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how to fetch only the newest rows from the model in django and show it as a table?

views.py
def inventory_display(request):
if request.user.vendor == True and request.user.vendor_approval == True:
vendor = CustomUser.objects.get(id=request.user.id)
vendor_product = vendor.vendor_user.all()
items = vendor_product[0].product_variants.all()
return render(request, 'vendor/inventory_display.html',{'vendor_product':vendor_product, 'items':items})
Html
{% for product in vendor_product %}
{% for item in items %}
<tr>
<th scope="row">{{forloop.counter}}</th>
<td>{{product.created|date:"d-m-y"}}</td>
<td>{{product.edited|date:"d-m-y"}}</td>
<td>{{product.vendoruser}}</td>
<td>{{product.product_id}}</td>
<td>{{item.item_num}}</td>
<td>{{item.variant_value}}</td>
<td>{{item.initial_stock}}</td>
<td>2</td>
<td>{{item.approval_status}}</td>
<td>{{item.approved_date|date:"d-m-y"}}</td>
<td>{{product.approved_by}}</td>
</tr>
{% endfor %}
{% endfor %}
I am fetching data from 3 different models. I do fetch all the data from these models every time. What if I want to get the newest row only whenever the new row is added? I have included the User, Product, Productvariants models in the question.
I am showing data in the template by for loop. Without forloop i am getting repeated data in template, I want the latest data that will not exist in the template.

You can get the latest inserted item in multiple ways
last() method
vendor = CustomUser.objects.last()
order_by() method
vendor = CustomUser.objects.order_by('-id').first()
latest() method
vendor = CustomUser.objects.latest('id')

add this field in your model
created_at = models.DateTimeField(auto_now_add=True)
it will automatically add timestamp whenever object is created. and when you are geting objects
use this query
ModelName.objects.all().order_by('-created_at')

Try adding the index number in your views:
def inventory_display(request):
if request.user.vendor == True and request.user.vendor_approval == True:
vendor = CustomUser.objects.get(id=request.user.id)
vendor_product = vendor.vendor_user.all()[0]
items = vendor_product[0].product_variants.all()[0]
return render(request, 'vendor/inventory_display.html',{'vendor_product':vendor_product, 'items':items})
And remove the for loop from the template:
<tr>
<th scope="row">1</th>
<td>{{vendor_product.created|date:"d-m-y"}}</td>
<td>{{vendor_product.edited|date:"d-m-y"}}</td>
<td>{{vendor_product.vendoruser}}</td>
<td>{{product.product_id}}</td>
<td>{{items.item_num}}</td>
<td>{{items.variant_value}}</td>
<td>{{items.initial_stock}}</td>
<td>2</td>
<td>{{items.approval_status}}</td>
<td>{{items.approved_date|date:"d-m-y"}}</td>
<td>{{vendor_product.approved_by}}</td>
</tr>

Unable to iterate a dictionary in django templating language

I have not been able to iterate (key and values) in a nested dictionary generated from views.py where
context = { "orders_current": orders_current }
with
return render(request, "orders/cart.html", context)
orders_current is a result from a query in views.py:
orders_current = Orders.objects.values('def', 'abc', 'toppings')
'toppings' is stored in the database as JSON data but converted (loads) back to a dictionary in the class method:
def __str__(self)
in models.py. I did this since I read somewhere this is a recommend way of storing a dictionary in the postgresql.
Note that orders_current has multiple and nested dictionaries e.g.:
< QuerySet [{'category_name': 'Regular Pizza', 'size': 'small', 'item_name': 'Cheese', 'item_price': Decimal('12.70'), 'toppings_selected': True, 'toppings': '{"Mushrooms": 1.5, "Canadian Bacon": 1.5}'}] >
The dictionary {{ order.toppings }} passed to the html, cart.html is shown to have the value (in verbatim) e.g.:
{"Mushrooms": 1.5, "Canadian Bacon": 1.5}
So my latest attempt to extract the topping name and the corresponding price (key, value) from the dictionary is:
{% for order in orders_current %}
...
<table>
{% for name, price in order.toppings.items %}
<tr>
<td>{{ name }}:</td>
<td>${{ price }}</td>
</tr>
{% endfor %}
</table>
I got no values (name, price)from this code snippet.
Based on my web searches, I've tried almost all variations of the above and with different ways of setting up the context for transfer. Any help will be appreciated.

