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I'm trying to create a basic template to display the selected instance's field values, along with their names. Think of it as just a standard output of the values of that instance in table format, with the field name (verbose_name specifically if specified on the field) in the first column and the value of that field in the second column.

For example, let's say we have the following model definition:

class Client(Model):
    name = CharField(max_length=150)
    email = EmailField(max_length=100, verbose_name="E-mail")

I would want it to be output in the template like so (assume an instance with the given values):

Field Name      Field Value
----------      -----------
Name            Wayne Koorts

What I'm trying to achieve is being able to pass an instance of the model to a template and be able to iterate over it dynamically in the template, something like this:

    {% for field in fields %}
            <td>{{ }}</td>
            <td>{{ field.value }}</td>
    {% endfor %}

Is there a neat, "Django-approved" way to do this? It seems like a very common task, and I will need to do it often for this particular project.

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18 Answers 18

model._meta.get_all_field_names() will give you all the model's field names, then you can use model._meta.get_field() to work your way to the verbose name, and getattr(model_instance, 'field_name') to get the value from the model.

NOTE: model._meta.get_all_field_names() is deprecated in django 1.9. Instead use model._meta.get_fields() to get the model's fields and to get each field name.

share|improve this answer
This is still very manual, and I would have to build up some kind of meta object in the view which I then pass into the template, which is more of a hack than I would like. Surely there must be a neater way? – Wayne Koorts Jan 31 '10 at 3:16
You could encapsulate all this in a class, much like ModelForm does. – Ignacio Vazquez-Abrams Jan 31 '10 at 3:18
I don't believe you can call any _ methods in the templates. – Issac Kelly Mar 13 '11 at 23:27
This works but you shouldn't be depending on a private API (as it prefixes with "_") to achieve it. The problem with relying on private API is that private methods aren't guaranteed to work from version to version. – Devy Jan 2 '14 at 15:52
Using Django 1.8 RC I'm getting a deprecation warning for get_all_field_names(). Any alternative? – Simon Steinberger Mar 28 at 9:21

Finally found a good solution to this on the dev mailing list:

In the view add:

from django.forms.models import model_to_dict

def show(request, object_id):
    object = FooForm(data=model_to_dict(Foo.objects.get(pk=object_id)))
    return render_to_response('foo/foo_detail.html', {'object': object})

in the template add:

{% for field in object %}
    <li><b>{{ field.label }}:</b> {{ }}</li>
{% endfor %}
share|improve this answer
Good solution, but not very generic as it returns not a model_to_dict for ForeignKey fields, but unicode result, so you can not easy serialize complex object into dict – Vestel Oct 22 '10 at 14:02
Dangerous to override object, you should use some other varaible name. – Emil Stenström Jan 12 '12 at 12:56
Thank you! I replaced Django's model_to_dict() to be able to handle ForeignKey. Please see my separate answer (I deleted my previous comment since comments don't support code formatting. Sorry, I didn't know that.) – Magnus Gustavsson Jan 31 '13 at 12:33
Assuming here that FooForm is a ModelForm, wouldn't it be easier to just to do: FooForm(instance=Foo.objects.get(pk=object_id))) ? – beruic Oct 6 at 9:48

You can use Django's to-python queryset serializer.

Just put the following code in your view:

from django.core import serializers
data = serializers.serialize( "python", SomeModel.objects.all() )

And then in the template:

{% for instance in data %}
    {% for field, value in instance.fields.items %}
        {{ field }}: {{ value }}
    {% endfor %}
{% endfor %}

Its great advantage is the fact that it handles relation fields.

For the subset of fields try:

data = serializers.serialize('python', SomeModel.objects.all(), fields=('name','size'))
share|improve this answer
That's cool - but with this method, how would one limit the results to only certain fields? – Herman Schaaf May 24 '11 at 18:48
@Herman Schaaf: I have updated the answer – uszywieloryba May 27 '11 at 10:42
This should be the definitive answer, handles foreign keys and no private api calls. Great answer, thanks. – Yunti Nov 14 at 15:18

Here's another approach using a model method. This version resolves picklist/choice fields, skips empty fields, and lets you exclude specific fields.

