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The situation is pretty simple: I'm writing a multi-user blog system. The system should prevent non-owner to edit or delete a blog post. In my view I use generic view.

class BlogUpdateView(UpdateView): ...

I know I should use @method_decorator to decorate dispatch method. However, most example is just @method_decorator(login_required) or model level permission. How can apply object level permission to check whether request.user is the author of this blog post? For example, I tried to use django-authority apps, and I have a BlogPermission class in this file. and I tried to define a method in this class e.g.

def blog_edit(self, ??, ??)

what should I put into this method?

And then call this like: @method_decorator(permission_required('blog_permission.blog_edit(???)'))

What should I pass in here?

Update: After read method_decorator code, I find it can only accept function without argument. I think that's why permission_required doesn't work here. But what's the work around about this?

Update solution:

In dispatch method, I check the user permission and then return HttpResponseForbidden() if the user does not meet the permission.

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You can check your permissions in get_object method. Decorators do not look good with CBV. –  ilvar Apr 26 '12 at 5:33
    
so you mean there is no easy way to apply object level decorator to Class based generic view? @ilvar –  Xinghan Apr 26 '12 at 13:47
    
I mean it will be easier to do in get_object. To make it more DRY you can make a Mixin with that get_object and use it. –  ilvar Apr 26 '12 at 22:47
    
Hi ilvar, would you provide a example to do this? Like if I want to write a blog updateview, in get_object if I find the request.user is not blog.author, what should I return to raise a 403 error? Thank you @Daniel Roseman –  Xinghan Apr 28 '12 at 3:12

1 Answer 1

You can do it using class-based-views:

class BlogEdit(UpdateView):
    model = Blog

    def dispatch(self, request, *args, **kwargs):
        if not request.user.has_perm('blog_permission.blog_edit'):
            return HttpResponseForbidden()
        return super(BlogEdit, self).dispatch(request, *args, **kwargs)

    # OR (for object-level perms)

    def get_object(self, *args, **kwargs):
        obj = super(BlogEdit, self).get_object(*args, **kwargs)
        if not obj.user == self.request.user:
            raise Http404 # maybe you'll need to write a middleware to catch 403's same way
        return obj
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The built-in exception django.core.exceptions.PermissionDenied can be raised to show the 403 error page from get_object. You can then customize the error in the 403.html template, or override the view with handler403 in the URLconf (see docs.djangoproject.com/en/1.7/topics/http/views/…). Unfortunately you can't pass a message through the exception and the template context is not delivered the raw exception through the built-in behavior. If you want to show a special message you would need to create middleware. –  jcampbelly Mar 7 at 23:03

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