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Any time I want to replace a piece of text that is part of a larger piece of text, I always have to do something like:

"(?P<start>some_pattern)(?P<replace>foo)(?P<end>end)"

And then concatenate the start group with the new data for replace and then the end group.

Is there a better method for this?

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If you can, try to tokenize data in this situation (break it into smaller parts based on regex rules) beforehand and replace based on these as this is more likely to be easier to accomplish the type of thing you are doing rather than dealing with the entire text document each time you are doing a replace, for example if you could just tokenize the <start> and <end> into separate things to begin with (into arrays) this would make it easier I think, in the short term it takes a bit of getting used to but in the long run it makes these types of things easier –  Rick Aug 18 '10 at 19:38

4 Answers 4

up vote 17 down vote accepted

Look in the Python re documentation for lookaheads (?=...) and lookbehinds (?<=...) -- I'm pretty sure they're what you want. They match strings, but do not "consume" the bits of the strings they match.

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1  
The problem with that is that it must be a fixed-width. I need something that allows for more complex patterns. –  Evan Fosmark Jan 29 '09 at 6:28
1  
@Evan: In most regex engines, it must be fixed width for look-behind only. –  Tomalak Jan 29 '09 at 7:05
    
Tomalak, what I need is to be able to have a non-fixed width prefix pattern. –  Evan Fosmark Jan 29 '09 at 7:14
    
I got it figured out. Thanks for the information, zenazn. It has been rather helpful. –  Evan Fosmark Jan 30 '09 at 7:27

I believe that the best idea is just to capture in a group whatever you want to replace, and then replace it by using the start and end properties of the captured group.

regards

Adrián

#the pattern will contain the expression we want to replace as the first group
pat = "word1\s(.*)\sword2"   
test = "word1 will never be a word2"
repl = "replace"

import re
m = re.search(pat,test)

if m and m.groups() > 0:
    line = test[:m.start(1)] + repl + test[m.end(1):]
    print line
else:
    print "the pattern didn't capture any text"

This will print: 'word1 will never be a word2'

The group to be replaced could be located in any position of the string.

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1  
Just one (late) tip: get rid of "0:" and ":len(test)". They're unnecessary noise. –  Jürgen A. Erhard Mar 26 '11 at 10:53
2  
@jae You still need colon, otherwise it won't splice the string. –  haridsv Jul 6 '11 at 0:36
    
@hari Oh, correct, I was a bit overeager... :D –  Jürgen A. Erhard Jul 6 '11 at 15:41

The short version is that you cannot use variable-width patterns in lookbehinds using Python's re module. There is no way to change this:

>>> import re
>>> re.sub("(?<=foo)bar(?=baz)", "quux", "foobarbaz")
'fooquuxbaz'
>>> re.sub("(?<=fo+)bar(?=baz)", "quux", "foobarbaz")

Traceback (most recent call last):
  File "<pyshell#2>", line 1, in <module>
    re.sub("(?<=fo+)bar(?=baz)", "quux", string)
  File "C:\Development\Python25\lib\re.py", line 150, in sub
    return _compile(pattern, 0).sub(repl, string, count)
  File "C:\Development\Python25\lib\re.py", line 241, in _compile
    raise error, v # invalid expression
error: look-behind requires fixed-width pattern

This means that you'll need to work around it, the simplest solution being very similar to what you're doing now:

>>> re.sub("(fo+)bar(?=baz)", "\\1quux", "foobarbaz")
'fooquuxbaz'
>>>
>>> # If you need to turn this into a callable function:
>>> def replace(start, replace, end, replacement, search):
        return re.sub("(" + re.escape(start) + ")" + re.escape(replace) + "(?=" + re.escape + ")", "\\1" + re.escape(replacement), search)

This doesn't have the elegance of the lookbehind solution, but it's still a very clear, straightforward one-liner. And if you look at what an expert has to say on the matter (he's talking about JavaScript, which lacks lookbehinds entirely, but many of the principles are the same), you'll see that his simplest solution looks a lot like this one.

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>>> import re
>>> s = "start foo end"
>>> s = re.sub("foo", "replaced", s)
>>> s
'start replaced end'
>>> s = re.sub("(?<= )(.+)(?= )", lambda m: "can use a callable for the %s text too" % m.group(1), s)
>>> s
'start can use a callable for the replaced text too end'
>>> help(re.sub)
Help on function sub in module re:

sub(pattern, repl, string, count=0)
    Return the string obtained by replacing the leftmost
    non-overlapping occurrences of the pattern in string by the
    replacement repl.  repl can be either a string or a callable;
    if a callable, it's passed the match object and must return
    a replacement string to be used.
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Hi Roger, I've been playing around with that regex string. I understand how the RE part of it works, but I don't understand how the python puts 'start' at the start, and 'end' at the end. Do you think you could help explain that? Thank you! :) –  Alex Dec 15 '09 at 0:34
    
Those aren't 'matched' by the regex. (Look at m.group(0).) It gets broken down to "start (matched text here) end", and the match is what gets replaced. Looking at it now (almost a year later), I'm not sure why I did this way, except to show basic lookbehind and lookahead syntax. –  Roger Pate Dec 15 '09 at 6:34
    
Note that this is not taking advantage of compiled regular expressions, so should incur additional expense to compile regex everytime it is used. –  haridsv Jul 6 '11 at 0:35
    
Thank you so much...!! :) –  Chintan Jan 16 '13 at 6:50
    
This is exactly what I was looking for. Thanks –  man2xxl Apr 17 at 19:05

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