Based on your queryset:
< QuerySet [{'category_name': 'Regular Pizza', 'size': 'small', 'item_name': 'Cheese', 'item_price': Decimal('12.70'), 'toppings_selected': True, 'toppings': '{"Mushrooms": 1.5, "Canadian Bacon": 1.5}'}] >
order.toppings is a string, try to convert it to dictionary in the views:
import ast
for order in orders_current:
order["toppings"] = ast.literal_eval(order["toppings"])
Here are different ways to convert string dictionary to dictionary.
https://www.geeksforgeeks.org/python-convert-string-dictionary-to-dictionary/
After you convert it, it should work in the template.

Get related column on .annotate() data Django

I created this simple set of data to illustrate my point. It is a simple model with no further relations to any other model.
I need to group the data above by topicid, find the max date for each group and then get the author for that date.
info = TempModel.objects
.values('topic')
.annotate( max=Max('date'))
.order_by('-max')
Iterating through this in a template,
<table>
{% for item in info %}
<tr>
<td>{{ item.topicid }}</td>
<td>{{ item.max }}</td>
<td>{{ item.author }}</td>
</tr>
{% endfor %}
</table>
produces,
How do I display the 'author' column for each max date?
I can do this with a raw sql query like this,
info = list(TempModel.objects
.raw('SELECT *, max(date) AS max
FROM crudapp_tempmodel
GROUP BY topicid
ORDER BY date DESC'))
But I want to do it using a Django query.
The output I am looking for is,
If this is not possible with a Django query I would like to know.
Thanks,

A solution is to amalgamate another query which compares date from one query with max from the other.
Here is the view that does this,
def temp(request):
info2 = TempModel.objects.all()
info = TempModel.objects
.values('topic')
.annotate( max=Max('date'))
.order_by('-max')
columnlist = []
for item in info2:
columnlist.append([item])
for item in info:
for i in range(len(columnlist)):
if item['max'] == columnlist[i][0].date:
item['author'] = columnlist[i][0].author
return render(request, 'template.html', {'info': info, 'info2': info2})

How do I display related many-to-many fields as a table in Django template?

I have a 2 models 'Member' and 'Event'.
They are in a 'ManyToMany' relationship.
Now I want to create a view that shows for each member when he was at an event and when not, in an html table like that:
Name Event1 Event2 Event3 ...
Member1 x x ...
Member2 x x x ...
Member3 x x
Member4 x x ...
.
.
.
and so on.
Problem is now that the amount of events is constantly increasing.
My only idea is to create a html table in the view but this is not very optimal.
Is there a possibility to manually create querysets, which contain first a member, then all events follow and then comes the next member again followed by all events? and so on..
Or is there a real easy way managed by Django to access the manytomany field in a template
for further reference are here my models:
class Member(models.Model):
KAPELLMEISTER='KM'
FLOETE='FL'
KLARINETTE='KL'
SAXOPHON='SX'
FLUEGELHORN='FH'
TENORHORN='TH'
HORN='HR'
TROMPETE='TR'
POSAUNE='PS'
TUBA='TU'
SCHLAGZEUG='SZ'
INSTRUMENTS=(
(KAPELLMEISTER,'Kapellmeister'),
(FLOETE,'Floete'),
(KLARINETTE,'Klarinette'),
(SAXOPHON,'Saxophon'),
(FLUEGELHORN,'Fluegelhorn'),
(TENORHORN,'Tenorhorn'),
(HORN,'Horn'),
(TROMPETE,'Trompete'),
(POSAUNE,'Posaune'),
(TUBA,'Tuba'),
(SCHLAGZEUG,'Schlagzeug')
)
name = models.CharField('Name',max_length=200)
instrument = models.CharField('Instrument',
max_length=2,
choices=INSTRUMENTS,
null=False)
bool_musikschueler = models.BooleanField('Musikschueler')
bool_student = models.BooleanField('Student')
def __unicode__(self):
return self.name
#classmethod
def create(cls, name, instrument, musikschueler, student):
member = cls(name=name, instrument=instrument, bool_musikschueler=musikschueler, bool_student = student)
return member
class Event(models.Model):
PROBE='PR'
BEGRAEBNIS='BG'
MARSCHMUSIK='MM'
KONZERT='KO'
WECKRUF='WR'
TYPES=(
(PROBE,'Probe'),
(BEGRAEBNIS,'Begraebnis'),
(MARSCHMUSIK,'Marschmusik'),
(KONZERT,'Konzert'),
(WECKRUF,'Weckruf')
)
date = models.DateField('Datum')
type = models.CharField(max_length=2,
choices=TYPES,
default=PROBE)
description = models.TextField(max_length=200, blank=True)
anwesend = models.ManyToManyField(Member)#TODO: Widget fuer Django Admin aendern
def __unicode__(self):
return str(self.date.strftime("%Y-%m-%d"))+" , "+self.type
#classmethod
def create(cls, date, type, description):
event = cls(date=date, type=type, description=description)
return event
and my html template:
<table>
<tr><th>Name</th>
{% for event in all_events %}
<th>{{event}}</th>
{% endfor %}
</tr>
{% for member in all_members %}
<tr>
<td>{{ member.name }}</td>
<td>{{ event.anwesend }}</td>
</tr>
{% endfor %}
</table>
and my experimental view:
def statistiken(request):
all_members = Member.objects.all()
all_events = Event.objects.all()
for member in all_members:
anwesend=member.name+": "
for event in member.event_set.all():
anwesend+=str(event)
print(anwesend)
context = {'all_members': all_members,
'all_events' : all_events}
return render(request, 'anwesenheitsapp/statistiken.html', context)

