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This doesn't work:

import re
re.sub('\\', '/', "C:\\Users\\Judge")

Error:

Traceback (most recent call last):
  File "<pyshell#1>", line 1, in <module>
    re.sub('\\', '/', "C:\\Users")
  File "C:\Python27\lib\re.py", line 151, in sub
    return _compile(pattern, flags).sub(repl, string, count)
  File "C:\Python27\lib\re.py", line 244, in _compile
    raise error, v # invalid expression
error: bogus escape (end of line)
share|improve this question
up vote 5 down vote accepted

Try escaping two backslashes instead of one: \\\\

re.sub('\\\\', '/', "C:\\Users\\Judge")

You are just passing the RE engine one backslash, which confuses it. So, not only do you have to escape the backslashes for Python to be happy, you need to escape it again for RE. Since you are escaping two backslashes, you need four total.

If you aren't using any regular expression features, perhaps you'd be better off with string's simpler replace method:

'C:\\Users\\Judge'.replace('\\', '/')

share|improve this answer
    
Why in the world can't it treat it as a raw string? This makes no sense to me! – chaz Apr 30 '13 at 2:39

You don't need a regular expression for such a simple substitution. And the quoting becomes easier then:

"C:\\Users\\Judge".replace("\\", "/")
share|improve this answer

You can also use raw strings:

re.sub(r'\\', '/', 'C:\\Users')

Note the r in front of the search string which interprets backslashes differently from ordinary strings. That is, control sequences like \n will be taken literally, i.e. as backslash followed by n instead of a newline.

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1  
This is the right way. Note, however, that even a raw string cannot end with an odd number of backslashes. – agf Jul 20 '11 at 10:35
    
See the first paragraph on docs.python.org/library/re.html – Jochen Ritzel Jul 20 '11 at 10:55
"C:\\Users\\Judge".replace('\\', '/')

As for regex patterns, use r'\\'

share|improve this answer

You need to use \\\\:

re.sub('\\\\', '/', "C:\\Users\\Judge")

Or use the r modifier:

re.sub(r'\\', '/', "C:\\Users\\Judge")

See Python documentation on re.

share|improve this answer

Assuming you want to normalize your path, and not just generally asking how to turn backslashes into forward ones, you can use the path.normpath() instead. Granted it may not work exactly as you expect, because you are trying to convert away from the windows-form, but consider this sample:

import os2emxpath as path
print path.normpath("C:\\windows\\hello")

prints

C:/windows/hello

EDIT As Oben points out in the comments the backslash-ed string is the correct form for windows, so it should work for most of your needs. However if you want to mangle that to some other form, you could just import the corresponding path module.

share|improve this answer
1  
-1: Accroding to the docs this collapse redundant separators and on Windows slashes are converted to backslashes (but not the other way around). – Oben Sonne Jul 20 '11 at 10:49
    
@Oben True, but you can pretend that you are not on windows, and import the corresponding module. After all that's what the asker is suggesting, because why would we want to mangle a directory string that would work well on windows? – Gleno Jul 20 '11 at 12:48
    
Gleno, don't get me wrong, os.path.normpath is a good tool to recommend in general. However, the OP does not provide much context what his final goals are -- taking the question as it is, normpath isn't the solution. Also, importing os2emxpath to force forward-slashing is kind of a dirty hack. I'm willing to undo my downvote once the OP clarifies that he is indeed looking for a normpath normalization. – Oben Sonne Jul 20 '11 at 18:19

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