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I cant seem to find ANYWHERE on how to do choicefield HTML tags in Django. I found radio buttons and other advance choice fields, but nothing on basic drop down HTML tags with Django. I have models.py and view.py set up passing list1 to the html pages, but cant seem to make it display anything except

<select style="width:300px">
  {% for choice in list1.VIEWS %}
  <option>{{choice}}</option>
  {{choice}}
  {% endfor %}
</select>

Help would be greatly appreciated

models.py

class preset_list(models.Model):
    VIEWS = (
        ('1', 'X'),
        ('2', 'Y'),
    )
    query_choice = forms.ChoiceField(choices=VIEWS)

view.py

list1 = models.preset_list()
return render_to_response('services.html', 
         {'array':json.dumps(data, cls=SpecialEncoder),
         'list1':list1},
                          )
share|improve this question
1  
Not sure what you're asking. You say you "cant seem to make it display anything except" but then you show some template code. Surely that's not django output? Are you using a form? Please show model, view, form (if applicable) and template and then show what django is producing (probably straight html) and then show what you want it to produce. Then someone can help. –  Brenda J. Butler Jan 2 at 2:39
1  
I updated with python code, I am looking for simple dropdown menu, to select and get back some data. –  rodling Jan 2 at 2:46
2  
When you said you "can't find anywhere", did you think to look at the forms documentation? –  Daniel Roseman Jan 2 at 7:47
    
@DanielRoseman yes, it had no HTML code for it! –  rodling Jan 2 at 15:35

4 Answers 4

up vote 5 down vote accepted

ModelForms are your friend here.

models.py

class PresetList(models.Model):
    VIEWS = (
        ('1', 'X'),
        ('2', 'Y'),
    )
    query_choice = forms.ChoiceField(choices=VIEWS)

forms.py

from django.forms import ModelForm
from . import models

class PresetListForm(ModelForm):
    class Meta:
        model = models.PresetList

view.py

from . import forms

def my_view(request):

    preset_form = forms.PresetListForm()

    return render_to_response('services.html', {
        'array': json.dumps(data, cls=SpecialEncoder),
        'preset_form': preset_form,
    })

services.html

<form method=POST action="/somewhere">
    {{ preset_form.as_p }}
</form>
share|improve this answer
    
nothing shows up, no errors but nothing appears –  rodling Jan 2 at 16:42
    
can you try it with just {{ preset_form }} ? –  Thomas Jan 3 at 3:21
    
Absolutely nothing –  rodling Jan 3 at 3:26
    
generally if you get nothing out in the template, you're either not putting data into the context, or are not using the same name in the template. Can you double-check that the right values are going into context? Otherwise, dpaste your current code, and i'll try to debug. –  Thomas Jan 3 at 7:14
1  
I don't see how saying it again conveys more meaning. ;-) It's how I'd translate your 'check preset_form for options...' into Python code. Checking for options seems a bit overloaded with different meanings, especially in the context of SelectBoxes... Just trying to poke through the ambiguity of natural language and mismatching meaning of terms. –  Chris Wesseling Jan 7 at 14:41

You can create a form with a drop-down and tell it which values to populate it with like so:

Form

class MyDropDownForm(forms.ModelForm):
    somerow = forms.ModelChoiceField(
        # change this queryset if you want to limit the options
        queryset= MyModel.objects.all().values('somerow'),
        widget=Select(),
        required=True,
    )        

    class Meta:
        model = MyModel
        fields = ['somerow']

View

class MyView(DjangoTemplateView):

    def get(self, request):
        # you can set an instance when creating the form to set the value
        # to be that of an existing row in your model
        # MyDropDownForm(instance=MyModel.objects.filter(id=1))
        form = MyDropDownForm()
        return render_to_response('app/page.html', {'form': form})

    def post(self, request):
        # if you had set the instance in the get you want to do that again
        form = MyDropDownForm(data=request.POST)
        if form.is_valid():
            return render_to_response('app/success.html')
        return render_to_response('app/page.html', {'form': form})

Page.html

<form method="post">
    {% csrf_token %}
    {{ form.id  }}
    {{ form.myrow }}
    {% if form.myrow.errors %}
        {% for error in form.myrow.errors %}<p>{{ error }}</p>{% endfor %}
    {% endif %}
    <button>Submit</button>
</form>

Take a look at the docs here for more info on creating model forms.

share|improve this answer

Give the generic CreateView a try.

views.py

from django.views.generic.edit import CreateView
from .models import PresetList

class PresetListCreate(CreateView):
    model = PresetList

presetlist_form.html

<form action="" method="post">{% csrf_token %}
    {{ form.as_p }}
    <input type="submit" value="Create" />
</form>
share|improve this answer

Not sure what you want done, but if you eant to send 1 when X is displayed, the following should work:

<select style="width:300px">
  {% for choice in list1.VIEWS %}
  <option value={{choice.0}}>{{choice.1}}</option>
  {{choice}}
  {% endfor %}
</select>
share|improve this answer
    
creates the dropdown, however it does not populate it –  rodling Jan 6 at 14:16

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