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This is pretty simple but I'd love a pretty, pythonic way of doing it. Basically, given a dictionary, return the subdictionary that contains only those keys that start with a certain string.

» d = {'Apple': 1, 'Banana': 9, 'Carrot': 6, 'Baboon': 3, 'Duck': 8, 'Baby': 2}
» print slice(d, 'Ba')
{'Banana': 9, 'Baby': 2, 'Baboon': 3}

This is fairly simple to do with a function:

def slice(sourcedict, string):
    newdict = {}
    for key in sourcedict.keys():
        if key.startswith(string):
            newdict[key] = sourcedict[key]
    return newdict

But surely there is a nicer, cleverer, more readable solution? Could a generator help here? (I never have enough opportunities to use those).

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2 Answers

up vote 33 down vote accepted

How about this:

def slicedict(d, s):
    return {k:v for k,v in d.iteritems() if k.startswith(s)}
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2  
Don't shadow the slice built-in (even though almost no one uses it). –  Ignacio Vazquez-Abrams Dec 30 '10 at 0:12
    
That dict comprehension is delicious. And I had no idea slice was a builtin, wtf? –  Aphex Dec 30 '10 at 0:19
2  
@Ignacio: When you're in a tiny, local function, it really isn't always worth worrying about stepping on builtins--there are too many of them, with far too common names. Better just to worry about it for nontrivial functions (if that) and globals. Builtins aren't keywords, after all. –  Glenn Maynard Dec 30 '10 at 0:24
4  
No dictionary comprehension way dict((k, v) for k,v in d.iteritems() if k.startswith(s)) –  razpeitia Dec 30 '10 at 1:46
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In functional style:

dict(filter(lambda item: item[0].startswith(string),sourcedict.iteritems()))

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3  
In Python, functional style is usually just what you don't want. –  Glenn Maynard Dec 30 '10 at 0:25
10  
Eh? The dict-comprehension approach certainly falls under my definition of "functional style". –  Karl Knechtel Dec 30 '10 at 3:09
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