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I have written a django query like this.

stud_record = Student.objects.filter()

Thus stud_record is a queryset.

Now what I want to do is, i want to calculate the total num of stud_record, and then divide it by 5.

For ex: I have 20 records in stud_record. After dividing by 5 I got 4 each. So now i want to rank the first four students as ran 1, then from 5-8 students as rank 2....16-20 students as rank 5. This rank will be inserted to the same stud_record and will be send to the template page.

How can we do it.

Currently I am getting the structure like this

[{'name': u'mark', 'roll': 71}, 
 {'name': u'robin', 'roll': 42}, 
 {'name': u'julien', 'roll': 39}]

After division and inserting the rank it should look like

[[{'name': u'mark', 'roll': 71, 'rank': 1}, 
  {'name': u'robin', 'roll': 42, 'rank': 1},] 
 [{'name': u'julien', 'roll': 39, 'rank': 2}]]

Right now I am getting 185 results in my stud_record. After dividing 185/5 i am getting 37 as result. Now i want to give rank 1 to 1-37 students, then rank 2 to 38-75 students... like this

share|improve this question
    
what should the result be if there are 21 student records? – root Jan 23 '13 at 7:50
    
1-5 rank1, 6-10 rank 2....15-21 rank 5 – sandeep Jan 23 '13 at 7:54
    
1-5:1, 6-10:2...15-21:5, and how do you split up the 11-14 between 3 and 4? – root Jan 23 '13 at 12:10
up vote 0 down vote accepted

Add ranks to your dicts first and then group them using itertools.groupby:

from itertools import groupby

lst = [{} for _ in range(21)]  # simple testlist

def rank_it(lst,n):
    for index,d in enumerate(lst):
        rank = index/(len(lst)/n)+1
        d['rank'] = rank if rank < n else n

rank_it(lst,5)  #  add ranks
[list(g) for _,g in groupby(lst, lambda x: x['rank'])]  #group by rank

out:

[[{'rank': 1}, {'rank': 1}, {'rank': 1}, {'rank': 1}],
 [{'rank': 2}, {'rank': 2}, {'rank': 2}, {'rank': 2}],
 [{'rank': 3}, {'rank': 3}, {'rank': 3}, {'rank': 3}],
 [{'rank': 4}, {'rank': 4}, {'rank': 4}, {'rank': 4}],
 [{'rank': 5}, {'rank': 5}, {'rank': 5}, {'rank': 5}, {'rank': 5}]]

NB! This solution needs the list to be sorted, if its not, add: lst.sort(key=lambda x: x['roll'],reverse=True)

share|improve this answer

Try using Len(stud_record). This will get you the number of student for that queryset. Then play around with division and modulo to get your desired range of student. Sorry I can't give you a definite solution for the laptop I'm currently using is not installed with a Python program. Hope this helps :)

share|improve this answer
    
Yeah i am getting the total count for stud_record. But not getting the logic how to assign the ranks depending upon the division results...;( – sandeep Jan 23 '13 at 7:19

You contradict yourself in the question on what you want. Your example code of what you want has one list of students, each with a rank. But you say you want to assign the same rank to all students in a sublist. That's two different things.

For giving an order number for each record in a list do this:

for rank, student in enumerate(student_list):
    student['rank'] = rank

For giving the same rank to all records in a sublist you can do this:

for rank, student_list in enumerate(all_students):
    for student in student_list:
        student['rank'] = rank

But this last thing is surely easier, even completely trivial, to do when you are splitting the main list into sub_lists, not afterwards.

Do that for each of the sublists you have created.

Also don't insert it into stud_record, instead add the results to the context. In a class-based view you can do it like this:

def get_context_data(self, **kwargs):
    # Call the base implementation first to get a context
    context = super(KlassDetailView, self).get_context_data(**kwargs)
    # Add data to the context:
    stud_record = Student.objects.filter()
    context['stud_ranks'] = calculate_ranks(stud_record)
    return context

Now you have the 'stud_ranks' variable available in the template.

share|improve this answer
    
Yeah this is right, but how can i assign first 1-4 students as rank 1, then the next set of students as rank 2 etc.. – sandeep Jan 23 '13 at 7:21
    
@sandeep: Updated. – Lennart Regebro Jan 23 '13 at 7:28
    
I guess this is a method u r invoking here. What should be its definition. – sandeep Jan 23 '13 at 7:28
    
@sandeep: Also note that your title is completely misleading, if your main question is how to assign ranks. I will change it. – Lennart Regebro Jan 23 '13 at 7:30
    
You have modified the title, that is absolutely fine, no issues. Now i just want to know what should be the definition of calculate_ranks() – sandeep Jan 23 '13 at 7:34

I would go like this

iter=0
for item in sorted(stud_record, key=lambda x:x['roll']):
    item['rank'] = math.floor(iter / 5) + 1)
    iter+=1

You sort your items by 'roll', and assign a 'rank' field that is observing repartition in five bins.

share|improve this answer
    
In the __future__, this division will result in a float. So it is better to math.floor(iter / 5) + 1). – bouke Jan 23 '13 at 8:02
1  
thanks for comment !!! – octoback Jan 23 '13 at 8:13

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