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I got simple requirement (not simple implementation), and figuring out how to achieve it without making multiple hits to db, and without .extra() in queryset.

Task:
  name = xxx
  status = models.IntegerField(choices=some_choices)
  project = ForeignKey(Project)

Project:
  name = xxx
  code = xxx

Projects contain Tasks which got various statuses. (Assume status=3 is Completed) Now, I want to list out all projects with their total tasks and completed tasks, like below

  1. Project 1, total_tasks=5, completed_tasks=2
  2. Project 1, total_tasks=2, completed_tasks=1

I am able to get total_tasks with annotate, but not completed_tasks, since it required condition in annotation. Is there anyway to do it?

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How would You plan to do it with raw SQL anyway? –  Tomasz Wysocki Aug 31 '10 at 9:29
1  
    
+1. So it is clear that, this kind of functionality is not there in core. But, is there any way we can achieve it using F() etc? –  Narendra Kamma Aug 31 '10 at 9:46

2 Answers 2

up vote 0 down vote accepted

I don't know if it will help, but you can write your own custom annotation objects. I've just done it though without the conditional part. I based my solution on this link: http://www.voteruniverse.com/Members/jlantz/blog/conditional-aggregates-in-django

but didn't use the example there. Instead I looked at the django code for aggregates and extended the Sum and Count objects themselves.

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Not sure if the linked blog is just down for the moment or permanently, but here's an archived version in any case: web.archive.org/web/20101115170804/http://www.voteruniverse.com/… –  Benjamin Wohlwend May 18 '12 at 6:53

If you do not mind additional queries, you can derive two querysets instead of one. The first can get you the total count and the second can filter on tasks_status and thereby get you the completed count.

from django.db.models import Count
all_projects = Project.objects.all()
total_counts = all_projects.annotate(count = Count('tasks'))
completed_counts = all_projects.filter(tasks_status = 3).annotate(count = Count('tasks'))
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this is somewhat better than my brute approach, where I'm iterating all projects and attached queryset to get completed_counts. But, it again forces us to match project vs completed_counts, may be in template or view –  Narendra Kamma Aug 31 '10 at 9:52
    
Agreed. You are obliged to match project against count in the template or view. –  Manoj Govindan Aug 31 '10 at 10:14

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