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I have the models:

class Article(models.Model):
    title = models.TextField(blank=True)
    keywords = models.ManyToManyField(Keyword, null=True, blank=True)

class Keyword(models.Model):
    keyword = models.CharField(max_length=355, blank=True)

I want to get a count of how many articles have each keyword. In essence I want to have a list of keywords where I can get each ones count to give it a relative weighting.

I have tried:

keyword_list=Article.objects.all().annotate(key_count=Count('keywords__keyword'))

but

keyword_list[0].key_count    

just seems to give me the number of different keywords each article has? Is it somehow a reverse lookup?

Any help would be much appreciated.

UPDATE

So I got it working:

def keyword_list(request):
    MAX_WEIGHT = 5
    keywords = Keyword.objects.order_by('keyword')
    for keyword in keywords:
        keyword.count =  Article.objects.filter(keywords=keyword).count()
    min_count = max_count = keywords[0].count
    for keyword in keywords:
        if keyword.count < min_count:
            min_count = keyword.count
        if max_count > keyword.count:
            max_count = keyword.count 
    range = float(max_count - min_count)
    if range == 0.0:
        range = 1.0 
    for keyword in keywords:
        keyword.weight = (
            MAX_WEIGHT * (keyword.count - min_count) / range
        )
    return { 'keywords': keywords }

but the view results in a hideous number of queries. I have tried implementing the suggestions given here (thanks) but this is the only methid which seems to work at the moment. However, I must be doing something wrong as I now have 400+ queries!

UPDATE

Wooh! Finally got it working:

def keyword_list(request):
    MAX_WEIGHT = 5
    keywords_with_article_counts = Keyword.objects.all().annotate(count=Count('keyword_set'))
    # get keywords and count limit to top 20 by count
    keywords = keywords_with_article_counts.values('keyword', 'count').order_by('-count')[:20]
    min_count = max_count = keywords[0]['count']
    for keyword in keywords:
        if keyword['count'] < min_count:
            min_count = keyword['count']
        if max_count < keyword['count']:
            max_count = keyword['count']             
    range = float(max_count - min_count)
    if range == 0.0:
        range = 1.0
    for keyword in keywords:
        keyword['weight'] = int(
            MAX_WEIGHT * (keyword['count'] - min_count) / range
        )
    return { 'keywords': keywords}
share|improve this question

3 Answers 3

up vote 11 down vote accepted

Since you want the number of articles that have each keyword, you have to do it the other way:

>>> Keyword.objects.all().annotate(article_count=models.Count('article'))[0].article_count
2
share|improve this answer
    
Why is this down-voted it seems like the correct answer, or am I missing something? –  solartic Oct 19 '11 at 21:13
1  
This is indeed the correct answer, but could probably use a little explanation. –  jathanism Oct 19 '11 at 22:30

i don't know how you would do it efficiently but if you need to get it done.

keywords = Keyword.objects.all()
for keyword in keywords:
  print 'Total Articles: %d' % (Article.objects.filter(keywords=keyword).count())
share|improve this answer

This is the same as the answer from Vebjorn Ljosa, but with a little context, where article_set is the related_name of the reverse many-to-many relationship object.

keywords_with_article_counts = Keyword.objects.all().annotate(article_count=Count('article_set'))

To illustrate your results, it would be easier to return the .values():

keywords_with_article_counts.values('keyword', 'article_count')

Which would return a list of dictionaries that would look something like this:

[{'article_count': 36, 'keyword': u'bacon'}, 
 {'article_count': 4, 'keyword': u'unicorns'}, 
 {'article_count': 8, 'keyword': u'python'}]
share|improve this answer
    
Thanks. That makes it a little clearer, though I am still having trouble integrating this into my view (see my edited question). If I return a dictionary, then this view will have to be significantly different, no? –  Darwin Tech Oct 19 '11 at 23:04
    
You can return the keywords_with_article_counts QuerySet as-is to your view. I was just showing the use of the .values() method, which allows you to return a dictionary of desired fields instead of model instances. That was just to illustrate the results of article_count, sorry if that was confusing. –  jathanism Oct 20 '11 at 1:06
    
I now have a modified version of this working in my shell, but as I am trying to transform the count into a weight and deliver keywords as objects, as per my view above, I am little lost. Any tips on how I integrate this? –  Darwin Tech Oct 20 '11 at 14:44
    
jathanism, thanks man :) +1 –  Krolique Jul 11 '12 at 1:40

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