0

Suppose I have the following models:

class Playlist(models.Model):
    name = models.TextField()    
    songs = models.ManyToManyField(Song)

class Song(models.Model):
    title = models.TextField()

So a Playlist can have multiple songs and a song can be in multiple playlists.

I want to add an "order" field so that a user can reorder songs in a playlist. I found order_with_respect_to, which appears to be a perfect solution. However, I would need to add that meta option to the Song model, e.g.:

class Song(models.Model):
    title = models.TextField()

    class Meta:
        order_with_respect_to = 'playlists'

Obviously, there is no playlist field specified on Song since I've got the relationship specified in the Playlist model. Is there a way to specify the reverse relationship for order_with_respect_to using related_name? Or could I slap a ForeignKey reference to playlists in the Song model?

1

order_with_respect_to is (arguably) useful when you have a ForeignKey, but not a ManyToManyField. It works by adding an extra field to the model, but in your case the order varies depending on the Playlist.

The straightforward way to do this in Django is to put the order on an explicitly created through table.

class Playlist(models.Model): 
    name = models.TextField()
    songs = models.ManyToManyField(Song, through='PlaylistSong')

class Song(models.Model):
    title = models.TextField()

class PlaylistSong(models.Model):
    playlist = models.ForeignKey(Playlist)
    song = models.ForeignKey(Song)
    order = models.PositiveSmallIntegerField()

So to get the Songs in a Playlist in the right order, you would do something like:

Song.objects.filter(playlistsong__playlist_id=1)
            .order_by('playlistsong__order')
  • Finally got back to this project. This worked perfectly, thanks! – Banjer Jun 12 '15 at 11:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.