40

I'm trying to do cache_page with class based views (TemplateView) and i'm not able to. I followed instructions here:

Django--URL Caching Failing for Class Based Views

as well as here:

https://github.com/msgre/hazard/blob/master/hazard/urls.py

But I get this error:

cache_page has a single mandatory positional argument: timeout

I read the code for cache_page and it has the following:

if len(args) != 1 or callable(args[0]):
    raise TypeError("cache_page has a single mandatory positional argument: timeout")
cache_timeout = args[0]

which means it wont allow more than 1 argument. Is there any other way to get cache_page to work?? I have been digging into this for sometime...

It seems like the previous solutions wont work any longer

1
  • If you don't append your urls.py we wont be able to help...
    – petkostas
    Commented Jan 22, 2014 at 20:58

9 Answers 9

64

According to the caching docs, the correct way to cache a CBV in the URLs is:

from django.views.decorators.cache import cache_page

url(r'^my_url/?$', cache_page(60*60)(MyView.as_view())),

Note that the answer you linked to is out of date. The old way of using the decorator has been removed (changeset).

5
  • 26
    It doesn't feel right hiding the caching in the urls.py, but well. Commented Nov 9, 2015 at 21:01
  • 1
    @J.C.Leitão in this answer, I was showing the correct way to cache a CBV in the urls, because the linked answer was out of date at that time. You don't have to do the caching in urls.py if you don't want to. You could override the dispatch method of your view if you prefer (you might find method_decorator useful).
    – Alasdair
    Commented Nov 9, 2015 at 22:38
  • 2
    @JorgeLeitão - Great solution, but I agree this does not "feel" right. Any updates on this in 2019 would be appreciated! Any thoughts Alasdair? Commented Mar 7, 2019 at 13:47
  • 1
    @ScottSkiles you can use method_decorator as I suggested before. You don't need to override dispatch to use it any more, see Dayson's answer. You might be able to find or write a mixin that works (I see madjardi has one in their answer), but I haven't used any so don't have any recommendations.
    – Alasdair
    Commented Mar 7, 2019 at 14:08
  • 1
    Re: putting the cache decorator in urls.py feels weird, but the reason is provided in the Django docs: This approach couples your view to the cache system, which is not ideal for several reasons. For instance, you might want to reuse the view functions on another, cache-less site, or you might want to distribute the views to people who might want to use them without being cached.
    – pspahn
    Commented Mar 25, 2022 at 21:27
36

You can simply decorate the class itself instead of overriding the dispatch method or using a mixin.

For example

from django.views.decorators.cache import cache_page
from django.utils.decorators import method_decorator

@method_decorator(cache_page(60 * 5), name='dispatch')
class ListView(ListView):
...

Django docs on decorating a method within a class based view.

2
  • How do you test and invalidate cache page? I am having issues when testing it manually. It still serves cache from disk even though my redis keys are empty. Commented Sep 24, 2021 at 2:54
  • 2
    Be careful not to decorate the dispatch() method with cache_page() if using LoginRequiredMixin. If a logged-in user populates the cache, the page will become publicly available.
    – tmarice
    Commented May 11, 2023 at 8:04
32

yet another good example CacheMixin from cyberdelia github

class CacheMixin(object):
    cache_timeout = 60

    def get_cache_timeout(self):
        return self.cache_timeout

    def dispatch(self, *args, **kwargs):
        return cache_page(self.get_cache_timeout())(super(CacheMixin, self).dispatch)(*args, **kwargs)

usecase:

from django.views.generic.detail import DetailView


class ArticleView(CacheMixin, DetailView):
    cache_timeout = 90
    template_name = "article_detail.html"
    queryset = Article.objects.articles()
    context_object_name = "article"
1
  • Brilliant! Feels much better doing this that wrapping the url in a function
    – Brobin
    Commented Jan 19, 2018 at 17:35
13

You can add it as a class decorator and even add multiple using a list:

@method_decorator([vary_on_cookie, cache_page(900)], name='dispatch')
class SomeClass(View):
   ...
3
  • Can we set infinite ttl for cache_page? Commented Jan 3, 2022 at 11:29
  • 1
    @MasOOd.KamYab there is no such way, but you probably never wanna cache something for longer than 1 year Commented Jan 3, 2022 at 11:31
  • I know what you mean, but I wanna cache the response for anytime that model has changed so It must be longer than 1 year Commented Jan 3, 2022 at 12:03
3

I created this little mixin generator to do the caching in the views file, instead of in the URL conf:

def CachedView(cache_time=60 * 60):
    """
    Mixing generator for caching class-based views.

