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Parttion by 关键字是Oracle中分析性函数的一部分,它和聚合函数不同的地方在于它能够返回一个分组中的多条记录,儿聚合函数一般只有一条反映统计值的结果。
场景:查询出每个部门工资最低的员工编号【每个部门可能有两个最低的工资员工】
create table TSALER ( userid NUMBER(10), salary NUMBER(10), deptid NUMBER(10) ) -- Add comments to the columns comment on column TSALER.userid is ‘员工ID‘; comment on column TSALER.salary is ‘工资‘; comment on column TSALER.deptid is ‘部门ID‘; insert into TSALER (工号, 工资, 部门编号) values (1, 200, 1); insert into TSALER (工号, 工资, 部门编号) values (2, 2000, 1); insert into TSALER (工号, 工资, 部门编号) values (3, 200, 1); insert into TSALER (工号, 工资, 部门编号) values (4, 1000, 2); insert into TSALER (工号, 工资, 部门编号) values (5, 1000, 2); insert into TSALER (工号, 工资, 部门编号) values (6, 3000, 2);
查询结果:
select tsaler.* from tsaler inner join(select min(salary) as salary,deptid from tsaler group by deptid) c on tsaler.salary=c.salary and tsaler.deptid=c.deptid
select * from tsaler inner join(select min(salary) as salary,deptid from tsaler group by deptid) c using(salary,deptid)
--row_number() 顺序排序 select row_number() over(partition by deptid order by salary) my_rank ,deptid,USERID,salary from tsaler; --rank() (跳跃排序,如果有两个第一级别时,接下来是第三级别) select rank() over(partition by deptid order by salary) my_rank,deptid,USERID,salary from tsaler; --dense_rank()(连续排序,如果有两个第一级别时,接下来是第二级) select dense_rank() over(partition by deptid order by salary) my_rank,deptid,USERID,salary from tsaler; -------方案3解决方案 select * from (select rank() over(partition by deptid order by salary) my_rank,deptid,USERID,salary from tsaler) where my_rank=1; select * from (select dense_rank() over(partition by deptid order by salary) my_rank,deptid,USERID,salary from tsaler) where my_rank=1;
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原文地址:http://www.cnblogs.com/jak-black/p/4210653.html
