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There are some features in modern regex engines which allow you to match languages that couldn't be matched without that feature. For example the following regex using back references matches the language of all strings that consist of a word that repeats itself: (.+)\1. This language is not regular and can't be matched by a regex that does not use back references.

Does lookaround also affect which languages can be matched by a regular expression? I.e. are there any languages that can be matched using lookaround that couldn't be matched otherwise? If so, is this true for all flavors of lookaround (negative or positive lookahead or lookbehind) or just for some of them?

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Wow, 3 hours and no upvotes yet? This is an AWESOME question! –  polygenelubricants Jun 4 '10 at 16:19
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regular-expressions.info/lookaround.html states that "Lookarounds allow you to create regular expressions that are impossible to create without them, or that would get very longwinded without them". But the only example in that direction is about the impossibility to find and match a q not followed by a u. This says nothing about whether it is possible to tell if the input string contains a q not followed by a u (without having to match only that q). –  Christian Semrau Jun 6 '10 at 14:17
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@ChristianSemrau: It might not be a programming question per se, but the requirement is only "programming related" and I think this qualifies. And for me this question is actually interesting from a practical viewpoint as it came up during programming. –  sepp2k Jun 6 '10 at 14:41
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@Christian Semrau: My main criterion for "programming related" would be if the question would be at home on a similar accounting site (with obvious simple substitutions). Regexes are pretty strictly a programming thing. I, personally, think it on-topic. –  David Thornley Jun 7 '10 at 17:57
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Apparently the question of whether or not CS belongs in stackoverflow has been discussed before: meta.stackexchange.com/questions/26889/… . Personally I hope to see more CS questions here, or perhaps a sister site if necessary. –  polygenelubricants Jun 7 '10 at 18:21
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4 Answers 4

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As the other answers claim, lookarounds don't add any extra power to regular expressions.

I think we can show this using the following:

One Pebble 2-NFA (see the Introduction section of the paper which refers to it).

The 1-pebble 2NFA does not deal with nested lookaheads, but, we can use a variant of multi-pebble 2NFAs (see section below).

Introduction

A 2-NFA is a non deterministic finite automaton which has the ability to move either left or right on it's input.

A one pebble machine is where the machine can place a pebble on the input tape (i.e. mark a specific input symbol with a pebble) and do possibly different transitions based on whether there is a pebble at the current input position or not.

It is known the One Pebble 2-NFA has the same power as a regular DFA.

Non-nested Lookaheads

The basic idea is as follows:

The 2NFA allows us to backtrack (or 'front track') by moving forward or backward in the input tape. So for a lookahead we can do the match for the lookahead regular expression and then backtrack what we have consumed, in matching the lookahead expression. In order to know exactly when to stop backtracking, we use the pebble! We drop the pebble before we enter the dfa for the lookahead to mark the spot where the backtracking needs to stop.

Thus at the end of running our string through the pebble 2NFA, we know whether we matched the lookahead expression or not and the input left (i.e. what is left to be consumed) is exactly what is required to match the remaining.

So for a lookahead of the form u(?=v)w

We have the DFAs for u, v and w.

From the accepting state (yes, we can assume there is only one) of DFA for u, we make an e-transition to the start state of v, marking the input with a pebble.

From an accepting state for v, we e-transtion to a state which keeps moving the input left, till it finds a pebble, and then transitions to start state of w.

From a rejecting state of v, we e-transition to a state which keeps moving left until it finds the pebble, and transtions to the accepting state of u (i.e where we left off).

The proof used for regular NFAs to show r1 | r2, or r* etc, carry over for these one pebble 2nfas. See http://www.coli.uni-saarland.de/projects/milca/courses/coal/html/node41.html#regularlanguages.sec.regexptofsa for more info on how the component machines are put together to give the bigger machine for the r* expression etc.

