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I have 2 models:

class User < ActiveRecord::Base
    has_and_belongs_to_many :groups
end

class Group < ActiveRecord::Base
    has_and_belongs_to_many :users
end

I want to make a scope (that's important - for efficiency and for ability to chain scopes) that returns Users that doesn't belong to ANY Groups. After many tries, I failed in doing a method instead of scope, which makes collect on User.all which is ugly and.. not right.

Any help?

And maybe for 2nd question: I managed to make a scope that returns Users who belongs to any of given groups (given as an array of id's).

scope :in_groups, lambda { |g|
        {
          :joins      => :groups,
          :conditions => {:groups => {:id => g}},
          :select     => "DISTINCT `users`.*" # kill duplicates
        }
      }

Can it be better/prettier? (Using Rails 3.0.9)

share|improve this question
up vote 12 down vote accepted

Your implicit join table would have been named groups_users based on naming conventions. Confirm it once in your db. Assuming it is:

scope :not_in_any_group, {
    :joins      => "LEFT JOIN groups_users ON users.id = groups_users.user_id",
    :conditions => "groups_users.user_id IS NULL",
    :select     => "DISTINCT users.*"
}
share|improve this answer
    
thanks, it did the trick :) – schiza Aug 11 '11 at 20:49
    
Would you need DISTINCT in this case where there would be no join relationship for the returned results, and thus no repetition of users? – Brendon Muir Nov 23 '15 at 21:41

If you convert from HABTM to has_many through (more flexible) association, then you can use something like this:

class Group < ActiveRecord::Base
  has_many :groups_users, dependent: :destroy
  has_many :users, through: :groups_users, uniq: true

  scope :in_groups, -> { includes(:groups_users).where(groups_users: {group_id: nil}) }
end

class User < ActiveRecord::Base
  has_many :groups_users, dependent: :destroy
  has_many :groups, through: :groups_users
end

class GroupsUser < ActiveRecord::Base
  belongs_to :group
  belongs_to :user
end
share|improve this answer

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