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I need to receive a string from the user, present it in list so each organ in the list contains [the letter, the number it repeat in a row].

I thought my code is good but it doesn't work.

Here is my code:

my_str = raw_input( "Enter a string:" )

j=0
while j<=len(my_str):
    for i in my_str:
        counter=0
        if i==i+1:
            counter +=1
            continue
            print i, counter

        else:
            print i,1
            j+=1

output:

Enter a string: baaaaab
As list: [['b', 1], ['a', 5], ['b', 1]]
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4 Answers 4

This is drastically different from your code, but a more efficient way of doing this would be to use itertools.groupby:

import itertools
my_str = raw_input("Enter a string:")
print [[g[0], sum(1 for _ in g[1])] for g in itertools.groupby(my_str)]
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we didn't learn it yet, I prefer to use something we did.. –  user1562379 Oct 29 '12 at 20:27
4  
As you should. :) This answer is more of a note for others who might come across the question. –  Amber Oct 29 '12 at 20:27
    
I wouldn't materialize the list, but rather use sum(1 for _ in g[1]) –  Jon Clements Oct 29 '12 at 20:31
    
@JonClements Good point. –  Amber Oct 29 '12 at 20:45
    
group_by is exactly what I'm looking for. Thanks! –  Jinghao Shi Jun 7 at 19:17

HINT: here, i+1 is not what you mean. The python interpreter tells you what's the problem.

HINT: here, in your code, the print i,counter line is never executed.

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Look at the conditional leading to that line. Is it ever possible? –  DaveTheScientist Oct 29 '12 at 20:22
    
i want it to check if the current organ=the next organ. I just didnt success –  user1562379 Oct 29 '12 at 20:24
    
indeed, but i contains a letter, and i+1 is not the next letter, it tries to add 1 to your letter, therefore python tells you TypeError: cannot concatenate 'str' and 'int' objects which means that it doesn't manage to use the + operation on a letter and an integer. –  Vincent Nivoliers Oct 29 '12 at 21:06
    
ok, so how can I define the next letter? –  user1562379 Oct 29 '12 at 21:11
    
let's try some rubber duck debugging. What do you want to use your j variable for ? –  Vincent Nivoliers Oct 29 '12 at 21:14

As suggested by Amber what you need is already provided by the Counter dicionary in the collections module.

from collections import Counter
my_str = raw_input( "Enter a string:" )
count = Counter(my_str)
print count.items()

The only limitation is that it will count even the special characters. If you want to count only the standard letters, you can refer to the string module to obtain a list of the letters ad keep only the one you are interested into:

from collections import Counter
from string import ascii_letters
my_str = raw_input( "Enter a string:" )
count = Counter(s for s in my_str if s in ascii_letters)
print count.items()
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This is my favorite solution for this. –  Ali Afshar Oct 29 '12 at 23:09
1  
He's asking how to find consecutive characters in a string. His example is pretty clear: given a string like 'baaaaab' is expecting an output like [['b', 1], ['a', 5], ['b', 1]]. Your solution gives [('a', 5), ('b', 2)]. –  Paolo Moretti Oct 30 '12 at 11:34

The below code is similar to your implementation but using set.

s = 'abcdeff'
set((i, s.count(i)) for i in s )

output:

set([('a', 1), ('b', 1), ('c', 1), ('d', 1), ('e', 1), ('f', 2)])
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1  
This does not produce the desired output for aba. Furthermore, if they just wanted a raw count of items in the string, it'd be far more efficient to use collections.Counter rather than doing duplicate counts for duplicate letters. –  Amber Oct 29 '12 at 20:46
    
aba does provide the correct solution and my intention in providing the solution was to help the person relate with a code similar to his own. –  dan-boa Oct 29 '12 at 20:51

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