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I have a dummy Form that looks like:

class MyForm(forms.Form):

    class __init__(self, *args, **kwargs):
        pass

Here's are the ModelForms and their respective Models:

class Person(models.Model):
    fname = models.CharField(max_length = 255)
    lname = models.CharField(max_length = 255)

class Address(models.Model):
    address = models.CharField(max_length = 255)
    person = models.ForeignKey(Person)

class PersonForm(ModelForm):
    class Meta:
        model = Person

class AddressForm(ModelForm):
    class Meta:
        model = Address

I would like to initiate MyForm like this myfrm = MyForm(PersonForm, AddressForm).

How can I dynamically add the fields of each of the Forms to MyForm excluding AutoFields and ForeignKey fields i.e. MyForm when initiated would have three fields in the end — fname, lname and address. It's a simple copying of the fields from one form to another but I'm a little lost with it.

Thanks

share|improve this question

Just adding a field is not correct, considering the models above.

Address has a ManyToOne relation to Person - A user can have multiple addresses. In that case better take a look at django's inline form sets:

https://docs.djangoproject.com/en/dev/topics/forms/modelforms/#using-an-inline-formset-in-a-view

Cumbersome, but You can also manually add a CharField to to Person's ModelForm, override it's save and handle saving the content of that field to Address (ugly, I don't like it).

share|improve this answer

You can put both forms inside one html <form> tag, using the prefix argument. You then do a bit of work in the view to link the address to the person.

def my_view(request):
    if request.method == "POST":
        person_form = PersonForm(data=request.POST, prefix="person")
        address_form = AddressForm(data=request.POST, prefix="address")
        if person_form.is_valid() and address_form.is_valid():
            person = person.save()
            address = address.save(commit=False)
            address.person = person
            address.save()
            return HttpResponseRedirect('/success-url/')
    ...
share|improve this answer

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