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I want to generate a dict with the letters of the alphabet as the keys, something like

letter_count = {'a': 0, 'b': 0, 'c': 0}

what would be a fast way of generating that dict, rather than me having to type it in?

Thanks for your help.

EDIT
Thanks everyone for your solutions :)

nosklo's solution is probably the shortest

Also, thanks for reminding me about the Python string module.

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for what will you use the dict later? maybe there's a more elegant solution in the first place. –  hop Jan 17 '09 at 17:20

7 Answers 7

up vote 33 down vote accepted

I find this solution more elegant:

import string
d = dict.fromkeys(string.ascii_lowercase, 0)
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duh! one should re-read the docs for the trivial stuff from time to time ;) –  hop Jan 18 '09 at 1:22
1  
dict.fromkeys() is very useful, you just have to be aware that using a mutable object (such as a list) for the value will store references to that object in all the dictionary values. –  Alec Thomas Jan 19 '09 at 5:11
    
Been scripting python for years, and somehow I didn't know that... thanks –  Ubiquitous Aug 15 '11 at 22:16
    
Excellent....but I am wondering why my dictionary keys are not in alphabetic order. d.keys() gives me ['A', 'C', 'B', 'E', 'D', 'G', 'F', 'I', 'H', 'K', 'J', 'M', 'L', 'O', 'N', 'Q', 'P', 'S', 'R', 'U', 'T', 'W', 'V', 'Y', 'X', 'Z'] (which is not in alphabetic order) while string.ascii_uppercase is in alphabetic order ("ABCDEFGHIJKLMNOPQRSTUVWXYZ") ??? –  d.putto Feb 20 '12 at 11:21
2  
@d.putto because dicts don't have any order, so the order you get the keys back is not something you can rely upon. That's normal with dicts. –  nosklo Feb 21 '12 at 17:43
import string
letter_count = dict(zip(string.ascii_lowercase, [0]*26))

Or maybe:

import string
import itertools
letter_count = dict(zip(string.lowercase, itertools.repeat(0)))

Can't decide which one I like more at the moment.

EDIT: I've decided that I like nosklo's the best :-)

import string
letter_count = dict.fromkeys(string.ascii_lowercase, 0)


I'll take a guess here: do you want to count occurences of letters in a text (or something similar)? There are better ways to do this than starting with an initialized dictionary.

For one, there is defaultdict in the collections module:

>>> import collections
>>> letter_count = collections.defaultdict(int)
>>> the_text = 'the quick brown fox jumps over the lazy dog'
>>> for letter in the_text: letter_count[letter] += 1
... 
>>> letter_counts
defaultdict(<type 'int'>, {' ': 8, 'a': 1, 'c': 1, 'b': 1, ... 'z': 1})

Then there is this way:

>>> dict((c, s.count(c)) for c in string.ascii_lowercase)
{'a': 1, 'b': 1, 'c': 1, ... 'z': 1}

Horrible performance, but short and easy to read. Might be worth it, if performance doesn't matter.

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string.lowercase depends on locale. See my answer. –  J.F. Sebastian Jan 17 '09 at 17:07
    
yes, of course. might be what i want, though (works with the second example) –  hop Jan 17 '09 at 17:09

If you plan to use it for counting, I suggest the following:

import collections
d = collections.defaultdict(int)
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Here's a compact version, using a list comprehension:

>>> import string
>>> letter_count = dict( (key, 0) for key in string.ascii_lowercase )
>>> letter_count
{'a': 0, 'c': 0, 'b': 0, 'e': 0, 'd': 0, 'g': 0, 'f': 0, 'i': 0, 'h': 0, 'k': 0,
 'j': 0, 'm': 0, 'l': 0, 'o': 0, 'n': 0, 'q': 0, 'p': 0, 's': 0, 'r': 0, 'u': 0, 
't': 0, 'w': 0, 'v': 0, 'y': 0, 'x': 0, 'z': 0}
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credits to other answers for ascii_lowercase :D –  Federico A. Ramponi Jan 17 '09 at 17:13
    
You've got an extra pair of parens there: the parens in dict() are enough for the parser to understand the generator expression. –  Jouni K. Seppänen Jan 17 '09 at 17:45

There's this too:

import string
letter_count = dict((letter, 0) for letter in string.ascii_lowercase)
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Use string.ascii_lowercase. What if you've missed (typed twice) a letter? How do you tell it now, in 6 month? string.ascii_lowercase doesn't have such problems. –  J.F. Sebastian Jan 17 '09 at 17:12
    
Thanks. I was looking for that, but couldn't find it under string.lowercase where i was looking. –  recursive Jan 18 '09 at 23:44
import string
letters = string.ascii_lowercase
d = dict(zip(letters, [0]*len(letters))
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Yet another 1-liner Python hack:

letter_count = dict([(chr(i),0) for i in range(97,123)])
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1  
Definitely a hack. At the very least, use range(ord('a'), ord('z')+1). That at least describes the intent to a reader. –  Tom Jan 19 '09 at 0:28
1  
Oh, give me break. It was described as a 1-liner hack. –  Jeff Bauer Jan 22 '09 at 18:23

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