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`));
输入描述:
无输出描述:
| emp_no | salary | t_rank |
|---|---|---|
| 10005 | 94692 | 1 |
| 10009 | 94409 | 2 |
| 10010 | 94409 | 2 |
| 10001 | 88958 | 3 |
| 10007 | 88070 | 4 |
| 10004 | 74057 | 5 |
| 10002 | 72527 | 6 |
| 10003 | 43311 | 7 |
| 10006 | 43311 | 7 |
| 10011 | 25828 | 8 |
方法一:先构建不含salary的rank表,再将rank表和salaries表内接,然后排序得到结果。
select
a.emp_no,
a.salary,
b.rank
from
salaries as a
inner join
(
select
s1.emp_no,
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
) as b
on
a.emp_no=b.emp_no
and
a.to_date='9999-01-01'
order by
a.salary desc,
a.emp_no asc;方法二:固定s1的一条记录,利用关联查询到它的rank
select
s1.emp_no,
s1.salary,
(
select
count(distinct s2.salary)
from
salaries as s2
where
s2.to_date='9999-01-01'
and
s2.salary>=s1.salary
) as rank
from
salaries as s1
where
s1.to_date='9999-01-01'
order by
s1.salary desc,
s1.emp_no asc;方法三:窗口函数的使用(MySQL不支持)
①rank():在计算排序时,若存在相同位次,会跳过之后的位次。例如:有3条排在第一位时,排序为:1,1,1,4....
②dense_rank():在计算排序时,若存在相同位次,不会跳过之后的位次。例如,有3条排在第1位时,排序为:1,1,1,2······
③row_number():这个函数赋予唯一的连续位次。例如,有3条排在第1位时,排序为:1,2,3,4······
select
emp_no,
salary,
dense_rank()
over
(
order by
salary
desc
) as rank
from
salaries
where
to_date='9999-01-01'
order by
rank asc,
emp_no asc;
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