Update related to your comment:
from itertools import count, repeat
def statistiken(request):
# Get all members
members = Member.objects.all()
# Get maximum number of related events
max_n_events = max(member.event_set.all().count() for member in members)
# Create a list to hold table data
table_data = []
for member in members:
# Get all related events for the member
events = member.event_set.all()
# Get number of events
n = events.count()
# Append a iterator with member instance, event instances, and
# repeating empty strings to fill up the table
table_data.append(chain([member], events, repeat('', max_n_events-n)))
context = {'table_data': table_data}
return render(request, 'anwesenheitsapp/statistiken.html', context)
and your template to this:
<table>
<tr>
{% for row in table_data %}
{% for col in row %}
<td>{{ col }}</td>
{% endfor %}
{% endfor %}
</tr>
</table>
The strings in the table will be the result of __unicode__() for your member and events, followed by empty cells.
(old answer)
To access all related Events from a Member instance, use event_set.all().
Your template could look something like this:
<table>
{% for member in all_members %}
<td>{{ member }}</td>
{% for event in member.event_set.all %}
<td>{{ event }}</td>
{% endfor %}
{% endfor %}
</table>
Which should produce this table
| member0 | related_event00 | related_event01 | ... | related_event_0n|
| member1 | related_event10 | related_event11 | ... | related_event_1n|
| .... |
| memberm | related_eventm0 | related_eventm1 | ... | related_event_mn|
(n could be different from member to member of course)

Ordering admin.ModelAdmin objects

Let's say I have my pizza application with Topping and Pizza classes and they show in Django Admin like this:
PizzaApp
-
Toppings >>>>>>>>>> Add / Change
Pizzas >>>>>>>>>> Add / Change
But I want them like this:
PizzaApp
-
Pizzas >>>>>>>>>> Add / Change
Toppings >>>>>>>>>> Add / Change
How do I configure that in my admin.py?

A workaround that you can try is tweaking your models.py as follows:
class Topping(models.Model):
.
.
.
class Meta:
verbose_name_plural = "2. Toppings"
class Pizza(models.Model):
.
.
.
class Meta:
verbose_name_plural = "1. Pizzas"
Not sure if it is against the django's best practices but it works (tested with django trunk).
Good luck!
PS: sorry if this answer was posted too late but it can help others in future similar situations.

