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The example provides a snippet for an application level view, but what if I have lots of different (and some non-application) entries in my "urls.py" file, including templates? How can I apply this login_required decorator to each of them?

(r'^foo/(?P<slug>[-\w]+)/$', 'bugs.views.bug_detail'),
(r'^$', 'django.views.generic.simple.direct_to_template', {'template':'homepage.html'}),
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4 Answers 4

up vote 15 down vote accepted

Dropped this into a middleware.py file in my project root:

from django.http import HttpResponseRedirect
from django.conf import settings
from re import compile

EXEMPT_URLS = [compile(settings.LOGIN_URL.lstrip('/'))]
if hasattr(settings, 'LOGIN_EXEMPT_URLS'):
    EXEMPT_URLS += [compile(expr) for expr in settings.LOGIN_EXEMPT_URLS]

class LoginRequiredMiddleware:
    """
    Middleware that requires a user to be authenticated to view any page other
    than LOGIN_URL. Exemptions to this requirement can optionally be specified
    in settings via a list of regular expressions in LOGIN_EXEMPT_URLS (which
    you can copy from your urls.py).

    Requires authentication middleware and template context processors to be
    loaded. You'll get an error if they aren't.
    """
    def process_request(self, request):
        assert hasattr(request, 'user'), "The Login Required middleware\
 requires authentication middleware to be installed. Edit your\
 MIDDLEWARE_CLASSES setting to insert\
 'django.contrib.auth.middlware.AuthenticationMiddleware'. If that doesn't\
 work, ensure your TEMPLATE_CONTEXT_PROCESSORS setting includes\
 'django.core.context_processors.auth'."
        if not request.user.is_authenticated():
            path = request.path_info.lstrip('/')
            if not any(m.match(path) for m in EXEMPT_URLS):
                return HttpResponseRedirect(settings.LOGIN_URL)

Then appended projectname.middleware.LoginRequiredMiddleware to my MIDDLEWARE_CLASSES in settings.py.

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3  
I think that this solution is really awesome. I've tuned it a bit to support redirect and get login URL via reverse. –  SummerBreeze Feb 28 '13 at 12:37

For those who have come by later to this, you might find that django-stronghold fits your usecase well. You whitelist any urls you want to be public, the rest are login required.

https://github.com/mgrouchy/django-stronghold

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This solution seems much more elegant than installing and maintaining your own middleware. Works excellently. –  shacker Nov 8 '14 at 21:19

Use middleware.

http://www.djangobook.com/en/2.0/chapter17/ and http://docs.djangoproject.com/en/1.2/topics/http/middleware/#topics-http-middleware

I'm assuming this didn't change a whole lot in 1.2

Middleware allows you to create a class with methods who will process every request at various times/conditions, as you define.

for example process_request(request) would fire before your view, and you can force authentication and authorization at this point.

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1  
You should elaborate. –  Byron Whitlock Jul 9 '10 at 16:25
    
I'm not that familiar with using custom middleware. Can you point out a django 1.2 compatible snippet that handles this? –  meder Jul 9 '10 at 16:26
    
I came across this snippet: djangosnippets.org/snippets/1179 Though it was posted in 2008. Can anyone skim through and see if it would be usable? –  meder Jul 9 '10 at 16:30
    
Yes, that snippet should work fine. –  sdolan Jul 9 '10 at 17:00

Here's a slightly shorter middleware.

from django.contrib.auth.decorators import login_required

class LoginRequiredMiddleware(object):
    def process_view(self, request, view_func, view_args, view_kwargs):
        if not getattr(view_func, 'login_required', True):
            return None
        return login_required(view_func)(request, *view_args, **view_kwargs)

You'll have to set "login_required" to False on each view you don't need to be logged in to see:

Function-views:

def someview(request, *args, **kwargs):
    # body of view
someview.login_required = False

Class-based views:

class SomeView(View):
    login_required = False
    # body of view

#or

class SomeView(View):
    # body of view
someview = SomeView.as_view()
someview.login_required = False

This means you'll have to do something about the login-views, but I always end up writing my own auth-backend anyway.

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