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This is what i have now :

import re

x = "From: Joyce IP: 192.111.1.1 Source: 192.168.1.1"    
x = x.replace(' ', '')
m = re.findall('(?<=:)\S+', x)
print m 

And I want to have a output like this to make this $ script.py > result.txt:

Joyce 192.111.1.1 192.168.1.1
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2 Answers 2

up vote 2 down vote accepted

Instead of finding the matches of the text you want as the result, it may be easier to replace the stuff you don't want:

>>> import re
>>> x = "From: Joyce IP: 192.111.1.1 Source: 192.168.1.1"
>>> re.sub(r'\w+:\s', '', x)
'Joyce 192.111.1.1 192.168.1.1'

However, if you prefer to use re.findall() here is one option that is similar to your current approach:

>>> ' '.join(re.findall(r'(?<=:\s)\S+', x))
'Joyce 192.111.1.1 192.168.1.1'

You need the \s in the negative lookbehind because there is a space after each of the colons in your input string.

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that is exactly what i'm talking about this is easy to someone else damn, sorry to ask F.J why did you use sub instead of search of findall ? –  PythonNewbie Mar 12 '13 at 16:16
    
@PythonNewbie I added a version that uses findall, but I generally find it easier to understand expressions that don't use lookbehind or lookahead, and using sub makes that possible. –  Andrew Clark Mar 12 '13 at 16:18
    
Hm i understand uff thanks alot :) –  PythonNewbie Mar 12 '13 at 16:33

a slight change to your code (don't remove the spaces, and include them in the look behind) works perfectly:

import re

x = "From: Joyce IP: 192.111.1.1 Source: 192.168.1.1"    
m = re.findall('(?<=:\s)\S+', x)
print " ".join(m) 
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