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一、问题
按照salary的累计和running_total,其中running_total为前N个当前( to_date = '9999-01-01')员工的salary累计和,其他以此类推。 具体结果如下Demo展示。。
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`));
二、代码
窗口函数实现:
select emp_no,salary,sum(salary) over (order by emp_no) as running_total from salaries where to_date = '9999-01-01'
复用 salaries 表进行子查询:
主表是a,子查询中复用的表是b,对于小于a.emp_no的b.emp_no所对应的salary进行求和,因为一组a.emp_no对应多个b.emp_no,所以要对a.emp_no进行分组
select a.emp_no,a.salary,sum(b.salary) as running_total from salaries a,salaries b where b.emp_no<=a.emp_no and a.to_date = '9999-01-01' and b.to_date = '9999-01-01' group by a.emp_no
inner join:
把所有小于等于当前编号的表s1和当前编号表s2联立起来,然后按照当前编号分组,计算出所有小于等于
当前标号的工资总数
SELECT s2.emp_no,s2.salary,SUM(s1.salary) AS running_total
FROM salaries AS s1 INNER JOIN salaries AS s2
ON s1.emp_no <= s2.emp_no
WHERE
s1.to_date = "9999-01-01"
AND s2.to_date = "9999-01-01"
GROUP BY s2.emp_no
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