256

I'm writing a Django Middleware class that I want to execute only once at startup, to initialise some other arbritary code. I've followed the very nice solution posted by sdolan here, but the "Hello" message is output to the terminal twice. E.g.

from django.core.exceptions import MiddlewareNotUsed
from django.conf import settings

class StartupMiddleware(object):
    def __init__(self):
        print "Hello world"
        raise MiddlewareNotUsed('Startup complete')

and in my Django settings file, I've got the class included in the MIDDLEWARE_CLASSES list.

But when I run Django using runserver and request a page, I get in the terminal

Django version 1.3, using settings 'config.server'
Development server is running at http://127.0.0.1:8000/
Quit the server with CONTROL-C.
Hello world
[22/Jul/2011 15:54:36] "GET / HTTP/1.1" 200 698
Hello world
[22/Jul/2011 15:54:36] "GET /static/css/base.css HTTP/1.1" 200 0

Any ideas why "Hello world" is printed twice? Thanks.

4
  • 1
    just for curiosity, did you figured why the code in init.py gets executed twice?
    – Mutant
    Sep 17, 2012 at 22:31
  • 12
    @Mutant it only gets executed twice under runserver ... that is because runserver first loads up the apps to inspect them and then actually starts the server. Even upon autoreload of runserver the code is only exec once.
    – Pykler
    Jul 24, 2013 at 6:57
  • 4
    Wow I have been here.... so thank you again for the comment @Pykler, that is what I was wondering.
    – WesternGun
    Mar 21, 2018 at 12:10
  • @Pykler @Mutant it only gets executed twice under runserver you mean once..
    – Pycm
    Dec 30, 2023 at 18:58

11 Answers 11

353

Update: Django 1.7 now has a hook for this

file: myapp/apps.py

from django.apps import AppConfig
class MyAppConfig(AppConfig):
    name = 'myapp'
    verbose_name = "My Application"
    def ready(self):
        pass # startup code here

file: myapp/__init__.py

default_app_config = 'myapp.apps.MyAppConfig'

For Django < 1.7

The number one answer does not seem to work anymore, urls.py is loaded upon first request.

What has worked lately is to put the startup code in any one of your INSTALLED_APPS init.py e.g. myapp/__init__.py

def startup():
    pass # load a big thing

startup()

When using ./manage.py runserver ... this gets executed twice, but that is because runserver has some tricks to validate the models first etc ... normal deployments or even when runserver auto reloads, this is only executed once.

28
  • 6
    I think this gets executed for each process that loads the project. So, I can't think of why this wouldn't work perfectly under any deployment scenario. This does work for management commands. +1 Aug 29, 2013 at 16:17
  • 3
    I understand that this solution can be used to execute some arbitrary code when the server starts but is it possible to share some data that would be loaded? For example, I want to load an object that contains a huge matrix, put this matrix in a variable and use it, via a web api, in each request a user can do. Is such a thing possibe?
    – Patrick
    Jan 7, 2015 at 20:18
  • 3
    @Patrick yes you can, in your startup function can look like this gist.github.com/pykler/024334b23f18d66937f2
    – Pykler
    Jan 8, 2015 at 17:49
  • 16
    The documentation says this is not the place to do any database interaction. That makes it unsuitable for a lot of code. Where could this code go?
    – Mark
    Sep 3, 2015 at 12:40
  • 3
    EDIT: A possible hack is to check the command lines arguments any(x in sys.argv for x in ['makemigrations', 'migrate']) Oct 29, 2016 at 19:31
147

Update from Pykler's answer below: Django 1.7 now has a hook for this


Don't do it this way.

You don't want "middleware" for a one-time startup thing.

You want to execute code in the top-level urls.py. That module is imported and executed once.

urls.py

from django.confs.urls.defaults import *
from my_app import one_time_startup

urlpatterns = ...

one_time_startup()
15
  • 2
    @Andrei: Management Commands are entirely a separate problem. The idea of special one-time startup before all management commands is hard to understand. You'll have to provide something specific. Perhaps in another question.
    – S.Lott
    Feb 13, 2012 at 12:49
  • 1
    Tried printing simple text in urls.py, but there was absolutely no output. What is happening ?
    – Steve K
    Dec 21, 2012 at 5:37
  • 11
    The urls.py code is executed only at first request (guess it answers @SteveK 's question) (django 1.5)
    – lajarre
    Jul 2, 2013 at 22:20
  • 5
    This executes once for each worker, in my case, it's executed 3 times in total.
    – Raphael
    May 24, 2014 at 20:50
  • 11
    @halilpazarlama This answer is out of date -- you should be using the answer from Pykler. May 14, 2015 at 1:56
47

This question is well-answered in the blog post Entry point hook for Django projects, which will work for Django >= 1.4.

