64

here is the models page

In this picture, only the title shows up on here, I used:

def __unicode__(self):
    return self.title;  

here is the each individual objects

How do I show all these fields?

How do I show all the fields in each Model page?

2
  • 1
    Do you mean all the child fields from other models?
    – Amirshk
    May 10, 2012 at 22:29
  • @Amirshk I think so? If my model has (username, age, gender, fav_genre, warning), I use "def __unicode__(self): return self.username + self.fav_genre" and this will show me whatver is returned. I want the page to show a "table" of all the fields in column form,, if that makes any sense. May 10, 2012 at 22:58

12 Answers 12

92

If you want to include all fields without typing all fieldnames, you can use

list_display = BookAdmin._meta.get_all_field_names()

The drawback is, the fields are in sorted order.

Edit:

This method has been deprecated in Django 1.10 See Migrating from old API for reference. Following should work instead for Django >= 1.9 for most cases -

list_display = [field.name for field in Book._meta.get_fields()]
6
  • 11
    you should pull the field names from the model list_display = Book._meta.get_all_field_names()
    – Andrew
    Jan 31, 2014 at 22:16
  • 1
    This looks like a better solution to me. Simple, easy and quick. Mar 17, 2014 at 19:21
  • It will raise "BookAdmin" is not defined.
    – ramwin
    Jul 4, 2017 at 2:20
  • 1
    Starting from Django 1.10, this wont work. I added an updated answer. Jul 18, 2017 at 21:02
  • 1
    Will raise AttributeError for ManyToOneRel.
    – Cloud
    May 23, 2018 at 14:44
77

By default, the admin layout only shows what is returned from the object's unicode function. To display something else you need to create a custom admin form in app_dir/admin.py.

See here: https://docs.djangoproject.com/en/dev/ref/contrib/admin/#django.contrib.admin.ModelAdmin.list_display

You need to add an admin form, and setting the list_display field.

In your specific example (admin.py):

class BookAdmin(admin.ModelAdmin):
    list_display = ('title', 'author', 'price')
admin.site.register(Book, BookAdmin)
3
45

If you want to include all but the ManyToManyField field names, and have them in the same order as in the models.py file, you can use:

list_display = [field.name for field in Book._meta.fields if field.name != "id"]

As you can see, I also excluded the id.

If you find yourself doing this a lot, you could create a subclass of ModelAdmin:

class CustomModelAdmin(admin.ModelAdmin):
    
    def __init__(self, model, admin_site):
        self.list_display = [field.name for field in model._meta.fields if field.name != "id"]
        super(CustomModelAdmin, self).__init__(model, admin_site)

and then just inherit from that:

class BookAdmin(CustomModelAdmin):
    pass

or you can do it as a mixin:

class CustomModelAdminMixin(object):

    def __init__(self, model, admin_site):
        self.list_display = [field.name for field in model._meta.fields if field.name != "id"]
        super(CustomModelAdminMixin, self).__init__(model, admin_site)

class TradeAdmin(CustomModelAdminMixin, admin.ModelAdmin):
    pass

The mixin is useful if you want to inherit from something other than admin.ModelAdmin.

3
  • Thank you! This is an extremely useful mixin. It is very sub-optimal otherwise needing to manage new/stale/changed model fields in admin.py all the time. Feb 26, 2017 at 13:13
  • 1
    I like being able to edit on the change list also, and this is easily done with one more line: self.list_editable = [field.name for field in model._meta.fields if field.editable]. I exclude fields with editable=False. Personally I leave in the id field, so tweak your code accordingly. Feb 26, 2017 at 14:40
  • Can I do this for all my models by default without writing a dummy BookAdmin class?
    – WarLord
    Mar 29, 2017 at 16:53
18

I found OBu's answer here to be very useful for me. He mentions:

The drawback is, the fields are in sorted order.

A small adjustment to his method solves this problem as well:

list_display  = [f.name for f in Book._meta.fields]

Worked for me.

2
  • 1
    Simple and easy way. Thank you
    – ramwin
    Jul 4, 2017 at 2:22
  • which one is documentation for this? I cannot find
    – cikatomo
    Dec 10, 2020 at 18:50
11

The problem with most of these answers is that they will break if your model contains ManyToManyField or ForeignKey fields.

