Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Queryset with annotations gave me result list like this:

[{'completed__sum': 1, 'offer__count': 2, 'offer': 1}, {'completed__sum': 0, 'offer__count': 1, 'offer': 2}]  

I want to get something like that:

{1:{'completed__sum': 1, 'offer__count': 2},2:{'completed__sum': 0, 'offer__count': 1}}  

where keys 1 and 2 are values of 'offer': X field.

What is the fastest way to convert result of query to needed form? Or is there any way to receive result of queryset in that format?


Here is my QuerySet:

Progress.objects.filter(user=self.request.user).values('offer').annotate(Count('offer')).annotate(Sum('completed'))

My model:

class Progress(models.Model):  
    user = models.ForeignKey(to=User)  
    offer = models.ForeignKey(to=Offer)  
    completed = models.BooleanField(default=False)  
share|improve this question
    
this question has nothing to do with django, and everything to do with python builtins. –  Inbar Rose Dec 26 '12 at 9:40
    
I used Django tag for case if there is another way to format result of Django's annotated queryset's output –  Ilya Dec 26 '12 at 9:47

2 Answers 2

up vote 1 down vote accepted

works on python 2.6 +

use the dict constructor with enumerate.

list_of_dicts = [
    {'completed__sum': 1, 'offer__count': 2, 'offer': 1},
    {'completed__sum': 0, 'offer__count': 1, 'offer': 2}]

dictionary = dict((d['offer'], dict((k, v) for k, v in d.items() if k != 'offer')) for d in list_of_dicts)

print dictionary
>>> 
{1: {'completed__sum': 1, 'offer__count': 2}, 2: {'completed__sum': 0, 'offer__count': 1}}

edit: just found a much better way to do this. if you arent using the list anymore and are going to keep only the final results.

dictionary = dict((d.pop('offer'), d) for d in list_of_dicts)
share|improve this answer
    
"where keys 1 and 2 are values of 'offer': X field" –  Ignacio Vazquez-Abrams Dec 26 '12 at 9:29
    
@IgnacioVazquez-Abrams fixed. –  Inbar Rose Dec 26 '12 at 9:37
    
Yep, that looks faster. 1000 loops, best of 3: 1 msec per loop. Looks like exactly what I need. Thanks! –  Ilya Dec 26 '12 at 10:06
>>> {x['offer']: dict(y for y in x.iteritems() if y[0] != 'offer') for x in [{'completed__sum': 1, 'offer__count': 2, 'offer': 1}, {'completed__sum': 0, 'offer__count': 1, 'offer': 2}]}
{1: {'completed__sum': 1, 'offer__count': 2}, 2: {'completed__sum': 0, 'offer__count': 1}}
share|improve this answer
    
On my computer that variant worked faster than others: python -m timeit "{x['offer']: dict(y for y in x.iteritems() if y[0] != 'offer') for x in [dict(offer=x,completed__sum=1,offer__count=1) for x in xrange(1000)]}" 100 loops, best of 3: 3.13 msec per loop –  Ilya Dec 26 '12 at 9:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.