13

My model (Bar) already has a reference column, let's call it foo_id and now I need to change foo_id to fooable_id and make it polymorphic.

I figure I have two options:

  • Create new reference column fooable which is polymorphic and migrate the ID's from foo_id (What would be the best way to migrate these? Could I just do Bar.each { |b| b.fooable_id = b.foo_id }?
  • Rename foo_id to fooable_id and add polymorphic to fooable_id. How to add polymorpic to an existing column?
1
  • Oh wow, you're still using Rails 2? Is this real or a typo? Aug 29 '14 at 8:26
17

1. Change the name of foo_id to fooable_id by renaming it in a migration like:

rename_column :bars, :foo_id, :fooable_id

2. and add polymorphism to it by adding the required foo_type column in a migration:

add_column :bars, :fooable_type, :string

3. and in your model:

class Bar < ActiveRecord::Base
  belongs_to :fooable, 
    polymorphic: true
end

4. Finally seed the type of you already associated type like:

Bar.update_all(fooable_type: 'Foo')

Read Define polymorphic ActiveRecord model association!

2
  • 1
    The final step could be rewritten as Bar.update_all(fooable_type: 'Foo'), right?
    – Jakob W
    Apr 21 '15 at 11:08
  • 1
    This doesn't work if you use foreign_key (default for generated migrations for reference). See updated anwer below.
    – Martin M
    Nov 22 '19 at 9:42
12

Update for Rails >= 4.2

Current Rails generates references with index and foreign_key, which is a good thing.
This means that the answer of @Christian Rolle is no longer valid as after renaming foo_id it leaves a foreign_key on bars.fooable_id referencing foo.id which is invalid for other fooables.

Luckily, also the migrations evolve, so undoable migrations for references do exist.

Instead of renaming the reference id, you need to create a new reference and remove the old one.
What's new is the need to migrate the ids from the old reference to the new one.
This could be done by a

Bar.find_each { |bar| bar.update fooable_id: bar.foo_id }

but this can be very slow when there are already many relations. Bar.update_all does it on database level, which is much faster.

Of course, you should be able to roll back the migration, so when using foreign_keys the complete migration is:

def change
  add_reference :bars, :fooable, polymorphic: true
  reversible do |dir|
    dir.up { Bar.update_all("fooable_id = foo_id, fooable_type='Foo'") }
    dir.down { Bar.update_all('foo_id = fooable_id') }
  end
  remove_reference :bars, :foo, index: true, foreign_key: true
end

Remember that during rollback, change is processed from bottom to top, so foo_id is created before the update_all and everything is fine.

3
  • THANK YOU! This was really helpful. Question about the down portion — shouldn't it explicitly filter for fooables of type='Foo', as there might be repeat ids between Foo another class which may have implemented Fooable since the change to polymorphic, right?
    – woodardj
    Mar 3 '21 at 16:45
  • 1
    It might be useful to clear all polymorphic references to other types than Foo, as the other classes should no longer exist when you switch off polymorphic. This should be done in later migrations (reverted earlier :-) that add the other classes. So kind of YES, BUT...
    – Martin M
    Mar 4 '21 at 19:46
  • Super useful migration - just used it 5x in one of my projects
    – Paul Odeon
    Nov 21 '21 at 10:38
3

One small change I would make is to the migration:

#db/migrate/latest.rb
class Latest
  def change
    rename_column :bars, :foo_id, :fooable_id
    add_column :bars, :fooable_type, :string, after: :id, default: 'Foo'
  end
end

This would eliminate the need to do a data migration.

Update: this will work on rails 3 and up. According to the question the original base class is implied to be Foo.

1
  • Umm, this isn't valid in Rails 2.3 and also this eliminates the possibility of using the untyped baseclass
    – deiga
    Nov 17 '14 at 4:19
0

In reference to your question specifically, here's what I'd do:

All the data in your Bar model is going to be stored in reference to the Bar model. This means that if you change the foo_id attribute in your model, you'll be able to just populate the bar_type attribute you need to add (as they'll all be able to reference the same model)

The way to do this is as follows:

  1. Create migration for foo_id > fooable_id
  2. Insert a fooable_type column
  3. In rails console, loop through all existing records of Bar, filling the fooable_type column

First things first:

$ rails g migration ChangeFooID

#db/migrate/latest.rb
class Latest
   def change
      rename_column :bars, :foo_id, :fooable_id
      add_column :bars, :fooable_type, :string, after: :id
   end
end

This will create the various columns for you. Then you just need to be able to cycle through the records & change the type column:

rails c

Bar.find_each do |bar|
  bar.update(barable_type: "Foo")
end

This will allow you to change the type of your columns, giving you the ability to associate all the current records with the respective records.


Polymorphism

You'll be able to use the Rails docs as a reference as to how to associate your models:

#app/models/foo.rb
class Foo < ActiveRecord::Base
   has_many :bars, as: :barable
end

#app/models/bar.rb
class Bar < ActiveRecord::Base
   belongs_to :foo, polymorphic: true
end

enter image description here

1
  • bar.update(barable_type: "Foo") won't work, since update is private. I guess you meant ActiveRecord#update_attribute. Aug 31 '14 at 17:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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