For the truly lazy, you can do this in your admin.py:

from django.contrib import admin
from my_app.models import Model1, Model2, Model3


@admin.register(Model1, Model2, Model3)
class UniversalAdmin(admin.ModelAdmin):
    def get_list_display(self, request):
        return [field.name for field in self.model._meta.concrete_fields]
1
  • Awesome, thanks! Just a note for self: if used with import, the code looks like this for model in [Model1, Model2, Model3]: admin.site.register(model, UniversalAdmin) Feb 6, 2021 at 12:20
9

Many of the answers are broken by Django 1.10. For version 1.10 or above, this should be

list_display = [f.name for f in Book._meta.get_fields()]

Docs

1
  • getting error TypeError __call__() missing 1 required keyword-only argument: 'manager'. get_fields() returns all fields including releted fields. using model._meta.fields works but it doesn't cover all fields Apr 21 at 16:52
5

Here is my approach, will work with any model class:

MySpecialAdmin = lambda model: type('SubClass'+model.__name__, (admin.ModelAdmin,), {
    'list_display': [x.name for x in model._meta.fields],
    'list_select_related': [x.name for x in model._meta.fields if isinstance(x, (ManyToOneRel, ForeignKey, OneToOneField,))]
})

This will do two things:

  1. Add all fields to model admin
  2. Makes sure that there is only a single database call for each related object (instead of one per instance)

Then to register you model:

admin.site.register(MyModel, MySpecialAdmin(MyModel))

Note: if you are using a different default model admin, replace 'admin.ModelAdmin' with your admin base class

1
  • Please include the imports :)
    – Loïc
    Aug 23, 2019 at 17:29
3

Show all fields:

list_display = [field.attname for field in BookModel._meta.fields]
1
  • sorry, my mistake
    – cikatomo
    Dec 10, 2020 at 18:46
2

Every solution found here raises an error like this

The value of 'list_display[n]' must not be a ManyToManyField.

If the model contains a Many to Many field.

A possible solution that worked for me is:

list_display = [field.name for field in MyModel._meta.get_fields() if not x.many_to_many]

1

I like this answer and thought I'd post the complete admin.py code (in this case, I wanted all the User model fields to appear in admin)

from django.contrib import admin
from django.contrib.auth.models import User
from django.db.models import ManyToOneRel, ForeignKey, OneToOneField


MySpecialAdmin = lambda model: type('SubClass'+model.__name__, (admin.ModelAdmin,), {
    'list_display': [x.name for x in model._meta.fields],
    'list_select_related': [x.name for x in model._meta.fields if isinstance(x, (ManyToOneRel, ForeignKey, OneToOneField,))]
})

admin.site.unregister(User)
admin.site.register(User, MySpecialAdmin(User))
1

list_display = [field.name for field in Book._meta.get_fields()]

This should work even with python 3.9

happy coding

1
  • in which django version this is working? this solution has also been provided before and it is not working TypeError __call__() missing 1 required keyword-only argument: 'manager' Apr 21 at 16:53
0

I'm using Django 3.1.4 and here is my solution.

I have a model Qualification

model.py

from django.db import models

TRUE_FALSE_CHOICES = (
    (1, 'Yes'),
    (0, 'No')
)


class Qualification(models.Model):
    qual_key = models.CharField(unique=True, max_length=20)
    qual_desc = models.CharField(max_length=255)
    is_active = models.IntegerField(choices=TRUE_FALSE_CHOICES)
    created_at = models.DateTimeField()
    created_by = models.CharField(max_length=255)
    updated_at = models.DateTimeField()
    updated_by = models.CharField(max_length=255)

    class Meta:
        managed = False
        db_table = 'qualification'

admin.py

from django.contrib import admin
from models import Qualification


@admin.register(Qualification)
class QualificationAdmin(admin.ModelAdmin):
    list_display = [field.name for field in Qualification._meta.fields if field.name not in ('id', 'qual_key', 'qual_desc')]
    list_display.insert(0, '__str__')

here i am showing all fields in list_display excluding 'id', 'qual_key', 'qual_desc' and inserting '__str__' at the beginning.

This answer is helpful when you have large number of modal fields, though i suggest write all fields one by one for better functionality.

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