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Been scratching my head on how to accomplish this,

sorted_dict = sorted(dict['values'],
                    key=lambda k: k['a']['b'])

Now in this dict some values of a have a b value, while some don't. I want it to sort by b values and if it doesn't exist, just put it at the back of the list. Is there anyway to do without some complex code such as splitting the values of a for those that have a b value and those that don't?

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1 Answer 1


key=lambda k: ('b' not in k['a'], k['a'].get('b', None))
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Complex code, brought to you by Python. – Slater Tyranus Jun 28 '13 at 19:19
In p3 some things have changed. I'm curious why your sort works in p3, but if you sort the tuples produced by the key function directly: print(sorted ([(False, 1), (True, None), (False, None)])) it produces the expected error: TypeError: unorderable types: NoneType() < int() – 7stud Jun 28 '13 at 20:10
You don't need None in k['a'].get('b', None). The default return value for .get() is already None. – FastTurtle Jun 28 '13 at 20:15
I should add, I used this data: my_list = [ { 'a': {'b': 1} }, { 'a': {'c': 2} }, { 'a': {'b': 0} } ] – 7stud Jun 28 '13 at 20:19

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