Oracle - start with connect by 树操作

2019年10月2日 135次阅读 来源: 你的笑忘书

Oracle – start with connect by 树操作

准备工作:建表、插数据

create table tprior
( parentid number(10),
  subid    number(10)
);
 
insert into tprior values ( 1, 2 );
insert into tprior values ( 1, 3 );
insert into tprior values ( 2, 4 );
insert into tprior values ( 2, 5 );
insert into tprior values ( 3, 6 );
insert into tprior values ( 3, 7 );
insert into tprior values ( 5, 8 );
insert into tprior values ( 5, 9 );
insert into tprior values ( 7, 10 );
insert into tprior values ( 7, 11 );
insert into tprior values ( 10, 12 );
insert into tprior values ( 10, 13 );
 
commit;

 

表数据概况、B-Tree 结构

select * from tprior;

表数据

《Oracle - start with connect by 树操作》

对应的 B-Tree 结构:

《Oracle - start with connect by 树操作》

SQL

select parentid, subid, level
  from tprior
 start with subid = 7
connect by subid = prior parentid
 order by level;

《Oracle - start with connect by 树操作》

  • start with subid = 7,首先找出 level 1 记录 (parentid, 7) 即 (3, 7),作为起始点
  • connect by subid = prior parentid,表示从子节点往父节点方向遍历,即 level 1 记录 (3, 7) 中的父节点 3,作为 level 2 记录的子节点,查得 level 2 记录 (1, 3)
  • 一直查到根节点结束

 

select parentid, subid, level
  from tprior
 start with subid = 7
connect by prior subid = parentid
 order by level;

《Oracle - start with connect by 树操作》

  • start with subid = 7,level 1 记录 (3, 7)
  • connect by prior subid = parentid,从父节点向子节点方向遍历,即 level 1 记录 (3, 7) 中的子节点 7,作为 level 2 记录的父节点,查得 level 2 记录 (7, 10)、(7, 11)
  • 以此类推,一直查到没有子节点的节点为止

 

select parentid, subid, level
  from tprior
 start with parentid = 7
connect by subid = prior parentid
 order by level;

《Oracle - start with connect by 树操作》

  • start with parentid = 7,level 1 记录 (7, 10)、(7, 11)
  • connect by subid = prior parentid,子节点向节点方向遍历,上一组数据的父节点 7,作为 level 2 记录的子节点,查得 (3, 7)、(3, 7) {为什么 level 2 是 2 组数据呢?因为 level 1 记录有 2 个}
  • 以此类推

 

select parentid, subid, level
  from tprior
 start with parentid = 7
connect by prior subid = parentid
 order by level;

《Oracle - start with connect by 树操作》

  • start with parentid = 7,level 1 记录 (7, subid)、(7, subid) 即 (7, 10)、(7, 11)
  • connect with prior parentid = subid,子节点向父节点遍历,level 1 记录的父节点 10、11,作为 level 2 记录的子节点,查得 (10, 13)、(10, 12)
  • 以此类推

 

select parentid, subid, level
  from tprior
 where parentid > 3
 start with subid = 12
connect by subid = prior parentid
 order by level;

《Oracle - start with connect by 树操作》

  • SQL 执行顺序是:先执行 start with,再执行 connect by,最后执行 where。
  • 结论:where 只是树结构的修剪,不改变树的层次结构。
    原文作者:你的笑忘书
    原文地址: https://segmentfault.com/a/1190000012737722
    本文转自网络文章,转载此文章仅为分享知识,如有侵权,请联系博主进行删除。
点赞