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I have the following model definitions, see below.

models.py:

class Userstatus(models.Model):
    label = models.CharField(...)
    description = models.CharField(...)


class Foo(models.Model):
    title = models.CharField(...)
    visibility = models.ManyToManyField(Userstatus)

admin.py:

class FooAdmin(ModelAdmin):
    list_display = ('id', 'title', )

admin.site.register(Foo, FooAdmin)

In the admin list view of "Foo" via FooAdmin the list_display list should include the "label"s from Userstatus so a column for each label will appear. I could create and call a method that creates the list for list_display.

But then no properties or callables actually exist that would allow me to return let's say a boolean for each label column, based on the visibility-many-to-many field.

What are my options? Should I try to intercept a callable or attribute request to Foo and create a boolean result on the fly? (Hitting the DB too often or making the columns sortable is another problem, but first things first).

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Can you give more details about what a "boolean based on the visibility field" would look like? –  Daniel Roseman Jul 22 '11 at 12:27
    
I want to dynamically add columns to the list view (=list_display). The columns are essentially the contents of the "label" CharFields in "Userstatus". If a certain Foo item has references on say two labels "A" and "B" I will visualize that reference with a boolean attribute and let Django use it's fancy "on" and "off" icons, like in the admin site documentation. –  initall Jul 22 '11 at 12:33

2 Answers 2

Django documentation says ...

ManyToManyField fields aren't supported, because that would entail executing a separate SQL statement for each row in the table. If you want to do this nonetheless, give your model a custom method, and add that method's name to list_display. (See below for more on custom methods in list_display.)

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I know that part. But I have to construct the list_display-list dynamically based on the values of another model. In theory if I could ad the same custom method with a parameter that would be fine. But AFAIK that is not possible. –  initall Jul 22 '11 at 13:26
    
If you need a column for every status, then I guess you need a custom method on the FOO model for every Userstatus. Will there be a fixed number of Userstatuses or at least a maximum number of them? –  jcfollower Jul 22 '11 at 13:36
    
If the number of items is known and fixed I could use the CHOICE tupel approach and custom methods, but that's no option. –  initall Jul 22 '11 at 13:43
    
I also thought about that one column that simply computes the statuses - as a last resort. Sorting wouldn't work then (well, it wouldn't work out of the box here either, as mentioned) and a list_filter for statuses is not that informative here. –  initall Jul 22 '11 at 14:01
    
How about creating a completely custom view and template? –  jcfollower Jul 22 '11 at 15:23

Are you sure you want Userstatus to be a database table and not just a list of a few statuses that could be accessed through a "choices" tuple?

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Yes, I'm sure. A static choice tupel is no option in my situation. –  initall Jul 22 '11 at 13:24

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