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I have a python dictionary that I want to sort according to name:

location_map_india = {
  101: {'name': 'Andaman & Nicobar Islands', 'lat': 11.96, 'long': 92.69, 'radius': 294200},  
  108: {'name': 'Andhra Pradesh', 'lat': 17.04, 'long': 80.09, 'radius': 294200},
...
}

It doesn't come out the way I expect it. I tried:

location_map_india = sorted(location_map_india.iteritems(), key=lambda x: x.name)

The above didn't work. What should I do?

Update

The following was allowed and behaved as expected. Thanks for all the help. Code:

location_map_india = sorted(location_map_india.iteritems(), key=lambda x: x[1]["name"])

Template:

{% for key,value in location_map_india %}<option value="{{key}}" >{{value.name}}</option>{% endfor %}
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5  
Dictionaries don't have an order and thus can't be sorted. What is your goal here? –  Tim Pietzcker Sep 21 '11 at 17:06
1  
Depending on your Python Version you could use an OrderedDict instead of a standard dictionary. It's in the collections module. Otherwise, explain your intent for better suggestions on approach. –  g.d.d.c Sep 21 '11 at 17:09
    
Duplicate: stackoverflow.com/q/364519/346587 –  Paul Sep 21 '11 at 17:10
    
Thanks for the suggestions. I had a data structure and I would like to order it by name in that natural order. It seems it's not that simple. –  Niklas Rtz Sep 21 '11 at 17:35
    
use .items() instead if .iteritems() to assure compatibility with Python 3.x –  Remi Oct 1 '11 at 17:22

4 Answers 4

up vote 6 down vote accepted

You are close. Try:

location_map_india = sorted(location_map_india.iteritems(), key=lambda x: x[1]["name"])

but the result would be a list not a dict. dict is orderless.

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I understand. But I want the key/value pairs and in order. What should I do? –  Niklas Rtz Sep 21 '11 at 18:15
1  
What I wrote will give you that. It will be list of (key,value) tuples sorted according to "name". –  Avaris Sep 21 '11 at 18:21
    
Thanks. I could make it loop but I couldn't make it print the info: {% for a in location_map_india %}<option value="{{ a.key }}" >{{ a.value }}</option>{% endfor %} –  Niklas Rtz Sep 21 '11 at 21:19
1  
I have no idea what language that is. But if you want to access elements after the sorting I gave, use a[0] for key and a[1] for value. –  Avaris Sep 21 '11 at 22:24
    
Ok. The language is django templates where I pass the variable to the template and then iterate over it. In this case iterating becomes rather difficult since i don't know how to access the elements in django templates. –  Niklas Rtz Sep 22 '11 at 2:09

If you're using python 2.7 or superior, take a look at OrderedDict. Using it may solve your problem.

>>> OrderedDict(sorted(d.items(), key=lambda x: x[1]['name']))
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you should try

location_map_india = sorted(location_map_india.items(), key=lambda x: x[1]['name'])
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Thanks but how to access it from template tag? I've tried {% for a in location_map_india %}<option value="{{ a.key }}" >{{ a.value }}</option>{% endfor %} –  Niklas Rtz Sep 21 '11 at 21:20

If you are using a dictionary that must have order in any way, you are not using the correct data structure.

Try list or tuples instead.

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