166

I have a model that represents paintings I present on my site. On the main webpage I'd like to show some of them: newest, one that was not visited for most time, most popular one and a random one.

I'm using Django 1.0.2.

While first 3 of them are easy to pull using django models, last one (random) causes me some trouble. I can ofc code it in my view, to something like this:

number_of_records = models.Painting.objects.count()
random_index = int(random.random()*number_of_records)+1
random_paint = models.Painting.get(pk = random_index)

It doesn't look like something I'd like to have in my view tho - this is entirely part of database abstraction and should be in the model. Also, here I need to take care of removed records (then number of all records won't cover me all the possible key values) and probably lots of other things.

Any other options how I can do it, preferably somehow inside the model abstraction?

15 Answers 15

156

Using order_by('?') will kill the db server on the second day in production. A better way is something like what is described in Getting a random row from a relational database.

from django.db.models.aggregates import Count
from random import randint

class PaintingManager(models.Manager):
    def random(self):
        count = self.aggregate(count=Count('id'))['count']
        random_index = randint(0, count - 1)
        return self.all()[random_index]
  • 40
    What are the benefits of model.objects.aggregate(count=Count('id'))['count'] over model.objects.all().count() – Ryan Saxe Jul 24 '14 at 18:52
  • 8
    While much better than the accepted answer, note that this approach makes two SQL queries. If the count changes in between, it might be possible to get an out of bounds error. – Nelo Mitranim Sep 12 '15 at 9:37
  • 6
    This won't work if your ids are not contiguous – Patrick Apr 4 '18 at 9:16
  • 2
    This is a wrong solution. It will not work if your ids do not start from 0. And also when ids are not contiguous. Say, the first record starts from 500 and the last one is 599 (assuming contiguity). Then the count would 54950. Surely list[54950] does not exist because your queryst's length is 100. It will throw index out of bound exception. I do not know why so many people upvoted this and this was marked as accepted answer. – sajid Jun 22 '18 at 11:43
  • 2
    @NathanTuggy. Ok my bad. Sorry – sajid Jun 25 '18 at 9:43
240

Simply use:

MyModel.objects.order_by('?').first()

It is documented in QuerySet API.

  • 65
    Please note that this approach can be very slow, as documented :) – Nicolas Dumazet Jun 8 '09 at 1:22
  • 6
    "may be expensive and slow, depending on the database backend you're using." - any experience on diffrent DB backends? (sqlite/mysql/postgres)? – kender Jun 8 '09 at 9:37
  • 4
    I haven't tested it, so this is pure speculation: why should it be slower than retrieving all items and performing randomization in Python? – muhuk Jun 8 '09 at 16:24
  • 8
    i read that it's slow in mysql, as mysql has incredibly inefficient random ordering. – Brandon Henry Nov 13 '09 at 19:31
  • 33
    Why not just random.choice(Model.objects.all())? – Jamey Mar 17 '13 at 7:13
26

The solutions with order_by('?')[:N] are extremely slow even for medium-sized tables if you use MySQL (don't know about other databases).

order_by('?')[:N] will be translated to SELECT ... FROM ... WHERE ... ORDER BY RAND() LIMIT N query.

It means that for every row in table the RAND() function will be executed, then the whole table will be sorted according to value of this function and then first N records will be returned. If your tables are small, this is fine. But in most cases this is a very slow query.

I wrote simple function that works even if id's have holes (some rows where deleted):

def get_random_item(model, max_id=None):
    if max_id is None:
        max_id = model.objects.aggregate(Max('id')).values()[0]
    min_id = math.ceil(max_id*random.random())
    return model.objects.filter(id__gte=min_id)[0]

It is faster than order_by('?') in almost all cases.

  • Yeah, but this approach does not work with querysets. – pielgrzym Jun 1 '11 at 11:37
  • 30
    Also, sadly, it's far from random. If you have a record with id 1 and another with id 100, then it'll return the second one 99% of the time. – DS. Jul 31 '11 at 21:01
10

You could create a manager on your model to do this sort of thing. To first understand what a manager is, the Painting.objects method is a manager that contains all(), filter(), get(), etc. Creating your own manager allows you to pre-filter results and have all these same methods, as well as your own custom methods, work on the results.

EDIT: I modified my code to reflect the order_by['?'] method. Note that the manager returns an unlimited number of random models. Because of this I've included a bit of usage code to show how to get just a single model.

from django.db import models

class RandomManager(models.Manager):
    def get_query_set(self):
        return super(RandomManager, self).get_query_set().order_by('?')

class Painting(models.Model):
    title = models.CharField(max_length=100)
    author = models.CharField(max_length=50)

    objects = models.Manager() # The default manager.
    randoms = RandomManager() # The random-specific manager.

