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How can I use the Django ORM to sort all objects in a queryset by a conditional aggregation of related items? Django 1.8 and higher explicitly have conditional aggregation support, I need an answer for Django < 1.8. This will obviously involve 3 or 4 queries. Here are example models an answerer can use to illustrate her answer:

class Group(models.Model):
    owner = models.ForeignKey(User)
    created_at = models.DateTimeField(auto_now_add=True)

class GroupTraffic(models.Model):
    visitor = models.ForeignKey(User)
    which_group = models.ForeignKey(Group)
    time_of_visit = models.DateTimeField(auto_now_add=True)

Users own chat groups, and other users can visit the said chat groups. The question to answer is: How can one produce a sorted list of all groups, such that it's sorted by the unique traffic each group has seen in the last 60 mins? Groups that have seen a lot of unique visitors in the last 60 mins get sorted to the top, groups with almost zero (or zero) such traffic appear at the bottom of the list.

This is a conditional aggregation question because, essentially, we need to annotate to each group object, a Count of all related, unique grouptraffic objects that were logged in the past 60 mins.

Can someone show me how to use the Django ORM to solve this for < 1.8? I already know how to do it for >= 1.8 via conditional aggregation (thanks to this), and I don't want to do it via SQL queries in raw or extra.

  • By unique traffic, I mean not double counting if it's the visitor with the same ID. I.e. using distinct in the Django ORM. – Hassan Baig Nov 20 '15 at 0:58
  • What queries have you tried so far? – user764357 Nov 20 '15 at 1:39
  • Huge list man, hold on, I'll put some of the closest ones here. – Hassan Baig Nov 20 '15 at 1:40
  • Query 1: This ones doesn't take the last 60 mins' traffic into account: groups = Group.objects.annotate(views=Count('grouptraffic__visitor', distinct=True)). – Hassan Baig Nov 20 '15 at 1:45
  • Query 2: These don't take all groups into account: date = datetime.now()-timedelta(hours=1) new_traff = GroupTraffic.objects.filter(time__gte=date, which_group__private='0').distinct('visitor').values_list('id',flat=True) trendingGrp_ids = GroupTraffic.objects.filter(id__in=new_traff).values('which_group').annotate(total=Count('which_group')).order_by('-total') trendingGrps = [Group.objects.filter(id=grp['which_group']).extra(select={"views":grp['total']})[0] for grp in trendingGrp_ids] return trendingGrps – Hassan Baig Nov 20 '15 at 1:47
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Just filter on the time_of_visit and it should work fine:

one_hour_ago = datetime.now()-timedelta(hours=1)
recent_groups = Group.objects.filter(grouptraffic__time_of_visit>=one_hour_ago)
visitors = recent_groups.annotate(views=Count('grouptraffic__visitor', distinct=True))

Then get all of the older groups, with an extra field for the empty views:

older_groups = Group.objects.filter(grouptraffic__time_of_visit < one_hour_ago).extra(select={'visits':0})

Then concatenate them together with a pipe:

all_groups = visitors | older_groups 
  • Won't this not include groups that didn't log a visit in the past one hour? I want to include all groups, just that those without a visit in the past hour ought to be sorted last. – Hassan Baig Nov 20 '15 at 1:54
  • Okay and one more requirement is sorting the list by hottest group first. I should straight up run an "order_by('-views')" on "all_groups" at the end?. – Hassan Baig Nov 20 '15 at 2:05
  • That should work. If not, you could sort each query independently and then merge. – user764357 Nov 20 '15 at 2:07
  • 1
    Okay either way. I'm taking this for a spin, logically this works. I'll report back in a bit. – Hassan Baig Nov 20 '15 at 2:09
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    Btw, that would be all_groups = visitors | older_groups, no? – Hassan Baig Nov 20 '15 at 2:15

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