Basically, you can use <project>/wsgi.py to do that, and it will be run only once, when the server starts, but not when you run commands or import a particular module.

import os
os.environ.setdefault("DJANGO_SETTINGS_MODULE", "{{ project_name }}.settings")

# Run startup code!
....

from django.core.wsgi import get_wsgi_application
application = get_wsgi_application()
5
  • Again adding a comment to confirm that this method will execute the code only once. No need for any locking mechanisms.
    – ATOzTOA
    Jan 24, 2014 at 10:41
  • Scripts have been added here seem not be executed when the test framework starts
    – Lewis Z
    Nov 18, 2015 at 7:48
  • This answer ended a two and a half day search for solutions that simply didn't work.
    – NMunro
    Sep 7, 2016 at 13:25
  • 5
    Note that this executes when the first request is made to the website, not when you start Apache.
    – user984003
    Apr 18, 2018 at 23:23
  • Just in case. This solution will not work when running the dev server via manage.py runserver.
    – konstunn
    Feb 9 at 14:11
32

As suggested by @Pykler, in Django 1.7+ you should use the hook explained in his answer, but if you want that your function is called only when run server is called (and not when making migrations, migrate, shell, etc. are called), and you want to avoid AppRegistryNotReady exceptions you have to do as follows:

file: myapp/apps.py

import sys
from django.apps import AppConfig

class MyAppConfig(AppConfig):
    name = 'my_app'

    def ready(self):
        if 'runserver' not in sys.argv:
            return True
        # you must import your modules here 
        # to avoid AppRegistryNotReady exception 
        from .models import MyModel 
        # startup code here
3
  • 14
    does this run in production mode? AFAIK in prod. mode there is no "runserver" started.
    – nerdoc
    Jun 23, 2018 at 21:21
  • Thanks for this! I have Advanced Python Scheduler in my app and I didn't want to run the scheduler when running manage.py commands.
    – lukik
    Sep 7, 2019 at 0:46
  • Do you need to run ready() at some point ?
    – Florent
    May 5, 2021 at 9:30
22

If it helps someone, in addition to pykler's answer, "--noreload" option prevents runserver from executing command on startup twice:

python manage.py runserver --noreload

But that command won't reload runserver after other code's changes as well.

4
  • 1
    Thanks this solved my problem! I hope when I deploy this doesn't happen
    – Gabo
    Sep 15, 2016 at 12:14
  • 3
    As an alternative, you can check the content of os.environ.get('RUN_MAIN') to only execute your code once in the main process (see stackoverflow.com/a/28504072)
    – bdoering
    Jan 30, 2017 at 16:17
  • Yup, this plus pykler's answer worked for me also, as it prevented the multiple ready(self) calls while still being able to start them only once. Cheers!
    – DarkCygnus
    Sep 6, 2018 at 19:04
  • Django's runserver by default starts two processes with distinct (different) pid numbers. --noreload makes it start one process. May 6, 2020 at 14:10
17

Standard solution

With Django 3.1+ you can write this code to execute only once a method at startup. The difference from the other questions is that the main starting process is checked (runserver by default starts 2 processes, one as an observer for quick code reload):

import os 
from django.apps import AppConfig

class MyAppConfig(AppConfig):
    name = 'app_name'

    def ready(self):
        if os.environ.get('RUN_MAIN'):
            print("STARTUP AND EXECUTE HERE ONCE.")
            # call here your code

Another solution is avoiding the environ check but call --noreload to force only one process.

Alternative method

The first question to answer is why we need to execute code once: usually we need to initialize some services, data in the database or something one-shot. The 90% of the time it is some database initialization or job queue.

The approach to use the AppConfig.ready() method is not reliable, not always reproducible in production and it cannot guarantee to be executed exactly once (but at least once that is not the same). To have something quite predictable and executed exactly one time the best approach is developing a Django BaseCommand and call it from a startup script.

So for example, we can code in your "myapp", in the file "app/management/commands/init_tasks.py":

from django.core.management.base import BaseCommand
from project.apps.myapp.tasks import scheduler
from project import logger, initialize_database_data

class Command(BaseCommand):
    help = "Init scheduler or do some staff in the database."

    def handle(self, *args, **options):
        scheduler.reload_jobs()
        initialize_database_data()
        logger.info("Inited")

And finally we can have a start script "Start.bat" (in the example a windows batch) to setup the full application start:

start /b python manage.py qcluster
start /b python manage.py runserver 0.0.0.0:8000
start /b python manage.py init_tasks
3
  • 2
    The BaseCommand answer works best for me! And I think it should be the accepted answer. Aug 15, 2022 at 12:44
  • 2
    excellent!!! I think it should be the accepted answer, too.
    – mahyar
    Aug 15, 2022 at 12:58
  • 1
    Works fine as well on Linux. Just make sure to put management/commands/init_tasks.py inside an app, not the base package.
    – Onyr
    Sep 3, 2022 at 8:32
14

Note that you cannot reliability connect to the database or interact with models inside the AppConfig.ready function (see the warning in the docs).

