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ASCII math doesn't seem to work in Python:

'a' + 5 DOESN'T WORK

How could I quickly print out the nth letter of the alphabet without having an array of letters?

My naive solution is this:

letters = ['A', 'B', 'C', 'D', 'E', 'F', 'G', 'H', 'I', 'J', 'K', 'L', 'M', 'N', 'O', 'P', 'Q', 'R', 'S', 'T', 'U', 'V', 'W', 'X', 'Y', 'Z']
print letters[5]
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You could shorten your naive solution with letters="ABCDEF...XYZ" – mob Nov 12 '09 at 18:53
Or if it absolutely must be a list, letters=list("ABCDEF..etc.") or letters=list(string.uppercase) (note that string.uppercase changes its name in Py3). – Paul McGuire Nov 12 '09 at 20:04

6 Answers 6

up vote 26 down vote accepted

chr and ord convert characters from and to integers, respectively. So:

chr(ord('a') + 5)

is the letter 'f'.

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... which is the 6th letter in the alphabet, unless you are zero-indexing... – Paul McGuire Nov 12 '09 at 20:05
It is the 5th letter from 'a', obviously. And yes, I'm zero-indexing. What self-respecting programmer doesn't? ;) – Thomas Nov 12 '09 at 20:22
Also, it is perfectly in line with the examples given in the question. – Thomas Nov 12 '09 at 20:23

ASCII math aside, you don't have to type your letters table by hand. The string constants in the string module provide what you were looking for.

>>> import string
>>> string.ascii_uppercase[5]
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if u want to go really out of the way (probably not very good) you could create a new class CharMath:

class CharMath:
    def __init__(self,char):
        if len(char) > 1: raise IndexError("Not a single character provided")
        else: self.char = char
    def __add__(self,num):
        if type(num) == int or type(num) == float: return chr(ord(self.char) + num)
        raise TypeError("Number not provided")

The above can be used:

>>> CharMath("a") + 5
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You need to use the ord function, like


Edit: gah, I was too slow :)

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import string
print string.letters[n + is_upper*26]

For example:

>>> n = 5
>>> is_upper = False
>>> string.letters[n+is_upper*26]
>>> is_upper = True
>>> string.letters[n+is_upper*26]
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