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I am getting an error creating a link in my Django template.

My template looks like this:

<a href="{% url 'location_detail' %}">{{ }}</a>

My looks like:

url(r'^location(?P<pk>\d+)/$', views.location_detail, name="location_detail"),

My view looks like:

def location_detail(request, pk=None):

I get the error:

Reverse for views.location_detail with arguments '()' and keyword arguments '{u'pk': 1L}' not found.

I'm using Django 1.5 and python 2.7.2


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Remove pk= in the template call –  karthikr Jul 23 '13 at 18:35

2 Answers 2

up vote 5 down vote accepted

The problem was that I had a name space on the primary project

url(r'^com/', include('com.urls', namespace="com")),

Changing the url to:

{% url 'com:location_detail' %}

That did the trick

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Wow, I did not know about the namespace issue with reverse, and this post definitely did the trick. –  user798719 Mar 24 '14 at 3:48

You have given your url pattern a name, so you should use that name in the {% url %} call:

{% url 'location_detail' %}
share|improve this answer
either way it has the same error.Thanks –  Atma Jul 23 '13 at 18:51

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