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import collections

data = [
  {'firstname': 'John', 'lastname': 'Smith'}, 
  {'firstname': 'Samantha', 'lastname': 'Smith'}, 
  {'firstname': 'shawn', 'lastname': 'Spencer'}, 
]

new_data = collections.defaultdict(list)

for d in data:
    new_data[d['lastname']].append(d['firstname'])

print new_data

Here's the output:

defaultdict(<type 'list'>, {'Smith': ['John', 'Samantha'], 'Spencer': ['shawn']})

and here's the template:

{% for lastname, firstname in data.items %}
  <h1> {{ lastname }} </h1>
  <p> {{ firstname|join:", " }} </p>
{% endfor %}

But the loop in my template doesn't work. Nothing shows up. It doesn't even give me an error. How can i fix this? It's supposed to show the lastname along with the firstname, something like this:

<h1> Smith </h1>
<p> John, Samantha </p>

<h1> Spencer </h1>
<p> shawn </p>
share|improve this question
    
You haven't shown the code that puts the dictionary into the context for the template. Are you sure that's happening properly? –  Ned Batchelder Jan 21 '11 at 22:02
    
Yes, everything else renders correctly outside of the loop. –  user216171 Jan 21 '11 at 22:12

2 Answers 2

up vote 30 down vote accepted

try:

dict(new_data)

and is better to use iteritems instead of items:)

share|improve this answer
2  
I can't believe something simple like that worked. Thanks a lot! –  user216171 Jan 21 '11 at 22:40
5  
It was actually filed as a bug against django: code.djangoproject.com/ticket/16335 but turned out the only good solution was indeed to transform it to a dict, as it's now shown in the docs and it's visible in the changeset –  Stefano Jan 23 '13 at 14:30

You can avoid the copy to a new dict by disabling the defaulting feature of defaultdict once you are done inserting new values:

new_data.default_factory = None

Explanation

The template variable resolution algorithm in Django will attempt to resolve new_data.items as new_data['items'] first, which resolves to an empty list when using defaultdict(list).

To disable the defaulting to an empty list and have Django fail on new_data['items'] then continue the resolution attempts until calling new_data.items(), the default_factory attribute of defaultdict can be set to None.

share|improve this answer
4  
+1 - This is much more efficient than the selected answer, especially with a large dictionary set. –  keithhackbarth May 7 '13 at 23:22
    
Great answer, explanation helped a lot understanding the underlaying problem! –  Blackeagle52 Jun 10 '14 at 13:36

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