我相信我可以通过使用Left Outer Joins的case语句来优化这个sql语句。
但是我一直很难设置案例,一个用于总结代码类型AB,CD,另一个用于所有其他代码。
感谢您可以给我的任何帮助或提示。
update billing set payments = isnull(bd1.amount, payments)
, payments = case
when payments is null then 0
else payments
end
, charges = case
when bd2.amount is not null then charges
when charges is null then 0
else charges
end
, balance = round(charges + isnull(bd1.amount, bi.payments), 2)
from billing bi
left outer join (select inv, round(sum(bd1.bal), 2) amount
from "bill" bd1
where code_type = 'AB'
or code_type = 'CD'
group by inv) bd1
on bd1.inv = bi.inv
left outer join (select invoice, round(sum(bd2.bal), 2) amount
from "bill" bd2
where code_type <> 'AB'
and code_type <> 'CD'
group by inv) bd2
on bd2.inv = bi.inv;
答案 0 :(得分:5)
您可以将其简化为使用单个查询而不是两个查询。你仍然需要一个,因为UPDATE中的GROUP BY不起作用。
UPDATE bi
SET payments = bd.payments,
charges= bd.charges,
balance = bd.balance
FROM billing bi
LEFT JOIN (SELECT bd.inv,
payments = Round(Sum(CASE
WHEN code_type IN ( 'AB' , 'CD' ) THEN
bd.bal
ELSE 0
END), 2),
charges = Round(Sum(CASE
WHEN code_type NOT IN ( 'AB' , 'CD' ) THEN
bd.bal
ELSE 0
END), 2),
balance = Round(Sum(bd.bal), 2)
FROM bill bd
GROUP BY bd.inv) bd
ON bd.inv = bi.inv
答案 1 :(得分:1)
也许是这样的:
update billing set payments = isnull(bd1.amount, payments)
, payments = isnull(payments, 0)
, charges = isnull(bd2.amount, isnull(charges, 0))
, balance = round(charges + isnull(bd1.amount, bi.payments), 2)
from billing bi
left outer join (select inv, round(sum(bd1.bal), 2) amount
from "bill" bd1
where code_type in ('AB', 'CD')
group by inv) bd1
on bd1.inv = bi.inv
left outer join (select invoice, round(sum(bd2.bal), 2) amount
from "bill" bd2
where code_type not in ('AB', 'CD')
group by inv) bd2
on bd2.inv = bi.inv;
两个左连接不是问题!