据主键或者唯一索引判断)则先删除此行数据,然后插入新的数据。 2. 否则,直接插入新数据。
注意:IS NULL 不是 = NULL
解法1:
其实这也产生了笛卡尔乘积
:
# Write your MySQL query statement below
SELECT
a.Name AS 'Employee'
FROM
Employee AS a,
Employee AS b
Where
a.ManagerId = b.Id
AND a.Salary > b.Salary
解法2:
使用JOIN
# Write your MySQL query statement below SELECT a.NAME as Employee FROM Employee AS a JOIN Employee AS b ON a.ManagerId = b.Id AND a.Salary > b.Salary
