更新时间:2022-07-29 GMT+08:00
案例:改写SQL消除in-clause
现象描述
in-clause/any-clause是常见的SQL语句约束条件,有时in或any后面的clause都是常量,类似于:
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select
count(1)
from calc_empfyc_c1_result_tmp_t1
where ls_pid_cusr1 in (‘20120405’, ‘20130405’);
|
或者
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select
count(1)
from calc_empfyc_c1_result_tmp_t1
where ls_pid_cusr1 in any(‘20120405’, ‘20130405’);
|
但是也有一些如下的特殊用法:
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SELECT
ls_pid_cusr1,COALESCE(max(round((current_date-bthdate)/365)),0)
FROM calc_empfyc_c1_result_tmp_t1 t1,p10_md_tmp_t2 t2
WHERE t1.ls_pid_cusr1 = any(values(id),(id15))
GROUP BY ls_pid_cusr1;
|
其中,id、id15为p10_md_tmp_t2中的两列,“t1.ls_pid_cusr1 = any(values(id),(id15))”等价于“t1.ls_pid_cusr1 = id or t1.ls_pid_cusr1 = id15”。
因此join-condition实质上是一个不等式,这种不等值的join操作必须走nestloop,对应执行计划如下:
优化说明
测试发现由于两表结果集过大,导致nestloop耗时过长,超过一小时未返回结果,因此性能优化的关键是消除nestloop,让join走更高效的hashjoin。从语义等价的角度消除any-clause,SQL改写如下:
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select
ls_pid_cusr1,COALESCE(max(round(ym/365)),0)
from
(
(
SELECT
ls_pid_cusr1,(current_date-bthdate) as ym
FROM calc_empfyc_c1_result_tmp_t1 t1,p10_md_tmp_t2 t2
WHERE t1.ls_pid_cusr1 = t2.id and t1.ls_pid_cusr1 != t2.id15
)
union all
(
SELECT
ls_pid_cusr1,(current_date-bthdate) as ym
FROM calc_empfyc_c1_result_tmp_t1 t1,p10_md_tmp_t2 t2
WHERE t1.ls_pid_cusr1 = id15
)
)
GROUP BY ls_pid_cusr1;
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优化后的SQL查询由两个等值join的子查询构成,而每个子查询都可以走更适合此场景的hashjoin。优化后的执行计划如下
优化后,从超过1个小时未返回结果优化到7s返回结果。
父主题: 实际调优案例