def get_all_fields(self):
    """Returns a list of all field names on the instance."""
    fields = []
    for f in self._meta.fields:

        fname =        
        # resolve picklists/choices, with get_xyz_display() function
        get_choice = 'get_'+fname+'_display'
        if hasattr( self, get_choice):
            value = getattr( self, get_choice)()
            try :
                value = getattr(self, fname)
            except User.DoesNotExist:
                value = None

        # only display fields with values and skip some fields entirely
        if f.editable and value and not in ('id', 'status', 'workshop', 'user', 'complete') :

    return fields

Then in your template:

{% for f in app.get_all_fields %}
{% endfor %}
share|improve this answer
why do you need the except User.DoesNotExist:? – Sevenearths Oct 27 '11 at 11:56
nice one. thanks – alix May 29 '14 at 15:10

Ok, I know this is a bit late, but since I stumbled upon this before finding the correct answer so might someone else.

From the django docs:

# This list contains a Blog object.
>>> Blog.objects.filter(name__startswith='Beatles')
[<Blog: Beatles Blog>]

# This list contains a dictionary.
>>> Blog.objects.filter(name__startswith='Beatles').values()
[{'id': 1, 'name': 'Beatles Blog', 'tagline': 'All the latest Beatles news.'}]
share|improve this answer
I like this answer. If your query returns more then one record and you only want the latest one, do the following. 1. Make sure you have ordering = ['-id'] in class Meta: of your object in 2. then use Blog.objects.filter(name__startswith='Beatles').values()[0] – Sevenearths Oct 3 '12 at 10:40
Clever idea. But if you already have a model object, then you'd hit the database again just to get the fields. Any way around that? – frnhr Mar 7 '14 at 0:17
Thanks!!! Where can I find more methods like this ".values()"? – fabrigm Mar 24 at 23:50
@user1763732 just check the documentations for the QuerySet: – olofom Apr 1 at 14:26

In light of Django 1.8's release (and the formalization of the Model _meta API, I figured I would update this with a more recent answer.

Assuming the same model:

class Client(Model):
    name = CharField(max_length=150)
    email = EmailField(max_length=100, verbose_name="E-mail")

Django <= 1.7

fields = [(f.verbose_name, for f in Client._meta.fields]
>>> fields
[(u'ID', u'id'), (u'name', u'name'), (u'E-mail', u'email')]

Django 1.8+ (formalized Model _meta API)

Changed in Django 1.8:

The Model _meta API has always existed as a Django internal, but wasn’t formally documented and supported. As part of the effort to make this API public, some of the already existing API entry points have changed slightly. A migration guide has been provided to assist in converting your code to use the new, official API.

In the below example, we will utilize the formalized method for retrieving all field instances of a model via Client._meta.get_fields():

fields = [(f.verbose_name, for f in Client._meta.get_fields()]
>>> fields
[(u'ID', u'id'), (u'name', u'name'), (u'E-mail', u'email')]
share|improve this answer

There should really be a built-in way to do this. I wrote this utility build_pretty_data_view that takes a model object and form instance (a form based on your model) and returns a SortedDict.

Benefits to this solution include:

  • It preserves order using Django's built-in SortedDict.
  • When tries to get the label/verbose_name, but falls back to the field name if one is not defined.
  • It will also optionally take an exclude() list of field names to exclude certain fields.
  • If your form class includes a Meta: exclude(), but you still want to return the values, then add those fields to the optional append() list.

To use this solution, first add this file/function somewhere, then import it into your

#!/usr/bin/env python
# -*- coding: utf-8 -*-
# vim: ai ts=4 sts=4 et sw=4
from django.utils.datastructures import SortedDict

def build_pretty_data_view(form_instance, model_object, exclude=(), append=()):

    for j in append:
            sd.insert(i, j, sdvalue)

    for k,v in form_instance.fields.items():
        sdvalue={'label':"", 'fieldvalue':""}
        if not exclude.__contains__(k):
            if v.label is not None:
                sdvalue = {'label':v.label,
                           'fieldvalue': model_object.__getattribute__(k)}
                sdvalue = {'label':k,
                           'fieldvalue': model_object.__getattribute__(k)}
            sd.insert(i, k, sdvalue)
    return sd

So now in your you might do something like this

from django.shortcuts import render_to_response
from django.template import RequestContext
from utils import build_pretty_data_view
from models import Blog
from forms import BlogForm
def my_view(request):
   data=build_pretty_data_view(form_instance=bf, model_object=b,
                        exclude=('number_of_comments', 'number_of_likes'),

   return render_to_response('my-template.html',

Now in your my-template.html template you can iterate over the data like so...

