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In the following string,how to match the words including the commas

  1. --

    process_str = "Marry,had ,a,alittle,lamb"
    import re
    
    re.findall(r".*",process_str)
    ['Marry,had ,a,alittle,lamb', '']
    
  2. --

    process_str="192.168.1.43,Marry,had ,a,alittle,lamb11"
    
    import re
    ip_addr = re.findall(r"\d{1,3}\.\d{1,3}\.\d{1,3}\.\d{1,3}",l)          
    re.findall(ip_addr,process_str1)
    

    How to find the words after the ip address excluding the first comma only i.e, the outout again is expected to be Marry,had ,a,alittle,lamb11

  3. In the second example above how to find if the string is ending with a digit.

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I have made the edit please look at it.. –  Rajeev Apr 6 '12 at 10:43

3 Answers 3

up vote 1 down vote accepted

In the second example, you just need to capture (using ()) everything that follows the ip:

 import re

 s = "192.168.1.43,Marry,had ,a,alittle,lamb11"
 text = re.findall(r"\d{1,3}\.\d{1,3}\.\d{1,3}\.\d{1,3},(.*)", s)[0]
 // text now holds the string Marry,had ,a,alittle,lamb11

To find out if the string ends with a digit, you can use the following:

re.match(".*\d$", process_str)

That is, you match the entire string (.*), and then backtrack to test if the last character (using $, which matches the end of the string) is a digit.

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What about the third one..ending with a digit?? –  Rajeev Apr 6 '12 at 10:45
    
I've edited my answer. –  João Silva Apr 6 '12 at 10:51

Find the words including the commas, that's how I understand this sentence:

>>> re.findall("\w+,*", process_str)
['Marry,', 'had', 'a,', 'alittle,', 'lamb']

ending with a didgit:

"[0-9]+$"
share|improve this answer

Hmm. The examples are not quite clear, but it seems in example #2, you want to only match text , commas, space-chars, and ignore digits? How about this:

re.findall('(?i)([a-z, ]+), process_str)

I didn't quite understand the "if the string is ending with a digit". Does that mean you ONLY want to match 'Mary...' IF it ends with a digit? Then that would look like this:

re.findall('(?i)([a-z, ]+)\d+, process_str)
share|improve this answer
    
what is (?i) for –  Rajeev Apr 6 '12 at 10:53
    
It makes the regular expression case insensitive. –  João Silva Apr 6 '12 at 11:12

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