假定业务:
查看在职员工的薪资的第二名的员工信息
创建数据库
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drop database if exists emps; create database emps; use emps; create table employees( empId int primary key , -- 员工编号 gender char (1) NOT NULL , -- 员工性别 hire_date date NOT NULL -- 员工入职时间 ); create table salaries( empId int primary key , salary double -- 员工薪资 ); INSERT INTO employees VALUES (10001, 'M' , '1986-06-26' ); INSERT INTO employees VALUES (10002, 'F' , '1985-11-21' ); INSERT INTO employees VALUES (10003, 'M' , '1986-08-28' ); INSERT INTO employees VALUES (10004, 'M' , '1986-12-01' ); INSERT INTO salaries VALUES (10001,88958); INSERT INTO salaries VALUES (10002,72527); INSERT INTO salaries VALUES (10003,43311); INSERT INTO salaries VALUES (10004,74057); |
题解思路
1、(基础解法)
先查出salaries表中最高薪资,再以此为条件查出第二高的工资
查询语句如下:
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select E.empId,E.gender,E.hire_date,S.salary from employees E join salaries S on E.empId = S.empId where S.salary= ( select max (salary) from salaries where salary< ( select max (salary) from salaries) ); -- ---------------查询结果------------ -- + -------+--------+------------+--------+ | empId | gender | hire_date | salary | + -------+--------+------------+--------+ | 10004 | M | 1986-12-01 | 74057 | + -------+--------+------------+--------+ |
2、(自联结查询)
先对salaries进行自联结查询,当s1<=s2链接并以s1.salary分组,此时count的值,即薪资比他高的人数,用having筛选count=2 的人,就可以得到第二高的薪资了;
查询语句如下:
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select E.empId,E.gender,E.hire_date,S.salary from employees E join salaries S on E.empId = S.empId where S.salary= ( select s1.salary from salaries s1 join salaries s2 on s1.salary <= s2.salary group by s1.salary having count ( distinct s2.salary) = 2 ); -- ---------------查询结果------------ -- + -------+--------+------------+--------+ | empId | gender | hire_date | salary | + -------+--------+------------+--------+ | 10004 | M | 1986-12-01 | 74057 | + -------+--------+------------+--------+ |
3、(自联结查询优化版)
原理和2相同,但是代码精简了很多,上面两种是为了引出最后这种方法,在很多时候group by和order by都有其局限性,对于俺们初学者掌握这种实用性较广的思路,还是很有意义的。
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select E.empId,E.gender,E.hire_date,S.salary from employees E join salaries S on S.empId =E.empId where ( select count (1) from salaries where salary>=S.salary)=2; -- ---------------查询结果------------ -- + -------+--------+------------+--------+ | empId | gender | hire_date | salary | + -------+--------+------------+--------+ | 10004 | M | 1986-12-01 | 74057 | + -------+--------+------------+--------+ |
初浅总结,如有错误,还望指正。
总结
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原文链接:https://blog.csdn.net/Tinwares/article/details/117425956