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Both Google and the online docs are not delivering much insight on my query, so I thought I would ask the community here.

In Perl, you can easily setup a hash-of-a-hash-of-a-hash and test the final key like so:

my $hash = {};
$hash{"element1"}{"sub1"}{"subsub1"} = "value1";
if (exists($hash{"element1"}{"sub1"}{"subsub1"})) {
   print "found value\n";
}

What's the 'best-practice' equivalent in Python?

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marked as duplicate by HappyLeapSecond Jun 19 at 12:11

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.

4 Answers 4

up vote 12 down vote accepted

The closest equivalent is probably something like the following:

import collections

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

hash = hasher()
hash['element1']['sub1']['subsub1'] = 'value1'
if 'subsub1' in hash['element1']['sub1']:
  print 'found value'
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3  
Note that if sub1 in hash['phony'] creates a key 'phony'. This might be problematic, especially since the OP wants to test if keys exist... –  HappyLeapSecond Jun 26 '10 at 3:24
    
@~unutbu: the OP asks: "test the final key", therefore hash['element1']['sub1'] = dict(subsub1='value1') will do. –  J.F. Sebastian Jun 26 '10 at 3:56
    
Thanks, this is quite helpful. –  jbb Jun 26 '10 at 8:32

As to whether this is a best practice in Python is up to debate:

hash = {}
hash['element1', 'sub1', 'subsub1'] = 'value'
if ('element1', 'sub1', 'subsub1') in hash:
    print "found value"

But, it certainly works and is very elegant, if it works for you.

The major drawback is that you don't have intermediate access. You can't do:

if ('element1', 'sub1') in hash:
   print "found value"
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1  
You should explain what's happening. This is a single hash/dict with a 3-element tuple as a key. Really not the same thing, though you did somewhat indicate that with your second example. –  Matthew Flaschen Jun 26 '10 at 3:32
    
Interesting way to handle the "drawback" (if you consider it to be such) in Alex Martelli's answer, pointed out by ~unutbu. –  David Z Jun 26 '10 at 5:35
    
Indeed, this wasn't what I was looking for - but interesting nonetheless. Thanks for the tip. –  jbb Jun 26 '10 at 8:33

I don't know if I'll get any agreement, but this is how I typically declare dictionaries of dictionaries:

someObj = {
  'element1': {
    'sub1': {
      'subsub1': 'value1'
    }
  }
}

As for checking for the presence of an element, I agree with this approach:

try:
  someObj['element1']['sub1']['subsub1']
except KeyError:
  print('no value found')
else:
  print('found value')
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from collections import defaultdict

tree = lambda: defaultdict(tree)

t = tree()

t[1][2][3] = 4
t[1][3][3] = 5
t[1][2]['test'] = 6

from wikipedia Autovivification

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Besides using lambda, how is this different from the accepted answer 3 years ago? –  MattH Aug 16 '13 at 10:42

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