Oracle外键执行计划?
Bra*_*vic 5 oracle foreign-keys oracle10g sql-execution-plan
考虑以下(简单)情况:
CREATE TABLE PARENT (
PARENT_ID INT PRIMARY KEY
);
CREATE TABLE CHILD (
CHILD_ID INT PRIMARY KEY,
PARENT_ID INT NOT NULL,
FOREIGN KEY (PARENT_ID) REFERENCES PARENT (PARENT_ID)
);
没有索引CHILD.PARENT_ID,因此修改/删除PARENT是昂贵的(Oracle需要执行全表扫描CHILD以强制执行参照完整性).然而,以下声明的执行计划......
DELETE FROM PARENT WHERE PARENT_ID = 1
...不显示表扫描(SYS_C0070229是索引PARENT.PARENT_ID):
我知道有很多方法可以查看所有未编制索引的FOREIGN KEY,但如果我能够"警告"查询执行计划本身的潜在问题(BTW,MS SQL Server以及可能的其他数据库那样做)会更好.
这可能在Oracle中吗?
如果重要的话,我正在使用Oracle 10.2.
我已经更改了您的约束以添加“ON DELETE CASCADE”,否则 Oracle 将引发错误。(外键违规的默认设置是删除限制)
我相信您问题的答案是“否”,Oracle 不会警告您有关未索引外键列的信息。实际上,大多数此类列都会建立索引,因为这是将父列连接到子列的方式。
如果您想向某人证明没有索引会导致锁定问题和升级(不太理想的情况),您可以简单地禁用表锁并显示错误。
SQL> alter table child disable table lock;
Table altered.
SQL> delete from parent where parent_id = 10;
delete from parent where parent_id = 10
*
ERROR at line 1:
ORA-00069: cannot acquire lock -- table locks disabled for CHILD
对于解释计划问题,正如其他人指出的那样,从子表中删除的sql是递归SQL,并且没有在解释计划中显示。
如果您跟踪会话,您将看到递归 SQL。
1* alter session set SQL_TRACE = TRUE
SQL> /
Session altered.
SQL> delete from parent where parent_id = 10;
1 row deleted.
SQL> commit;
Commit complete.
SQL> alter session set SQL_TRACE=FALSe;
Session altered.
=====================
PARSING IN CURSOR #2 len=39 dep=0 uid=65 oct=7 lid=65 tim=763167901560 hv=3048246147 ad='3160891c'
delete from parent where parent_id = 10
END OF STMT
PARSE #2:c=0,e=61,p=0,cr=0,cu=0,mis=0,r=0,dep=0,og=1,tim=763167901555
=====================
PARSING IN CURSOR #1 len=48 dep=1 uid=0 oct=7 lid=0 tim=763167976106 hv=2120075951 ad='26722c20'
delete from "RC"."CHILD" where "PARENT_ID" = :1
END OF STMT
PARSE #1:c=0,e=42,p=0,cr=0,cu=0,mis=0,r=0,dep=1,og=4,tim=763167976100
EXEC #1:c=0,e=291,p=0,cr=7,cu=7,mis=0,r=2,dep=1,og=4,tim=763168080347
EXEC #2:c=0,e=130968,p=0,cr=8,cu=14,mis=0,r=1,dep=0,og=1,tim=763168091605
STAT #2 id=1 cnt=1 pid=0 pos=1 obj=0 op='DELETE PARENT (cr=8 pr=0 pw=0 time=130887 us)'
STAT #2 id=2 cnt=1 pid=1 pos=1 obj=58703 op='INDEX UNIQUE SCAN SYS_C006951 (cr=1 pr=0 pw=0 time=19 us)'
STAT #1 id=1 cnt=0 pid=0 pos=1 obj=0 op='DELETE CHILD (cr=7 pr=0 pw=0 time=233 us)'
STAT #1 id=2 cnt=2 pid=1 pos=1 obj=58704 op='TABLE ACCESS FULL CHILD (cr=7 pr=0 pw=0 time=76 us)'
有用的链接:http://www.oracle-base.com/articles/10g/SQLTrace10046TrcsessAndTkprof10g.php
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