分组聚合,就是先分组再排序,可以的话顺手标个排名;如果不想分组也可以排名;如果不想分组同时再去重排名也可以
ROW_NUMBER() OVER( [PARTITION BY column_1, column_2,…] [ORDER BY column_3,column_4,…] )
Oracle和SQL server的关键字是over partition by
mysql的无关键字row_number() over (partition by col1 order by col2),表示根据col1分组,在分组内部根据col2排序
Oracle和sqlserver
最终效果:
例子:
-- 建表 USE db_03; DROP TABLE IF EXISTS employee; create table employee (empid int ,deptid int ,salary decimal(10,2)); insert into employee values(1,10,5500.00); insert into employee values(2,10,4500.00); insert into employee values(3,20,1900.00); insert into employee values(4,20,4800.00); insert into employee values(5,40,6500.00); insert into employee values(6,40,14500.00); insert into employee values(7,40,44500.00); insert into employee values(8,50,6500.00); insert into employee values(9,50,7500.00); SELECT * FROM employee;
![Image [1]](https://img2018.cnblogs.com/blog/421906/201907/421906-20190707140659442-1047581209.png "Image [1]")
SELECT *, Row_Number() OVER (partition by deptid ORDER BY salary desc) rank FROM employee
结果:
![Image [2]](https://img2018.cnblogs.com/blog/421906/201907/421906-20190707140710439-1977626309.png "Image [2]")
如果不要分组,就仅仅order by 的话
需求:给username加上唯一标示id
背景:需要一个纬度表,里面有仅仅username的唯一标示,因为hive中不存在自增id
select distinct price, row_number() over (order by price) from products order by price;
price | row_number ---------+------------ 300.00 | 1 300.00 | 2 400.00 | 3 500.00 | 4 600.00 | 5 600.00 | 6 700.00 | 7 800.00 | 8 800.00 | 9 900.00 | 10 1100.00 | 11
需求同上,如果需要去重的话(distinct)
with prices as ( select distinct price from products ) select price,row_numer()over(order by price) from prices;
price | row_number ---------+------------ 300.00 | 1 400.00 | 2 500.00 | 3 600.00 | 4 700.00 | 5 800.00 | 6 900.00 | 7 1100.00 | 8
mysql
因为不能使用这个关键字,所以配合其他关键字使用
预期效果
![Image [3]](https://img2018.cnblogs.com/blog/421906/201907/421906-20190707140722124-1222270679.png "Image [3]")
![Image [4]](https://img2018.cnblogs.com/blog/421906/201907/421906-20190707140738659-293903384.png "Image [4]")
select deptid,salary from employee a where 2 > ( select count(1) from employee b where a.salary<b.salary and a.deptid=b.deptid ) order by a.deptid,a.salary desc;
但是有弊端,如果最大值有多个,那么就会出现多个最大值,so,要动态的
SET @row=0; SET @groupid=''; select a.deptid,a.salary from ( select deptid,salary,case when @groupid=deptid then @row:=@row+1 else @row:=1 end rownum,@groupid:=deptid from employee order by deptid,salary desc )a where a.rownum<=2;
mysql还有其他写法,通过求出极值再进行关联
SELECT t.stuid, t.stuname, t.score, t.classid FROM stugrade t where t.score = (SELECT max(tmp.score) from stugrade tmp where tmp.classid=t.classid)