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records = {'foo':foo, 'bar':bar, 'baz':baz}

I want to change the values to 0 if it is None. How can I do this?

eg:

records = {'foo':None, 'bar':None, 'baz':1}

I want to change foo and bar to 0. Final dict:

records = {'foo':0, 'bar':0, 'baz':1}
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6 Answers

up vote 6 down vote accepted

Another way

records.update((k, 0) for k,v in records.iteritems() if v is None)

Example

>>> records
{'bar': None, 'baz': 1, 'foo': None}
>>> records.update((k, 0) for k,v in records.iteritems() if v is None)
>>> records
{'bar': 0, 'baz': 1, 'foo': 0}
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for k in records:
    if records[k] is None:
        records[k] = 0
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Try

for key, value in records.iteritems():
    if value is None:
        records[key] = 0
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for k, v in records.items():
    if v is None:
        records[k] = 0
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There is a typo in the last line ("k" instead of k). Furthermore, iteritems() is preferred over items() in this situation (but it does not matter much most of the time). –  Sven Marnach Feb 14 '11 at 13:40
    
Thanks, Sven. I fixed my answer. –  Alex Reynolds Feb 14 '11 at 13:42
    
Why the extra downvotes? –  Alex Reynolds Feb 14 '11 at 13:45
2  
If you downvote, it is good etiquette to leave a reason for doing so. –  Alex Reynolds Feb 14 '11 at 13:47
1  
@Alex: I removed my down vote. The answer is no longer wrong, as it was when I voted. (You didn't use .items() then) –  Thomas Watnedal Feb 14 '11 at 13:48
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If you want to intimidate or annoy other code maintainers, there's an ugly one-liner that will do the trick:

records.update(map(lambda (k,v):(k,{v:v,None:0}[v]), records.items()))

Example use:

>>> records = {"hey":None, "you":0}
>>> records.update(map(lambda (k,v):(k,{v:v,None:0}[v]), records.items()))
>>> records
{'you': 0, 'hey': 0}
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1  
+1 for using a lambda, and for intimidating code maintainers :) –  karategeek6 Feb 14 '11 at 17:14
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records = dict( (k,0 if v is None else v) for k, v in records.items() )

def zero_if_none( x ):
    return 0 if z is None else x
records = dict( (k, zero_if_none(records[k])) for k in records )
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