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this is the string :

a='dqdwqfwqfggqwq'

how to get the number of occurrences of each character

my boss told me , it only use one line to do this ,

so what can i do ,

thanks

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4  
Tell your boss he is an idiot. Anyone that wants code on less lines than needed is a fool. –  Jakob Bowyer Mar 4 '11 at 11:00
1  
Compact solution tend to produce more concise code –  Frost.baka Mar 4 '11 at 11:01
1  
Concise code is good, but clarity is more important IMHO. –  Vamana Mar 4 '11 at 11:56
3  
By boss you mean teacher? :P –  Béres Botond Mar 4 '11 at 12:10
    
This has a bunch of other ways, defaultdict is a nice way of doing it without counter (2.5+) stackoverflow.com/questions/991350/… –  Andrew Barrett May 6 '12 at 18:29

3 Answers 3

up vote 6 down vote accepted

Not highly efficient, but it is one-line...

In [24]: a='dqdwqfwqfggqwq'

In [25]: dict((letter,a.count(letter)) for letter in set(a))
Out[25]: {'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3}
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Didn't know about the count method, thanx for the tip –  Frost.baka Mar 4 '11 at 11:17
    
It's O(N * sigma) where sigma is number of unique letters; nice improvement –  John Machin Mar 4 '11 at 11:20

In 2.7 and 3.1 there's a tool called Counter:

>>> import collections
>>> results = collections.Counter("dqdwqfwqfggqwq")
>>> results
Counter({'q': 5, 'w': 3, 'g': 2, 'd': 2, 'f': 2})

Docs. As pointed out in the comments it is not compatible with 2.6 or lower, but it's backported.

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Thats not one line and not good for 2.6 or lower. –  Jakob Bowyer Mar 4 '11 at 10:58
2  
looks like one line to me –  Uku Loskit Mar 4 '11 at 10:59
10  
Jakob, if you want one line: import collections; collections.Counter("dqdwqfwqfggqwq") Ta-dah. :) –  Bjorn Mar 4 '11 at 11:01
    
Im trying to discourage one line but :P –  Jakob Bowyer Mar 4 '11 at 12:21

For each letter count the difference between string with that letter and without it, that way you can get it's number of occurences

a="fjfdsjmvcxklfmds3232dsfdsm"
dict(map(lambda letter:(letter,len(a)-len(a.replace(letter,''))),a))
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3  
Hey, no one is talking about efficiency, only about size :) –  Frost.baka Mar 4 '11 at 11:18
    
a.count(letter) is clearer than len(a)-len(a.replace(letter,'')) if you want that way you can get it's number of occurences –  eumiro Mar 4 '11 at 11:19

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