{% for field,value in data.items %}

    <p>{{ field }} : {{value.label}}: {{value.fieldvalue}}</p>

{% endfor %}

Good Luck. Hope this helps someone!

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You can have a form do the work for you.

def my_model_view(request, mymodel_id):
    class MyModelForm(forms.ModelForm):
        class Meta:
            model = MyModel

    model = get_object_or_404(MyModel, pk=mymodel_id)
    form = MyModelForm(instance=model)
    return render(request, 'model.html', { 'form': form})

Then in the template:

    {% for field in form %}
            <td>{{ }}</td>
            <td>{{ field.value }}</td>
    {% endfor %}
share|improve this answer
This method (employed within a DetailView) works well for me. However, you may wish to use field.label instead of – David Cain Sep 12 '14 at 0:38

Below is mine, inspired by shacker's get_all_fields. It gets a dict of one model instance, if encounter relation field, then asign the field value a dict recursively.

def to_dict(obj, exclude=[]):
    """生成一个 dict, 递归包含一个 model instance 数据.
    tree = {}
    for field in obj._meta.fields + obj._meta.many_to_many:
        if in exclude or \
           '%s.%s' % (type(obj).__name__, in exclude:

        try :
            value = getattr(obj,
        except obj.DoesNotExist:
            value = None

        if type(field) in [ForeignKey, OneToOneField]:
            tree[] = to_dict(value, exclude=exclude)
        elif isinstance(field, ManyToManyField):
            vs = []
            for v in value.all():
                vs.append(to_dict(v, exclude=exclude))
            tree[] = vs
        elif isinstance(field, DateTimeField):
            tree[] = str(value)
        elif isinstance(field, FileField):
            tree[] = {'url': value.url}
            tree[] = value

    return tree

This function is mainly used to dump a model instance to json data:

def to_json(self):
    tree = to_dict(self, exclude=('id', 'User.password'))
    return json.dumps(tree, ensure_ascii=False)
share|improve this answer
Great work! Suggest adding choices support...elif hasattr(field, 'choices'): tree[] = dict(field.choices).get(value,value) – oden Jul 7 '14 at 6:59

I used but replaced Django's model_to_dict() with this to be able to handle ForeignKey:

def model_to_dict(instance):
    data = {}
    for field in instance._meta.fields:
        data[] = field.value_from_object(instance)
        if isinstance(field, ForeignKey):
            data[] =[])
    return data

Please note that I have simplified it quite a bit by removing the parts of the original I didn't need. You might want to put those back.

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up vote 3 down vote accepted

I've come up with the following method, which works for me because in every case the model will have a ModelForm associated with it.

def GetModelData(form, fields):
    Extract data from the bound form model instance and return a
    dictionary that is easily usable in templates with the actual
    field verbose name as the label, e.g.

    model_data{"Address line 1": "32 Memory lane",
               "Address line 2": "Brainville",
               "Phone": "0212378492"}

    This way, the template has an ordered list that can be easily
    presented in tabular form.
    model_data = {}
    for field in fields:
        model_data[form[field].label] = eval("" % form[field].name)
    return model_data

def clients_view(request, client_id):
    client = Client.objects.get(id=client_id)
    form = AddClientForm(client)

    fields = ("address1", "address2", "address3", "address4",
              "phone", "fax", "mobile", "email")
    model_data = GetModelData(form, fields)

    template_vars = RequestContext(request,
            "client": client,
            "model_data": model_data
    return render_to_response("clients-view.html", template_vars)

Here is an extract from the template I am using for this particular view:

<table class="client-view">
    {% for field, value in model_data.items %}
            <td class="field-name">{{ field }}</td><td>{{ value }}</td>
    {% endfor %}

The nice thing about this method is that I can choose on a template-by-template basis the order in which I would like to display the field labels, using the tuple passed in to GetModelData and specifying the field names. This also allows me to exclude certain fields (e.g. a User foreign key) as only the field names passed in via the tuple are built into the final dictionary.

