47

I've got this model:

class Visit(models.Model):
    timestamp  = models.DateTimeField(editable=False)
    ip_address = models.IPAddressField(editable=False)

If a user visits multiple times in one day, how can I filter for unique rows based on the ip field? (I want the unique visits for today)

today = datetime.datetime.today()
yesterday = datetime.datetime.today() - datetime.timedelta(days=1)

visits = Visit.objects.filter(timestamp__range=(yesterday, today)) #.something?

EDIT:

I see that I can use:

Visit.objects.filter(timestamp__range=(yesterday, today)).values('ip_address')

to get a ValuesQuerySet of just the ip fields. Now my QuerySet looks like this:

[{'ip_address': u'127.0.0.1'}, {'ip_address': u'127.0.0.1'}, {'ip_address':
 u'127.0.0.1'}, {'ip_address': u'127.0.0.1'}, {'ip_address': u'127.0.0.1'}]

How do I filter this for uniqueness without evaluating the QuerySet and taking the db hit?

# Hope it's something like this...
values.distinct().count()
39

What you want is:

Visit.objects.filter(stuff).values("ip_address").annotate(n=models.Count("pk"))

What this does is get all ip_addresses and then it gets the count of primary keys (aka number of rows) for each ip address.

  • 2
    I don't think I'm totally understanding annotate. As you wrote it, my ValuesQuerySet now has "n":1 appended to each entry. I'm not sure what that's telling me? – Scott Aug 8 '10 at 2:55
  • 7
    The problem is probably Meta.ordering - try this Visit.objects.filter(stuff).order_by().values("ip_address").annotate(n=models.Count("pk")) – Greg Sep 30 '13 at 22:53
  • 1
    @Greg Thank you! I new that the ordering and order_by() causes issues with distinct but I didn't know how to solve it - although it is in the QuerySet API docs under order_by() "If you don’t want any ordering to be applied to a query, not even the default ordering, call order_by() with no parameters." – Mark Mikofski Aug 24 '14 at 7:25
  • What is pk in this case? – User Apr 23 '15 at 23:49
  • pk - primary key. Unique identifier for each record. – arudzinska Nov 16 '18 at 10:20
17

With Alex Answer I also have the n:1 for each item. Even with a distinct() clause.

It's weird because this is returning the good numbers of items :

Visit.objects.filter(stuff).values("ip_address").distinct().count()

But when I iterate over "Visit.objects.filter(stuff).values("ip_address").distinct()" I got much more items and some duplicates...

EDIT :

The filter clause was causing me troubles. I was filtering with another table field and a SQL JOIN was made that was breaking the distinct stuff. I used this hint to see the query that was really used :

q=Visit.objects.filter(myothertable__field=x).values("ip_address").distinct().count()
print q.query

I then reverted the class on witch I was making the query and the filter to have a join that doesn't rely on any "Visit" id.

hope this helps

  • Is this a question or an answer? – User Apr 24 '15 at 1:08
  • it was a kind of complement to the Alex answer. I tried it, had the same problem than vfxcode, and then I found why. So I thought I should share my findings. 3 years later, I admit my answer was a bit messy and I understand why you ask this ;) – Guillaume Gendre Apr 30 '15 at 17:21

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