How do I get two distinct random records using Django? I've seen questions about how to get one but I need to get two random records and they must differ.
asked Nov 13, 2009 at 19:27
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7 Answers
The order_by('?')[:2] solution suggested by other answers is actually an extraordinarily bad thing to do for tables that have large numbers of rows. It results in an ORDER BY RAND() SQL query. As an example, here's how mysql handles that (the situation is not much different for other databases). Imagine your table has one billion rows:
- To accomplish
ORDER BY RAND(), it needs aRAND()column to sort on. - To do that, it needs a new table (the existing table has no such column).
- To do that, mysql creates a new, temporary table with the new columns and copies the existing ONE BILLION ROWS OF DATA into it.
- As it does so, it does as you asked, and runs rand() for every row to fill in that value. Yes, you've instructed mysql to GENERATE ONE BILLION RANDOM NUMBERS. That takes a while. :)
- A few hours/days later, when it's done it now has to sort it. Yes, you've instructed mysql to SORT THIS ONE BILLION ROW, WORST-CASE-ORDERED TABLE (worst-case because the sort key is random).
- A few days/weeks later, when that's done, it faithfully grabs the two measly rows you actually needed and returns them for you. Nice job. ;)
Note: just for a little extra gravy, be aware that mysql will initially try to create that temp table in RAM. When that's exhausted, it puts everything on hold to copy the whole thing to disk, so you get that extra knife-twist of an I/O bottleneck for nearly the entire process.
Doubters should look at the generated query to confirm that it's ORDER BY RAND() then Google for "order by rand()" (with the quotes).
A much better solution is to trade that one really expensive query for three cheap ones (limit/offset instead of ORDER BY RAND()):
import random
last = MyModel.objects.count() - 1
index1 = random.randint(0, last)
# Here's one simple way to keep even distribution for
# index2 while still gauranteeing not to match index1.
index2 = random.randint(0, last - 1)
if index2 == index1: index2 = last
# This syntax will generate "OFFSET=indexN LIMIT=1" queries
# so each returns a single record with no extraneous data.
MyObj1 = MyModel.objects.all()[index1]
MyObj2 = MyModel.objects.all()[index2]
answered Jun 19, 2011 at 23:03
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5+1 very nice explanation and a great example! Bear in mind on most storage engines (anything but MySQL MyISAM?) it has to traverse the entire dataset to fetch the table's
countso this can be fairly expensive too. Getting random records is a fairly expensive thing to do, generally. Jun 20, 2011 at 10:21 -
2Yeah, I'm trying to fetch 1000 random records. This method is brutal. Untenable really.– mlissnerSep 1, 2011 at 23:15
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why not try to get all mymodel objects and use len(), like obj = MyModel.objects.all() index = randint(0,len(obj)-1) Apr 8, 2013 at 2:05
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1@paynestrike Sorry if you meant that as a joke - just in case: the larger the table, the worse the idea of fetching all of the objects at once. You don't really want to instantiate a billion objects so that you can select two random ones. May 14, 2014 at 1:05
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2@Manganeez, I meant the order_by('?') was untenable, not the solution here. Sorry to be unclear, my bad.– mlissnerMay 14, 2014 at 4:33
If you specify the random operator in the ORM I'm pretty sure it will give you two distinct random results won't it?
MyModel.objects.order_by('?')[:2] # 2 random results.
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Yes this works. I was adding .get() at the end which was causing the error. Nov 13, 2009 at 20:32
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6This can have performance issues. See Manganeez's answer for details Dec 29, 2011 at 9:29
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For the future readers.
Get the the list of ids of all records:
my_ids = MyModel.objects.values_list('id', flat=True)
my_ids = list(my_ids)
Then pick n random ids from all of the above ids:
n = 2
rand_ids = random.sample(my_ids, n)
And get records for these ids:
random_records = MyModel.objects.filter(id__in=rand_ids)
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2Thanks, this solution worked for me. Just a note though, I had to do
my_ids = list(my_ids), otherwise I got aTypeErrorfromrandom.sample. I also implemented a way to handlemy_idshaving fewer records than my sample size, by doingsample_size = min(len(my_ids), 10).– JordanJun 1, 2017 at 1:18 -
This can actually be pretty expensive in data transfer and memory usage. It returns the entire list of all of the IDs from the table just so it can select 2 (or n). That can get prohibitive if your table is large. Jan 23, 2019 at 3:58
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I think it's not a way to go. As you pull the records again the django by default will order it again with the queryset.– rootDec 28, 2019 at 14:58
Object.objects.order_by('?')[:2]
This would return two random-ordered records. You can add
distinct()
if there are records with the same value in your dataset.
answered Nov 13, 2009 at 19:31
About sampling n random values from a sequence, the random lib could be used,
random.Random().sample(range(0,last),2)
will fetch 2 random samples from among the sequence elements, 0 to last-1
from django.db import models
from random import randint
from django.db.models.aggregates import Count
class ProductManager(models.Manager):
def random(self, count=5):
index = randint(0, self.aggregate(count=Count('id'))['count'] - count)
return self.all()[index:index + count]You can get different number of objects.
class ModelName(models.Model):
# Define model fields etc
@classmethod
def get_random(cls, n=2):
"""Returns a number of random objects. Pass number when calling"""
import random
n = int(n) # Number of objects to return
last = cls.objects.count() - 1
selection = random.sample(range(0, last), n)
selected_objects = []
for each in selection:
selected_objects.append(cls.objects.all()[each])
return selected_objects
