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I'm rendering a TypedChoiceField, with a RadioSelect widget. Setting attrs={'class':'radio'} for the widget, this class is applied to the <input>, but this input is nested in a <ul>. I would like to set a class for this <ul>, where should I do so?

I am currently still on Django 1.3, so a RadioSelect isn't an option.

From my Form:

yesno = forms.TypedChoiceField(
               coerce=lambda x: True if x == 'Yes' else False,
               choices=((False, 'No'), (True, 'Yes')),
               widget=forms.RadioSelect)

The actual HTML:

<ul>
<li>
  <label for="yesno_0">
    <input value="False" type="radio" name="yesno" id="yesno_0"> 
    No
  </label>
</li>
<li>
  <label for="yesno_1">
    <input name="yesno" value="True" id="yesno_1" type="radio"> 
    Yes
  </label>
</li>
</ul>

What I'd like:

<ul class='myclass'>
<li>
  <label for="yesno_0">
...
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1 Answer 1

up vote 2 down vote accepted

The simplest way i see: You could create a custom RadioSelect widget, inherited from the widgets.RadioSelect and override the "renderer" property and set it to your custom RadioFieldRenderer (also inherited from widgets.RadioFieldRenderer) and override the "render" method

class CustomRadioFieldRenderer(widgets.RadioFieldRenderer):
    def render(self):
        return mark_safe(u'<ul class="YOUR-CLASS-HERE">\n%s\n</ul>' % u'\n'.join([u'<li>%s</li>'
            % force_unicode(w) for w in self]))


class CustomRadioSelect(widgets.RadioSelect):
    renderer = CustomRadioFieldRenderer


yesno = forms.TypedChoiceField(widget=CustomRadioSelect, *args, **kwargs)

Or call render with a super() and then replace <ul> with a <ul class=''>, that's a detail

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Looks good, where in my code should I define these classes? –  Tom Medley Dec 4 '12 at 14:14
    
That's you choice, you could either put it near your form class or define a module widgets.py in your app folder (i do this sometimes) –  Dima Bildin Dec 4 '12 at 14:15
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