18.题目描述
对所有员工的当前(to_date=’9999-01-01’)薪水按照salary进行按照1-N的排名,相同salary并列且按照emp_no升序排列
CREATE TABLE salaries (
emp_no int(11) NOT NULL,
salary int(11) NOT NULL,
from_date date NOT NULL,
to_date date NOT NULL,
PRIMARY KEY (emp_no,from_date));
本题的主要思想是复用salaries表进行比较排名,具体思路如下:
select s1.emp_no,s1.salary,count(distinct s2.salary)as rank
from salaries as s1,salaries as s2
where s1.to_date='9999-01-01' and s2.to_date='9999-01-01' and s1.salary<=s2.salary
group by s1.emp_no
ORDER BY s1.salary DESC, s1.emp_no 19.获取所有非manager员工当前的薪水情况,给出dept_no、emp_no以及salary ,当前表示to_date=’9999-01-01’
select de.dept_no,s.emp_no,s.salary
from dept_emp as de inner join salaries as s on s.emp_no = de.emp_no and s.to_date="9999-01-01"
where de.emp_no not in (select emp_no from dept_manager where to_date="9999-01-01")20.题目描述
获取员工其当前的薪水比其manager当前薪水还高的相关信息,当前表示to_date=’9999-01-01’,
结果第一列给出员工的emp_no,
第二列给出其manager的manager_no,
第三列给出该员工当前的薪水emp_salary,
第四列给该员工对应的manager当前的薪水manager_salary
主要思想是创建两张表(一张记录当前所有员工的工资,另一张只记录部门经理的工资)进行比较,具体思路如下:
1、先用INNER JOIN连接salaries和demp_emp,建立当前所有员工的工资记录sem
2、再用INNER JOIN连接salaries和demp_manager,建立当前所有员工的工资记录sdm
3、最后用限制条件sem.dept_no = sdm.dept_no AND sem.salary > sdm.salary找出同一部门中工资比经理高的员工,并根据题意依次输出emp_no、manager_no、emp_salary、manager_salary
select sem.emp_no as emp_no, sdm.emp_no AS manager_no, sem.salary AS emp_salary, sdm.salary AS manager_salary
from (select s.salary,s.emp_no,de.dept_no from salaries s inner join dept_emp de
on s.emp_no=de.emp_no and s.to_date='9999-01-01') as sem,
(select s.salary,s.emp_no,dm.dept_no from salaries s inner join dept_manager dm
on s.emp_no=dm.emp_no and s.to_date='9999-01-01') as sdm
where sem.dept_no=sdm.dept_no and sem.salary>sdm.salary