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(Python 2.7.2) I would like to better understand why the default value is returned when using a dictionaries .get() method to find a key when the value mapped to the key is 0.

Consider the following

x = {1:0}

print x.get('1', 'a')

'a'

The same happens for an empty string, set, etc.

but if I do:

print x[1]
0

Does the .get() method return the default value both when a keyError is raised and if the value returned is 0 or an empty set?

Is it has something to do with the fact that the dict object is immutable and that when I point to the value stored on key = 1, I am getting passed a reference to a object that equates to False.

I know I could write my own get method that does a

def get(key, default=None):
    try: return x[key]
    except KeyError: return default

but I would like to have a more in depth understanding of the .get method.

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1  
watch this pycon 2010 video on dictionaries: blip.tv/pycon-us-videos-2009-2010-2011/… – Ashwini Chaudhary Dec 27 '12 at 1:26
up vote 10 down vote accepted

1 != '1'; an int isn't equal to a str.

>>> x = {1:0}
>>> 
>>> print x.get('1', 'a')
a
>>> print x.get(1, 'a')
0
share|improve this answer
2  
Note that dictionaries consider 1 and 1.0 as same keys due to same hash() value, so x[1] and x[1.0] are equivalent. – Ashwini Chaudhary Dec 27 '12 at 1:22
1  
Yep -- even 1+0j will work, or decimal.Decimal(1), or fractions.Fraction(1,1), etc. Although that's because they compare equal too, not merely because they have the same hash value (otherwise every collision would be disastrous!) – DSM Dec 27 '12 at 1:24
    
Totally agree with that. From hash.__doc__ : Two objects with the same value have the same hash value. – Ashwini Chaudhary Dec 27 '12 at 1:35

You made mistake in your first experiment:

>>> x = {1: 0}
>>> x.get('1', 'a')
'a'
>>> x.get(1, 'a')
0

In Python, dict keys can be any hashable type, not just strings.

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