mySQL传递闭包表

Question

我有一些代码，我一直在SQL Server中使用从另一个只有直接父/子关系的表生成一个闭包表，我可以对此运行非常简单的查询来确定沿袭。现在我需要在mySQL中完成所有这些操作，但是我在使用递归查询生成闭包表时遇到了麻烦......

我的原始SQL服务器查询是

WHILE @@ROWCOUNT>0
INSERT INTO [ClosureTable] ([Ancestor], [Descendent])
SELECT distinct [Parent],[tc].[Descendent] 
FROM 
    [RelationshipTable] 
INNER JOIN [ClosureTable] as tc
    ON [Child]COLLATE DATABASE_DEFAULT = 
                      [tc].[Ancestor]COLLATE DATABASE_DEFAULT
LEFT OUTER JOIN [ClosureTable] As tc2
    ON [Parent]COLLATE DATABASE_DEFAULT =
                      [tc2].[Ancestor] COLLATE DATABASE_DEFAULT 
    AND [tc].[Descendent]COLLATE DATABASE_DEFAULT =
                      [tc2].[Descendent]COLLATE DATABASE_DEFAULT

我的第一个问题是找到@@ ROWCOUNT的替换...但是在mySQL中递归查询可能完全不同？我还查看了Bill Karwin's presentation

PS。由于性能问题，我需要“COLLATE DATABASE_DEFAULT”。

感谢。

Answer 1

我知道这已经过时了，但我觉得你仍然需要对其他人的答案，这是我从标准邻接表中生成闭包表的方法：

mysql_query('TRUNCATE fec_categories_relations');

function rebuild_tree($parent)
{
    // get all children of this node
    $result = mysql_query('SELECT c.categories_id, c.parent_id, cd.categories_name FROM fec_categories c
                            INNER JOIN fec_categories_description cd ON c.categories_id = cd.categories_id
                            WHERE c.parent_id = "'.$parent.'"
                            AND      cd.language_id = 1
                            ORDER BY cd.categories_name');

    // loop through 
    while ($row = mysql_fetch_array($result))
    {       
        $update_sql = " INSERT fec_categories_relations (ancestor, descendant, length)
                        SELECT ancestor, {$row['categories_id']}, length+1
                        FROM fec_categories_relations
                        WHERE descendant = {$row['parent_id']}
                        UNION ALL SELECT {$row['categories_id']},{$row['categories_id']}, 0";

        mysql_query($update_sql);

        echo '<li>' . $update_sql . "</li>";

        rebuild_tree($row['categories_id']);
    }
}

rebuild_tree(0);

Answer 2

不确定我是否理解你的确切问题是什么 - 我认为它是从邻接列表表中递归生成树 - 如果是这样，以下内容可能会有所帮助，但它不是递归的（多么可耻!!）

drop table if exists employees;
create table employees
(
emp_id smallint unsigned not null auto_increment primary key,
name varchar(255) not null,
boss_id smallint unsigned null,
key (boss_id)
)
engine = innodb;

insert into employees (name, boss_id) values
('f00',null), 
  ('ali later',1), 
  ('megan fox',1), 
   ('jessica alba',3), 
   ('eva longoria',3), 
   ('keira knightley',5), 
      ('liv tyler',6), 
        ('sophie marceau',6);


drop procedure if exists employees_hier;

delimiter #

create procedure employees_hier
(
in p_emp_id smallint unsigned
)
begin

declare v_done tinyint unsigned default(0);
declare v_dpth smallint unsigned default(0);

create temporary table hier(
 boss_id smallint unsigned, 
 emp_id smallint unsigned, 
 depth smallint unsigned
)engine = memory;

insert into hier select boss_id, emp_id, v_dpth from employees where emp_id = p_emp_id;

/* http://dev.mysql.com/doc/refman/5.0/en/temporary-table-problems.html */

create temporary table emps engine=memory select * from hier;

while not v_done do

 if exists( select 1 from employees e inner join hier on e.boss_id = hier.emp_id and hier.depth = v_dpth) then

  insert into hier select e.boss_id, e.emp_id, v_dpth + 1 
   from employees e inner join emps on e.boss_id = emps.emp_id and emps.depth = v_dpth;

  set v_dpth = v_dpth + 1;   

  truncate table emps;
  insert into emps select * from hier where depth = v_dpth;

 else
  set v_done = 1;
 end if;

end while;

select 
 e.emp_id,
 e.name as emp_name,
 p.emp_id as boss_emp_id,
 p.name as boss_name,
 hier.depth
from 
 hier
inner join employees e on hier.emp_id = e.emp_id
left outer join employees p on hier.boss_id = p.emp_id;

drop temporary table if exists hier;
drop temporary table if exists emps;

end #

delimiter ;

-- call this sproc from your php

call employees_hier(1);