80

For a number of reasons^, I'd like to use a UUID as a primary key in some of my Django models. If I do so, will I still be able to use outside apps like "contrib.comments", "django-voting" or "django-tagging" which use generic relations via ContentType?

Using "django-voting" as an example, the Vote model looks like this:

class Vote(models.Model):
    user         = models.ForeignKey(User)
    content_type = models.ForeignKey(ContentType)
    object_id    = models.PositiveIntegerField()
    object       = generic.GenericForeignKey('content_type', 'object_id')
    vote         = models.SmallIntegerField(choices=SCORES)

This app seems to be assuming that the primary key for the model being voted on is an integer.

The built-in comments app seems to be capable of handling non-integer PKs, though:

class BaseCommentAbstractModel(models.Model):
    content_type   = models.ForeignKey(ContentType,
            verbose_name=_('content type'),
            related_name="content_type_set_for_%(class)s")
    object_pk      = models.TextField(_('object ID'))
    content_object = generic.GenericForeignKey(ct_field="content_type", fk_field="object_pk")

Is this "integer-PK-assumed" problem a common situation for third-party apps which would make using UUIDs a pain? Or, possibly, am I misreading this situation?

Is there a way to use UUIDs as primary keys in Django without causing too much trouble?


^ Some of the reasons: hiding object counts, preventing url "id crawling", using multiple servers to create non-conflicting objects, ...

45

A UUID primary key will cause problems not only with generic relations, but with efficiency in general: every foreign key will be significantly more expensive—both to store, and to join on—than a machine word.

However, nothing requires the UUID to be the primary key: just make it a secondary key, by supplementing your model with a uuid field with unique=True. Use the implicit primary key as normal (internal to your system), and use the UUID as your external identifier.

  • 15
    Joe Holloway, no need for that: you can simply supply the UUID generation function as the field's default. – Pi Delport Oct 15 '10 at 16:54
  • 4
    Joe: I use django_extensions.db.fields.UUIDField to create my UUIDs in my model. It's simple, I just define my field like this: user_uuid = UUIDField() – mitchf Oct 15 '10 at 17:55
  • 3
    @MatthewSchinckel: When you use django_extensions.db.fields.UUIDField as mentioned by mitchf, you will have no problems with Django-South migrations - field mentioned by him has built-in support for South migrations. – Tadeck Apr 18 '12 at 10:10
  • 104
    Terrible answer. Postgres has native (128 bit) UUIDs which are only 2 words on a 64 bit machine, so would not be "significantly more expensive" than native 64 bit INT. – postfuturist Apr 29 '13 at 20:47
  • 8
    Piet, given that it has a btree index on it, how many comparisons are there going to be on a given query? Not many. Also, I'm sure that the memcmp call will be aligned and optimized on most OSs. Based on the nature of the questions, I would say not using UUID because of possible (likely negligible) performance differences is the wrong optimization. – postfuturist May 2 '13 at 20:46
188

As seen in the documentation, from Django 1.8 there is a built in UUID field. The performance differences when using a UUID vs integer are negligible.

import uuid
from django.db import models

class MyUUIDModel(models.Model):
    id = models.UUIDField(primary_key=True, default=uuid.uuid4, editable=False)

You can also check this answer for more information.

  • 6
    Does that solve the generic relations problems? – storm_buster Jan 11 '16 at 3:26
  • @Keithhackbarth how do we set django to use this every time when automatically creating IDs for tables? – anon58192932 Jan 26 '17 at 20:56
  • 3
    @anon58192932 Not really clear what exactly do you mean by "every time". If you want UUIDs to be used for every model, create your own abstract base model and use it instead of django.models.Model. – Назар Топольський Mar 1 '17 at 16:31
  • 3
    Performance differences are only negligible when underlying database supports the UUID type. Django still uses a charfield for most DBs (postgresql is the only documented db to support the UUID field). – NirIzr Jun 6 '18 at 19:30
  • @ManojJadhav - As stated in the Django docs: "primary_key=True implies null=False and unique=True" – keithhackbarth Mar 4 at 5:36
11

I ran into a similar situation and found out in the official Django documentation, that the object_id doesn't have to be of the same type as the primary_key of the related model. For example, if you want your generic relationship to be valid for both IntegerField and CharField id's, just set your object_id to be a CharField. Since integers can coerce into strings it'll be fine. Same goes for UUIDField.

Example:

class Vote(models.Model):
    user         = models.ForeignKey(User)
    content_type = models.ForeignKey(ContentType)
    object_id    = models.CharField(max_length=50) # <<-- This line was modified 
    object       = generic.GenericForeignKey('content_type', 'object_id')
    vote         = models.SmallIntegerField(choices=SCORES)
0

I recently came up with the following architecture for solving this issue that I thought would be worth sharing.

The UUID Pseudo-Primary-Key

This method allows you to leverage the benefits of a UUID as a Pseudo-PK (using a unique index), while maintaining an auto-incremented PK to address the performance concerns of having a non-numeric PK (fragmentation, insert degredation, etc.)

How it works:

  1. Create an auto-incremented primary key called pkid on your DB Models.
  2. Add a unique-indexed UUID id field to allow you to search by a UUID id, instead of a numeric primary key.
  3. Point the ForeighKey to the UUID (using to_field='id') to allow your foreign-keys to properly represent the Pseudo-PK instead of the numeric ID.

Essentially, you will do the following:

First, create a Django Base Model

class UUIDModel(models.Model):
    pkid = models.BigAutoField(primary_key=True, editable=False)
    id = models.UUIDField(default=uuid.uuid4, editable=False, unique=True)

Make sure to extend the base model instead of models.Model

class Site(UUIDModel):
    name = models.CharField(max_length=255)

Also make sure your ForeignKeys point to the UUID id field instead of the auto-incremented pkid field:

class Page(UUIDModel):
    site = models.ForeignKey(Site, to_field='id', on_delete=models.CASCADE)

If you're using Django Rest Framework (DRF), make sure to also create a Base ViewSet class to set the default search field:

class UUIDModelViewSet(viewsets.ModelViewSet):
    lookup_field = 'id' 

And extend that instead of the base ModelViewSet for your API views:

class SiteViewSet(BaseModelViewSet):
    model = Site

class PageViewSet(BaseModelViewSet):
    model = Page

More notes on the why and the how in this article: https://www.stevenmoseley.com/blog/uuid-primary-keys-django-rest-framework-2-steps

-1

The question can be rephrased as "is there a way to get Django to use a UUID for all database ids in all tables instead of an auto-incremented integer?".

Sure, I can do:

id = models.UUIDField(primary_key=True, default=uuid.uuid4, editable=False)

in all of my tables, but I can't find a way to do this for:

  1. 3rd party modules
  2. Django generated ManyToMany tables

So, this appears to be a missing Django feature.

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