Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have around 6000 values. Each value has a field called total. I need to generate (I guess this part should be at the views.py) a set of the rounded average for every 3 elements (groups).

Example: 1 3 100 4 5 8 10 1 20 ...

Desired set: 35 6 10 ...

My models.py looks like:

class resume(models.Model):
  total = models.DecimalField(max_digits=9, decimal_places=2,default=0)

I was thinking on adding something that has to do with resume.objects.all().aggregate(Avg('total')) at the views.py (when rendering). Some solutions I have seen use SQL. Any idea on how to do this from django?

share|improve this question
up vote 2 down vote accepted

You may need to do it manually as follow:

# http://docs.python.org/2/library/itertools.html
def grouper(iterable, n, fillvalue=None):
    args = [iter(iterable)] * n
    return izip_longest(fillvalue=fillvalue, *args)

def avg(xs):
    xs = [x for x in xs if x is not None]
    return sum(xs) / len(xs)

# Retrieve all `total` values as a flat list-like ValueListQuerySet.
values = resume.objects.all().values_list('total', flat=True)
avgs = [avg(xs) for xs in grouper(values, 3)]
share|improve this answer
    
Nothing to add but thanks falsetru :) – EnriqueH Mar 6 '14 at 2:26

Fixed:

from django.db.models import Avg
all_res = Resume.objects.all()
answer = [ all_res[(i*3):((i*3)+3)].aggregate(Avg('total') for i in range(all_res.count()/3)]

Now it's even a little less clunky thanks to the aggregate function. The first line pulls out the total values from all of the resumes. Next there's a string comprehension for i in the first third of all_res that sums the 3 digits from i*3 to (i*3)+3. The first iteration of i in the list comprehension would go like this (let's assume that all_res starts [5, 4, 6, .....]):

sum(all_res[(0*3):((0*3)+3)])/3
sum(all_res[0:3])/3
sum([5,4,6])/3
15/3
# 5

Edit: Also, I figure it's not a huge deal, but if your DB doesn't have n records where n%3 = 0 (I figure 6k was a rounded off figure), and you REALLY need every number to be right, then you could always divide by the len(i*3:i*3+3) instead of 3 since if the upper bound on a slice overruns it just returns the list until the end.

share|improve this answer
    
QuerySet.values returns ValuesQuerySet. Each item of ValueQuerySet is a dictionary. So the codes will not work as expected without modifications. – falsetru Mar 6 '14 at 2:30
    
You are indeed correct. Fixing now. – BWStearns Mar 6 '14 at 18:41

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.