MySQL基础练习题：习题21-25

这部分主要是为了帮助大家回忆回忆MySQL的基本语法，数据库来自于MySQL的官方简化版，题目也是网上非常流行的35题。这些基础习题基本可以涵盖面试中需要现场写SQL的问题。

列出在部门sales工作的员工的姓名，假定不知道销售部的部门编号

select e.ename from emp e join dept d on e.deptno = d.deptno and d.dname = 'sales';

+--------+
| ename  |
+--------+
| ALLEN  |
| WARD   |
| MARTIN |
| BLAKE  |
| TURNER |
| JAMES  |
+--------+

列出薪水高于公司平均薪水的所有员工，所在部门，上级领导，薪水等级

先取出公司平均薪水

mysql> select avg(sal) as avgsal from emp;
+-------------+
| avgsal      |
+-------------+
| 2073.214286 |
+-------------+

然后多表连接

mysql> select e.ename,e.sal,d.dname,s.grade
from
emp e
join
dept d
on
e.deptno=d.deptno
join
salgrade s
on
e.sal between s.losal and s.hisal
having
sal>(select avg(sal) as avgsal from             emp);
+-------+---------+-------------+-------+
| ename | sal     | dname       | grade |
+-------+---------+-------------+-------+
| JONES | 2975.00 | RESEARCHING |     4 |
| BLAKE | 2850.00 | SALES       |     4 |
| CLARK | 2450.00 | ACCOUNTING  |     4 |
| SCOTT | 3000.00 | RESEARCHING |     4 |
| KING  | 5000.00 | ACCOUNTING  |     5 |
| FORD  | 3000.00 | RESEARCHING |     4 |
+-------+---------+-------------+-------+

列出与scott从事相同工作的所有员工及部门名称

先找出scott的岗位，然后找出从事此工作的员工并与部门表连接显示部门名，注意排除scott本人

mysql> select e.ename,d.dname from emp e join dept d where e.deptno=d.deptno and e.job=(select job from emp where ename='scott') and e.ename<>'scott';
+-------+-------------+
| ename | dname       |
+-------+-------------+
| FORD  | RESEARCHING |
+-------+-------------+

列出薪水高于部门30的全部员工的员工姓名，薪水，部门名称

先取出部门30的最高薪水，然后链接表和部门。

select a.ename,a.sal,d.dname from (select * from emp where sal > (select max(sal) from emp where deptno=30) and deptno<>30) a join dept d on a.deptno = d.deptno;
+-------+---------+-------------+
| ename | sal     | dname       |
+-------+---------+-------------+
| JONES | 2975.00 | RESEARCHING |
| SCOTT | 3000.00 | RESEARCHING |
| KING  | 5000.00 | accounting  |
| FORD  | 3000.00 | RESEARCHING |
+-------+---------+-------------+

列出在每个部门工作的员工数量，平均工资和平均服务期限

使用to_days()将时间转换为公元元年到某时间点的天数

mysql> select d.deptno,
count(e.ename)as number,ifnull(avg(e.sal),0) as avgsal,
ifnull(avg((to_days(now())-to_days(e.hiredate))/365),0) as avgtime
from
dept d
left join
emp e
on
d.deptno=e.deptno
group by
d.deptno;
+--------+--------+-------------+-------------+
| deptno | number | avgsal      | avgtime     |
+--------+--------+-------------+-------------+
|     20 |      5 | 2175.000000 | 35.57588000 |
|     30 |      6 | 1566.666667 | 37.84750000 |
|     10 |      3 | 2916.666667 | 37.54886667 |
|     40 |      0 |    0.000000 |  0.00000000 |
+--------+--------+-------------+-------------+

原文地址：https://blog.csdn.net/weixin_45700531/article/details/137696584

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