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Trying to use backslashes in raw strings with this regular expression:

import re
print re.sub(r'^[a-zA-Z]:\\.+(\\Data.+)', r'D:\folder\1', r'C:\Some\Path\Data\File.txt')

Expected output:

D:\folder\Data\File.txt

However \f is being interpreted. Is there any way to make this work without converting to forward slashes?

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2 Answers

up vote 1 down vote accepted

re.sub interprets escape sequences in the replacement string (docs). Adding an extra backslash before the \f to escape the backslash seems to do the trick:

import re
print re.sub(r'^[a-zA-Z]:\\.+(\\Data.+)', r'D:\\folder\1', r'C:\Some\Path\Data\File.txt')

If your replacement string is dynamic, you can always use another regexp to escape backslashes, or use str.encode('unicode-escape').

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I guess that's escaping \f. Unfortunately for me the value before the \1 is a variable. –  Andy Arismendi Mar 15 '12 at 6:55
    
You can always use another regexp to escape backslashes in the variable string. str.encode('unicode-escape') might also be of some help. –  AerandiR Mar 15 '12 at 7:11
    
Ah beautiful! This should work for any input. Thanks!! PS - you might want to add that to your answer :-) –  Andy Arismendi Mar 15 '12 at 7:15
    
Hmm found an escape method on the re object re.escape(r'D:\folder') + r'\1' but it outputs D\:\\folder\1. I have no idea why it's escaping the colon... –  Andy Arismendi Mar 15 '12 at 7:36
    
It escapes the colon because it is a non-alphanumeric character (see docs), probably to avoid it being misinterpreted as a special regexp character. –  AerandiR Mar 16 '12 at 1:28
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To avoid special characters translation you can use lambda-function:

print re.sub(r'^[a-zA-Z]:\\.+(\\Data.+)', lambda x: r'D:\\folder\1', r'C:\Some\Path\Data\File.txt')    
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