I'm not going to accept this as the answer because I'm sure someone can come up with something more "Djangonic" :-)

Update: I'm choosing this as the final answer because it is the simplest out of those given that does what I need. Thanks to everyone who contributed answers.

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Instead of editing every model I would recommend to write one template tag which will return all field of any model given.
Every object has list of fields ._meta.fields.
Every field object has attribute name that will return it's name and method value_to_string() that supplied with your model object will return its value.
The rest is as simple as it's said in Django documentation.

Here is my example how this templatetag might look like:

    from django.conf import settings
    from django import template

    if not getattr(settings, 'DEBUG', False):
        raise template.TemplateSyntaxError('get_fields is available only when DEBUG = True')

    register = template.Library()

    class GetFieldsNode(template.Node):
        def __init__(self, object, context_name=None):
            self.object = template.Variable(object)
            self.context_name = context_name

        def render(self, context):
            object = self.object.resolve(context)
            fields = [(, field.value_to_string(object)) for field in object._meta.fields]

            if self.context_name:
                context[self.context_name] = fields
                return ''
                return fields

    def get_fields(parser, token):
        bits = token.split_contents()

        if len(bits) == 4 and bits[2] == 'as':
            return GetFieldsNode(bits[1], context_name=bits[3])
        elif len(bits) == 2:
            return GetFieldsNode(bits[1])
            raise template.TemplateSyntaxError("get_fields expects a syntax of "
                           "{% get_fields <object> [as <context_name>] %}")
share|improve this answer

Yeah it's not pretty, you'll have to make your own wrapper. Take a look at builtin databrowse app, which has all the functionality you need really.

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I was gonna say.... databrowse does just that, albeit I found it to be a completely useless app. – mpen Feb 13 '10 at 6:13

This may be considered a hack but I've done this before using modelform_factory to turn a model instance into a form.

The Form class has a lot more information inside that's super easy to iterate over and it will serve the same purpose at the expense of slightly more overhead. If your set sizes are relatively small I think the performance impact would be negligible.

The one advantage besides convenience of course is that you can easily turn the table into an editable datagrid at a later date.

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Django 1.7 solution for me:

There variables are exact to the question, but you should definitely be able to dissect this example

The key here is to pretty much use the .__dict__ of the model

def display_specific(request, key):
  context = {
  return render(request, "general_household/view_specific.html", context)


{% for field in gen_house %}
    {% if field != '_state' %}
        {{ gen_house|getattribute:field }}
    {% endif %}
{% endfor %}

in the template I used a filter to access the field in the dict

def getattribute(value, arg):
  if value is None or arg is None:
    return ""
    return value[arg]
  except KeyError:
    return ""
  except TypeError:
    return ""
share|improve this answer

I'm using this,

    {% for column in table.columns %}
    <th><a href="?sort={{ column.name_toggled }}">{{ column }}</a></th>
    {% endfor %}
{% for row in table.rows %}
    {% for value in row %}
        <td>{{ value }}</td>
    {% endfor %}
{% endfor %}
share|improve this answer

This approach shows how to use a class like django's ModelForm and a template tag like {{ form.as_table }}, but have all the table look like data output, not a form.

The first step was to subclass django's TextInput widget:

from django import forms
from django.utils.safestring import mark_safe
from django.forms.util import flatatt

class PlainText(forms.TextInput):
    def render(self, name, value, attrs=None):
        if value is None:
            value = ''
        final_attrs = self.build_attrs(attrs)
        return mark_safe(u'<p %s>%s</p>' % (flatatt(final_attrs),value))

Then I subclassed django's ModelForm to swap out the default widgets for readonly versions:

from django.forms import ModelForm

class ReadOnlyModelForm(ModelForm):
    def __init__(self,*args,**kwrds):
        for field in self.fields:
            if isinstance(self.fields[field].widget,forms.TextInput) or \
            elif isinstance(self.fields[field].widget,forms.CheckboxInput):

Those were the only widgets I needed. But it should not be difficult to extend this idea to other widgets.

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Take a look at django-etc application. It has model_field_verbose_name template tag to get field verbose name from templates:

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