31

I am building a Django application that exposes a REST API by which users can query my application's models. I'm following the instructions here.

My Route looks like this in myApp's url.py:

from rest_framework import routers
router = routers.DefaultRouter()    router.register(r'myObjects/(?P<id>\d+)/?$', views.MyObjectsViewSet)
url(r'^api/', include(router.urls)),

My Model looks like this:

class MyObject(models.Model):
    name = models.TextField()

My Serializer looks like this:

class MyObjectSerializer(serializers.HyperlinkedModelSerializer):
    class Meta:
        model = MyObject
    fields = ('id', 'name',)

My Viewset looks like this:

class MyObjectsViewSet(viewsets.ViewSet):

    def retrieve(self,request,pk=None):
        queryset = MyObjects.objects.get(pk=pk).customMyObjectList()

        if not queryset:
            return Response(status=status.HTTP_400_BAD_REQUEST)
        else:
            serializer = MyObjectSerializer(queryset)
            return Response(serializer.data,status=status.HTTP_200_OK)

When I hit /api/myObjects/60/ I get the following error:

base_name argument not specified, and could not automatically determine the name from the viewset, as it does not have a .model or .queryset attribute.

I understand from here that I need a base_name parameter on my route. But from the docs, it is unclear to me what that value of that base_name parameter should be. Can someone please tell me what the route should look like with the base_name?

  • A similar question (made also by @Saquib Ali) was answered here addressing the same problem. – DarkCygnus Oct 19 '16 at 21:04
43

Try doing this in your urls.py. The third parameter 'Person' can be anything you want.

router.register(r'person/food', views.PersonViewSet, 'Person')
  • and then how what should I type into my browser as the URL to hit that API? – Saqib Ali Feb 28 '14 at 22:37
  • @SaqibAli it would be 127.0.0.1:8000/person/food. – Eric Lee Mar 1 '14 at 1:40
  • 18
    @EricLee can you explain why is this happening? Thank you – palafox_e Apr 7 '15 at 20:15
  • 1
    @palafox_e The default router uses the queryset defined in the serializer to determine the basename. The basename designates the start of the urls generated by the router. If the queryset is not set as a ViewSet attribute, the router throws up its hands in protest without trying to find queryset in functions. Specifying 'Person' means the internal view_name's will start with 'Person', but the url's are still specified by the first argument Check this out for more: django-rest-framework.org/api-guide/routers/#usage – sean.hudson Mar 15 '17 at 18:46
13

Maybe you just need to set the base_name parameter for your router with the name of the object: MyObject, in your case.

router.register(r'myObjects/(?P<id>\d+)/?$', views.MyObjectsViewSet, base_name="MyObject")

http://www.django-rest-framework.org/api-guide/routers/#Usage

  • Stupidly strange how the docs use basename rather than base_name. – AlanH Aug 28 at 23:35
9

Let me explain, why we need an base_name in the first place and then let's go into the possible value of base_name.

If you ever used the Django urls without the rest-framework (DRF) before, you would've specified it like this:

urlpatterns = [
    url(r'myObjects/(?P<id>\d+)/?$', views.MyObjectsListView.as_view(), name='myobject-list'),
    url(r'myObjects/(?P<id>\d+)/?$', views.MyObjectsDetailView.as_view(), name='myobject-detail'),
]

Here, if you see, there is a name parameter which used to identify the url in the current namespace (which is app).

This is exactly what django-rest-framework trying to do automatically, since the drf knows whether the view is list or detail (because of viewset). it just needs to append some prefix to differentiate the urls. That's the purpose of base_name (prefix).

In most scenario, you can give the url or resource name as base_name. In your case, base_name=myobject. DRF will generate base_name + view_type as the name parameter like myobject_list & myobject_detail.

Note: Usually, base_name will be automatically obtained from the queryset field (from view), since it's same for all view types in a viewset. But if you specify, get_queryset method instead of queryset, it possibly means you've different queryset for different view types (like list, detail). So, DRF will ask you to specify a common base_name for all the view types for a resource.

3

An alternative solution might be to use a ModelViewSet which will derive the basename automatically from the model.

Just make sure and tell it which model to use:

Because ModelViewSet extends GenericAPIView, you'll normally need to provide at least the queryset and serializer_class attributes, or the model attribute shortcut.

  • 4
    This is really hard and confusing. Can you just tell me based on my code above what that parameter base_name should be? I don't want to use MovelViewSet because I am not using querysets. I'm doing something more complicated by calling customMyObjectsList(). – Saqib Ali Feb 28 '14 at 3:02
  • Clearly no one actually knows. The docs don't give any hints – Mike Johnson Jr Dec 5 '16 at 7:19
2

simply mention this,

queryset = MyObjects.objects.all()

like this,

class MyObjectsViewSet(viewsets.ViewSet):
    queryset = MyObjects.objects.all()

in your corresponding Viewset in views.py instead of mentioning under

def retrieve()...

its worked for me :)

2

this is a useful answer, read for the details.

tl;dr

It is used as the base name of the generated URL patterns (e.g., 'myobject-detail' or 'myobject-list').

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