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.

I've searched stackoverflow but I think the problem is slightly different from those that are already up.

I'm looking for the most elegant solution to the following problem.

I have a list of toasts (not the bread, what you say to someone before you drink) for a given country, each with a number of likes.

For instance:

UK: Cheers (4 likes), Good Health (3 likes) USA: Cheers (5 likes), USA! USA! (4 likes) Australia: Cheers (5 likes), I LOVE FOSTERS (2 likes) Spain: Salut (3 likes), Cerveza (2 likes) France: Salut (4 likes)

I want to get a list of the top Toasts, ordered by the sum of the most voted for toasts per country. So Cheers is the favourite in the UK, USA and Australia (3 countries) followed by Salut in Spain and France (2 Countries). The returned list should therefore be [Cheers, Salut]. Toasts that aren't the most liked in a country should not be included.

I suspect this is going to require multiple DB queries and make use of Django's Aggregation features, I could do it by looping over etc.. but i'd prefer to find out how to solve this problem as i've come across it before and wanted an ideal solution then too.

Any help is greatly appreciated. Current solution is below:

toasts = Toast.objects \
                      .filter(approved=True) \
                      .values('name', 'country') \
                      .annotate(num_likes=Count('likes')) \
                      .order_by('-num_likes')

countries_max = {}
for toast in toasts:
    if toast['country'] not in countries_max:
         countries_max[toast['country']] = toast['name']


d = {}
for i in set(countries_max.values()):
    d[i] = countries_max.values().count(i)
share|improve this question
    
what solution have you tried? –  karthikr Sep 6 '12 at 15:43
    
This is my current solution that only has 1 lookup, i'd probably add distinct('country') to the query but I'm using sqlite (it's not an important project) which doesn't support it apparently. –  Danger Sep 7 '12 at 12:40

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.