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Is this even possible?

Basically, I want to turn these two calls to sub into a single call:

re.sub(r'\bAword\b', 'Bword', mystring)
re.sub(r'\baword\b', 'bword', mystring)

What I'd really like is some sort of conditional substitution notation like:

re.sub(r'\b([Aa])word\b', '(?1=A:B,a:b)word')

I only care about the capitalization of the first character. None of the others.

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4  
If you use a replacement function you can perform "advanced stuff" for the replacement value. See re.sub where is says "repl can be a string or a function". –  user166390 Jun 30 '12 at 16:40
    
ou have to describe what form your target words take. Is it always a contiguous string where only the case of the first character is to be changed, for example? –  JosefAssad Jun 30 '12 at 16:41
    
Ok, looking into replacement functions, although I feel like that is cheating when it comes to regular expressions :( –  Conley Owens Jun 30 '12 at 16:44
2  
Its not cheating. You want conditional replacements. The regex is doing its job to match and capture your pattern. But what you want is to examine the reault first before deciding its replacement. –  jdi Jun 30 '12 at 16:45
1  
I know regular expressions are cool and all, but if your usage is really this simplistic, i would avoid them... for regular expressions, "with great power, comes great obscurity"... –  AK_ Jun 30 '12 at 16:47

3 Answers 3

up vote 8 down vote accepted

You can have functions to parse every match:

>>> def f(match):
        return chr(ord(match.group(0)[0]) + 1) + match.group(0)[1:]

>>> re.sub(r'\b[aA]word\b', f, 'aword Aword')
'bword Bword'
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1  
lol for chr(ord(c) + 1) –  Conley Owens Jun 30 '12 at 16:55
    
@ConleyOwens I did that way because it can work with different expressions in the form [xX]any_word :) –  JBernardo Jun 30 '12 at 16:57

You can pass a lambda function which uses the Match object as a parameter as the replacement function:

import re
re.sub(r'\baword\b', 
       lambda m: m.group(0)[0].lower() == m.group(0)[0] and 'bword' or 'Bword',
       'Aword aword', 
       flags=re.I)
# returns: 'Bword bword'
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That will match awoRd and transform into bword... –  JBernardo Jun 30 '12 at 16:51
    
You're correct, the other answers are better. –  mVChr Jun 30 '12 at 16:54
1  
a and b or c is horribly outdated -- use b if a else c. –  katrielalex Jun 30 '12 at 18:33

OK, here's the solution I came up with, thanks to the suggestions to use a replace function.

re.sub(r'\b[Aa]word\b', lambda x: ('B' if x.group()[0].isupper() else 'b') + 'word', 'Aword  aword.')
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