The reason why the above proofs for r* etc work is that the backtracking ensures that the input pointer is always at the right spot, when we enter the component nfas for repetition. Also, if a pebble is in use, then it is being processed by one of the lookahead component machines. Since there are no transitions from lookahead machine to lookahead machine without completely backtracking and getting back the pebble, a one pebble machine is all that is needed.

For eg consider ([^a] | a(?=...b))*

and the string abbb.

We have abbb which goes through the peb2nfa for a(?=...b), at the end of which we are at the state: (bbb, matched) (i.e in input bbb is remaining, and it has matched 'a' followed by '..b'). Now because of the *, we go back to the beginning (see the construction in the link above), and enter the dfa for [^a]. Match b, go back to beginning, enter [^a] again two times, and then accept.

Dealing with Nested Lookaheads

To handle nested lookaheads we can use a restricted version of k-pebble 2NFA as defined here: Complexity Results for Two-Way and Multi-Pebble Automata and their Logics (see Definition 4.1 and Theorem 4.2).

In general, 2 pebble automata can accept non-regular sets, but with the following restrictions, k-pebble automata can be shown to be regular (Theorem 4.2 in above paper).

If the pebbles are P_1, P_2, ..., P_K

  • P_{i+1} may not be placed unless P_i is already on the tape and P_{i} may not be picked up unless P_{i+1} is not on the tape. Basically the pebbles need to be used in a LIFO fashion.

  • Between the time P_{i+1} is placed and the time that either P_{i} is picked up or P_{i+2} is placed, the automaton can traverse only the subword located between the current location of P_{i} and the end of the input word that lies in the direction of P_{i+1}. Moreover, in this sub-word, the automaton can act only as a 1-pebble automaton with Pebble P_{i+1}. In particular it is not allowed to lift up, place or even sense the presence of another pebble.

So if v is a nested lookahead expression of depth k, then (?=v) is a nested lookahead expression of depth k+1. When we enter a lookahead machine within, we know exactly how many pebbles have to have been placed so far and so can exactly determine which pebble to place and when we exit that machine, we know which pebble to lift. All machines at depth t are entered by placing pebble t and exited (i.e. we return to processing of a depth t-1 machine) by removing pebble t. Any run of the complete machine looks like a recursive dfs call of a tree and the above two restrictions of the multi-pebble machine can be catered to.

Now when you combine expressions, for rr1, since you concat, the pebble numbers of r1 must be incremented by the depth of r. For r* and r|r1 the pebble numbering remains the same.

Thus any expression with lookaheads can be converted to an equivalent multi-pebble machine with the above restrictions in pebble placement and so is regular.

Conclusion

This basically addresses the drawback in Francis's original proof: being able to prevent the lookahead expressions from consuming anything which are required for future matches.

Since Lookbehinds are just finite string (not really regexs) we can deal with them first, and then deal with the lookaheads.

Sorry for the incomplete writeup, but a complete proof would involve drawing a lot of figures.

It looks right to me, but I will be glad to know of any mistakes (which I seem to be fond of :-)).

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I'm not sure this handles multiple lookaheads, eg u(?=v)(?=w)(?=x)z does it? –  Francis Davey Jun 7 '10 at 17:47
    
When we exit the pebble 2NFA for a lookahead we are back at the input tape state where we entered, with a pebble to use, and depending on a match or not for the lookahead, we are in one of two different states (i.e we can tell if there was a match). So it seems like it will work by just concatenating the automata (with the extra states with e-transitions we added) as we always get back the pebble. But I guess it depends on how you interpret that expression. Is it same as u(?=vwx)z? or ((u(?=v))?=w)... etc? –  Aryabhatta Jun 7 '10 at 18:46
    
The expression matches a u which must be followed by (non consuming) all three of v, w and x (where v, w and x are all general regular expressions) and a z. Having tried to build something that will solve this, I am fairly convinced that you cannot do it compositionally (i.e. by concatenating solutions). –  Francis Davey Jun 7 '10 at 19:03
    
