Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have 4 models, A, B, C and D

class A < ActiveRecord::Base
  has_many :B
  has_many :C, :through => :B
end  

class B < ActiveRecord::Base
  belongs_to :A  
  has_many   :C
  has_many   :D, :through => :C
end  

class C < ActiveRecord::Base    
  belongs_to :B
end    

class D < ActiveRecord::Base    
  belongs_to :C
end    

I have a very naive implementation which is very obvious ...

<% A.B.each do |b| %>
  <%= b.number %>
  <% b.C.each do |c| %>
    <%= c.name %>
  <% end %>
<% end %>

What's the best way to get All C for A? What's the best way get All D for A?

I want to get all 'C' using order_by clause with "created_at" value instead of iterating through B.

May be I'm missing some ActiveRecord magic?

I appreciate any help.

share|improve this question
    
Because of A's relation with C through B, I can also do A.C directly right? – Atarang Jan 10 '12 at 4:36
up vote 6 down vote accepted

First of all, you need to make a couple changes.

  1. class C needs an association to D

    class C < ActiveRecord::Base
      belongs_to :B
      has_one :D
    end
    
  2. If you want to access A's D's, you need to specify this as well.

    class A < ActiveRecord::Base
      has_many :B
      has_many :C, :through => :B
      has_many :D, :through => :C
    end
    

Now, to access all of A's C's:

-> a = A.where(:id => 1).includes(:C).first
  A Load (0.2ms)  SELECT "as".* FROM "as" WHERE "as"."id" = 1 LIMIT 1
  B Load (0.1ms)  SELECT "bs".* FROM "bs" WHERE "bs"."a_id" IN (1)
  C Load (0.1ms)  SELECT "cs".* FROM "cs" WHERE "cs"."b_id" IN (1, 2)
 => #<A id: 1, created_at: "2012-01-10 04:28:42", updated_at: "2012-01-10 04:28:42"> 
-> a.C
 => [#<C id: 1, b_id: 1, created_at: "2012-01-10 04:30:10", updated_at: "2012-01-10 04:30:10">, #<C id: 2, b_id: 1, created_at: "2012-01-10 04:30:11", updated_at: "2012-01-10 04:30:11">, #<C id: 3, b_id: 2, created_at: "2012-01-10 04:30:21", updated_at: "2012-01-10 04:30:21">, #<C id: 4, b_id: 2, created_at: "2012-01-10 04:30:21", updated_at: "2012-01-10 04:30:21">]

Notice how another query is not executed when you call a.C. This is because ActiveRecord knows you will want to access the found A's C's by the include call, and generates the minimum number of queries. Same goes for D's:

-> a = A.where(:id => 1).includes(:D).first
  A Load (0.1ms)  SELECT "as".* FROM "as" WHERE "as"."id" = 1 LIMIT 1
  B Load (0.1ms)  SELECT "bs".* FROM "bs" WHERE "bs"."a_id" IN (1)
  C Load (0.1ms)  SELECT "cs".* FROM "cs" WHERE "cs"."b_id" IN (1, 2)
  D Load (0.1ms)  SELECT "ds".* FROM "ds" WHERE "ds"."c_id" IN (1, 2, 3, 4)

Say you wanted all A's D's but wanted C's ordered:

A.where(:id => 1).includes(:C).order('cs.created_at DESC').includes(:D)

Note you can also set this as a default on the association:

The :order option dictates the order in which associated objects will be received (in the syntax used by an SQL ORDER BY clause).

class Customer < ActiveRecord::Base
  has_many :orders, :order => "date_confirmed DESC"
end
share|improve this answer
2  
+1 for has_one :D smileys and solid answer – iWasRobbed Jan 10 '12 at 5:49
    
@iWasRobbed Thanks! B has many smilies through a really sad guy. (Now I can't stop seeing them.) – Michelle Tilley Jan 10 '12 at 5:51
    
Brandon Thanks. I'll try this, but I think having associations solves this problem. – Atarang Jan 10 '12 at 6:16
    
You can access the child objects without using includes, but Rails will generate a lot of queries. You should use includes to avoid the N+1 problem. – Michelle Tilley Jan 10 '12 at 6:19
    
Brandon, This is indeed a better and faster solution. Thanks. – Atarang Jan 13 '12 at 9:09

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.