Usage

random_painting = Painting.randoms.all()[0]

Lastly, you can have many managers on your models, so feel free to create a LeastViewsManager() or MostPopularManager().

  • 3
    Using get() would only work if your pks are consecutive, ie you never delete any items. Otherwise you are likely to try and get a pk that doesn't exist. Using .all()[random_index] doesn't suffer from this problem and isn't any less efficient. – Daniel Roseman Jun 7 '09 at 20:44
  • I understood that which is why my example simply replicates the question's code with a manager. It will still be up to the OP to work out his bounds checking. – Soviut Jun 7 '09 at 21:32
  • 1
    instead of using .get(id=random_index) wouldnt it be better to use .filter(id__gte=random_index)[0:1] ? First, it helps solving the problem with non-consecutive pks. Second, get_query_set should return... a QuerySet. And in your example, it does not. – Nicolas Dumazet Jun 8 '09 at 1:30
  • 2
    I wouldn't create a new manager just to house one method. I'd add "get_random" to the default manager so that you wouldn't have to go through the all()[0] hoop everytime you need the random image. Furthermore, if author were a ForeignKey to a User model, you could say user.painting_set.get_random(). – Antti Rasinen Jun 8 '09 at 5:03
  • I typically create a new manager when I want a blanket action, like getting a list of random records. I'd create a method on the default manager if i were doing a more specific task with the records i already had. – Soviut Jun 8 '09 at 15:42
10

Here's a simple solution:

from random import randint

count = Model.objects.count()
random_object = Model.objects.all()[randint(0, count - 1)] #single random object
5

The other answers are either potentially slow (using order_by('?')) or use more than one SQL query. Here's a sample solution with no ordering and just one query (assuming Postgres):

Model.objects.raw('''
    select * from {0} limit 1
    offset floor(random() * (select count(*) from {0}))
'''.format(Model._meta.db_table))[0]

Be aware that this will raise an index error if the table is empty. Write yourself a model-agnostic helper function to check for that.

  • A nice proof of concept, but this is two queries as well inside the database, what you save is one roundtrip to the database. You'd have to execute this a great many times to make writing and maintaining a raw query worth it. And if you want to guard against empty tables, you might just as well run a count() in advance and dispense with the raw query. – Endre Both Mar 11 at 9:11
2

Just a simple idea how I do it:

def _get_random_service(self, professional):
    services = Service.objects.filter(professional=professional)
    i = randint(0, services.count()-1)
    return services[i]
  • This won't work if your ids are not contiguous – Patrick Apr 4 '18 at 9:15
  • @Patrick Yes it will; [i] does not refer to row id. – Endre Both Mar 11 at 9:04
2

I Created a model Manager

models.py (example)

from django.db import models

class RandomManager(models.Manager):

  def get_random(self, items=1):
    '''
    items is integer value
    By default it returns 1 random item
    '''
    if isinstance(items, int):
        return self.model.objects.order_by('?')[:items]
    return self.all()


class Category(models.Model):
  name = models.CharField(max_length=100)

  objects = RandomManager()

  class Meta:
    default_related_name = 'categories'
    verbose_name = 'category'
    verbose_name_plural = 'categories'

And you can get random items from database for example

Category.objects.get_random(5) #  To get 5 random items 
  • Works great, I haven't tested the speed though. Do you think there will be any issues with speed? – almost a beginner Aug 10 '18 at 10:19
  • I haven't tested on large queryset – Dimitris Kougioumtzis Aug 10 '18 at 10:59
  • 3
    list(model.objects.all()) alone will nuke both RAM and CPU even on medium sized datasets. – ogurets Jan 31 at 18:44
2

I got very simple solution, make custom manager:

class RandomManager(models.Manager):
    def random(self):
        return random.choice(self.all())

and then add in model:

class Example(models.Model):
    name = models.CharField(max_length=128)
    objects = RandomManager()

Now, you can use it:

Example.objects.random()
  • from random import choice – Adam Starrh Apr 23 at 21:39
  • 1
    Please, don't use this method, if you want speed. This solution is VERY slow. I've checked. It slower than order_by('?').first() more than 60 times. – LagRange Apr 24 at 14:32
1

Just to note a (fairly common) special case, if there is a indexed auto-increment column in the table with no deletes, the optimum way to do a random select is a query like:

SELECT * FROM table WHERE id = RAND() LIMIT 1

that assumes such a column named id for table. In django you can do this by:

Painting.objects.raw('SELECT * FROM appname_painting WHERE id = RAND() LIMIT 1')

in which you must replace appname with your application name.