If you need to interact with the database in your start-up code, one possibility is to use the connection_created signal to execute initialization code upon connection to the database.

from django.dispatch import receiver
from django.db.backends.signals import connection_created

@receiver(connection_created)
def my_receiver(connection, **kwargs):
    with connection.cursor() as cursor:
        # do something to the database

Obviously, this solution is for running code once per database connection, not once per project start. So you'll want a sensible value for the CONN_MAX_AGE setting so you aren't re-running the initialization code on every request. Also note that the development server ignores CONN_MAX_AGE, so you WILL run the code once per request in development.

99% of the time this is a bad idea - database initialization code should go in migrations - but there are some use cases where you can't avoid late initialization and the caveats above are acceptable.

1
  • 5
    This is a good solution if you need to access the database in your startup code. A simple method to get it to run only once is to have the my_receiver function disconnect itself from the connection_created signal, specifically, add the following to the my_receiver function: connection_created.disconnect(my_receiver).
    – alan
    Jan 9, 2018 at 19:50
2

if you want print "hello world" once time when you run server, put print ("hello world") out of class StartupMiddleware

from django.core.exceptions import MiddlewareNotUsed
from django.conf import settings

class StartupMiddleware(object):
    def __init__(self):
        #print "Hello world"
        raise MiddlewareNotUsed('Startup complete')

print "Hello world"
1
  • 4
    Hi Oscar! On SO, we prefer that answers include an explanation in English, and not just code. Could you please give a brief explanation of how/why your code fixes the problem? Mar 2, 2018 at 20:03
0

In my case, I use Django to host a site, and using Heroku. I use 1 dyno (just like 1 container) at Heroku, and this dyno creates two workers. I want to run a discord bot on it. I tried all methods on this page and all of them are invalid.

Because it is a deployment, so it should not use manage.py. Instead, it uses gunicorn, which I don't know how to add --noreload parameter. Each worker runs wsgi.py once, so every code will be run twice. And the local env of two workers are the same.

But I notice one thing, every time Heroku deploys, it uses the same pid worker. So I just

if not sys.argv[1] in ["makemigrations", "migrate"]: # Prevent execute in some manage command
    if os.getpid() == 1: # You should check which pid Heroku will use and choose one.
        code_I_want_excute_once_only()

I'm not sure if the pid will change in the future, hope it will be the same forever. If you have a better method to check which worker is it, please tell me.

0

I used the accepted solution from here which checks if it was run as a server, and not when executing other managy.py commands such as migrate

apps.py:

from .tasks import tasks

class myAppConfig(AppConfig):
    ...

    def ready(self, *args, **kwargs):
        is_manage_py = any(arg.casefold().endswith("manage.py") for arg in sys.argv)
        is_runserver = any(arg.casefold() == "runserver" for arg in sys.argv)

        if (is_manage_py and is_runserver) or (not is_manage_py):
            tasks.is_running_as_server = True

And since that will still get executed twice when in development mode, without using the parameter --noreload, I added a flag to be triggered when it is running as a server and put my start up code in urls.py which is only called once.

tasks.py:

class tasks():
    is_running_as_server = False

    def runtask(msg):
        print(msg)

urls.py:

from . import tasks

task1 = tasks.tasks()

if task1.is_running_as_server:
    task1.runtask('This should print once and only when running as a server')

So to summarize, I am utilizing the read() function in AppConfig to read the arguments and know how the code was executed. But since in the development mode the ready() function is run twice, one for the server and one for the reloading of the server when the code changes, while urls.py is only executed once for the server. So in my solution i combined the two to run my task once and only when the code is executed as a server.

0

For those looking to only run their code once on startup in a production environment using gunicorn, you can make use of the the --preload command given by gunicorn.

By default Django uses multiple workers for any startup code, but by passing the --preload command Django will only run the startup command in the parent worker.

This is a good post explaining how to add the --preload command. Then just add your code to run on startup under the ready function like belo

from django.apps import AppConfig

class MyAppConfig(AppConfig):
    name = 'app_name'

    def ready(self):
       code_to_run()

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