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I found this programming problem while looking at a job posting on SO. I thought it was pretty interesting and as a beginner Python programmer I attempted to tackle it. However I feel my solution is quite...messy...can anyone make any suggestions to optimize it or make it cleaner? I know it's pretty trivial, but I had fun writing it. Note: Python 2.6

The problem:

Write pseudo-code (or actual code) for a function that takes in a string and returns the letter that appears the most in that string.

My attempt:

import string

def find_max_letter_count(word):

    alphabet = string.ascii_lowercase
    dictionary = {}

    for letters in alphabet:
        dictionary[letters] = 0

    for letters in word:
        dictionary[letters] += 1

    dictionary = sorted(dictionary.items(), 
                        reverse=True, 
                        key=lambda x: x[1])

    for position in range(0, 26):
        print dictionary[position]
        if position != len(dictionary) - 1:
            if dictionary[position + 1][1] < dictionary[position][1]:
                break

find_max_letter_count("helloworld")

Output:

>>> 
('l', 3)

Updated example:

find_max_letter_count("balloon") 
>>>
('l', 2)
('o', 2)
share|improve this question
    
Incidental note: you should read PEP 8, which documents the recommended Python coding style. Methods should be in snake_case rather than mixedCase. –  Chris Morgan Nov 9 '10 at 6:49
    
possible duplicate of How to find most common elements of a list? –  kennytm Nov 9 '10 at 6:55
    
possible duplicate of Python most common element in a list –  nawfal May 31 '13 at 5:19

6 Answers 6

up vote 11 down vote accepted

There are many ways to do this shorter. For example, you can use the Counter class (in Python 2.7 or later):

import collections
s = "helloworld"
print(collections.Counter(s).most_common(1)[0])

If you don't have that, you can do the tally manually (2.5 or later has defaultdict):

d = collections.defaultdict(int)
for c in s:
    d[c] += 1
print(sorted(d.items(), key=lambda x: x[1], reverse=True)[0])

Having said that, there's nothing too terribly wrong with your implementation.

share|improve this answer
2  
.most_common().... –  kennytm Nov 9 '10 at 6:56
    
@KennyTM: indeed, thanks! –  Greg Hewgill Nov 9 '10 at 6:58
1  
Thanks for your answer (you too Chris Morgan), but I guess I forgot to mention that if multiple characters are the most frequent, they should all be output. (ex. 'abcdefg' outputs a = 1, b = 1, etc.) I thought this was the trickiest part, hence the mess at the end. I've edited the question. –  Sunandmoon Nov 9 '10 at 7:15

If you are using Python 2.7, you can quickly do this by using collections module. collections is a hight performance data structures module. Read more at http://docs.python.org/library/collections.html#counter-objects

>>> from collections import Counter
>>> x = Counter("balloon")
>>> x
Counter({'o': 2, 'a': 1, 'b': 1, 'l': 2, 'n': 1})
>>> x['o']
2
share|improve this answer

If you want to have all the characters with the maximum number of counts, then you can do a variation on one of the two ideas proposed so far:

import heapq  # Helps finding the n largest counts
import collections

def find_max_counts(sequence):
    """
    Returns an iterator that produces the (element, count)s with the
    highest number of occurrences in the given sequence.

    In addition, the elements are sorted.
    """

    if len(sequence) == 0:
        raise StopIteration

    counter = collections.defaultdict(int)
    for elmt in sequence:
        counter[elmt] += 1

    counts_heap = [
        (-count, elmt)  # The largest elmt counts are the smallest elmts
        for (elmt, count) in counter.iteritems()]

    heapq.heapify(counts_heap)

    highest_count = counts_heap[0][0]

    while True:

        try:
            (opp_count, elmt) = heapq.heappop(counts_heap)
        except IndexError:
            raise StopIteration

        if opp_count != highest_count:
            raise StopIteration

        yield (elmt, -opp_count)

for (letter, count) in find_max_counts('balloon'):
    print (letter, count)

for (word, count) in find_max_counts(['he', 'lkj', 'he', 'll', 'll']):
    print (word, count)

This yields, for instance:

lebigot@weinberg /tmp % python count.py
('l', 2)
('o', 2)
('he', 2)
('ll', 2)

This works with any sequence: words, but also ['hello', 'hello', 'bonjour'], for instance.

The heapq structure is very efficient at finding the smallest elements of a sequence without sorting it completely. On the other hand, since there are not so many letter in the alphabet, you can probably also run through the sorted list of counts until the maximum count is not found anymore, without this incurring any serious speed loss.

share|improve this answer

Here is way to find the most common character using a dictionary

message = "hello world"
d = {}
letters = set(message)
for l in letters:
    d[message.count(l)] = l

print d[d.keys()[-1]], d.keys()[-1]
share|improve this answer
def most_frequent(text):
    frequencies = [(c, text.count(c)) for c in set(text)]
    return max(frequencies, key=lambda x: x[1])[0]

s = 'ABBCCCDDDD'
print(most_frequent(s))

frequencies is a list of tuples that count the characters as (character, count). We apply max to the tuples using count's and return that tuple's character. In the event of a tie, this solution will pick only one.

share|improve this answer

Here are a few things I'd do:

  • Use collections.defaultdict instead of the dict you initialise manually.
  • Use inbuilt sorting and max functions like max instead of working it out yourself - it's easier.

Here's my final result:

from collections import defaultdict

def find_max_letter_count(word):
    matches = defaultdict(int)  # makes the default value 0

    for char in word:
        matches[char] += 1

    return max(matches.iteritems(), key=lambda x: x[1])

find_max_letter_count('helloworld') == ('l', 3)
share|improve this answer
    
Nitpicking: letters would be more correct as letter, since it's a variable that contain exactly one letter. –  EOL Nov 9 '10 at 7:53
1  
@EOL: true; I didn't rename that variable from what he had - I'd put it as char myself, I think, as it's not just a letter... –  Chris Morgan Nov 9 '10 at 21:50

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