In General, with an id column, the order_by('?') can be done much faster with:

Paiting.objects.raw(
        'SELECT * FROM auth_user WHERE id>=RAND() * (SELECT MAX(id) FROM auth_user) LIMIT %d' 
    % needed_count)
1

This is Highly recomended Getting a random row from a relational database

Because using django orm to do such a thing like that, will makes your db server angry specially if you have big data table :|

And the solution is provide a Model Manager and write the SQL query by hand ;)

Update:

Another solution which works on any database backend even non-rel ones without writing custom ModelManager. Getting Random objects from a Queryset in Django

1

You may want to use the same approach that you'd use to sample any iterator, especially if you plan to sample multiple items to create a sample set. @MatijnPieters and @DzinX put a lot of thought into this:

def random_sampling(qs, N=1):
    """Sample any iterable (like a Django QuerySet) to retrieve N random elements

    Arguments:
      qs (iterable): Any iterable (like a Django QuerySet)
      N (int): Number of samples to retrieve at random from the iterable

    References:
      @DZinX:  https://stackoverflow.com/a/12583436/623735
      @MartinPieters: https://stackoverflow.com/a/12581484/623735
    """
    samples = []
    iterator = iter(qs)
    # Get the first `N` elements and put them in your results list to preallocate memory
    try:
        for _ in xrange(N):
            samples.append(iterator.next())
    except StopIteration:
        raise ValueError("N, the number of reuested samples, is larger than the length of the iterable.")
    random.shuffle(samples)  # Randomize your list of N objects
    # Now replace each element by a truly random sample
    for i, v in enumerate(qs, N):
        r = random.randint(0, i)
        if r < N:
            samples[r] = v  # at a decreasing rate, replace random items
    return samples
  • Matijn's and DxinX's solution is for data sets that provide no random access. For data sets that do (and SQL does with OFFSET), this is unnecessarily inefficient. – Endre Both Mar 11 at 9:22
  • @EndreBoth indeed. I just like the coding "efficiency" of using the same approach irrespective of the data source. Sometimes data sampling efficiency doesn't significantly affect the performance of a pipeline limited by other processes (whatever you're actually doing with the data, like ML training). – hobs Mar 11 at 17:50
1

One much easier approach to this involves simply filtering down to the recordset of interest and using random.sample to select as many as you want:

from myapp.models import MyModel
import random

my_queryset = MyModel.objects.filter(criteria=True)  # Returns a QuerySet
my_object = random.sample(my_queryset, 1)  # get a single random element from my_queryset
my_objects = random.sample(my_queryset, 5)  # get five random elements from my_queryset

Note that you should have some code in place to verify that my_queryset is not empty; random.sample returns ValueError: sample larger than population if the first argument contains too few elements.

  • 2
    Will this cause the whole query set to be retrieved? – perrohunter Apr 4 '17 at 17:24
  • @perrohunter It won't even work with Queryset (at least with Python 3.7 and Django 2.1); you have to convert it to a list first, which obviously retrieves the whole queryset. – Endre Both Mar 11 at 9:14
  • @EndreBoth - this was written in 2016, when neither of those existed. – eykanal Mar 11 at 15:11
  • That's why I added the version info. But if it worked in 2016, it did so by pulling the entire queryset into a list, right? – Endre Both Mar 11 at 16:26
  • @EndreBoth Correct. – eykanal Mar 11 at 16:35
1

Hi I needed to select a random record from a queryset who's length I also needed to report (ie web page produced described item and said records left)

q = Entity.objects.filter(attribute_value='this or that')
item_count = q.count()
random_item = q[random.randomint(1,item_count+1)]

took half as long(0.7s vs 1.7s) as:

item_count = q.count()
random_item = random.choice(q)

I'm guessing it avoids pulling down the whole query before selecting the random entry and made my system responsive enough for a page that is accessed repeatedly for a repetitive task where users want to see the item_count count down.

0

Method for auto-incrementing primary key with no deletes

If you have a table where the primary key is a sequential integer with no gaps, then the following method should work:

import random
max_id = MyModel.objects.last().id
random_id = random.randint(0, max_id)
random_obj = MyModel.objects.get(pk=random_id)

This method is much more efficient than other methods here that iterate through all rows of the table. While it does require two database queries, both are trivial. Furthermore, it's simple and doesn't require defining any extra classes. However, it's applicability is limited to tables with an auto-incrementing primary key where rows have never deleted, such that there are no gaps in the sequence of ids.

In the case where rows have been deleted such that are gaps, this method could still work if it is retried until an existing primary key is randomly selected.

References

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