@Francis: If it has to match all of them, then concatenation works (I think). we concat it as dfa(u) -> peb2ndfa(v) -> peb2ndfa(w) -> dfa(x). If after matching u, we don't match v or w, we go back to u and pick up where we left off. If we match v, then because we backtrack after v is done, we can match w again (which again backtracks) and then match x. The key is that the 2NDFA allows us to back track and the pebble allows to know when to stop backtracking. –  Aryabhatta Jun 7 '10 at 20:21
    
@sepp2k: Did you get a chance to read this answer? If you have any questions/clarification/counterexamples, I would be glad to answer. –  Aryabhatta Jun 7 '10 at 23:04
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The answer to the question you ask, which is whether a larger class of languages than the regular languages can be recognised with regular expressions augmented by lookaround, is no.

A proof is relatively straightforward, but an algorithm to translate a regular expression containing lookarounds into one without is messy.

First: note that you can always negate a regular expression (over a finite alphabet). Given a finite state automaton that recognises the language generated by the expression, you can simply exchange all the accepting states for non-accepting states to get an FSA that recognises exactly the negation of that language, for which there are a family of equivalent regular expressions.

Second: because regular languages (and hence regular expressions) are closed under negation they are also closed under intersection since A intersect B = neg ( neg(A) union neg(B)) by de Morgan's laws. In other words given two regular expressions, you can find another regular expression that matches both.

This allows you to simulate lookaround expressions. For example u(?=v)w matches only expressions that will match uv and uw.

For negative lookahead you need the regular expression equivalent of the set theoretic A\B, which is just A intersect (neg B) or equivalently neg (neg(A) union B). Thus for any regular expressions r and s you can find a regular expression r-s which matches those expressions that match r which do not match s. In negative lookahead terms: u(?!v)w matches only those expressions which match uw - uv.

There are two reasons why lookaround is useful.

First, because the negation of a regular expression can result in something much less tidy. For example q(?!u)=q($|[^u]).

Second, regular expressions do more than match expressions, they also consume characters from a string - or at least that's how we like to think about them. For example in python I care about the .start() and .end(), thus of course:

>>> re.search('q($|[^u])', 'Iraq!').end()
5
>>> re.search('q(?!u)', 'Iraq!').end()
4

Third, and I think this is a pretty important reason, negation of regular expressions does not lift nicely over concatenation. neg(a)neg(b) is not the same thing as neg(ab), which means that you cannot translate a lookaround out of the context in which you find it - you have to process the whole string. I guess that makes it unpleasant for people to work with and breaks people's intuitions about regular expressions.

I hope I have answered your theoretical question (its late at night, so forgive me if I am unclear). I agree with a commentator who said that this does have practical applications. I met very much the same problem when trying to scrape some very complicated web pages.

EDIT

My apologies for not being clearer: I do not believe you can give a proof of regularity of regular expressions + lookarounds by structural induction, my u(?!v)w example was meant to be just that, an example, and an easy one at that. The reason a structural induction won't work is because lookarounds behave in a non-compositional way - the point I was trying to make about negations above. I suspect any direct formal proof is going to have lots of messy details. I have tried to think of an easy way to show it but cannot come up with one off the top of my head.

To illustrate using Josh's first example of ^([^a]|(?=..b))*$ this is equivalent to a 7 state DFSA with all states accepting:

A - (a) -> B - (a) -> C --- (a) --------> D 
Λ          |           \                  |
|          (not a)       \               (b)
|          |              \               | 
|          v                \             v
(b)        E - (a) -> F      \-(not(a)--> G  
|            <- (b) - /                   |
|          |                              |
|         (not a)                         |
|          |                              |
|          v                              |
\--------- H <-------------------(b)-----/

The regular expression for state A alone looks like:

^(a([^a](ab)*[^a]|a(ab|[^a])*b)b)*$

In other words any regular expression you are going to get by eliminating lookarounds will in general be much longer and much messier.

