41

I am trying to use class based views, and get a strange error. The way I'm using the view seems to be the normal way:

ingredients/models.py:

from django.db import models
from django.utils import timezone


class Ingredient(models.Model):
    name        = models.CharField(max_length=255)
    description = models.TextField()

    def get_prices():
        purchases   = self.purchase_set.all()
        prices      = [purchase.price for purchase in purchases]

ingredients/views.py:

from django.shortcuts           import render, render_to_response, redirect
from django.http                import HttpResponse, HttpResponseRedirect
from django.views.generic.edit  import CreateView
from .models                    import Ingredient, Purchase

def IngredientCreateView(CreateView):
    model = Ingredient
    fields = ['all']

ingredients/urls.py:

from django.conf.urls import patterns, include, url

from ingredients.views import IngredientCreateView

urlpatterns = patterns('',            
    url(r'^new_ingredient$',          IngredientCreateView.as_view(),             name='new-ingredient'),
)

I get

AttributeError at /ingredients/new_ingredient
'function' object has no attribute 'as_view'

I am on django 1.8.5. Why won't this view work? Thank you

1
  • In my case I was giving same name to viewset and model. Giving them different name solved my problem
    – Zohab Ali
    Nov 8, 2018 at 13:09

6 Answers 6

51

IngredientCreateView should be a class. So your views.py replace:

def IngredientCreateView(CreateView):

with:

class IngredientCreateView(CreateView):
2
  • 1
    In my case I was giving same name to viewset and model. Giving them different name solved my problem
    – Zohab Ali
    Nov 8, 2018 at 13:09
  • I had been staring at the files so long I didn't even see that. 👍🏼
    – J-a-n-u-s
    Jun 10, 2019 at 18:56
46

In my case, the problem was that I tried to use a @decorator on the class-based view as if it was a function-based view, instead of @decorating the class correctly.

EDIT: From the linked page, here is a way to apply @login_required to a class-based view:

from django.contrib.auth.decorators import login_required
from django.utils.decorators import method_decorator

@method_decorator(login_required, name='dispatch')
class ProtectedView(TemplateView):
4
  • Thank you I actually made the mistake of @csrf_exept decorator and hence it was failing
    – Aman Madan
    Sep 20, 2020 at 19:43
  • can i ask you please what is name='dispatch' ? what do you mean
    – Kok Hyvv
    Apr 12, 2021 at 12:31
  • @KokHyvv When you decorate the class, you're actually decorating a function within the class, in this case the 'dispatch' function which runs the view. Since the dispatch function is inherited, its name only appears here in the decorator.
    – krubo
    Apr 12, 2021 at 22:01
  • aha okay i understand you thanks for explain
    – Kok Hyvv
    Apr 13, 2021 at 1:02
9

IngredientCreateView is a function, not a class.

The following line

def IngredientCreateView(CreateView):

should be replace with

class IngredientCreateView(CreateView):
1
  • 1
    idk whose was first, but thank you. old habits die hard, gotta get used to class views :)
    – codyc4321
    Dec 11, 2015 at 15:47
3
def Some_def_View(CreateView):

#should be replaced with

class SomeClassView(CreateView)
1

In addition to what is already said here, Check the file name and class name if it is same then you might have to import the class properly.

File name /api/A.py

class A:
//some methods

In your main class

//App main class
from api.A import A
1

I faced the same problem but this solution worked for me..

in views.py file in viewclass you can use viewsets instead of CreateView

            from rest_framework import viewsets
            class YourClassView(viewsets.ModelViewSet):

in urls.py file you can use this routing pattern

          from django.conf.urls import url
          from rest_framework import routers

          router = routers.DefaultRouter()
          router.register('books',YourClassView)

          urlpatterns = [
               path('', include(router.urls)),
               path('admin/', admin.site.urls)
            ]

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