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I'm trying to sort a Django Admin list page by a specific value in the objects' related foreign key set.

Specifically, in the below code, I want the ContentAdmin view to show a list of all content objects sorted by the "Twitter Score" (The Score object with name "Twitter").

In the django app I have the following models:

class Content(models.Model):
    body = models.CharField(max_length=564)
    title = models.CharField(max_length=64) 

class Score(models.Model):
    name = models.CharField(max_length=64)
    score = models.IntegerField()
    content = models.ForeignKey('Content')

And in the admin.py I have the following:

class ContentAdmin(admin.ModelAdmin):
    list_display = ('title', 'show_twitter_score',)

    def show_twitter_score(self, obj):
        twitter_score = obj.score_set.get(name='Twitter')
        return 'Twitter: ' + str(twitter_score.score)

GOAL: The admin panel for ContentAdmin displays the content objects ordered by "Twitter" scores

Thanks everyone!

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Whats wrong with your code? –  César Bustíos Apr 19 '12 at 19:13
    
By admin panel you mean admin.py? Do you have a admin.site.register(Content, ContentAdmin)? –  César Bustíos Apr 19 '12 at 19:23
    
My code doesn't do the ordering, it only displays the scores –  djs22 Apr 19 '12 at 19:23
    
Yep, by admin panel, I meant admin.py. Just fixed that Also, I have all of the models registered correctly. –  djs22 Apr 19 '12 at 19:24
2  
well it sounds bad but, did you try to click on the column header to do the sorting ? –  Tommaso Barbugli Apr 19 '12 at 19:33

3 Answers 3

If I understand correctly, you can try this from ModelAdmin.list_display in Django's documentation:

Usually, elements of list_display that aren't actual database fields can't be used in sorting (because Django does all the sorting at the database level).

However, if an element of list_display represents a certain database field, you can indicate this fact by setting the admin_order_field attribute of the item.

For example:

class Person(models.Model):
    first_name = models.CharField(max_length=50)
    color_code = models.CharField(max_length=6)

    def colored_first_name(self):
        return '<span style="color: #%s;">%s</span>' % (self.color_code, self.first_name)
    colored_first_name.allow_tags = True
    colored_first_name.admin_order_field = 'first_name'

class PersonAdmin(admin.ModelAdmin):
    list_display = ('first_name', 'colored_first_name')

The above will tell Django to order by the first_name field when trying to sort by colored_first_name in the admin.

You can try this workaround in your code for the sorting.

share|improve this answer
    
Thanks Cesar, but I don't think this will work for me. Using list_display I have no way of specifying which of the multiple scores in the content_obj.score_set I want to order by. Also, can I clarify my question for you? I want to make sure its understandable by everyone –  djs22 Apr 19 '12 at 19:37
    
Sure, just re-edit your post and change what you need. Sorry, maybe I misunderstood the whole thing, wouldn't be my first time :( –  César Bustíos Apr 19 '12 at 19:38
    
Made a small edit at the bottom for GOAL, but unfortunately I'm not how how else to word the question. Thanks for trying though Cesar! –  djs22 Apr 19 '12 at 19:52

Since django admin uses the db to sort you cant sort on the function you are showing in the list.

What you can do is to add the column you want to show to the queryset that django admin is using to list your models, this way you can have sorting.

To add the column you need you have to use the queryset extra method.

This should do the trick :)

Content.objects.all().extra(select={'twitter_score': 'SELECT score from content_score WHERE content_score.id = content_content.id'})

BONUS ROUND:

Content.objects.all().extra(select={'twitter_score': 'SELECT 'Twitter score:' || score from content_score WHERE content_score.id = content_content.id'})

share|improve this answer
    
It's definitely possible to do this within the realms of the ORM. I found a solution for this that I'll be posting shortly, I'll comment here when I have :) –  djs22 Apr 19 '12 at 21:12
    
Actually, it'll be a while until I answer, I'm not allowed to for another 8 hours! –  djs22 Apr 19 '12 at 21:18
    
@djs22 i'm curious to see this one :) –  Tommaso Barbugli Apr 20 '12 at 7:40
up vote 0 down vote accepted

I solved this by extending the queryset method of the ContentAdmin class. After that, it was just a matter of getting the right ORM query

def queryset(self, request):
        qs = super(ContentAdmin, self).queryset(request)
        return qs.filter(score__name='Twitter').order_by('-score__score')
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