If you want to solve this in 10 seconds just use spaces in verbose_name_plural, for example:
class Topping(models.Model):
class Meta:
verbose_name_plural = " Toppings" # 2 spaces
class Pizza(models.Model):
class Meta:
verbose_name_plural = " Pizzas" # 1 space
Of course it isn't ellegant but may work for a while before we get a better solution.

I eventually managed to do it thanks to this Django snippet, you just need to be aware of the ADMIN_REORDER setting:
ADMIN_REORDER = (
('app1', ('App1Model1', 'App1Model2', 'App1Model3')),
('app2', ('App2Model1', 'App2Model2')),
)
app1 must not be prefixed with the project name, i.e. use app1 instead of mysite.app1.

There's now a nice Django package for that:
https://pypi.python.org/pypi/django-modeladmin-reorder

Answer in June 2018
This answer is similar to Vasil's idea
I tried to solve similar problems, and then I saw such the fragment.
I made some modifications based on this clip. The code is as follows.
# myproject/setting.py
...
# set my ordering list
ADMIN_ORDERING = [
('pizza_app', [
'Pizzas',
'Toppings'
]),
]
# Creating a sort function
def get_app_list(self, request):
app_dict = self._build_app_dict(request)
for app_name, object_list in ADMIN_ORDERING:
app = app_dict[app_name]
app['models'].sort(key=lambda x: object_list.index(x['object_name']))
yield app
# Covering django.contrib.admin.AdminSite.get_app_list
from django.contrib import admin
admin.AdminSite.get_app_list = get_app_list
...
Note that the sorting list used in this sorting function contains the sorting of all app and its modules in the system. If you don't need it, please design the sorting function according to your own needs.
It works great on Django 2.0

This is actually covered at the very bottom of Writing your first Django app, part 7.
Here's the relevant section:
Customize the admin index page
On a similar note, you might want to
customize the look and feel of the
Django admin index page.
By default, it displays all the apps
in INSTALLED_APPS that have been
registered with the admin application,
in alphabetical order. You may want to
make significant changes to the
layout. After all, the index is
probably the most important page of
the admin, and it should be easy to
use.
The template to customize is
admin/index.html. (Do the same as with
admin/base_site.html in the previous
section -- copy it from the default
directory to your custom template
directory.) Edit the file, and you'll
see it uses a template variable called
app_list. That variable contains every
installed Django app. Instead of using
that, you can hard-code links to
object-specific admin pages in
whatever way you think is best.

Here's the snippet Emmanuel used, updated for Django 1.8:
In templatetags/admin_reorder.py:
from django import template
from django.conf import settings
from collections import OrderedDict
register = template.Library()
# from http://www.djangosnippets.org/snippets/1937/
def register_render_tag(renderer):
"""
Decorator that creates a template tag using the given renderer as the
render function for the template tag node - the render function takes two
arguments - the template context and the tag token
"""
def tag(parser, token):
class TagNode(template.Node):
def render(self, context):
return renderer(context, token)
return TagNode()
for copy_attr in ("__dict__", "__doc__", "__name__"):
setattr(tag, copy_attr, getattr(renderer, copy_attr))
return register.tag(tag)
#register_render_tag
def admin_reorder(context, token):
"""
Called in admin/base_site.html template override and applies custom ordering
of apps/models defined by settings.ADMIN_REORDER
"""
# sort key function - use index of item in order if exists, otherwise item
sort = lambda order, item: (order.index(item), "") if item in order else (
len(order), item)
if "app_list" in context:
# sort the app list
order = OrderedDict(settings.ADMIN_REORDER)
context["app_list"].sort(key=lambda app: sort(order.keys(),
app["app_url"].strip("/").split("/")[-1]))
for i, app in enumerate(context["app_list"]):
# sort the model list for each app
app_name = app["app_url"].strip("/").split("/")[-1]
if not app_name:
app_name = app["name"].lower()
model_order = [m.lower() for m in order.get(app_name, [])]
context["app_list"][i]["models"].sort(key=lambda model:
sort(model_order, model["admin_url"].strip("/").split("/")[-1]))
return ""
In settings.py:
ADMIN_REORDER = (
('app1', ('App1Model1', 'App1Model2', 'App1Model3')),
('app2', ('App2Model1', 'App2Model2')),
)
(insert your own app names in here. Admin will place missing apps or models at the end of the list, so long as you list at least two models in each app.)
In your copy of base_site.html:
{% extends "admin/base.html" %}
{% load i18n admin_reorder %}
{% block title %}{{ title }} | {% trans 'Django site admin' %}{% endblock %}
{% block branding %}
{% admin_reorder %}
<h1 id="site-name">{% trans 'Django administration' %}</h1>
{% endblock %}
{% block nav-global %}{% endblock %}

