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I created an dictionary of the 26 alphabet letters like this:

    "a": 1,
    "b": 2,
    "c": 3,
    "d": 4,

I'm trying make my code better and my question is, is there any shorter way to do this without typing all these numbers out?

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6 Answers 6

up vote 14 down vote accepted

You can use string.ascii_lowercase and dict comprehension here.

In [4]: from string import ascii_lowercase as al

For Python 2.7+:

In [5]: dic = {x:i for i, x in enumerate(al, 1)}

For Python 2.6 or earlier:

In [7]: dic = dict((y, x) for x, y in enumerate(al, 1))
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thank you so much! –  Ris Feb 15 '13 at 20:49
wah.............. –  Mitul Shah Aug 20 '14 at 8:02
aDict = dict(zip('abcdefghijklmnopqrstuvwxyz', range(1, 27)))

Or instead of hard coding the alphabet:

import string
aDict = dict(zip(string.ascii_lowercase, range(1, 27)))
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If you're not going to hardcode the alphabet, I'd suggest not hardcoding its length, zipping against itertools.count(1) or range(1, 1+len(string.ascii_lowercase)). –  pilcrow Feb 15 '13 at 20:47
great way to do it as well..thanks –  Ris Feb 15 '13 at 20:50

Try this, it works in Python 2.6 and older:

from string import ascii_lowercase
d = {}
for i, c in enumerate(ascii_lowercase, 1):
    d[c] = i

If you're using Python 2.7 or newer, you can use a dictionary comprehension:

d = {c : i for i, c in enumerate(ascii_lowercase, 1)}
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You can find the ascii value of a character using ord() function, and the reverse is chr():

>>> ord('a')

You can then create a dictionary from the ascii values as follows:

for i in range(97, 97+26):
    x[chr(i)] = i - 96 
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Python 2.7 and above:

import string

letters = {k: v for v, k in enumerate(string.ascii_lowercase, 1)}

Python 2.6 and below:

import string

letters = dict((k, v) for v, k in enumerate(string.ascii_lowercase, 1))
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Isn't this just @Ashwini's answer? [Happens to me all the time, too.] –  DSM Feb 15 '13 at 20:48
@DSM Pretty much ... there'll always be a few dupe or near-dupe answers to something like this. I like to imagine everyone furiously typing to get there first :-) Actually I think for this kind of question it's kinda useful; it makes clear to inexperienced readers which are the idiomatic solutions, and which ... aren't. –  Zero Piraeus Feb 15 '13 at 20:53
dict([(chr(i),i-96) for i in range(97,123)])

But I like @Ashwini Chaudhary's method: seems much cleaner.

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