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I want the user to be able to order a list of objects in a table using javascript. Then, in a django function I would like to sort those object based on the same ordering, not on an attribute.

Is it possible? I was thinking about passing a list of pk from the template to the view and then ordering the objects according to this list, but I have not found a way to do it yet.

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I will glady receive any other ideas!

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Consider using django-tables2 (django-tables2.readthedocs.org/en/latest) to create your tables. It gives you a lot of control over ordering, as well as letting users r order by any column. –  Daniel Rosenthal Aug 13 '13 at 14:48
    
good idea, I already use it for listing, but here the order is important not only for viewing data but in processing, also the ordering would not be based on attribute but on user preference only. –  Below the Radar Aug 13 '13 at 14:50

2 Answers 2

up vote 1 down vote accepted

I don't think this is possible with queryset. Try following:

pk_list = [2, 1, 3, 4]
pk2obj = {obj.pk: obj for obj in Model.objects.all()}
objects_ordered = [pk2obj[pk] for pk in pk_list]

pkg2obj is mapping between pk and model instance object. To make a dictionary I used dictionary comprehension.

If you want to omit deleted objects:

objects_ordered = [pk2obj[pk] for pk in pk_list if pk in pk2obj]

Else if you want to replace deleted objects with default value (None in following code):

objects_ordered = [pk2obj.get(pk, None) for pk in pk_list]
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could you explain a little about how it works, I have never seen such syntax before especially: objects_ordered = [pk2obj[pk] for pk in pk_list] –  Below the Radar Aug 13 '13 at 15:03
    
Do you think your solution would work if an object.pk that is in pk_list doesnt exist (if the object was deleted elsewhere for instance) because I would like to save the pk_list in a model field –  Below the Radar Aug 13 '13 at 15:07
    
@Burton449, Current code raise KeyError in such case. If object was deleted it should be omitted? or replaced by default value like None? –  falsetru Aug 13 '13 at 15:08
    
It should be omitted –  Below the Radar Aug 13 '13 at 15:10
1  
@Burton449, I updated the answer. –  falsetru Aug 13 '13 at 15:12

I've had to solve this exact problem before.

If you want the user to be able to reorder them into a user-defined order, you can easily define a field to store this order.

As you say, initially, you could serve them in order according to id or an upload_date DateTimeField. But you could also have an PositiveIntegerField in the model, named position or order, to represent the user-defined order.

class MediaItem(models.Model):
    user = models.ForeignKey(User)
    upload_date = models.DateTimeField(auto_now_add = True)
    position = models.PositiveIntegerField()

Whenever a user changes the order on the frontend, the JS can send the new order as an array of objects (ie. new_order = [{"pk":3, "position":1}, {"pk":1, "position":2}, {"pk":2, "position":3}]). The view can look up each instance by pk, and change the position:

for obj in new_order:
    media_item = MediaItem.objects.get(pk=obj['pk'])
    media_item.position = obj['position']
    media_item.save()

Then always query using

objects_ordered.objects.order_by('position')

That's how we managed to do it. If you have more specific questions regarding this approach, feel free to ask in the comments.

Edit:

If the same object can be a member of many different groups or lists, and you want to store the position of the membership within that list, you can achieve this using a through model. A through model is useful when you need to store data that relates to the relationship between two objects that are related. In addition to the MediaItem class shown above, this is what your other models would look like:

class Album(models.Model):
    media_items = models.ManyToManyField(MediaItem,
                                         related_name = 'album_media_items',
                                         through = 'Membership')

class Membership(models.Model):
    album = models.ForeignKey(Album,
                              related_name = 'album')
    media_item = models.ForeignKey(MediaItem,
                                   related_name = 'media_item')
    date = models.DateTimeField(auto_now_add = True)
    position = models.PositiveIntegerField()

Then, you could query the Membership instances, instead of the MediaItem instances.

# get id of list, or album...
alb = Album.objects.get(pk=id_of_album)
media_items = Membership.objects.filter(album=alb).order_by('position')
for item in media_items:
    # return the items, or do whatever...
    # keep in mind they are now in the user-defined order
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thank you for your solution, the only thing I am not sure about it is that in my situation there would be many different positions for each items to save, because there would be many lists to order with the same items. Thats why I prefer to save the position in a List Model instead of Item model field. –  Below the Radar Aug 13 '13 at 15:40
    
@Burton449 Ah, wow. Your situation is even more similar to the one we had to solve! You can store the "membership" in a through model. I'll edit my answer to show how it can be done. –  sgarza62 Aug 13 '13 at 15:47
    
very nice! thank you (i gave you +30) –  Below the Radar Aug 13 '13 at 16:22
    
@Burton449 Sure thing, hope it was helpful –  sgarza62 Aug 13 '13 at 17:03
    
I can't figure what strategy would be the best to populate the position field, do you use hidden fields and a jquery function? Can you elaborate a little on that? Thank you –  Below the Radar Aug 13 '13 at 19:24

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