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Is there any implementation of regular expressions, that supports variable-length lookbehind-assertion?

/(?<!foo.*)bar/

How can I write a r.e. that has the same meaning but uses no lookbehind-assertion?

Is there any chances that this type of assertion will be implemented someday?

Update #1

Things are much better that I thought.

(1) There are regular expressions implementation that support variable-length lookbehind-assertion already.

Python module regex (not standard re, but additional regex module) supports such assertions (and has many other cool features).

>>> import regex
>>> m = regex.search('(?<!foo.*)bar', 'f00bar')
>>> print m.group()
bar
>>> m = regex.search('(?<!foo.*)bar', 'foobar')
>>> print m
None

It was a really big surprise for me that there is something in regular expressions that Perl can't do and Python can. Probably, there is "enhanced regular expression" implementation for Perl also?

(Thanks and +1 to MRAB).

(2) There is a cool feature \K in modern regualar expressions.

This symbols means that when you make a substitution (and from my point of view the most interesting usagecase of assertions is the substitution), all characters that were found before \K must not be changed.

s/unchanged-part\Kchanged-part/new-part/x

That is almost like a look-behind assertion, but not so flexible of course.

More about \K:

As far as I understand, you can't use \K twice in the same regular expression. And you can't say till which point you want to "kill" the characters that you've found. That is always till the beginning of the line.

(Thanks and +1 to ikegami).

My additional questions:

  • Is it possible to say what point must be the final point of \K effect?
  • What about enhanced regular expressions implementations for Perl/Ruby/JavaScript/PHP? Something like regex for Python.
share|improve this question
    
To know how to properly write an alternative that doesn't use a lookbehind assertion, we're going to need a little more context. What is this actually for? –  minitech Jul 24 '12 at 22:58
    
@minitech: there is no additional context. This is a general question –  Igor Chubin Jul 25 '12 at 6:48
    
No, it requires additional context. The best way to solve your problem currently is to use indexOf to find 'foo' and then repeat to find all 'bar' after it. –  minitech Jul 25 '12 at 13:59
    
@minitech: I can remove this simple example; I provided it just for illustration purposes; the question is: "how (generally) can I avoid look-behind-negative-assertions and what (generally) I could use instead?". Why don't you like the answer from ikegami? I think that the answer is almost perfect. I was not aware of this \K trick and I find it really killing –  Igor Chubin Jul 25 '12 at 14:06
    
I do, but it's not the most efficient solution if your problem is actually so simple. To recognize the validity of variable-width lookbehinds, I really need an example that can't be done using simple string searching (which works in engines without \K, too). –  minitech Jul 25 '12 at 14:09

4 Answers 4

up vote 14 down vote accepted

Most of the time, you can avoid variable length lookbehinds by using \K.

s/(?<=foo.*)bar/moo/s;

would be

s/foo.*\Kbar/moo/s;

Negative lookbehinds are a little trickier.

s/(?<!foo.*)bar/moo/s;

would be

s/^(?:(?!foo).)*\Kbar/moo/s;

because (?:(?!STRING).)* is to STRING as [^CHAR]* is to CHAR.


If you're just matching, you might not even need the \K.

/foo.*bar/s

/^(?:(?!foo).)*bar/s
share|improve this answer
    
This trick with \K is really cool, but is it possible to specify several \K in one regular expression? Probably, not –  Igor Chubin Jul 25 '12 at 10:04
    
No (or not usefully), but you can use captures: s/foo.*\Kbar/moo/s; === s/(foo.*)bar/${1}moo/s;. –  ikegami Jul 25 '12 at 16:57
    
captures are obvious but it is not interesting :) \K is much better :) –  Igor Chubin Jul 25 '12 at 17:18
    
But you can only have one. I was pointing out what you could do if needed more than one as you asked. (Captures also work before 5.10 when \K was introduced.) –  ikegami Jul 25 '12 at 17:23
    
ikegami, of course I'm aware of captures, but there are many situations where they can't help; although \K is also not a silver bullet, it is really a cool thing. And this trick (?:(?!foo).)* is brilliant also. –  Igor Chubin Jul 25 '12 at 17:27

For Python there's a regex implementation which supports variable-length lookbehinds:

http://pypi.python.org/pypi/regex

It's designed to be backwards-compatible with the standard re module.

share|improve this answer
    
Thank you! That really works and the module is generally very interesting. Thank you very much! +1 –  Igor Chubin Jul 25 '12 at 7:07
    
This answer has been added to the Stack Overflow Regular Expression FAQ, under "Lookarounds". –  aliteralmind Apr 10 at 0:33

You can reverse the string AND the pattern and use variable length lookahead

(rab(?!\w*oof)\w*)

matches in bold:

raboof rab7790oof raboo rabof rab rabo raboooof rabo

Original solution as far as I know by:

Jeff 'japhy' Pinyan

share|improve this answer
    
Benjamin, thank you for the answer, but are you sure that it is possible reverse any pattern? –  Igor Chubin Jul 25 '12 at 6:52
    
I've never run into a situation where this didn't work. Creating the pattern takes more time tough then a "normal" pattern. –  Benjamin Udink ten Cate Jul 25 '12 at 10:44
    
This answer has been added to the Stack Overflow Regular Expression FAQ, under "Lookarounds". –  aliteralmind Apr 10 at 0:33

The regexp you show will find any instance of bar which is not preceded by foo.

A simple alternative would be to first match foo against the string, and find the index of the first occurrence. Then search for bar, and see if you can find an occurrence which comes before that index.

If you want to find instances of bar which are not directly preceded by foo, I could also provide a regexp for that (without using lookbehind), but it will be very ugly. Basically, invert the sense of /foo/ -- i.e. /[^f]oo|[^o]o|[^o]|$/.

share|improve this answer
    
Alex, thank you for the answer, but in general all is not so simple as you write. I provided just a small example of a regular expression with an assertion. Of course the re could be much complexer, and the assertion could be deep inside of it. In this case you couldn't just simple check a string for some substring. –  Igor Chubin Jul 25 '12 at 6:55
1  
Alex, when you need "instances of bar which are not directly preceded by foo", you can just use normal lookbehind assertion (?<!foo)bar. That works. But the trick is that between foo and bar can be other characters. –  Igor Chubin Jul 25 '12 at 12:38

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