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Based off this SO question about counting forgein keys, I have a problem. This is my models:

class Type(models.Model):
  is_bulk = models.BooleanField()

class Component(models.Model):
  parent = models.ForgeinKey(Type, related_name="components")

I want to write a queryset that has all types, except those that have is_bulk=True and have no components. If is_bulk=False, it should be included. If is_bulk=True and you have 1+ linked Components, then you're included. If not, you're excluded.

Based off the answer, I tried this queryset:

Type.objects.annotate(num_components=Count('components')).exclude(is_bulk=True, num_components=0)

But it returns no results.

However this implies that there should be results:

>>> [(x.is_bulk, x.num_components) for x in Type.objects.annotate(num_components=Count('components'))]
[(False, 0), (False, 0), (False, 0), (False, 0), (False, 0), (False, 0), (False, 0)]

All the Type objects have is_bulk=False and all of them have 0 Components. From reading the .exclude(…) documentation, it should be NOT(is_bulk=True AND num_components=0), which should be True for every Type. Right? (Have I made a misunderstanding here, if so, what's the correct queryset)

If not, why is this queryset returning [], when it should return all of them? Is this a bug in Django 1.3?

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1  
You might want to print your Queryset's query attribute so you can read the SQL Django outputs. –  Thomas Orozco Nov 10 '11 at 15:44
    
You can try the exclude with one parameter at a time to see if the problem is is_bulk=True, num_components=0 or using them together. –  Lycha Nov 10 '11 at 15:56
    
There is a typo in your models.py parent = models.ForgeinKey(Type) it should be ForeignKey –  César Bustíos Nov 10 '11 at 16:00

2 Answers 2

I tried this example and what you need I think is declaring a related_name in your field:

class Component(models.Model):
    parent = models.ForgeinKey(Type, related_name='components')

That should do it

UPDATE

Based on your example:

>>> [(x.is_bulk, x.num_components) for x in Type.objects.annotate(num_components=Count('components'))]
[(False, 0), (False, 0), (False, 0), (False, 0), (False, 0), (False, 0), (False, 0)]

And mine:

>>> [(x.is_bulk, x.num_components) for x in Type.objects.annotate(num_components=Count('components'))]
[(False, 3), (False, 0), (False, 1), (False, 4), (True, 2), (True, 3), (True, 1), (True, 1), (False, 2), (True, 7), (True, 0), (False, 0)]

I'm assuming you don't have objects with the requirements of your queryset:

Type.objects.annotate(num_components=Count('components')).exclude(is_bulk=True, num_components=0)

Your results:

[]

This are the results in my case:

[<Type: Type object>, <Type: Type object>, <Type: Type object>, <Type: Type object>]
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I have done that in my model already and the problem occurs. I have updated the question –  Rory Nov 10 '11 at 17:37
    
I have updated my answer as well –  César Bustíos Nov 10 '11 at 18:47
up vote 0 down vote accepted

I have fixed this by changing the queryset to:

types_qs.annotate(num_components=Count('components')).filter(Q(is_bulk=False) | (Q(is_bulk=True) & Q(num_components__gt=0)))

That works, but I can't see why my original one didn't. Ah well.

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