To respond to Josh's comment - yes I do think the most direct way to prove the equivalence is via the FSA. What makes this messier is that the usual way to construct an FSA is via a non-deterministic machine - its much easier to express u|v as simply the machine constructed from machines for u and v with an epsilon transition to the two of them. Of course this is equivalent to a deterministic machine, but at the risk of exponential blow-up of states. Whereas negation is much easier to do via a deterministic machine.

The general proof will involve taking the cartesian product of two machines and selecting those states you wish to retain at each point you want to insert a lookaround. The example above illustrates what I mean to some extent.

My apologies for not supplying a construction.

FURTHER EDIT: I have found a blog post which describes an algorithm for generating a DFA out of a regular expression augmented with lookarounds. Its neat because the author extends the idea of an NFA-e with "tagged epsilon transitions" in the obvious way, and then explains how to convert such an automaton into a DFA.

I thought something like that would be a way to do it, but I'm pleased that someone has written it up. It was beyond me to come up with something so neat.

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I agree with Francis that lookaround is regular, but I think the proof is incorrect. The problem is that you can't break a regular expression with lookaround into two regular expressions A and B in general. Francis did so by transforming u(?!v)w into uw and uv, but I don't believe an algorithm exists to do this in general. Instead you can attach lookahead or neg(lookahead) to the original DFA at the point where it occurs with an epsilon transition. The details of this are a bit tricky, but I think it works. –  Josh Haberman Jun 6 '10 at 23:33
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For example, consider the regex ^([^a]|a(?=..b))*$. In other words, all characters are allowed, but every "a" must be followed three characters later with a "b". I don't believe you can reduce this to two regular expressions A and B that you are combining via union. I think you have to make the positive lookahead part of the NFA construction. –  Josh Haberman Jun 6 '10 at 23:50
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@Josh, sepp2k: For every regular language L, there is an equivalent regular expression and vice versa. Now a(?=..b) is regular, it corresponds to some expression say r. Now you have ([^a]|r)*, which is again regular. I believe this was proven by Kleene. Check this out: coli.uni-saarland.de/projects/milca/courses/coal/html/…. The proof by induction does work. What you seem to be hung up upon is a fundamental fact about regular expressions and languages (my first sentence in this comment). –  Aryabhatta Jun 7 '10 at 1:36
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@Moron: you are presuming that lookahead expressions compose the same way that regular expressions do. You are presuming that ([^a]|r)* matches the same language as ([^a]|a(?=..b)), which is not true, even if r matches the same language as a(?=..b). If you do the DFA expansion yourself you will see. Since lookahead matches characters without consuming them, it doesn't compose in the same way that regular expressions do. If you are still unconvinced of this I will post an actual DFA expansion later. –  Josh Haberman Jun 7 '10 at 6:32
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As a short proof of this, consider that a(?=..b) is the empty language, because a ∩ a..b = ϵ. So if we follow your line of reasoning r = ϵ and ([^a]|a(?=..b))* is equivalent to ([^a]|ϵ)* or just [^a]*. But this is clearly false because aaab matches the original regex but not the supposedly equivalent one. –  Josh Haberman Jun 7 '10 at 6:43
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I agree with the other posts that lookaround is regular (meaning that it does not add any fundamental capability to regular expressions), but I have an argument for it that is simpler IMO than the other ones I have seen.

I will show that lookaround is regular by providing a DFA construction. A language is regular if and only if it has a DFA that recognizes it. Note that Perl doesn't actually use DFAs internally (see this paper for details: http://swtch.com/~rsc/regexp/regexp1.html) but we construct a DFA for purposes of the proof.

The traditional way of constructing a DFA for a regular expression is to first build an NFA using Thompson's Algorithm. Given two regular expressions fragments r1 and r2, Thompson's Algorithm provides constructions for concatenation (r1r2), alternation (r1|r2), and repetition (r1*) of regular expressions. This allows you to build a NFA bit by bit that recognizes the original regular expression. See the paper above for more details.