ADMIN_ORDERING = {
"PizzaApp": [
"Pizzas",
"Toppings",
],
}
def get_app_list(self, request):
app_dict = self._build_app_dict(request)
for app_name, object_list in app_dict.items():
if app_name in ADMIN_ORDERING:
app = app_dict[app_name]
app["models"].sort(
key=lambda x: ADMIN_ORDERING[app_name].index(x["object_name"])
)
app_dict[app_name]
yield app
else:
yield app_dict[app_name]
admin.AdminSite.get_app_list = get_app_list
This solution works for me, modified the one from 林伟雄.
You get to keep the default auth ordering AND specify your own.

If you're using Suit for the AdminSite you can do menu customization using the menu tag.

I was looking for a simple solution where I could order the apps by their name in the admin panel. I came up with the following template tag:
from django import template
from django.conf import settings
register = template.Library()
#register.filter
def sort_apps(apps):
apps.sort(
key = lambda x:
settings.APP_ORDER.index(x['app_label'])
if x['app_label'] in settings.APP_ORDER
else len(apps)
)
print [x['app_label'] for x in apps]
return apps
Then, just override templates/admin/index.html and add that template tag:
{% extends "admin/index.html" %}
{% block content %}
{% load i18n static sort_apps %}
<div id="content-main">
{% if app_list %}
{% for app in app_list|sort_apps %}
<div class="app-{{ app.app_label }} module">
<table>
<caption>
{{ app.name }}
</caption>
{% for model in app.models %}
<tr class="model-{{ model.object_name|lower }}">
{% if model.admin_url %}
<th scope="row">{{ model.name }}</th>
{% else %}
<th scope="row">{{ model.name }}</th>
{% endif %}
{% if model.add_url %}
<td>{% trans 'Add' %}</td>
{% else %}
<td> </td>
{% endif %}
{% if model.admin_url %}
<td>{% trans 'Change' %}</td>
{% else %}
<td> </td>
{% endif %}
</tr>
{% endfor %}
</table>
</div>
{% endfor %}
{% else %}
<p>{% trans "You don't have permission to edit anything." %}</p>
{% endif %}
</div>
{% endblock %}
Then customized the APP_ORDER in settings.py:
APP_ORDER = [
'app1',
'app2',
# and so on...
]
It works great on Django 1.10

