Oracle 层次化查询

 

 

 

 create table employees(
    employee_id integer constraint employees_pk primary key,
    manager_id integer constraint employees_fk_employees references employees(employee_id),
    first_name varchar2(10) not null,
    last_name varchar2(10) not null,
    title varchar2(20),
    salary number(6,0)
);

insert into employees(employee_id,first_name,last_name,title,salary) values(1,'James','Smith','CEO',800000);
insert into employees values(2,1,'Ron','Johnson','Sales Manager',600000);
insert into employees values(3,2,'Fred','Hobbs','Sales Person',200000);
insert into employees values(4,1,'Susan','Jones','Support Manager',500000);
insert into employees values(5,2,'Rob','Green','Sales Person',40000);
insert into employees values(6,4,'Jane','Brown','Support Person',45000);
insert into employees values(7,4,'Jone','Grey','Support Person',30000);
insert into employees values(8,7,'Jean','Blue','Support Person',29000);
insert into employees values(9,6,'Henry','Heyson','Support Person',30000);
insert into employees values(10,1,'Kenvin','Black','Ops Manager',100000);
insert into employees values(11,10,'Keith','Long','Ops Person',50000);
insert into employees values(12,10,'Frank','Howard','Ops Person',50000);
insert into employees values(13,10,'Doreen','Penn','Ops Person',47000);

 

员工的关系式一个树形结构,要提取不同员工之间的关系可以使用select 语句的connect by 和start with 子句执行层次化查询。

语法:
  select [level],column,...
  from table
  [where where_condition]
  start with start_condition connect by prior prior_condition
 
  level 是一个伪列,代表树的第几层。根节点的值是1,根节点的子节点是2,以此类推。
  start_condition 定义了层次化查询的起点。当编写层次化查询时必须指定start with 子句。例如:将start_condition 定义为 employee_id=1,表示从员工Id=1开始查询。
  prior_condition 定义了父行和子行之间的关系。当编写层次化查询时必须指定prior_codition子句。例如将prior_condition 定义为 employee_id=manager_id,表示父节点的employee_id和子节点的manager_id之间存在相等关系。

select employee_id,manager_id,first_name,last_name 
from employees 
start with employee_id=1 connect by prior employee_id=manager_id;

 查询的结果是:

1		James	Smith
2	1	Ron	Johnson
3	2	Fred	Hobbs
5	2	Rob	Green
4	1	Susan	Jones
6	4	Jane	Brown
9	6	Henry	Heyson
7	4	Jone	Grey
8	7	Jean	Blue
10	1	Kenvin	Black
11	10	Keith	Long
12	10	Frank	Howard
13	10	Doreen	Penn

 

 

 使用LEVEL 展示员工所处的层次:

select level,employee_id,manager_id,first_name,last_name from employees start with employee_id=1 connect by prior employee_id=manager_id order by level;

 

查询结果:

1	1		James	Smith
2	10	1	Kenvin	Black
2	2	1	Ron	Johnson
2	4	1	Susan	Jones
3	13	10	Doreen	Penn
3	7	4	Jone	Grey
3	11	10	Keith	Long
3	5	2	Rob	Green
3	3	2	Fred	Hobbs
3	12	10	Frank	Howard
3	6	4	Jane	Brown
4	8	7	Jean	Blue
4	9	6	Henry	Heyson

 格式化层次查询结果:

select level,lpad('-',2*(level-1))||first_name||' '||last_name as employee from employees start with employee_id=1 connect by prior employee_id=manager_id;

 结果:

1	James Smith
2	 -Ron Johnson
3	   -Fred Hobbs
3	   -Rob Green
2	 -Susan Jones
3	   -Jane Brown
4	     -Henry Heyson
3	   -Jone Grey
4	     -Jean Blue
2	 -Kenvin Black
3	   -Keith Long
3	   -Frank Howard
3	   -Doreen Penn

 

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