问题
I have the following method:
def _attempt(actor):
if actor.__class__ != User:
raise TypeError
Which is called from a view:
self.object.attempt(self.request.user)
As you can see, the _attempt method expects actor to be type django.contrib.auth.models.User, however the object appears to be of type django.utils.functional.SimpleLazyObject. Why is this so? And more importantly, how can I convert the LazyObject (which apparently is a kind of wrapper for a User object) into a User object?
More info on Request.user is available here: https://docs.djangoproject.com/en/dev/ref/request-response/#django.http.HttpRequest.user This documentation seems to indicate the request.user should be a User object...
======Post-edit=====
I've got the following method now:
def _attempt(obj, action, actor, msg):
actor.is_authenticated()
if isinstance(actor, LazyObject):
print type(actor)
I'm passing a user, however the if condition is still true, actor is still a LazyObject. Why is this so?
回答1:
See my answer on a similar question.
Django lazy loads request.user so that it can be either User or AnonymousUser depending on the authentication state. It only "wakes up" and returns the appropriate class when an attribute is accessed on it. Unfortunately, __class__ doesn't count because that's a primitive class attribute. There's occasions where you might need to know that this is actually a SimpleLazyObject type, and therefore it would be wrong to proxy it on to User or AnonymousUser.
Long and short, you simply can't do this comparison as you have it. But, what are you really trying to achieve here? If you're trying to check if it's a User or AnonymousUser, there's request.user.is_authenticated() for that, for example.
As a general rule though, you shouldn't abuse duck typing. A parameter should always be a particularly type or subtype (User or UserSubClass), even though it doesn't have to be. Otherwise, you end up with confusing and brittle code.
回答2:
This should do it:
# handle django 1.4 pickling bug
if hasattr(user, '_wrapped') and hasattr(user, '_setup'):
if user._wrapped.__class__ == object:
user._setup()
user = user._wrapped
I had to write this so I could add a user to the session dictionary. (SimpleLazyObjects are not picklable!)
回答3:
user= request.user._wrapped if hasattr(request.user,'_wrapped') else request.user
Then you use user instead of request.user.
This is similar to UsAaR33's answer, but a one-liner is nicer for converting the object.
回答4:
For anyone wanting to write a failing "small" unittest for your code, you can generate a wrapped User and stuff it inside a request.
from django.contrib.auth import get_user_model
from django.test import RequestFactory
from django.utils.functional import SimpleLazyObject
user = get_user_model().objects.create_user(
username='jacob',
email='jacob@…',
password='top_secret',
)
factory = RequestFactory()
request = factory.get('/')
request.user = SimpleLazyObject(lambda: user)
See:
https://github.com/django/django/blob/master/tests/utils_tests/test_lazyobject.py for current tests on the Lazy Objects.
https://docs.djangoproject.com/en/dev/topics/testing/advanced/#django.test.RequestFactory for latest info on the
RequestFactory.
回答5:
This might be helpful to others and a bit cleaner.
The python method isinstance(instance, class) returns if the SimpleLazyObject's contained instance is of the provided class.
if isinstance(request.user, User):
user = request.user
来源:https://stackoverflow.com/questions/11314905/request-user-returns-a-simplelazyobject-how-do-i-wake-it