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I am trying to limit access to pages using 2 user levels. Superuser and admin. Super user is a regular Django user with 'is_superuser' assigned. Admin user is also a regular user with only the 'is_staff' permission assigned.

The problem is that when i use this decorator for an admin user, it doesn't pass the test:

@permission_required('is_staff')
def my_view(....)

@permission_required('is_staff') returns false for anonymous users. (correct)
@permission_required('is_superuser') only returns true for superusers (correct)
@permission_required('is_staff') returns FALSE for users with the 'is_staff' perm assigned. (wrong).

Any thoughts?

1
  • I should note i am using Django 1.3 with python 2.6.1 – Dim Apr 29 '11 at 14:12
114

is_staff isn't a permission so instead of permission_required you could use:

@user_passes_test(lambda u: u.is_staff)

or

from django.contrib.admin.views.decorators import staff_member_required

@staff_member_required
8
  • 2
    i added another option which is more intuitive (staff_member_required). – arie Apr 29 '11 at 14:24
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    @permission_required('is_superuser') returns True for superusers because @permission_required always returns True for superusers regardless of whether that permission exists or not (which it does not in this case). This is assuming you are using the default authentication backend. – Mark Lavin Apr 29 '11 at 14:29
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    The build-in decorator "staff_member_required" is convinient, but I would use it with care, as it seems not to be officially documented. – bjunix Oct 31 '13 at 15:17
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    @bjunix I'd say staff_member_required is safe to use now by your standards. I found it via a "See Also" block in the "Using the Django authentication system" page of the manual. – ssokolow May 24 '16 at 20:27
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    @ssokolow Yes, you are right, the staff_member_required decorator is documented by now: docs.djangoproject.com/en/1.9/ref/contrib/admin/… – bjunix May 31 '16 at 9:14
10

for Class Based Views you can add permission_required('is_staff') to the urls.py:

from django.contrib.auth.decorators import permission_required

url(r'^your-url$', permission_required('is_staff')(YourView.as_view()), name='my-view'),
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  • I didn't try, but I wonder if 'is_staff' works as expected here. – Uwe Kleine-König Feb 8 at 21:07
8

For class-based views, the UserPassesTestMixin is convenient, e.g.

class ImportFilePostView(LoginRequiredMixin, UserPassesTestMixin):
  def test_func(self):
    return self.request.user.is_staff
  ...
2
  • 4
    Lol just came across my own answer only a few days later ... early signs of alzheimer :D – Shadi Apr 23 '18 at 5:49
  • 3
    Lol just came across it again :/ – Shadi Sep 30 '18 at 4:52
0

A variant of @arie 's answer without lambda which might be a tad faster (but I didn't check):

import operator
from django.contrib.auth.decorators import user_passes_test

@user_passes_test(operator.attrgetter('is_staff'))
def my_view(....)

Having said that, I think the better approach is to create a Permission for your view and use it with the permission_required decorator.

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