25

I want to check that the user is authorized for certain URLs. I'm using generic views.

The docs here say the login_required can be passed as an optional arguments but I'm not sure. Something like this maybe: (r'^$', 'archive_index', link_info_dict, 'coltrane_link_archive_index', login_required=True,),

I have this and I would like to be able to use the login_required decorator within the URL. Is it possible? How can I do it?

from django.conf.urls.defaults import *

from coltrane.models import Link

link_info_dict = {
    'queryset': Link.live.all(),
    'date_field': 'pub_date',
}

urlpatterns = patterns('django.views.generic.date_based',
    (r'^$', 'archive_index', link_info_dict, 'coltrane_link_archive_index'),

    (r'^(?P<year>\d{4})/$', 'archive_year', link_info_dict, 'coltrane_link_archive_year'),

    (r'^(?P<year>\d{4})/(?P<month>\w{3})/$', 'archive_month', link_info_dict, 'coltrane_link_archive_month'),

    (r'^(?P<year>\d{4})/(?P<month>\w{3})/(?P<day>\d{2})/$', 'archive_day', link_info_dict, 'coltrane_link_archive_day'),

    (r'^(?P<year>\d{4})/(?P<month>\w{3})/(?P<day>\d{2})/(?P<slug>[-\w]+)/$', 'object_detail', link_info_dict, 'coltrane_link_detail'),

)


For example how would I protect this page here(there's no view to add the login_Required decorator to)?

(r'^$', 'django.views.generic.simple.direct_to_template', {
        'template': 'home.html'
    }, ),
1
  • Link is now dead.
    – Cœur
    Feb 23, 2020 at 14:49

5 Answers 5

34

To use decorators in urls.py you need use real functions instead of their names:

from django.contrib.auth.decorators import login_required
import django.views.generic.date_based as views

urlpatterns = patterns('',
    (r'^$', login_required(views.archive_index), link_info_dict,
            'coltrane_link_archive_index'),
    ...
7

In Django 1.11+, at least, you can do it directly as you want. For example:

# urls.py

from django.contrib.auth.decorators import login_required

urlpatterns = [
    # Home path
    path('', login_required(TemplateView.as_view(template_name='core/home.html')), name='home'),
    # Another paths
    # ...
]

In this case, each time you try to enter the homepage, you must be logged in, otherwise you will go to the login screen and then return to your homepage.

1

you can use decorate_url

http://github.com/vorujack/decorate_url

pip install decorate_url
1
  • 5
    You should probably disclose that this is your own package.
    – ggdx
    Nov 1, 2017 at 16:12
0

Those docs are for generic views, which work slightly differently than custom views. Normally login_required is used to decorate a view; if you want to use it within a urlconf then you'll need to write a lambda to wrap the view.

1
  • are you saying i can't protect those urls. i can't protect generic views?
    – darren
    Apr 20, 2011 at 9:34
0

For Django v4.1.4, In addition to @catavaran's answer, when you are using a Custom Login URL instead of django's default login, then you need to give the custom url to the login_url parameter.

urls.py

from django.contrib.auth.decorators import login_required

urlpatterns = [
    path('', login_required(TemplateView.as_view(template_name='app_name/template_name.html'),login_url='/custom_login_url/'), name='path-name'),
]

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