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I basically followed the ROR guide, http://guides.rubyonrails.org/association_basics.html#the-has_many-through-association, to create the relationship models as shown below.

Because of the through association, I figured that @user.trips would give you both the trips that the user created and the trips that belong to the user. However, when I do @user.trips.count in console, the result was only the number of trips that the users created; the trips that belonged to the user through the 'group' association was not counted.

Question: How do I get my view to display both the trips that the user created and the trips that the user belongs to through 'group'?

user/show.html.erb

<% unless @user.all_trips.empty? %>
  <% @user.all_trips.each do |trip| %>
     <!-- Content -->
  <% end %>
<% end %>

user.rb

class User < ActiveRecord::Base
  has_many :group_trips, :through => :groups,
                         :source   => :trip
  has_many :trips, :dependent => :destroy
  has_many :groups

  def all_trips
    self.trips | self.group_trips
  end


end

trip.rb

class Trip < ActiveRecord::Base
  belongs_to :user
  belongs_to :traveldeal
  has_many :groups

  has_many :users, :through => :groups
end

group.rb

class Group < ActiveRecord::Base
  belongs_to :trip
  belongs_to :user
end

Thanks!

Edit: Modified code per TSherif's partial solution. Edit 2: Fixed up the all_trips method. Everything appears to work for me at this point.

share|improve this question
    
BTW, I think it's probably a better idea not to change around the code too much in your question. Now, if someone has the same problem you had, they won't be able to tell. –  tsherif Apr 14 '12 at 19:35
    
Will keep this in mind for next time; I figured it would be more helpful if people saw a working solution. –  Huy Apr 14 '12 at 19:57

1 Answer 1

up vote 2 down vote accepted

Oh! I think I get what you're trying to do and why it's a problem. I was wondering why has_many :trips was called twice. But from what I understand, you have two different User-Trip relationships. These two can't have the same name, otherwise one will hide the other. Try something like this:

class User < ActiveRecord::Base
  has_many :group_trips, :through => :groups,
                         :class_name   => "Trip"
  has_many :trips, :dependent => :destroy
  has_many :groups

  def all_trips
    Trip.joins(:groups).where({:user_id => self.id} | {:groups => {:user_id => self.id}})
  end
end

Or if you're using an older version of Rails that doesn't have MetaWhere:

def all_trips
  Trip.joins(:groups).where("(trips.user_id = ?) OR (groups.user_id = ?)", self.id, self.id)
end
share|improve this answer
    
I haven't been sure that the Rails 3 joins method could take associations. Also, you seem to be passing an expression to the where method. Where can I read up on more information about these methods? api.rubyonrails.org and apidoc.com document the where method as: where(opts, *rest) So the only documentation I have is from the Rails 2.3 find method. –  Marlin Pierce Apr 14 '12 at 14:54
1  
The expression in the where clause uses MetaWhere syntax. You can get info about it here: erniemiller.org/projects/metawhere –  tsherif Apr 14 '12 at 15:15
    
Thanks. I'm very appreciative. Still, the Rails documentation would be a better place to find all this, instead of hunting around for stuff like this. :) –  Marlin Pierce Apr 14 '12 at 15:59
    
Totally agree. I've been using Rails 3 for about a year now and just accidentally found out about this stuff last week watching a Railscast (which is a great resource, btw, if you aren't already using it). –  tsherif Apr 14 '12 at 16:10
1  
Mmm... all that does is a set union between two separate queries. If you want to go that way, just do def all_trips; self.trips | self.group_trips; end. But are you saying that friend.all_trips.count produces something different from friend.all_trips.all.size? Can you post the SQL generated from the first query (from your execution log), so I can take a look at it. I think it should be working. Look for the one with SELECT COUNT(.... –  tsherif Apr 14 '12 at 18:24

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