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I want to find all indexes for each occurrence of single alphabetical characters in a string. I don't want to catch single char html codes.

Here is my code:

import re
s = "fish oil B stack peanut c <b>"
words = re.finditer('\S+', s)
has_alpha = re.compile(??????).search
for word in words:
    if has_alpha(word.group()):
        print (word.start())

Desired output:

9
24
share|improve this question
    
Thank you to all you regex geniuses who assisted. – user2104778 Apr 23 '13 at 13:36
up vote 1 down vote accepted

Using your format (as you wanted) but adding only a simple check.

import re
s = "fish oil B stack peanut c <b>"
words = re.finditer('\S+', s)
has_alpha = re.compile(r'[a-zA-Z]').search
for word in words:
    if len(word.group()) == 1 and has_alpha(word.group()):
        print (word.start())
>>> 
9
24
share|improve this answer
    
Ok this is the correct solution. Thanks Inbar and everybody else. – user2104778 Apr 23 '13 at 13:34

This does it:

r'(?i)\b[a-z]\b'

Breaking it down:

  • Case insensitive match
  • A word boundary
  • A letter
  • A word boundary

Your code can be simplified to this:

for match in re.finditer(r'(?i)\b[a-z]\b', s):
   print match.start()
share|improve this answer
    
Thank you, but for various reasons I need to follow the structure shown in my question. To do that I assume I would just use has_alpha = re.compile(r'(?i)\b[a-z]\b').search? – user2104778 Apr 23 '13 at 13:02
    
@user2104778: Yes, absolutely. That regex works in your original code as well as in my simplified example. – RichieHindle Apr 23 '13 at 13:05
    
Ok, I think we are almost there. Your solution is great except it catches html codes like "<b>". I would like to avoid this if possible. Any ideas? – user2104778 Apr 23 '13 at 13:10
    
@user2104778: r'(?i)^[a-z]$' will fix that (in your code, not in my simple case). – RichieHindle Apr 23 '13 at 13:24
    
Richie, thank you so much for your help. Your solution works on the example I used, but doesn't work on other examples, try for ex. 'pineapple W eater ww2 finetougch v ww2bd peterbuitl ww2b <b>'. But if you add in a simple len check your solution will work. – user2104778 Apr 23 '13 at 13:35

In the most general case I'd say:

re.compile(r'(?i)(?<![a-z])[a-z](?![a-z])').search

Using lookarounds to say "a letter not preceded by another letter nor followed by another letter".

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