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In urls.py I want to map a specific legacy URL to a specific dynamic resource:

urlpatterns += patterns('example.example',
    url(r'^example/example.html$', views.myview(request,url_slug='example-slug')),
)

With the view looking like this:

def myview(request, slug):
    a = get_object_or_404(MyObject, url_slug=slug)

How can I get the request parameter, or do this more cleanly?

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1 Answer

You're making this too complicated. Django's URLs already pass the request, and you can specify any additional parameters in the third argument of the url entry:

url(r'^example/example.html$', views.myview, {'url_slug': 'example-slug'})
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Thanks, that's good for the simple use case. What if my use case were more complex, and I wanted to do some processing, prior to handing off to the view? –  Bryce Sep 17 '13 at 18:45
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