Here's a version that gives you a bit more flexibility, namely:
You can partially define apps ordering, leaving the rest for Django to add to the list
You can specify order on modules, or avoid defining it, by using '*' instead
Your defined apps ordering will appear first, then all the rest of apps appended after it
To check the name of your app, either look at the file apps.py inside the app's directory and check for name property of the class Config(AppConfi): or in case that is not present, use the name of the directory for the app in the project.
Add this code somewhere in your settings.py file:
# ======[Setting the order in which the apps/modules show up listed on Admin]========
# set my ordering list
ADMIN_ORDERING = [
('crm', '*'),
('property', '*'),
]
# Creating a sort function
def get_app_list(self, request):
"""
Returns a sorted list of all the installed apps that have been
registered in this site.
Allows for:
ADMIN_ORDERING = [
('app_1', [
'module_1',
'module_2'
]),
('app_2', '*'),
]
"""
app_dict = self._build_app_dict(request)
# Let's start by sorting the apps alphabetically on a list:
app_list = sorted(app_dict.values(), key=lambda x: x['name'].lower())
# Sorting the models alphabetically within each app.
for app in app_list:
if app['app_label'] in [el[0] for el in ADMIN_ORDERING]:
app_list.remove(app)
else:
app['models'].sort(key=lambda x: x['name'])
# Now we order the app list in our defined way in ADMIN_ORDERING (which could be a subset of all apps).
my_ordered_apps = []
if app_dict:
for app_name, object_list in ADMIN_ORDERING:
app = app_dict[app_name]
if object_list == '*':
app['models'].sort(key=lambda x: x['name'])
else:
app['models'].sort(key=lambda x: object_list.index(x['object_name']))
my_ordered_apps.append(app)
# Now we combine and arrange the 2 lists together
my_ordered_apps.extend(app_list)
return my_ordered_apps
# Covering django.contrib.admin.AdminSite.get_app_list
from django.contrib import admin
admin.AdminSite.get_app_list = get_app_list
# =========================================
This is nothing more than overwriting the function defined by Django on the file python2.7/site-packages/django/contrib/admin/sites.py.
That get_app_list method of class AdminSite(object): produces a data structure with all apps on the project, including for Django's auth app, such as:
[
{
"app_label": "auth",
"app_url": "/admin/auth/",
"has_module_perms": "True",
"models": [
{
"add_url": "/admin/auth/group/add/",
"admin_url": "/admin/auth/group/",
"name": "<django.utils.functional.__proxy__ object at 0x11057f990>",
"object_name": "Group",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
},
{
"add_url": "/admin/auth/user/add/",
"admin_url": "/admin/auth/user/",
"name": "<django.utils.functional.__proxy__ object at 0x11057f710>",
"object_name": "User",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
}
],
"name": "<django.utils.functional.__proxy__ object at 0x108b81850>"
},
{
"app_label": "reservations",
"app_url": "/admin/reservations/",
"has_module_perms": "True",
"models": [
{
"add_url": "/admin/reservations/reservationrule/add/",
"admin_url": "/admin/reservations/reservationrule/",
"name": "<django.utils.functional.__proxy__ object at 0x11057f6d0>",
"object_name": "ReservationRule",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
}
],
"name": "Availability"
},
{
"app_label": "blog",
"app_url": "/admin/blog/",
"has_module_perms": "True",
"models": [
{
"add_url": "/admin/blog/category/add/",
"admin_url": "/admin/blog/category/",
"name": "Categories",
"object_name": "Category",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
},
{
"add_url": "/admin/blog/post/add/",
"admin_url": "/admin/blog/post/",
"name": "<django.utils.functional.__proxy__ object at 0x11057f110>",
"object_name": "Post",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
},
{
"add_url": "/admin/blog/tag/add/",
"admin_url": "/admin/blog/tag/",
"name": "<django.utils.functional.__proxy__ object at 0x11057f390>",
"object_name": "Tag",
"perms": {
"add": "True",
"change": "True",
"delete": "True"
}
}
],
"name": "Blog"
},
(...)
]

This is just a wild stab in the dark, but is there any chance that the order in which you call admin.site.register(< Model class >, < ModelAdmin class >) can determine the display order? Actually, I doubt that would work because I believe Django maintains a registry of the Model -> ModelAdmin objects implemented as a standard Python dictionary, which does not maintain iteration ordering.
If that doesn't behave the way you want, you can always play around with the source in django/contrib/admin. If you need the iteration order maintained, you could replace the _registry object in the AdminSite class (in admin/sites.py) with a UserDict or DictMixin that maintains insertion order for the keys. (But please take this advice with a grain of salt, since I've never made these kinds of changes myself and I'm only making an educated guess at how Django iterates over the collection of ModelAdmin objects. I do think that django/contrib/admin/sites.py is the place to look for this code, though, and the AdminSite class and register() and index() methods in particular are what you want.)
Obviously the nicest thing here would be a simple option for you to specify in your own /admin.py module. I'm sure that's the kind of answer you were hoping to receive. I'm not sure if those options exist, though.

My solution was to make subclasses of django.contrib.admin.sites.AdminSite and django.contrib.admin.options.ModelAdmin .
I did this so I could display a more descriptive title for each app and order the appearance of models in each app. So I have a dict in my settings.py that maps app_labels to descriptive names and the order in which they should appear, the models are ordered by an ordinal field I provide in each ModelAdmin when I register them with the admin site.
Although making your own subclasses of AdminSite and ModelAdmin is encouraged in the docs, my solution looks like an ugly hack in the end.