    Example usage:

    class MyView(CachedView(60), TemplateView):
        ....

    :param cache_time: time to cache the page, in seconds
    :return: a mixin for caching a view for a particular number of seconds
    """
    class CacheMixin(object):
        @classmethod
        def as_view(cls, **initkwargs):
            return cache_page(cache_time)(
                super(CacheMixin, cls).as_view(**initkwargs)
            )
    return CacheMixin
3

Yet another answer, we found this to be simplest and is specific to template views.

class CachedTemplateView(TemplateView):
    @classonlymethod
    def as_view(cls, **initkwargs): #@NoSelf
        return cache_page(15 * 60)(super(CachedTemplateView, cls).as_view(**initkwargs))
3

Would like to add this: If you need to use multiple decorators for cache like vary_on_headers and cache_page together, here is one way I did:

class CacheHeaderMixin(object):
    cache_timeout = int(config('CACHE_TIMEOUT', default=300))
    # cache_timeout = 60 * 5

    def get_cache_timeout(self):
       return self.cache_timeout

    def dispatch(self, *args, **kwargs):
       return vary_on_headers('Authorization')(cache_page(self.get_cache_timeout())(super(CacheHeaderMixin, self).dispatch))(*args, **kwargs)

This way cache is stored and it varies for different Authorization header (JWT). You may use like this for a class based view.

class UserListAPIView(CacheHeaderMixin, ListAPIView):
    serializer_class = UserSerializer
    def get_queryset(self):
        return CustomUser.objects.all()
1
  • needs some indent formatting. but great answer
    – Hammad
    Commented Mar 14, 2022 at 5:50
2

I didn't found a good cache solution for class based views and created my own: https://gist.github.com/svetlyak40wt/11126018

It is a mixin for a class. Add it before the main base class and implement method get_cache_params like that:

def get_cache_params(self, *args, **kwargs):
   return ('some-prefix-{username}'.format(
       username=self.request.user.username),
            3600)
0

Here's my variation of the CachedView() mixin - I don't want to cache the view if the user is authenticated, because their view of pages will be unique to them (e.g. include their username, log-out link, etc).

class CacheMixin(object):
    """
    Add this mixin to a view to cache it.

    Disables caching for logged-in users.
    """
    cache_timeout = 60 * 5 # seconds

    def get_cache_timeout(self):
        return self.cache_timeout

    def dispatch(self, *args, **kwargs):
        if hasattr(self.request, 'user') and self.request.user.is_authenticated:
            # Logged-in, return the page without caching.
            return super().dispatch(*args, **kwargs)
        else:
            # Unauthenticated user; use caching.
            return cache_page(self.get_cache_timeout())(super().dispatch)(*args, **kwargs)
4
  • Wondering how you got the request.user working in this case -- no matter what I do the CacheMixin will always return an AnonymousUser whileas the underlying (Model)Viewset will in fact return the actual user... What's the magic here?
    – Leguam
    Commented Sep 17, 2020 at 21:23
  • @Liam If I do print(self.request.user) as the first line in dispatch() then I see AnonymousUser if I'm not logged in and phil (my username) if I'm logged in. Do you see something else, or am I misunderstanding the problem? Commented Sep 18, 2020 at 11:21
  • The print(self.request.user) keeps printing AnonymousUser for me, even when logged in. It feels like dispatch() is called before the authentication happens behind the screens, but then you should have the problem as well.. Gist for reference
    – Leguam
    Commented Sep 19, 2020 at 14:22
  • Strange. I'm using my example code above with a pretty new install of Django that hasn't had much done to it, and if I log in and then view a page, that debug line will print my username. I'm stumped I'm afraid. Commented Sep 19, 2020 at 19:14

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