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Hello At the root page of the admin site where registered models appear, I want to hide several models that are registered to the Django admin.

If I directly unregister those, I am not able to add new records as the add new symbol "+" dissapears.

How can this be done ?

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up vote 68 down vote accepted

Based on x0nix's answer I did some experiments. It seems like returning an empty dict from get_model_perms excludes the model from index.html, whilst still allowing you to edit instances directly.

class MyModelAdmin(admin.ModelAdmin):
    def get_model_perms(self, request):
        """
        Return empty perms dict thus hiding the model from admin index.
        """
        return {}

admin.site.register(MyModel, MyModelAdmin)
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2  
Nice and concise. Thanks! – Mike Meyer Feb 22 '11 at 3:55
    
Agreed. Only that's a problem when I don't want to change the code. What I mean is, I have a base app that I want to keep clean from dependencies on other apps. I keep these dependencies in a derived project-specific app. Now I want the admin interface to only show the derived app, not the base app. Django requires the base app to be listed in settings/INSTALLED_APPS for the derived app to work. Obviously, the base app shouldn't show, but at the same time I don't want to keep it unmodified and reusable.See [here](Stack Exchange/questions/13923968/). – Sven Dec 20 '12 at 20:56
4  
A shorter way: get_model_perms = lambda self, req: {} – Tigran Saluev Aug 19 '13 at 12:53
1  
What if I want to hide a model form a certain userAdmin ? – alireza sanaee Jul 24 '14 at 12:31

Got the same problem, here what I came up with.

Like in previous solution - copy index.html from django to your /admin/index.html and modify it like this:

{% for model in app.models %}
    {% if not model.perms.list_hide %}
    <tr>
    ...
    </tr>
    {% endif %}
{% endfor %}

And create ModelAdmin subclass:

class HiddenModelAdmin(admin.ModelAdmin):
    def get_model_perms(self, *args, **kwargs):
        perms = admin.ModelAdmin.get_model_perms(self, *args, **kwargs)
        perms['list_hide'] = True
        return perms

Now any model registered with HiddenModelAdmin subclass won't show up in admin list, but will be available via "plus" symbol in detail:

class MyModelAdmin(HiddenModelAdmin):
    ...

admin.site.register(MyModel, MyModelAdmin)
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thanks alot for the answer! – Hellnar May 5 '10 at 20:44
    
Simple and easy to use. Good idea man! ;) – Jayme May 27 '11 at 17:36
    
This is a much more elegant and versatile solution than the accepted one – XelharK Dec 12 '13 at 15:23

Since Django 1.8, ModelAdmin has got a new method called has_module_permission() which is responsible for displaying a model in admin index.

class MyModelAdmin(admin.ModelAdmin):
    ...
    def has_module_permission(self, request):
        return False
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This is a genuine and tested answer derived from Django's docs itself. Calling out on whoever it was who downvoted: Please leave a comment justifying your downvote. I'd really like to know what's wrong with this answer because unlike you, I am not ignorant. – xyres May 5 at 4:01

Ugly solution: override admin index template i.e. copy index.html from django to your /admin/index.html and add something like this:

{% for for model in app.models %}
    {% ifnotequal model.name "NameOfModelToHide" %}
    ...
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This is an alternative building on top x0nix's answer, and only if you are happy hiding the the rows with jquery.

Copy pasting from the other answer the part that I reused

class HiddenModelAdmin(admin.ModelAdmin):
def get_model_perms(self, *args, **kwargs):
    perms = admin.ModelAdmin.get_model_perms(self, *args, **kwargs)
    perms['list_hide'] = True
    return perms

class MyModelAdmin(HiddenModelAdmin):
...

admin.site.register(MyModel, MyModelAdmin)

Then install django-jquery and then add the following block in your /admin/index.html template:

{% extends "admin:admin/index.html" %}

{% block extrahead %}
    <script type="text/javascript" src="{{ STATIC_URL }}js/jquery.js"></script>
    {% if app_list %}
      <script type="text/javascript">
        $(function(){
          {% for app in app_list %}
            {% for model in app.models %}
                {% if model.perms.list_hide %}
                    $('div.app-{{ app.app_label }}').find('tr.model-{{ model.object_name|lower }}').hide();
                {% endif %}
            {% endfor %}
          {% endfor %}
        });
     </script>
   {% endif %}
{% endblock %}

You don't need to copy paste the whole template, just extend it and override the extrahead block. You'll need django-apptemplates for the above to work.

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Django 1.2 has new if-statements, meaning that the desired feature could be obtained only by overwriting admin/index.html

{% if model.name not in "Name of hidden model; Name of other hidden model" %}
    ...
{% endif %}

This is a bad solution, because it doesn't care about multi-language admins. You could of course add the names of models in all of the supported languages. It's a good solution because it doesn't overwrite more than one aspect of core Django functions.

But before changing anything, I think people should think about this...

Essentially the problem is related to having models that one does not wish to use for more than adding an option to a drop-down once in a while. It could effectively be worked around by creating a set of permissions for "not so advanced" users that panic when there are too many models. In case changes in the particular models are required, one can simply log in with the "advanced account".

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