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Trying to get to grips with regular expressions in Python, I'm trying to output some HTML highlighted in part of a URL. My input is

images/:id/size

my output should be

images/<span>:id</span>/size

If I do this in Javascript

method = 'images/:id/size';
method = method.replace(/\:([a-z]+)/, '<span>$1</span>')
alert(method)

I get the desired result, but if I do this in Python

>>> method = 'images/:id/huge'
>>> re.sub('\:([a-z]+)', '<span>$1</span>', method)
'images/<span>$1</span>/huge'

I don't, how do I get Python to return the correct result rather than $1? Is re.sub even the right function to do this?

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3 Answers 3

up vote 14 down vote accepted

Simply use \1 instead of $1:

In [1]: import re

In [2]: method = 'images/:id/huge'

In [3]: re.sub(r'(:[a-z]+)', r'<span>\1</span>', method)
Out[3]: 'images/<span>:id</span>/huge'

Also note the use of raw strings (r'...') for regular expressions. It is not mandatory but removes the need to escape backslashes, arguably making the code slightly more readable.

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Use \1 instead of $1.

\number Matches the contents of the group of the same number.

http://docs.python.org/library/re.html#regular-expression-syntax

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For the replacement portion, Python uses \1 the way sed and vi do, not $1 the way Perl, Java, and Javascript (amongst others) do. Furthermore, because \1 interpolates in regular strings as the character U+0001, you need to use a raw string or \escape it.

Python 3.2 (r32:88445, Jul 27 2011, 13:41:33) 
[GCC 4.0.1 (Apple Inc. build 5465)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> method = 'images/:id/huge'
>>> import re
>>> re.sub(':([a-z]+)', r'<span>\1</span>', method)
'images/<span>id</span>/huge'
>>> 
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