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I want to count the number of times each character is repeated in a string. Is there any particular way to do it apart from comparing each character of the string from A-Z and incrementing a counter?

Update (in reference to Anthony's answer): Whatever you have suggested till now I have to write 26 times. Is there an easier way?

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The following thread is also useful: stackoverflow.com/questions/992408/… –  Masi Jun 14 '09 at 13:11

9 Answers 9

up vote 14 down vote accepted

My first idea was to do this:

chars = "abcdefghijklmnopqrstuvwxyz"
check_string = "i am checking this string to see how many times each character appears"

for char in chars:
  count = check_string.count(char)
  if count > 1:
    print char, count

This is not a good idea, however! This is going to scan the string 26 times, so you're going to potentially do 26 times more work than some of the other answers. You really should do this:

count = {}
for s in check_string:
  if count.has_key(s):
    count[s] += 1
  else:
    count[s] = 1

for key in count:
  if count[key] > 1:
    print key, count[key]

This ensures that you only go through the string once, instead of 26 times.

Also, Alex's answer is a great one - I was not familiar with the collections module. I'll be using that in the future. His answer is more concise than mine is and technically superior. I recommend using his code over mine.

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Even though it's not your fault, that he chose the wrong answer, I imagine that it feels a bit awkward :-D –  Armandas Jun 13 '09 at 20:17
    
It does feel awkward! Isn't there a moderator who could change it? I tried to give Alex credit - his answer is truly better. –  Dan Wolchonok Jun 13 '09 at 20:28
2  
Unless you are supporting software that must run on Python 2.1 or earlier, you don't need to know that dict.has_key() exists (in 2.x, not in 3.x). For situations not covered by defaultdict where you want to check if a key is in (HINT!) a dictionary, use e.g. """key in adict""" instead of """adict.has_key(key)"""; looks better and (bonus!) runs faster (no attribute name lookup, no method call). –  John Machin Jun 13 '09 at 23:40
import collections

d = collections.defaultdict(int)
for c in thestring:
    d[c] += 1

A collections.defaultdict is like a dict (subclasses it, actually), but when an entry is sought and not found, instead of reporting it doesn't have it, it makes it and inserts it by calling the supplied 0-argument callable. Most popular are defaultdict(int), for counting (or, equivalently, to make a multiset AKA bag data structure), and defaultdict(list), which does away forever with the need to use .setdefault(akey, []).append(avalue) and similar awkward idioms.

So once you've done this d is a dict-like container mapping every character to the number of times it appears, and you can emit it any way you like, of course. For example, most-popular character first:

for c in sorted(d, key=d.get, reverse=True):
  print '%s %6d' % (c, d[c])
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+1 not sure why the other answer was chosen... maybe if you explain what defaultdict does? –  Paolo Bergantino Jun 13 '09 at 20:04
6  
I should write a bot that answers either "defaultdict" or "BeautifulSoup" to every Python question. –  Triptych Jun 13 '09 at 20:04
    
@Paolo, good idea, I'll edit to explain, tx. @Triptych, yeah, they are two useful little things;-). –  Alex Martelli Jun 13 '09 at 20:08
    
I get the following error message after running the code in OS/X with my data in a variable set as % thestring = "abc abc abc" % dpaste.com/55220 –  Masi Jun 14 '09 at 13:04
1  
Love collections.defaultdict. –  hughdbrown Aug 6 '09 at 20:07

Python 3.1 (currently scheduled for end of this month) will include the collections.Counter class:

import collections
results = collections.Counter(the_string)
print(results)
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2  
But like sunqiang pointed out, collections.Counter is also in python 2.7, and can be added to earlier versions. –  Michael Dunn Nov 3 '10 at 9:33

This is the shortest, most practical I can comeup with without importing extra modules.

text = "hello cruel world. This is a sample text"
d = dict.fromkeys(text, 0)
for c in text: d[c] += 1

print d['a'] would output 2

And it's also fast.

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+1 for Counter, Python2.7 has Counter too. Python2.5 and 2.6 can borrow it from http://code.activestate.com/recipes/576611/

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You want to use a dict.

#!/usr/bin/env python

input = "this is a string"

d = {}

for c in input:
    try:
        d[c] += 1
    except:
        d[c] = 1

for k in d.keys():
    print "%s: %d" % (k, d[k])
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that means i have to write the statement 26 times so as to find out how many times a character from a to z has repeated ?? –  Hick Jun 13 '09 at 19:53
7  
no. no it does not. –  anthony Jun 13 '09 at 19:55

You can use a dictionary:

s = "asldaksldkalskdla"
dict = {}
for letter in s:
 if letter not in dict.keys():
  dict[letter] = 1
 else:
  dict[letter] += 1

print dict
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O(N**2)! Use """if letter not in dict:""" Works from Python 2.2 onwards. –  John Machin Jun 13 '09 at 23:27

I can count the number of days I know Python on my two hands so forgive me if I answer something silly :)

Instead of using a dict, I thought why not use a list? I'm not sure how lists and dictionaries are implemented in Python so this would have to be measured to know what's faster.

If this was C++ I would just use a normal c-array/vector for constant time access (that would definitely be faster) but I don't know what the corresponding datatype is in Python (if there's one...):

count = [0 for i in range(26)]

for c in ''.join(s.lower().split()): # get rid of whitespaces and capital letters
    count[ord(c) - 97] += 1          # ord('a') == 97

It's also possible to make the list's size ord('z') and then get rid of the 97 subtraction everywhere, but if you optimize, why not all the way :)

EDIT: A commenter suggested that the join/split is not worth the possible gain of using a list, so I thought why not get rid of it:

count = [0 for i in range(26)]

for c in s:
    if c.isalpha(): count[ord(c.lower()) - 97] += 1
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yeah, you answered something silly :) –  uolot Jun 14 '09 at 10:46
    
The idea expressed in this code is basically sound. The python list has constant time access, which is fine, but the presence of the join/split operation means more work is being done than really necessary. You can dispense with this if you use a 256 element list, wasting a trifling amount of memory. –  Greg Ball Jun 14 '09 at 11:24
    
Hi Greg, I changed the code to get rid of the join/split. It still requires more work than using the straight forward dict approach though. –  Idan K Jun 14 '09 at 15:22

Here is the solution..

my_list=[]
history=""
history_count=0
my_str="happppyyyy"


for letter in my_str:
    if letter in history:
        my_list.remove((history,history_count))
        history=letter
        history_count+=1

    else:
        history_count=0
        history_count+=1
        history=letter


my_list.append((history,history_count))    


print my_list
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