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I'm trying to build a simple ranking system where I order subjects by 'Score' and then by 'ID'. I originally built this is PHP by setting a 'rownum' variable in SQL and calling that 'Rank' like this:

public function rank() {
    global $database;
    $sql = "SET @rownum :=0";
    $database->query($sql);
    $sql = "SELECT rank FROM ( 
        SELECT @rownum:=@rownum+1 AS rank, id, score 
        FROM subjects
        ORDER BY score DESC, id ASC) AS derived_table 
        WHERE id = {$this->id}";

    $result_set = $database->query($sql);
    $row = $database->fetch_array($result_set);
    return array_shift($row);
    }

I could possibly index it from a Queryset but I haven't figured out how to do that either. Any thoughts on how I could accomplish this in Django?

the Model:

class Subject(models.Model):
    def __unicode__(self):
        return self.name
    def __str__(self):
        return self.name

    name = models.CharField(max_length=40)
    score = models.IntegerField(default=0)
    created = models.DateTimeField(default=datetime.datetime.now)

thanks in advance!

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Have you built out your Django Model yet for your database? If so could you include? This would normally be method in your django model.py –  Hacking Life Apr 20 '12 at 19:30

3 Answers 3

Try

order_by('score', 'pk') #pk is the ID or primary key

Check out Django Book: Chapter 5 Models

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So if I need to find the position of a subject in that list is there a better way than interating through the queryset? Could I say 'find ID 4' and it would spit back '22'? –  Timmerop Apr 22 '12 at 0:40

With the extra method this can be done.

Blog.objects.extra(
    select={
        'entry_count': 'SELECT COUNT(*) FROM blog_entry WHERE blog_entry.blog_id = blog_blog.id'
    },
)
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I'm looking for it to be sorted by two parameters, then to find out the index of where ever the subject ends up (by id) –  Timmerop Apr 20 '12 at 22:06

Try this:

someSubject = Subject.objects.get(name='someSubject')
someSubject_rank = Subject.objects.filter(score__gt=someSubject.score).count()+1
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