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I'm looking to replace the keys of a dict to shorter variants so that it can be sent across the wire in a compact form. Is there a way to updating a key, rather than creating a new item in in the dict and deleting the old?

What I'm doing now:

>>> a = dict(long_key=None)
>>> a['l'] = a['long_key']
>>> del a['long_key']

What I would like to do is something like this:

>>> a = dict(long_key=None)
>>> a.update_key('long_key', 'l')

I'm unsure of dict's internals. However, it seems that something like update_key might be able to avoid needing to delete the old key.

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are you looking for space efficiency, time efficiency, or code elegance? –  Claudiu Aug 20 '11 at 0:23
7  
Compressing your transport is probably a saner solution than obfuscating your data. –  Glenn Maynard Aug 20 '11 at 0:44
2  
Just to respond to criticisms about the approach- I asked the question because I'm interested in learning about how the Python dict works. These tiny snippets don't represent the whole of what I'm doing, they just serve to demonstrate my intentions to make the question clearer. Downvoting a Q on the basis that you don't like its subject matter is a bit petty. Questions should be downvoted because they're unclear or vague. –  Tim McNamara Aug 20 '11 at 2:10
    
@Claudiu- For this part of the code, time efficiency. –  Tim McNamara Aug 20 '11 at 2:12
1  
For more info about the dict implementation in CPython see some of the references here: stackoverflow.com/questions/327311/… –  Ned Deily Aug 20 '11 at 4:52

4 Answers 4

A more elegant solution might be to create a new dictionary... essentially make a slightly different shallow copy:

a_send = dict((k[0], v) for k,v in a.items())

That will certainly be less space-efficient, though - are you looking for space efficiency, time efficiency, or code elegance?

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That's premature optimization. If you really want to save bandwidth, do it by either compressing the data normally or use simpler data structures.

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How many times do you need to send it? Maybe instead of changing anything, you can just process the keys as you go?

Instead of doing something like (guessing pseudo-code):

short_dict = shorten_keys(long_dict)
for k,v in short_dict:
    send_over(k,v)

do something like:

for k,v in long_dict:
    send_over(shorten(k),v)

If you have to send it many times, you can also create a map of long -> short keys and use it while sending. Wasting space / time to create copies might not be the best solution.

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longer = dict(long_key=None)
mapping = dict(long_key='l')
shorter = dict((mapping[k], v) for k,v in longer.iteritems())
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