这是上一个问题的延续:查找具有匹配行的组
我有一张桌子,里面有人和他们拥有的汽车
+-------+-------+ | Name | Model | +-------+-------+ | Bob | Camry | | Bob | Civic | | Bob | Prius | | John | Camry | | John | Civic | | John | Prius | | Kevin | Civic | | Kevin | Focus | | Mark | Civic | | Lisa | Focus | | Lisa | Civic | +-------+-------+
该查询为我提供了和拥有完全相同的汽车Lisa以及Lisa本人的人,这很好。
Lisa
;with cte as ( select * , cnt = count(*) over (partition by name) from t ) , matches as ( select x2.name from cte as x inner join cte as x2 on x.model = x2.model and x.cnt = x2.cnt and x.name = 'Lisa' group by x2.name, x.cnt having count(*) = x.cnt ) select t.* from t inner join matches m on t.name = m.name
结果:
+-------+-------+ | name | model | +-------+-------+ | Lisa | Civic | | Lisa | Focus | | Kevin | Civic | | Kevin | Focus | +-------+-------+
如果我想查找所有拥有相同汽车的人Bob,请重新运行查询,结果应为我John。
Bob
John
现在,我有一个Java名称列表,对于每个名称,我都运行此查询。真的很慢。无论如何,是否可以找到所有拥有相同汽车的人,并在单个数据库调用中将结果划分为组?
例如,使用第一个表。我可以运行将名称分组的查询。请注意如何Mark消失了,因为他不拥有与其他人完全相同的汽车,而只是拥有一个子集。
Mark
+-------+-------+-------+ | Name | Model | Group | +-------+-------+-------+ | Bob | Camry | 1 | | Bob | Civic | 1 | | Bob | Prius | 1 | | John | Camry | 1 | | John | Civic | 1 | | John | Prius | 1 | | Kevin | Civic | 2 | | Kevin | Focus | 2 | | Lisa | Focus | 2 | | Lisa | Civic | 2 | +-------+-------+-------+
这个结果集也很好,我只需要知道谁属于哪个组,我以后就可以取回他们的车。
+-------+-------+ | Name | Group | +-------+-------+ | Bob | 1 | | John | 1 | | Kevin | 2 | | Lisa | 2 | +-------+-------+
我需要以某种方式遍历一个名称列表,找到所有拥有相同汽车的人,然后将其全部合并到一个结果集中。
您可以通过两种方式执行此操作。一种方法是进行复杂的联接。另一种方法是捷径。只需将汽车汇总为一个字符串并比较字符串即可。
with nc as ( select n.name, stuff( (select ',' + t.model from t where t.name = n.name order by t.model for xml path ('') ), 1, 1, '') as cars from (select distinct name from t) n ) select nc.name, nc.cars, dense_rank() over (order by nc.cars) from nc order by nc.cars;
这将创建一个列表,其中包含名称和汽车列表,以逗号分隔列表。如果愿意,可以加入原始表以获取原始行。