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I have a multidimensional dict, and I'd like to be able to retrieve a value by a key:key pair, and return 'NA' if the first key doesn't exist. All of the sub-dicts have the same keys.

d = {   'a': {'j':1,'k':2},
        'b': {'j':2,'k':3},
        'd': {'j':1,'k':3}
    }

I know I can use d.get('c','NA') to get the sub-dict if it exists and return 'NA' otherwise, but I really only need one value from the sub-dict. I'd like to do something like d.get('c['j']','NA') if that existed.

Right now I'm just checking to see if the top-level key exists and then assigning the sub-value to a variable if it exists or 'NA' if not. However, I'm doing this about 500k times and also retrieving/generating other information about each top-level key from elsewhere, and I'm trying to speed this up a little bit.

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up vote 10 down vote accepted

How about

d.get('a', {'j': 'NA'})['j']

?

If not all subdicts have a j key, then

d.get('a', {}).get('j', 'NA')

 

To cut down on identical objects created, you can devise something like

class DefaultNASubdict(dict):
    class NADict(object):
        def __getitem__(self, k):
            return 'NA'

    NA = NADict()

    def __missing__(self, k):
        return self.NA

nadict = DefaultNASubdict({
                'a': {'j':1,'k':2},
                'b': {'j':2,'k':3},
                'd': {'j':1,'k':3}
            })

print nadict['a']['j']  # 1
print nadict['b']['j']  # 2
print nadict['c']['j']  # NA

 

Same idea using defaultdict:

import collections

class NADict(object):
    def __getitem__(self, k):
        return 'NA'

    @staticmethod
    def instance():
        return NADict._instance

NADict._instance = NADict()


nadict = collections.defaultdict(NADict.instance, {
                'a': {'j':1,'k':2},
                'b': {'j':2,'k':3},
                'd': {'j':1,'k':3}
            })
share|improve this answer
    
look at collections.defaultdict for an already provided implementation, i.e. defaultdict(lambda: defaultdict(lambda: 'NA')) – mtadd Apr 14 '13 at 19:54
    
Sure, but you still need an NADict and a function that returns a shared instance of it. I'll add an example. – Pavel Anossov Apr 14 '13 at 19:55
    
@mtadd: the idea was to not create a new dict/defaultdict on every mislookup. – Pavel Anossov Apr 14 '13 at 20:00
    
That's a neat solution. I still get a KeyError when looking up a missing key from the inner dictionaries. e.g. nadict['a']['l'] – mtadd Apr 14 '13 at 20:10
1  
Well of course, they're just dicts. "All of the sub-dicts have the same keys", OP said. – Pavel Anossov Apr 14 '13 at 20:11

Rather than a hierarchy of nested dict objects, you could use one dictionary whose keys are a tuple representing a path through the hierarchy.

In [34]: d2 = {(x,y):d[x][y] for x in d for y in d[x]}

In [35]: d2
Out[35]:
{('a', 'j'): 1,
 ('a', 'k'): 2,
 ('b', 'j'): 2,
 ('b', 'k'): 3,
 ('d', 'j'): 1,
 ('d', 'k'): 3}

In [36]: timeit [d[x][y] for x,y in d2.keys()]
100000 loops, best of 3: 2.37 us per loop

In [37]: timeit [d2[x] for x in d2.keys()]
100000 loops, best of 3: 2.03 us per loop

Accessing this way looks like it's about 15% faster. You can still use the get method with a default value:

In [38]: d2.get(('c','j'),'NA')
Out[38]: 'NA'
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Here's a simple and efficient way to do it with ordinary dictionaries, nested an arbitrary number of levels:

d = {'a': {'j': 1, 'k': 2},
     'b': {'j': 2, 'k': 3},
     'd': {'j': 1, 'k': 3},
    }

def chained_get(dct, *keys):
    SENTRY = object()
    def getter(level, key):
        return 'NA' if level is SENTRY else level.get(key, SENTRY)
    return reduce(getter, keys, dct)

print chained_get(d, 'a', 'j') # 1
print chained_get(d, 'b', 'k') # 3
print chained_get(d, 'k', 'j') # NA

It could also be done recursively:

def chained_get(dct, *keys):
    SENTRY = object()
    def getter(level, keys):
        return (level if keys[0] is SENTRY else
                    'NA' if level is SENTRY else
                        getter(level.get(keys[0], SENTRY), keys[1:]))
    return getter(dct, keys+(SENTRY,))

Although that way of doing it isn't quite as efficient as the former.

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