python - Django URLs TypeError: view must be a callable or a list/tuple in the case of include()

Question

升级到 Django 1.10 后，出现错误：

TypeError: view must be a callable or a list/tuple in the case of include().

我的 urls.py 如下：

from django.conf.urls import include, url

urlpatterns = [
    url(r'^$', 'myapp.views.home'),
    url(r'^contact/$', 'myapp.views.contact'),
    url(r'^login/$', 'django.contrib.auth.views.login'),
]

完整的追溯是：

Traceback (most recent call last):
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/utils/autoreload.py", line 226, in wrapper
    fn(*args, **kwargs)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/management/commands/runserver.py", line 121, in inner_run
    self.check(display_num_errors=True)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/management/base.py", line 385, in check
    include_deployment_checks=include_deployment_checks,
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/management/base.py", line 372, in _run_checks
    return checks.run_checks(**kwargs)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/checks/registry.py", line 81, in run_checks
    new_errors = check(app_configs=app_configs)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/checks/urls.py", line 14, in check_url_config
    return check_resolver(resolver)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/core/checks/urls.py", line 24, in check_resolver
    for pattern in resolver.url_patterns:
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/utils/functional.py", line 35, in __get__
    res = instance.__dict__[self.name] = self.func(instance)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/urls/resolvers.py", line 310, in url_patterns
    patterns = getattr(self.urlconf_module, "urlpatterns", self.urlconf_module)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/utils/functional.py", line 35, in __get__
    res = instance.__dict__[self.name] = self.func(instance)
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/urls/resolvers.py", line 303, in urlconf_module
    return import_module(self.urlconf_name)
  File "/System/Library/Frameworks/Python.framework/Versions/2.7/lib/python2.7/importlib/__init__.py", line 37, in import_module
    __import__(name)
  File "/Users/alasdair/dev/urlproject/urlproject/urls.py", line 28, in <module>
    url(r'^$', 'myapp.views.home'),
  File "/Users/alasdair/.virtualenvs/django110/lib/python2.7/site-packages/django/conf/urls/__init__.py", line 85, in url
    raise TypeError('view must be a callable or a list/tuple in the case of include().')
TypeError: view must be a callable or a list/tuple in the case of include().

Answer 1

Django 1.10 不再允许您'myapp.views.home'在 URL 模式中将视图指定为字符串（例如 ）。

解决方案是更新您urls.py以包含可调用的视图。这意味着您必须在urls.py. 如果您的 URL 模式没有名称，那么现在是添加名称的好时机，因为使用点分 Python 路径进行反转不再有效。

from django.conf.urls import include, url

from django.contrib.auth.views import login
from myapp.views import home, contact

urlpatterns = [
    url(r'^$', home, name='home'),
    url(r'^contact/$', contact, name='contact'),
    url(r'^login/$', login, name='login'),
]

如果有很多视图，则单独导入它们可能会很不方便。另一种方法是从您的应用程序中导入视图模块。

from django.conf.urls import include, url

from django.contrib.auth import views as auth_views
from myapp import views as myapp_views

urlpatterns = [
    url(r'^$', myapp_views.home, name='home'),
    url(r'^contact/$', myapp_views.contact, name='contact'),
    url(r'^login/$', auth_views.login, name='login'),
]

请注意，我们使用了as myapp_viewsand as auth_views，它允许我们从多个应用程序中导入 ，views.py而不会发生冲突。

有关. _ _urlpatterns

Answer 2

这个错误只是意味着它myapp.views.home不是可以调用的东西，比如函数。它实际上是一个字符串。虽然您的解决方案在 django 1.9 中有效，但它会发出警告说这将从 1.10 版本开始弃用，这正是发生的情况。@Alasdair 之前的解决方案通过 或 将必要的视图函数导入到脚本 from myapp import views as myapp_views 中 from myapp.views import home, contact

Answer 3

如果您有视图和模块的名称冲突，您也可能会收到此错误。当我在views文件夹下分发我的视图文件时出现错误，/views/view1.py, /views/view2.py并在view2.py中导入了一些名为table.py的模型，它恰好是view1.py中视图的名称。因此，将视图函数命名为有 v_table(request,id) 帮助。

Answer 4

你的代码是

urlpatterns = [
    url(r'^$', 'myapp.views.home'),
    url(r'^contact/$', 'myapp.views.contact'),
    url(r'^login/$', 'django.contrib.auth.views.login'),
]

include()在导入函数时将其更改为以下：

urlpatterns = [
    url(r'^$', views.home),
    url(r'^contact/$', views.contact),
    url(r'^login/$', views.login),
]

Answer 5

更改 register = template.Library() 以 registerr = template.Library() 解决我的问题