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I want to edit a django-rest-framwork serializer object before it is saved. This is how I currently do it -

def upload(request):
    if request.method == 'POST':
        form = ImageForm(request.POST, request.FILES)
        if form.is_valid(): # All validation rules pass
             obj = form.save(commit=False)
             obj.user_id = 15
             obj.save()

How can I do it with a django-rest-framework serializer object?

@api_view(['POST','GET'])
def upload_serializers(request):
    if request.method == 'POST':
         serializer = FilesSerializer(data=request.DATA, files=request.FILES)
         if serializer.is_valid():
              serializer.save()
share|improve this question
    
Your first paragraph seems incomplete. “This how I do it with” what? – Donal Fellows Nov 26 '12 at 11:00
up vote 14 down vote accepted

You can edit the serializer's object before save the serializer:

if serializer.is_valid():
    serializer.object.user_id = 15 # <----- this line
    serializer.save()
share|improve this answer
    
amazing, thanks! – Ron Jun 3 '14 at 14:23
    
Can one modify a nested object ? serializer.object.book.author_id = 22 – Amogh Talpallikar Jan 28 '15 at 19:50

Now edited for REST framework 3

With REST framework 3 the pattern is now:

if serializer.is_valid():
    serializer.save(user_id=15)

Note that the serializers do not now ever expose an unsaved object instance as serializer.object, however you can inspect the raw validated data as serializer.validated_data.

If you're using the generic views and you want to modify the save behavior you can use the perform_create and/or perform_update hooks...

def perform_create(self, serializer):
    serializer.save(user_id=15)
share|improve this answer
2  
It looks like this has changed to perform_create() in DRF 3.x. – nnyby Jan 16 '15 at 15:49

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