Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

A lot of times in Perl, I'll do something like this:

$myhash{foo}{bar}{baz} = 1

How would I translate this to Python? So far I have:

if not 'foo' in myhash:
    myhash['foo'] = {}
if not 'bar' in myhash['foo']:
    myhash['foo']['bar'] = {}
myhash['foo']['bar']['baz'] = 1

Is there a better way?

share|improve this question

marked as duplicate by martineau, tiago, torazaburo, Ruchira Gayan Ranaweera, fedorqui Aug 15 '13 at 14:06

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
ahem, indeed the other was asked 5 days before and these both are 4 years old ... –  Antti Haapala Aug 15 '13 at 2:42

5 Answers 5

up vote 57 down vote accepted
class AutoVivification(dict):
    """Implementation of perl's autovivification feature."""
    def __getitem__(self, item):
        try:
            return dict.__getitem__(self, item)
        except KeyError:
            value = self[item] = type(self)()
            return value

Testing:

a = AutoVivification()

a[1][2][3] = 4
a[1][3][3] = 5
a[1][2]['test'] = 6

print a

Output:

{1: {2: {'test': 6, 3: 4}, 3: {3: 5}}}
share|improve this answer
    
Is it possible to extend it so it supports the following behavior: a[1][2][3] += some_value. So if the key did not exist in advance, then the a[1][2][3] would be initialized with the default value of the type(some_value)? –  mezhaka May 6 '10 at 8:08
1  
This function has the side effect that any attempts to get a non-existent key also creates the key. Typically you would only want to auto create a key if you were at the same time setting a key or subkey. –  Dave Rawks Feb 21 '12 at 22:29
    
Is there also a way to make the assignment variable? So that given var = [1,2,3], I could do like a[var] = 1, which would expand to a[1][2][3] = 1? –  PascalvKooten Oct 13 '13 at 15:06
    
var = [1,2] would then allow a[var] = 1 to be a[1][2] = 1 –  PascalvKooten Oct 13 '13 at 15:07
    
@Dualinity that already works if you use normal dicts and tuples: d = {}; k = (1, 2, 3); d[k] = 1 then you can use d[1,2,3]. If you want to use d[1][2][3] (why?) you'd have to modify the recipe above, ask another question. remember tat flat is better than nested. –  nosklo Oct 17 '13 at 11:13

If the amount of nesting you need is fixed, collections.defaultdict is wonderful.

e.g. nesting two deep:

myhash = collections.defaultdict(dict)
myhash[1][2] = 3
myhash[1][3] = 13
myhash[2][4] = 9

If you want to go another level of nesting, you'll need to do something like:

myhash = collections.defaultdict(lambda : collections.defaultdict(dict))
myhash[1][2][3] = 4
myhash[1][3][3] = 5
myhash[1][2]['test'] = 6

edit: MizardX points out that we can get full genericity with a simple function:

def makehash():
    return collections.defaultdict(makehash)

Now we can do:

myhash = makehash()
myhash[1][2] = 4
myhash[1][3] = 8
myhash[2][5][8] = 17
# etc
share|improve this answer
1  
or def makehash(): return collections.defaultdict(makehash); myhash = makehash() –  Markus Jarderot Mar 16 '09 at 21:56
    
I've got no problems with "traditional" recursive functions, but there's something about that that I find unintuitive. Odd. Anyway, thanks! –  John Fouhy Mar 16 '09 at 23:06
    
Thanks for this. That lambda: defaultdict() is what I needed. –  wheaties Feb 8 '10 at 15:48
    
Unfortunately that recursive makehash approach does not handle the following a = makehash(); a['foo'] += 1; as I understand it's because the default_factory is not specified here. Do you know how to overcome this issue? –  mezhaka May 6 '10 at 8:02
    
This just saved my bacon on a data conversion project that was overdue before I started it. I needed to do some time coalescing of log messages based on sec,msec tags; I really wanted to use hash-hash-list. tagtable = collections.defaultdict(lambda : collections.defaultdict(list)) really hit the spot. –  Wexxor Feb 14 '13 at 6:58

Is there a reason it needs to be a dict of dicts? If there's no compelling reason for that particular structure, you could simply index the dict with a tuple:

mydict = {('foo', 'bar', 'baz'):1} # Initializes dict with a key/value pair
mydict[('foo', 'bar', 'baz')]      # Returns 1

mydict[('foo', 'unbar')] = 2       # Sets a value for a new key

The parentheses are required if you initialize the dict with a tuple key, but you can omit them when setting/getting values using []:

mydict = {}                        # Initialized the dict
mydict['foo', 'bar', 'baz'] = 1    # Sets a value
mydict['foo', 'bar', 'baz']        # Returns 1
share|improve this answer
    
Can you be clear on when you can omit the parentheses? Is it because the comma is the tuple operator, and the parentheses only needed if we have ambiguous grouping? –  Kiv Mar 16 '09 at 20:05
    
Added clarification, thx. –  zweiterlinde Mar 16 '09 at 20:13

Nested dictionaries like that are (often) called a poor mans objects. Yes, there is an implication and it might correlate with pythons object oriented nature.

share|improve this answer

I guess the literal translation would be:

 mydict = {'foo' : { 'bar' : { 'baz':1}}}

Calling:

 >>> mydict['foo']['bar']['baz']

gives you 1.

That looks a little gross to me, though.

(I'm no perl guy, though, so I'm guessing at what your perl does)

share|improve this answer
1  
That only works at initialization time, though, right? –  mike Mar 16 '09 at 19:34
    
I'm not sure what you mean. –  Dana Mar 16 '09 at 19:36
    
@Dana, as opposed to adding new values to mydict during runtime. –  Cees Timmerman May 4 '13 at 21:35

Not the answer you're looking for? Browse other questions tagged or ask your own question.