7

I am learning to write custom management commands in Django. I would like to write a command which would take a given URL as a parameter. Something like:

python manage.py command http://example.com

I've read a documentation, but it is not clear to me how to do this. But I can write a command saying 'Hello World!';)

20

try this:

create a file under yourapp/management/commands/yourcommand.py with the following content:

from django.core.management.base import BaseCommand

class Command(BaseCommand):
    help = 'A description of your command'

    def add_arguments(self, parser):
        parser.add_argument(
            '--url', dest='url', required=True,
            help='the url to process',
        )

    def handle(self, *args, **options):
        url = options['url']
        # process the url

then you can call your command with

python manage.py yourcommand --url http://example.com

and either:

python manage.py --help

or

python manage.py yourcommand --help

will show the description of your command and the argument.

if you don't want to name the argument (the --url part), like in your example, just read the url('s) form args:

def handle(self, *args, **kwargs):
    for url in args:
        # process the url

hope this helps.

  • Good example. But the question only deals with one URL. So drop the '--' in front of add_argument and it'll work magically (well, thanks to argparse). – Melvyn Jun 22 '17 at 14:03
  • Thanks! This helps a lot! But I don't understand the last part (without --url) - what should be after: for url in args: – Alek SZ Jun 22 '17 at 14:11
  • @AlekSZ, that is up to you, there you process the URL given as argument. – alfonso.kim Jun 22 '17 at 14:13
  • ok, thanks again!:) – Alek SZ Jun 22 '17 at 14:14
  • 1
    perfectly explained – cwhisperer Jun 4 '18 at 8:21

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