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I have a url defined as follows:

url(r'^details/(?P<id>\d+)$', DetailView.as_view(), name='detail_view'),

In my templates, I want to be able to get the following url: /details/ from the defined url.

I tried {% url detail_view %}, but I get an error since I am not specifying the id parameter.

I need the url without the ID because I will be appending it using JS.

How can I accomplish this?

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What would the purpose be? This URL can't be matched if there is no id parameter, so why would you want to create a link to it? Maybe you're trying to solve another problem and your solution just isn't the right one? –  Thomas Orozco Aug 29 '12 at 18:40
    
I will append the ID using javascript, but I'd like to have the URL as js variable. –  alexBrand Aug 29 '12 at 18:41
    
You could always use the reverse with id = -1 (which you wouldn't expect to be an ID anyway) and replace the rightmost -1 with the proper ID when you need it. Seems very hackish to me if you ask me, but always better than defining another URL. –  Thomas Orozco Aug 29 '12 at 19:07
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1 Answer

up vote 3 down vote accepted

Just add this line to your urls.py:

url(r'^details/$', DetailView.as_view(), name='detail_view'),

or:

url(r'^details/(?P<id>\d*)$', DetailView.as_view(), name='detail_view'),

(This is a cleaner solution - thanks to Thomas Orozco)

You'll need to specify that id is optional in your view function:

def view(request, id=None):
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Note: the two urlpatterns will need to have a unique name, so if you name this one "detail_view", rename your original to something like "detail_view_with_id". –  Chris Pratt Aug 29 '12 at 18:52
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If you're going to modify the view to accept an optional parameter, I think you might as well make the parameter optional: r'^details/(?P<id>\d*)$'. –  Thomas Orozco Aug 29 '12 at 19:14
    
how do you specify the id parameter in the template {% url detail_view %} –  user1629366 Jun 5 '13 at 19:10
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