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I have a lot of objects to save in database, and so I want to create Model instances with that.

With django, I can create all the models instances, with MyModel(data), and then I want to save them all.

Currently, I have something like that:

for item in items:
    object = MyModel(name=item.name)
    object.save()

I'm wondering if I can save a list of objects directly, eg:

objects = []
for item in items:
    objects.append(MyModel(name=item.name))
objects.save_all()

To save all the objects in one transaction. any idea to do that ? Thanks !

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It seems the ball is rolling on implementing a fix for this code.djangoproject.com/ticket/19527 –  DanH Jun 7 '13 at 6:55

7 Answers 7

up vote 24 down vote accepted

as of the django development version 1.4, there exists bulk_create as an object manager method which takes as input an array of objects created using the class constructor. check out django docs

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5  
Django's docs for bulk_create: docs.djangoproject.com/en/dev/ref/models/querysets/#bulk-create –  funkotron Jul 16 '12 at 15:37

worked for me to use manual transaction handling for the loop(postgres 9.1):

from django.db import transaction
with transaction.commit_on_success():
    for item in items:
        MyModel.objects.create(name=item.name)

in fact it's not the same, as 'native' database bulk insert, but it allows you to avoid/descrease transport/orms operations/sql query analyse costs

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Using create will cause one query per new item. If you want to reduce the number of INSERT queries, you'll need to use something else.

I've had some success using the Bulk Insert snippet, even though the snippet is quite old. Perhaps there are some changes required to get it working again.

http://djangosnippets.org/snippets/446/

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for a single line implementation, you can use lambda...

lambda x:MyModel.objects.get_or_create(name=x), items

Here, lambda matches each item in items list to x and create a Database record...

Lambda Documentation

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You probably want to mention that the lambda has to be map ped over items: map(lambda name: MyModel.objects.get_or_create(name = name), items) –  Manoj Govindan Aug 31 '10 at 16:24
    
Ja, thats another way i try to say (: –  FallenAngel Sep 1 '10 at 6:43

Check out this blog post on the bulkops module.

On my django 1.3 app, I have experienced significant speedup.

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Here is how to bulk-create entities from column-separated file, leaving aside all unquoting and un-escaping routines:

SomeModel(Model):
    @classmethod
    def from_file(model, file_obj, headers, delimiter):
        model.objects.bulk_create([
            model(**dict(zip(headers, line.split(delimiter))))
            for line in file_obj],
            batch_size=None)
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The easiest way is to use the create Manager method, which creates and saves the object in a single step.

for item in items:
    MyModel.objects.create(name=item.name)
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+1. If name is unique and duplicate inputs are possible then it would be a good idea to use get_or_create. –  Manoj Govindan Aug 31 '10 at 11:53
8  
How does this answer the question? Model.objects.create is equivalent to object = MoModel(..) object.save(). And this does not do it in one transaction... –  automagic Jan 31 '12 at 19:17

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