3

我有以下内容: 

class Menu < ActiveRecord::Base
  has_many :menu_headers
  # has_many :menu_headers, :conditions => {:parent_id => 0} - was trying 
  # to set parent_id to 0 for top level 
  has_many :menu_items, :through => :menu_headers
end

class MenuHeader < ActiveRecord::Base
  belongs_to :menu
  has_many :menu_items
  acts_as_tree
end

class MenuItem < ActiveRecord::Base
  #belongs_to :menu
  has_one :menu, :through => :menu_header
  belongs_to :menu_header 
end

编辑#3 - 种子数据样本 例如,如何播种(希望同时获得 mi_1 和 mi_2)

m_1=Menu.create({:name => "Dinner Menu test", :location_id => 145})
c_1=m_1.menu_headers.create({:name => "White Wine"})
c_2=c_1.children.create({:name => "Sauvignon Blanc"})
mi_1=c_2.menu_items.create({:header => "SB menu item #1"})
mi_2=c_1.menu_items.create({:header => "SB menu item #2"})
m_1.menu_items # returns only mi_2; would like both mi_2 and mi_1

结束编辑#3

问题是我无法执行以下操作来返回所有 menu_items: 

m=Menu.find(5)
m.menu_items

对于 has_many :through 在菜单中。这将只获得顶层的菜单项,而不是更深层次的菜单项。我尝试将 menu_id 添加到 menu_headers 但这迫使我放入 commented_out 行,这让我回到只获取顶级标题。有没有办法说让我获得 menu_header 的所有更深层次,以便上述工作?

是否有解决方法或其他方法?我几乎坚持使用acts_as_tree,所以使用awesome_nested_set 之类的东西并不是真正可行的。

谢谢

编辑 - 下面的评论中有几个问题;我凌晨四点写的

编辑#2
我可以通过这个得到所有的孩子: 

class MenuHeader < ActiveRecord::Base
   ...
   # only gets all children of the current menu_header_id
   def all_children
     all = []
     self.children.each do |menu_header|
       all << menu_header
       root_children = menu_header.all_children.flatten
       all << root_children unless root_children.empty?
     end
     return all.flatten
   end

end

我希望能够调用 all_children 并在主菜单项上获取 menu_items。也许将上述内容与对主菜单项的调用集成,然后在菜单项有更新时将缓存副本存储在菜单表中。

将研究 Ancestry,但由于其他代码依赖于此而犹豫是否要转移到另一个 gem。如果可以快速完成,可能没问题,但这是一个相当复杂的对象,有许多其他部分,acts_as_tree 相当简单。

编辑 #4 - 这是示例数据:

menus
+----+-------------+------------------+
| id | location_id | name             |
+----+-------------+------------------+
|  1 |         145 | item  cocktails  |
+----+-------------+------------------+

menu_headers                            
+----+----------------------+-----------+---------+
| id | name                 | parent_id | menu_id |
+----+----------------------+-----------+---------+
|  1 | Wines By The Glass   |         0 |       1 |
|  2 | WHITE WINES          |         1 |    NULL |
|  3 | WHITE WINES child #1 |         2 |    NULL |
|  4 | WHITE WINES child #2 |         2 |    NULL |
|  5 | WHITE WINES child #3 |         2 |    NULL |
|  6 | RED WINES            |         0 |       1 |
+----+----------------------+-----------+---------+

menu_items
+----+----------------------------------------------------+----------------+
| id | header                                             | menu_header_id |
+----+----------------------------------------------------+----------------+
|  1 | SAUVIGNON BLANC item #1                            |              2 |
|  2 | MONTEPULCIANO                                      |              6 |
+----+----------------------------------------------------+----------------+

谢谢

4

2 回答 2

0

你可以试试ancestry,在我看来它比acts_as_tree 好

于 2011-11-28T14:39:27.150 回答
0

尝试这个。

class Menu < ActiveRecord::Base
  has_many :menu_headers, :conditions => {:parent_id => 0}
  has_many :menu_sub_headers, :class_name => 'MenuHeader'
  has_many :menu_items, :through => :menu_sub_headers
end

class MenuHeader < ActiveRecord::Base
  belongs_to :menu
  has_many :menu_items
  acts_as_tree
end

class MenuItem < ActiveRecord::Base
  has_one :menu, :through => :menu_header
  belongs_to :menu_header 
end

那应该给出:

m1=Menu.create(:name => "Dinner Menu test", :location_id => 145)
c1=m1.menu_headers.create(:name => "White Wine")
c2=c1.children.create(:name => "Sauvignon Blanc", :menu => m1)
mi1=c2.menu_items.create(:header => "SB menu item #1")
mi2=c1.menu_items.create(:header => "SB menu item #2")
m_1.menu_items # should return mi1 and mi2
m_1.menu_headers # should return just c1
m_1.menu_sub_headers # should return c1 and c2
于 2011-11-28T17:09:10.943 回答