描述:ta,tb兩表的結構完全相同����,現在想要以tb中的數據去更新ta表����,
要求:以ta為準����,若ta中沒有的數據�����,將tb中的數據完全合并到ta中��;
若ta中有的數據����,但不完全��,一些字段為空�����,那么將tb中相同id的字段去更新ta表�����,
--
方法一:用全連接�,結合nvl函數:
with ta as(
select 1 id, 23 age, 'lilei' name, 'ddd@126.com' mail from dual union all
select 2, null, 'hanmeimei',null from dual union all
select 3, 23, null, 'jim eee@153.com' from dual union all
select 4, 22, 'tom',null from dual),
tb as(
select 1 id, 23 age, 'lilei' name, 'bbb@126.com' mail from dual union all
select 2, 25, 'hanmeimei', 'fff@124com' from dual union all
select 5, 27, 'green', 'ejorj@125.com' from dual)
select nvl(ta.id,tb.id) id,
nvl(ta.age,tb.age) age,
nvl(ta.name,tb.name) name,
nvl(ta.mail,tb.mail) mail
from ta full join tb
on ta.id=tb.id
order by id;
ID AGE NAME MAIL
---------- ---------- --------- ---------------
1 23 lilei ddd@126.com
2 25 hanmeimei fff@124com
3 23 jim eee@153.com
4 22 tom
5 27 green ejorj@125.com
--
方法二:使用merge into合并:
create table ta(id varchar2(2),age number(3),name varchar2(10),mail varchar2(30));
select * from ta;
ID AGE NAME MAIL
-- ---- ---------- ------------------------------
1 23 lilei ddd@126.com
2 hanmeimei
3 23 jim eee@153.com
4 22 tom
--
create table tb as select * from ta where 1=0;
select * from tb;
ID AGE NAME MAIL
-- ---- ---------- ------------------------------
1 23 lilei bbb@126.com
2 25 hanmeimei fff@124.com
5 27 green ejorj@125.com
--
merge into ta
using tb on (ta.id=tb.id)
when matched then
update set
age=COALESCE(ta.age,tb.age),
name=COALESCE(ta.name,tb.name),
mail=COALESCE(ta.mail,tb.mail)
when not matched then
insert(ta.id,ta.age,ta.name,ta.mail)
values(tb.id,tb.age,tb.name,tb.mail);
--
ID AGE NAME MAIL
-- ---- ---------- ------------------------------
1 23 lilei ddd@126.com
2 25 hanmeimei fff@124.com
3 23 jim eee@153.com
4 22 tom
5 27 green ejorj@125.com
--
方法三:使用update直接更新ta表,若ta中沒有的數據,將tb中的數據添加進來即可:
3.1 更新
update ta a
set (a.age,a.name,a.mail)=(
select nvl(a1.age,b1.age),
nvl(a1.name,b1.name),
nvl(a1.mail,b1.mail)
from ta a1,tb b1
where a1.id=b1.id and a1.id=a.id)
where exists (select 1 from ta a2 where a2.id=a.id);
//注意:此方法失敗�����,如果您能想到解決辦法�,請賜教
3.2 添加
insert into ta(id,age,name,mail)
select tb.id,tb.age,tb.name,tb.mail
from tb
where tb.id not in(select ta.id from ta);
本文出自:億恩科技【www.endtimedelusion.com】
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