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What is a pythonic way to remap each dictionary key in a list of identically-keyed dictionaries to different key names? E.g.,

[{'type_id': 6, 'type_name': 'Type 1'}, {'type_id': 12, 'type_name': 'Type 2'}] 

must transform into

[{'type': 6, 'name': 'Type 1'}, {'type': 12, 'name': 'Type 2'}]

(I need to do the transformation in order to match an output specification for an API I'm working on.)

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"best" by what measure? There are lots of ways to do this. Easy to read? Low memory? Fast? –  Hamish Oct 31 '12 at 5:34
Good point. How about "most pythonic"? :) So probably leaning toward easy-to-read, in the fewest lines of code. I find that typically when I'm faced with this type of scenario, there is usually some cool or interesting built-in python functionality that makes it happen, rather than writing a brute-force loop, although I'm open to that. The list will typically be less than 20 dictionaries so memory and speed aren't as big of an issue for me. –  Ben Roberts Oct 31 '12 at 5:36

4 Answers 4

up vote 2 down vote accepted

just use a list comprehension

>>> d = [{'type_id': 6, 'type_name': 'Type 1'}, {'type_id': 12, 'type_name': 'Type 2'}]
>>> print [{'type':x['type_id'],'name':x['type_name']} for x in d]
[{'type': 6, 'name': 'Type 1'}, {'type': 12, 'name': 'Type 2'}]
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I'm always amazed at how much you can do with list comprehensions. –  Ben Roberts Oct 31 '12 at 5:42

Python >= 2.7 (using a dict comprehension):

transform = {"type_id": "type", "type_name": "name"}
new_list = [{transform[k]: v for k, v in d.items()} for d in old_list]

Python >= 2.4 (using the dict constructor):

transform = {"type_id": "type", "type_name": "name"}
new_list = [dict((transform[k], v) for k, v in d.items()) for d in old_list]
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The nested dictionary comprehension inside of a list comprehension is a very powerful & flexible construct for doing transforms. I would definitely consider it for a more complex case, but given the simplicity of my needs, I like Joran's a bit better since it's more straightforward. –  Ben Roberts Oct 31 '12 at 5:53

How about inplace modifications?

>>> transform = {"type_id": "type", "type_name": "name"}    
>>> for D in L:
    for k,k_new in transform.items():
        D[k_new] = D.pop(k)             
>>> L
[{'type': 6, 'name': 'Type 1'}, {'type': 12, 'name': 'Type 2'}]

Or even better:

>>> for D in L:
    for k,k_new in transform.items():
        value = D.pop(k,None)
        if value is not None:
            D[k_new] = value
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The new-user-friendly, easy-to-read way:

>>> list2 = []
>>> for d in list1:
...     x = dict()
...     for k,v in d.iteritems():
...        x[k.split('_')[1]] = v
...     list2.append(x)
>>> list2
[{'name': 'Type 1', 'id': 6}, {'name': 'Type 2', 'id': 12}]
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That'd be k.split('_')[0]. –  Kirk Strauser Oct 31 '12 at 6:09

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