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I have a dictionary as:

default = {'a': ['alpha'], 'b': ['beta','gamma'], 'g': []}

i wish to eliminate the empty values as:

default = {'a': ['alpha'], 'b': ['beta','gamma']}

i wrote a function (following an example find in the web)

def remove_empty_keys(d):
    for k in d.keys():
        try:
            if len(d[k]) < 1:
                del[k]
        except: pass
        return(d)

i have the following questions:

1- I didn't find the mistake why the return is always

remove_empty_keys(default)
 {'a': ['alpha'], 'b': ['beta'], 'g': []}

2- is there a build-in function to eliminate delete None values from Python without creating a copy of the original dictionary?

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1  
Your question seems to mix the idea of None with empty lists. It makes it harder to understand. –  Michael J. Barber Feb 11 '13 at 14:01
    
Perhaps a better way to say it would be "Is there a function to eliminate falsy values from a dictionary" –  mgilson Feb 11 '13 at 14:03
    
Your try...except clause seems to serve no purpose except to hide your own errors from yourself. If you really want to use try/except, then you should always specify the exception(s) that you expect (in this case KeyError). That way, they won't unintentionally hide unrelated bugs. But in this case, unless there's code in a parallel thread that's modifying d, you won't ever get a key error because k must be in d since it was returned by d.keys(). –  Edward Loper Feb 11 '13 at 18:21

6 Answers 6

up vote 7 down vote accepted

To fix your function, change del[k] to del d[k]. There is no function to delete values in place from a dictionary.

What you are doing is deleting the variable k, not changing the dictionary at all. This is why the original dictionary is always returned.

Rewritten, your function might look like:

def remove_empty_keys(d):
    for k in d.keys():
        if not d[k]:
            del d[k]

This assumes you want to eliminate both empty list and None values, and actually removes any item with a "false" value.

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There's no builtin for this (AFAIK), but you can do it easily with a dict comprehension:

new_dict = {k:v for k,v in original_dict.items() if v}

If you're stuck with an older version of python (pre 2.7 without dict comprehensions), you can use the dict constructor:

new_dict = dict((k,v) for k,v in original_dict.items() if v)

Note that this doesn't operate in place (as per your second question). And dictionaries don't support slice assignment like lists do, so the best* you can really do to get this all done in place is:

new_dict = {k:v for k,v in original_dict.items() if v}
original_dict.clear()
original_dict.update(new_dict)

*of course the term "best" is completely subjective.

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dict((k, v) for k, v in default.iteritems() if v)

This filters all items which are not empty strings, empty dict/tuple/list.

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You can use dict comprehension: -

>>> default = {'a': ['alpha'], 'b': ['beta','gamma'], 'g': []}

>>> {key: value for key, value in default.iteritems() if value}
{'a': ['alpha'], 'b': ['beta', 'gamma']}
share|improve this answer
    
The problem isn't modifying the dict as you're iterating over it -- I actually think that might be OK (though don't quote me on that). It's that OP is doing del [k] instead of del d[k]. It seems to me that the first form is creating a list and then deleting it (though I could be wrong about that since del is a statement ... –  mgilson Feb 11 '13 at 14:00
    
@mgilson. Yeah just noticed that. I'll remove that line. –  Rohit Jain Feb 11 '13 at 14:01

Michael's answer is correct.

Stepping back, you might be able to avoid creating those empty lists at all, by use of collections.defaultdict(list)

>>> import collections
>>> d = collections.defaultdict(list)
>>> d
defaultdict(<type 'list'>, {})
>>> d["hobbits"].append("Frodo")
>>> d["hobbits"].append("Sam")
>>> d
defaultdict(<type 'list'>, {'hobbits': ['Frodo', 'Sam']})
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One more option is the following (without creating a new dict):

for e in [k for k,v in default.iteritems() if len(v) == 0]: default.pop(e)
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