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I want to create a dictionary as following -

{'a':[1, 2, 3, 4, 5], 'b':[1, 3, 5], 'c':[2, 3, 5]}

The way I have implemented it is

mydict = dict()
letters = ['a', 'b', 'a', 'c', 'a'] 

#please mark the list has multiple occurence of a, 
#hence I would want to check if a key with 'a' exists. Please do not advise to make the list unique. 
for l in letters:
    if not mydict.get(l):
        mydict[l] =  <values from another place via some filter>
    else:
        mydict[l].append(<values from another dict>)

Is there a better approach to do this?

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2  
I'll get the "have you tried" mydict = {'a':[1, 2, 3, 4, 5], 'b':[1, 3, 5], 'c':[2, 3, 5]} out of the way... Umm, what's the pattern used to generate this, how is letters related etc... There's not info. here to help you... What is values from another dict, what is value from another place etc... etc... –  Jon Clements May 22 '13 at 15:17
    
What are you expecting your output to look like? –  Henry Keiter May 22 '13 at 15:22
    
Use key in mydict to check if a key is in a dict. –  Jochen Ritzel May 22 '13 at 15:52

3 Answers 3

up vote 4 down vote accepted

Yes, you can use the defaultdict:

Sample code:

»»» from collections import defaultdict

»»» mydict = defaultdict(list)

»»» letters = ['a', 'b', 'a', 'c', 'a'] 

»»» for l in letters:
   ....:     mydict[l].append('1')
   ....:     

»»» mydict
Out[15]: defaultdict(<type 'list'>, {'a': ['1', '1', '1'], 'c': ['1'], 'b': ['1']})

If you need the content to be initialised to something fancier, you can specify your own construction function as the first argument to defaultdict. Passing context-specific arguments to that constructor might be tricky though.

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The solution provided by m01 is cool and all but I believe it's worth mentionning that we can do that with a plain dict object..

mydict = dict()
letters = ['a', 'b', 'a', 'c', 'a']

for l in letters:
    mydict.setdefault(l, []).append('1')

the result should be the same. You'll have a default dict instead of using a subclass. It really depends on what you're looking for. My guess is that the big problem with my solution is that it will create a new list even if it is not needed.

The defaultdict object has the advantage to create a new object only when something is missing. This solution has the advantage to be a simple dict without nothing special.

Edit

After thinking about it, I found out that using setdefault on a defaultdict will work as expected. But it's not yet good enough to say that a plain old dict should be used instead. There are cases where having a dict is important. To make it short, an invalid key on a dict will raise a KeyError. A defaultdict will return a default value.

As an example, there is the traversal algorithm that stops whenever it catches a KeyError or it traversed a whole path. With a defaultdict, you'd have to raise yourself the KeyError in case of errors.

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Interesting, I didn't know this was possible. However, is there much of an advantage in using a plain dict over a defaultdict, given Python's duck typing? You can also always construct a plain dict from the data in the defaultdict, too, using dict(mydict) –  m01 May 22 '13 at 15:38
    
This is quite interesting indead... I'll update the answer. –  Loïc Faure-Lacroix May 22 '13 at 16:00

You could use a defaultdict. (See reference)

from collections import defaultdict

mydict = defaultdict(list)
letters = ['a', 'b', 'a', 'c', 'a'] 

for l in letters:
    mydict[l].append(<some data>)
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