37

Is there any way to get the model name of any objects in django templates. Manually, we can try it by defining methods in models or using template tags... But is there any built-in way?

66

object.__class__.__name__ or object._meta.object_name should give you the name of the model class. However, this cannot be used in templates because the attribute names start with an underscore.

There isn't a built in way to get at that value from the templates, so you'll have to define a model method that returns that attribute, or for a more generic/reusable solution, use a template filter:

@register.filter
def to_class_name(value):
    return value.__class__.__name__

which you can use in your template as:

{{ obj | to_class_name }}
3
  • Ok.. Thanks Shawn for reply.I used this way, thought may be some built-in way!!
    – Neo
    Jul 4 '11 at 13:17
  • 1
    I don't think the need for it is common enough to warrant a built-in approach. If you need it often enough, you could create an Abstract class that implements the method then use it as a base for all your models. Personally though, I'd stick to using a filter tag.
    – Shawn Chin
    Jul 4 '11 at 13:21
  • Add filter file in your_app/templatetags directory, naming as to_class_name.py. And you have to restart Django after you added filter. Don't forget to {% load to_class_name %} in your template.
    – zx1986
    Oct 12 '18 at 2:40
7

You cannot access the class name directly. Doing something like this:

{{ object.__class__ }}

will cause a TemplateSyntaxError: Variables and attributes may not begin with underscores. Django doesn't let you access those sorts of attributes - Python conventions means they are hidden implementation details, not part of the object's API.

Create a template filter instead, and then you can use it as follows:

{{ object|model_name_filter }}

Creating filters is very easy: https://docs.djangoproject.com/en/dev/howto/custom-template-tags/

2

Django added a publicly accessible API to model options called _meta, but you still can't access variables with an underscore in the template. Use a template filter:

@register.filter
def verbose_name(instance):
    return instance._meta.verbose_name

In the template:

{{ instance|verbose_name }}

I even like to chain the title filter to capitalize the words in the my template:

{{ instance|verbose_name|title }}
2
  • This results in 'str' object has no attribute '_meta'
    – alias51
    Jan 5 '20 at 23:06
  • You don't have a model instance then. You have a str that you are applying the filter to, which doesn't have such an attribute.
    – Bobort
    Jan 7 '20 at 0:46
1

You can very easily access the content type of the page, this way you don't even need to poke into the specific:

{% if pub.content_type.app_labeled_name == 'home | publication' %}
    {% include "home/publication.html" with pub=pub.specific %}
{% endif %}
0

Since 1.2 version and may be early Django has an attribute opts into templates. The atribute is link to model._meta For evidence you should look at source code into Github

It used into template very simple: {{opts}} or {{opts.db_table}}

1

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.