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I want to delete any numbers that have 3 or less than 3 digits. Can someone please help me with a regex that does this?

Currently, my code removes all the numbers it finds.

     # Cleans Numbers
     def cleanNumbers(stringToClean):
       stringToClean = re.sub(r'[0-9]*', r'', stringToClean)

       print 'String after cleaning : %s' %stringToClean

       return stringToClean

Numbers will be surrounded by space. Example string I pass into the function :

connection breaks on Win8 client after a while. [persistence] 123 1 22 333 4444 554665 645fdgf45 ds3434 457870978934787843 345342kl

I call the above function as follows :

# Main function, calls other functions          
def main():

   # Parsing the input query
   searchQuery = open('input.txt', 'r').read()
   print 'Input query : %s' %searchQuery

   # Cleaning the input query
   string = CleanUpText.cleanNumbers(searchQuery)
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Could you make up your mind if you want to "remove numbers that have less than 3 digits" or "3 or less than 3 digits"? –  Jens Feb 26 '13 at 21:16
    
Will the numbers be surrounded by spaces, or other (non-numeric) characters, or what? Do you have some sample strings? –  iamnotmaynard Feb 26 '13 at 21:24
    
@iamnotmaynard it doesn't matter. If the numbers were surrounded by numbers (?!) they'd be...bigger numbers. And by definition they'd then be longer than three digits and would not be removed. –  Madbreaks Feb 26 '13 at 21:26
    
I have corrected the question, '3 or less than 3' and added an example string –  Radz Feb 26 '13 at 21:27

5 Answers 5

up vote 3 down vote accepted

\b[0-9]{1,3}\b finds blocks of digits that have up to three digits.

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op said many things.. How to create a regex that matches numbers that have 3 or less than 3 digits? –  ogzd Feb 26 '13 at 21:23
    
This worked for me. stringToClean = re.sub(r'\b[0-9]{1,3}\b', r'', stringToClean) Removed -> 123 1 22 333 from the input string. Thanks! P.S.: What is op? –  Radz Feb 26 '13 at 21:34
    
i believe it is original poster –  ogzd Feb 26 '13 at 22:07
re.sub(r'[0-9]{,3}',r'',stringToClean)
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I have corrected the question, '3 or less than 3'

Given that, it should be as simple as: \b\d{1,3}\b

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The * quantifier means '0 or more'. {1,2} means 1..2 occurrences.

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This isn't an answer –  Madbreaks Feb 26 '13 at 21:21

You could use a regex like this

r'\b[0-9]{1,2}\b'

Edit: Sorry wrote my answer to fast without really thinking. You have to use boundries so you don't capture 3456 for example

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1  
wouldn't this catch '1234' ? –  ogzd Feb 26 '13 at 21:14

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