Copy lib\site-packages\django\contrib\admin\templates\admin\index.html template to project1\templates\admin\ directory, where project1 is the name of your project.
In the copied file, i.e. project1\templates\admin\index.html, replace lines:
{% block content %}
...
{% endblock %}
with:
{% block content %}
<div id="content-main">
{% if app_list %}
<div class="module">
<table>
<caption>App 1</caption>
<tr> <th> Model 1 </th> <td>Description of model 1</td> </tr>
<tr> <th> Model 2 </th> <td>Description of model 1</td> </tr>
<tr> <th> <a href="..." >...</a> </th> <td>...</td> </tr>
</table>
</div>
<div class="module">
<table>
<caption>Authentication and authorization</caption>
<tr> <th> <a href="/admin/auth/user/" >Users</a> </th> <td>List of users</td> </tr>
<tr> <th> <a href="/admin/auth/group/" >Groups</a> </th> <td>List of users' groups</td> </tr>
</table>
</div>
{% else %}
<p>{% trans "You don't have permission to view or edit anything." %}</p>
{% endif %}
</div>
{% endblock %}
where:
app1 is the name of your application with models,
modeli is the name of i-th model in app1.
If you defined more than one application with models in your project, then simply add another table in the above index.html file.
Because we change the template, we can freely change its HTML code. For example we can add a description of the models as it was shown above. You can also restore Add and Change links - I deleted them since I think they are redundant.
The answer is a practical demonstration of the solution from Dave Kasper's answer.

custom_admin.py
from django.contrib.admin import AdminSite
class CustomAdminSite(AdminSite):
def get_urls(self):
urls = super(MyAdminSite, self).get_urls()
return urls
def get_app_list(self, request):
app_dict = self._build_app_dict(request)
ordered_app_list = []
if app_dict:
# TODO: change this dict
admin_ordering = {
'app1': ('Model1', 'Model2'),
'app2': ('Model7', 'Model4'),
'app3': ('Model3',),
}
ordered_app_list = []
for app_key in admin_ordering:
app = app_dict[app_key]
app_ordered_models = []
for model_name in admin_ordering[app_key]:
for model in app_dict[app_key]['models']:
if model['object_name'] == model_name:
app_ordered_models.append(model)
break
app['models'] = app_ordered_models
ordered_app_list.append(app)
return ordered_app_list
admin_site = CustomAdminSite()
urls.py
from custom_admin import admin_site
urlpatterns = [
path('admin/', admin_site.urls),
]

Add the below code to your settings.py:
def get_app_list(self, request):
"""
Return a sorted list of all the installed apps that have been
registered on this site.
"""
ordering = {
# for superuser
'Group': 1,
'User': 2,
# fist app
'TopMessage': 101,
'Slider': 102,
'ProductCategory': 103,
'Product': 104,
'ProductPicture': 105,
# 2nd app
'ProductReview': 201,
'Promotion': 202,
'BestSeller': 203,
}
app_dict = self._build_app_dict(request)
app_list = sorted(app_dict.values(), key=lambda x: x['name'].lower())
for app in app_list:
app['models'].sort(key=lambda x: ordering[x['object_name']])
return app_list
admin.AdminSite.get_app_list = get_app_list
And make changes to the ordering dictionary to match your apps and models. That's it.
The benefit of my solution is that it will show the 'auth' models if the user is a superuser.

