我有一个名为Name的ActiveRecord,其中包含各种Languages的名称。
class Name < ActiveRecord::Base
belongs_to :language
class Language < ActiveRecord::Base
has_many :names
用一种语言查找名称很简单:
Language.find(1).names.find(whatever)
但我需要找到匹配的对,其中语言1和语言2都具有相同的名称。在SQL中,这需要一个简单的自联接:
SELECT n1.id,n2.id FROM names AS n1, names AS n2
WHERE n1.language_id=1 AND n2.language_id=2
AND n1.normalized=n2.normalized AND n1.id != n2.id;
如何使用ActiveRecord执行此类查询?请注意,我需要找到一对名称(=匹配的两侧),而不仅仅是语言1中恰好与某些内容匹配的名称列表。
对于奖励积分,请将n1.normalized=n2.normalized替换为n1.normalized LIKE n2.normalized,因为该字段可能包含SQL通配符。
我也对以不同方式建模数据的想法持开放态度,但如果可以的话,我宁愿避免为每种语言使用单独的表格。
答案 0 :(得分:7)
试试这个:
ids = [1,2]
Name.all(:select => "names.id, n2.id AS id2",
:joins => "JOIN names AS n2
ON n2.normalized = names.normalized AND
n2.language_id != names.language_id AND
n2.language_id IN (%s)" % ids.join(','),
:conditions => ["names.language_id IN (?)", ids]
).each do |name|
p "id1 : #{name.id}"
p "id2 : #{name.id2}"
end
PS:确保清理传递给连接条件的参数。
答案 1 :(得分:1)
听起来你可能想要使用语言和名称之间的多对多关系而不是has_many / belongs_to。
>> Language.create(:name => 'English')
=> #<Language id: 3, name: "English", created_at: "2010-09-04 19:15:11", updated_at: "2010-09-04 19:15:11">
>> Language.create(:name => 'French')
=> #<Language id: 4, name: "French", created_at: "2010-09-04 19:15:13", updated_at: "2010-09-04 19:15:13">
>> Language.first.names << Name.find_or_create_by_name('Dave')
=> [#<Name id: 3, name: "Dave", language_id: 3, created_at: "2010-09-04 19:16:50", updated_at: "2010-09-04 19:16:50">]
>> Language.last.names << Name.find_or_create_by_name('Dave')
=> [#<Name id: 3, name: "Dave", language_id: 4, created_at: "2010-09-04 19:16:50", updated_at: "2010-09-04 19:16:50">]
>> Language.first.names.first.languages.map(&:name)
=> ["English", "French"]
这种额外的规范化水平应该使你想要做的更容易。