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As an example, lets say I wanted to list the frequency of each letter of the alphabet in a string. What would be the easiest way to do it?

This is an example of what I'm thinking of... the question is how to make allTheLetters equal to said letters without something like allTheLetters = "abcdefg...xyz". In many other languages I could just do letter++ and increment my way through the alphabet, but thus far I haven't come across a way to do that in python.

def alphCount(text):
  lowerText = text.lower()
  for letter in allTheLetters:  
    print letter + ":", lowertext.count(letter)
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10 Answers 10

up vote 60 down vote accepted

The question you've asked (how to iterate through the alphabet) is not the same question as the problem you're trying to solve (how to count the frequency of letters in a string).

You can use string.lowercase, as other posters have suggested:

import string
allTheLetters = string.lowercase

To do things the way you're "used to", treating letters as numbers, you can use the "ord" and "chr" functions. There's absolutely no reason to ever do exactly this, but maybe it comes closer to what you're actually trying to figure out:

def getAllTheLetters(begin='a', end='z'):
    beginNum = ord(begin)
    endNum = ord(end)
    for number in xrange(beginNum, endNum+1):
        yield chr(number)

You can tell it does the right thing because this code prints True:

import string
print ''.join(getAllTheLetters()) == string.lowercase

But, to solve the problem you're actually trying to solve, you want to use a dictionary and collect the letters as you go:

from collections import defaultdict    
def letterOccurrances(string):
    frequencies = defaultdict(lambda: 0)
    for character in string:
        frequencies[character.lower()] += 1
    return frequencies

Use like so:

occs = letterOccurrances("Hello, world!")
print occs['l']
print occs['h']

This will print '3' and '1' respectively.

Note that this works for unicode as well:

# -*- coding: utf-8 -*-
occs = letterOccurrances(u"héĺĺó, ẃóŕĺd!")
print occs[u'l']
print occs[u'ĺ']

If you were to try the other approach on unicode (incrementing through every character) you'd be waiting a long time; there are millions of unicode characters.

To implement your original function (print the counts of each letter in alphabetical order) in terms of this:

def alphCount(text):
    for character, count in sorted(letterOccurrances(text).iteritems()):
        print "%s: %s" % (character, count)

alphCount("hello, world!")
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1  
Excellent tutorial! –  Ber Oct 23 '08 at 7:53
3  
you really should use string.ascii_lowercase instead of writing your own getAllTheLetters. also, that is a horribly unpythonic name for a function! –  hop Oct 23 '08 at 20:39
    
Your letterOccurrances() function will also count whitespace and punctuation, perhaps not intentionally. –  mhawke Oct 23 '08 at 23:16
    
Actually the number of Unicode characters is still under a million. Also a few of them are non-alphabetic, so you want to exclude those when printing out frequencies. –  Windows programmer Oct 23 '08 at 23:36
    
"string.ascii_lowercase" -- I hope there's a unicode_lowercase to handle Cyrillic, Greek, etc. I hope it knows how to downcase Turkish I's correctly depending on the current locale. –  Windows programmer Oct 23 '08 at 23:37

the question is how to make allTheLetters equal to said letters without something like allTheLetters = "abcdefg...xyz"

That's actually provided by the string module, it's not like you have to manually type it yourself ;)

import string

allTheLetters = string.ascii_lowercase

def alphCount(text):
  lowerText = text.lower()
  for letter in allTheLetters:  
    print letter + ":", lowertext.count(letter)
share|improve this answer
    
This solution is slow, since it has nested iterations (lowertext.count() iterates over the string in order to find the count) –  Ber Oct 23 '08 at 7:54
4  
However, the specific question was answered. Other problems are the original posters problem. –  paxdiablo Oct 23 '08 at 8:16

If you just want to do a frequency count of a string, try this:

s = 'hi there'
f = {}

for c in s:
        f[c] = f.get(c, 0) + 1

print f
share|improve this answer
    
This is a very goot solution as it only iterates once over the given string, and thus is O(n) as opposed to using nested iterations. event better if you use f = defaultdict(int) and the simply f[c]+=1 –  Ber Oct 23 '08 at 7:53
    
Is the get member O(1)? If it's O(n), then the whole thing is O(n^2). –  paxdiablo Oct 23 '08 at 9:13
    
@Pax Diablo: Mappings are hashed. Dictionary gets are O(1). –  S.Lott Oct 24 '08 at 2:08

Do you mean using:

import string
string.ascii_lowercase

then,

counters = dict()
for letter in string.ascii_lowercase:
    counters[letter] = lowertext.count(letter)

All lowercase letters are accounted for, missing counters will have zero value.

using generators:

counters = 
    dict( (letter,lowertext.count(letter)) for letter in string.ascii_lowercase )
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Something like this?

for letter in range(ord('a'), ord('z') + 1):
  print chr(letter) + ":", lowertext.count(chr(letter))

(I don't speak Python; please forgive my syntax errors)

share|improve this answer
    
I think your "letter" inside the count() should be "chr(letter)" –  paxdiablo Oct 23 '08 at 6:37
    
Since you fixed it (and didn't have my off-by-one bug resulting in only checking up to 'y' :-), I've deleted my answer and upvoted yours. –  paxdiablo Oct 23 '08 at 6:40
2  
This looks fine to me, why is it getting voted down ? –  Adam Pierce Oct 23 '08 at 7:05
    
@Adam: I temporarily voted it down to remove it from the top position and elevate Matthew's answer. It's also not very Pythonic code. –  John Millikin Oct 23 '08 at 7:08
1  
@John: oooh, market manipulation. Does the SEC monitor these forums? :-) –  paxdiablo Oct 23 '08 at 8:17

Main question is "iterate through the alphabet":

import string
for c in string.lowercase:
    print c

How get letter frequencies with some efficiency and without counting non-letter characters:

import string

sample = "Hello there, this is a test!"
letter_freq = dict((c,0) for c in string.lowercase)

for c in [c for c in sample.lower() if c.isalpha()]:
    letter_freq[c] += 1

print letter_freq
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For counting objects, the obvious solution is the Counter

from collections import Counter
import string

c = Counter()
for letter in text.lower():
    c[letter] += 1

for letter in string.lowercase:
    print("%s: %d" % (letter, c[letter]))
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2  
Even easier, you can replace the assignment loop with: c = Counter(text.lower()) –  Matthew Trevor Jun 12 '12 at 4:29

How about this, to use letters, figures and punctuation (all usable to form a Django key):

import random
import string

chars = string.letters + string.digits + string.punctuation
chars_len = len(chars)
n = 40

print(''.join([chars[random.randint(0, chars_len)] for i in range(n)]))

Example result: coOL:V!D+P,&S*hzbO{a0_6]2!{4|OIbVuAbq0:

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Just use:

import string
string.lowercase  
string.uppercase

or

string.letters[:26]  
string.letters[26:]
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This is what I do:

import string
for x in list(string.lowercase):
    print x
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