Django, by default, orders the models in admin alphabetically. So the order of models in Event admin is Epic, EventHero, EventVillain, Event
Instead you want the order to be
EventHero, EventVillain, Epic then event.
The template used to render the admin index page is admin/index.html and the view function is ModelAdmin.index.
def index(self, request, extra_context=None):
"""
Display the main admin index page, which lists all of the installed
apps that have been registered in this site.
"""
app_list = self.get_app_list(request)
context = {
**self.each_context(request),
'title': self.index_title,
'app_list': app_list,
**(extra_context or {}),
}
request.current_app = self.name
return TemplateResponse(request, self.index_template or
'admin/index.html', context)
The method get_app_list, set the order of the models.:
def get_app_list(self, request):
"""
Return a sorted list of all the installed apps that have been
registered in this site.
"""
app_dict = self._build_app_dict(request)
# Sort the apps alphabetically.
app_list = sorted(app_dict.values(), key=lambda x: x['name'].lower())
# Sort the models alphabetically within each app.
for app in app_list:
app['models'].sort(key=lambda x: x['name'])
return app_list
So to set the order we override get_app_list as:
class EventAdminSite(AdminSite):
def get_app_list(self, request):
"""
Return a sorted list of all the installed apps that have been
registered in this site.
"""
ordering = {
"Event heros": 1,
"Event villains": 2,
"Epics": 3,
"Events": 4
}
app_dict = self._build_app_dict(request)
# a.sort(key=lambda x: b.index(x[0]))
# Sort the apps alphabetically.
app_list = sorted(app_dict.values(), key=lambda x: x['name'].lower())
# Sort the models alphabetically within each app.
for app in app_list:
app['models'].sort(key=lambda x: ordering[x['name']])
return app_list
The code app['models'].sort(key=lambda x: ordering[x['name']]) sets the fixed ordering. Your app now looks like this.
Check the Documentation

In Settings.py file setting the order in which the apps/modules show up listed on Admin
set my ordering list
ADMIN_ORDERING = [
('Your_App1', '*'),
('Your_App2', '*'),
]
Creating a sort function below ADMIN_ORDERING
def get_app_list(self, request):
"""
You Can Set Manually Ordering For Your Apps And Models
ADMIN_ORDERING = [
('Your_App1', [
'module_1',
'module_2'
]),
('Your_App2', '*'),
]
"""
app_dict = self._build_app_dict(request)
# Let's start by sorting the apps alphabetically on a list:
app_list = sorted(app_dict.values(), key=lambda x: x['name'].lower())
# Sorting the models alphabetically within each app.
for app in app_list:
if app['app_label'] in [el[0] for el in ADMIN_ORDERING]:
app_list.remove(app)
else:
app['models'].sort(key=lambda x: x['name'])
# Now we order the app list in our defined way in ADMIN_ORDERING (which could be a subset of all apps).
my_ordered_apps = []
if app_dict:
for app_name, object_list in ADMIN_ORDERING:
app = app_dict[app_name]
if object_list == '*':
app['models'].sort(key=lambda x: x['name'])
else:
app['models'].sort(key=lambda x: object_list.index(x['object_name']))
my_ordered_apps.append(app)
# Now we combine and arrange the 2 lists together
my_ordered_apps.extend(app_list)
return my_ordered_apps
# Covering django.contrib.admin.AdminSite.get_app_list
from django.contrib import admin
admin.AdminSite.get_app_list = get_app_list

Quite a simple and self contained approach can be using the decorator pattern to resort your app and modules in this way:
# admin.py
from django.contrib import admin
def app_resort(func):
def inner(*args, **kwargs):
app_list = func(*args, **kwargs)
# Useful to discover your app and module list:
#import pprint
#pprint.pprint(app_list)
app_sort_key = 'name'
app_ordering = {
"APP_NAME1": 1,
"APP_NAME2": 2,
"APP_NAME3": 3,
}
resorted_app_list = sorted(app_list, key=lambda x: app_ordering[x[app_sort_key]] if x[app_sort_key] in app_ordering else 1000)
model_sort_key = 'object_name'
model_ordering = {
"Model1": 1,
"Model2": 2,
"Model3": 3,
"Model14": 4,
}
for app in resorted_app_list:
app['models'].sort(key=lambda x: model_ordering[x[model_sort_key]] if x[model_sort_key] in model_ordering else 1000)
return resorted_app_list
return inner
admin.site.get_app_list = app_resort(admin.site.get_app_list)
This code sorts at the top only the defined keys in the ordering dict, leaving at the bottom all the other.
The approach is clean but it requires get_app_list to be executed before... which is probably not a good idea when performance is important and you have a large app_list.

This has become a lot easier in Django 4.1:
The AdminSite.get_app_list() method now allows changing the order of apps and models on the admin index page.
You can subclass and override this method to change the order the returned list of apps/models.