SQL中的复杂分层查询

时间:2013-06-28 11:20:49

标签: sql oracle hierarchical

以下是需要编写SQL的数据设置。

Table:parchil
par         chil
--------------------
E1          E2
E2          E3
E3          E4
E5          E6
E7          E8

Table:subval
sub         val
--------------------
E1          10
E2          70
E3          30
E4          40
E5          60
E6          20
E7          50

Expected result:
sub         val
--------------------
E1          150
E2          140
E3          70
E4          40
E5          80
E6          20
E7          50

到目前为止,我有以下查询,这是长篇大论而且远非优雅。

select a.par,sum(b.val) from
(select 'E1' as par,'E1' as chil from dual
union all
select
    'E1' as par, chil
from
   parchil
start with par='E1'
connect by prior chil=par
union all
select 'E2' as par,'E2' as chil from dual
union all
select
    'E2' as par, chil
from
   parchil
start with par='E2'
connect by prior chil=par
union all
select 'E3' as par,'E3' as chil from dual
union all
select
    'E3' as par, chil
from
   parchil
start with par='E3'
connect by prior chil=par
union all
select 'E4' as par,'E4' as chil from dual
union all
select
    'E4' as par, chil
from
   parchil
start with par='E4'
connect by prior chil=par
union all
select 'E5' as par,'E5' as chil from dual
union all
select
    'E5' as par, chil
from
   parchil
start with par='E5'
connect by prior chil=par
union all
select 'E6' as par,'E6' as chil from dual
union all
select
    'E6' as par, chil
from
   parchil
start with par='E6'
connect by prior chil=par
union all
select 'E7' as par,'E7' as chil from dual
union all
select
    'E7' as par, chil
from
   parchil
start with par='E7'
connect by prior chil=par
) a,
subval b
where
a.chil=b.sub
group by a.par
order by a.par;

有没有办法优雅地解决这个问题?感谢。

2 个答案:

答案 0 :(得分:3)

您可以使用connect_by_root

select root, sum(val)
from 
 ( select chil, connect_by_root par root 
   from parchil 
   connect by par = prior chil 
   start with par in (select par from parchil )
   union all
   select par, par from parchil
 )
 , subval
 where 
   sub=chil
 group by root
 order by root
;

答案 1 :(得分:3)

您可以使用cte来执行此操作;

WITH cte(sub,val,par,chil, lev) AS (
  SELECT s.sub, s.val, p.par, p.chil, 1 
  FROM subval s LEFT JOIN parchil p ON s.sub=p.par
  UNION ALL
  SELECT s.sub, s.val+c.val, p.par, p.chil, lev + 1
  FROM subval s LEFT JOIN parchil p ON s.sub=p.par
  JOIN cte c ON c.sub=p.chil
)
SELECT c1.sub,c1.val FROM cte c1 
LEFT JOIN cte c2
  ON c1.sub=c2.sub 
 AND c1.lev < c2.lev 
WHERE c2.sub IS NULL
ORDER BY sub;

An SQLfiddle to test with

...或者您可以使用常规的分层查询;

SELECT root, SUM(val) val
FROM 
( 
  SELECT CONNECT_BY_ROOT sub root, val 
  FROM subval s
  LEFT JOIN parchil p ON s.sub = p.par 
  CONNECT BY sub = PRIOR chil 
 )
GROUP BY root
ORDER BY root

Another SQLfiddle