To show that positive and negative lookahead are regular, I will provide a construction for concatenation of a regular expression u with positive or negative lookahead: (?=v) or (?!v). Only concatenation requires special treatment; the usual alternation and repetition constructions work fine.

The construction is for both u(?=v) and u(?!v) is:

http://imgur.com/ClQpz.png

In other words, connect every final state of the existing NFA for u to both an accept state and to an NFA for v, but modified as follows. The function f(v) is defined as:

  • Let aa(v) be a function on an NFA v that changes every accept state into an "anti-accept state". An anti-accept state is defined to be a state that causes the match to fail if any path through the NFA ends in this state for a given string s, even if a different path through v for s ends in an accept state.
  • Let loop(v) be a function on an NFA v that adds a self-transition on any accept state. In other words, once a path leads to an accept state, that path can stay in the accept state forever no matter what input follows.
  • For negative lookahead, f(v) = aa(loop(v)).
  • For positive lookahead, f(v) = aa(neg(v)).

To provide an intuitive example for why this works, I will use the regex (b|a(?:.b))+, which is a slightly simplified version of the regex I proposed in the comments of Francis's proof. If we use my construction along with the traditional Thompson constructions, we end up with:

alt text

The es are epsilon transitions (transitions that can be taken without consuming any input) and the anti-accept states are labeled with an X. In the left half of the graph you see the representation of (a|b)+: any a or b puts the graph in an accept state, but also allows a transition back to the begin state so we can do it again. But note that every time we match an a we also enter the right half of the graph, where we are in anti-accept states until we match "any" followed by a b.

This is not a traditional NFA because traditional NFAs don't have anti-accept states. However we can use the traditional NFA->DFA algorithm to convert this into a traditional DFA. The algorithm works like usual, where we simulate multiple runs of the NFA by making our DFA states correspond to subsets of the NFA states we could possibly be in. The one twist is that we slightly augment the rule for deciding if a DFA state is an accept (final) state or not. In the traditional algorithm a DFA state is an accept state if any of the NFA states was an accept state. We modify this to say that a DFA state is an accept state if and only if:

  • >= 1 NFA states is an accept state, and
  • 0 NFA states are anti-accept states.

This algorithm will give us a DFA that recognizes the regular expression with lookahead. Ergo, lookahead is regular. Note that lookbehind requires a separate proof.

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In the machine you gave, you accept a. Which is not in (b | a(?=.b)). Also an anti-accept state is an accept state where a match fails? Then by definition of accept state, there are no anti-accept states! Or am i missing something? –  Aryabhatta Jun 8 '10 at 16:24
    
@Moron: I think you are missing the meaning of my anti-accept states. Here is the same diagram, but with numbered states: imgur.com/ho4C8.png My machine does not accept a, because after matching a we can transition to states 4, 3, 1, and 5 (using the NFA->DFA algorithm). But state 5 is an anti-accept state, so following the rules at the bottom of my writeup, the DFA state corresponding to states 4, 3, 1, and 5 is not an accept state. –  Josh Haberman Jun 8 '10 at 16:44
    
@Josh: Isn't the definition of aa(v) dependent on the string s? i.e. The set aa(v) can vary with s. Also you say that an anti-accept state starts out being an accept state. How can any match fail, then, if the machine ends up in that state? Sorry if I am reading it wrong. –  Aryabhatta Jun 8 '10 at 17:18
    
@Moron: aa(v) just flips all accept states to be anti-accept states instead, so it should not depend on s. Both v and aa(v) are NFAs, not sets. I don't follow your last comment: it's true that in v there are accept states, but aa(v) does not have any accept states, and aa(v) is what actually ends up in the final NFA. –  Josh Haberman Jun 8 '10 at 17:27
    
@Josh: Your definition: "Let aa(v) be a function on an NFA v that changes every accept state into an anti-accept state..". So you change an accept state P into non-accept state, if the machine v ends at state P on some run and the match fails. But by definition (note v is still an NFA) of accepted state, if the machine ends there, the match has passed! And by set I meant, the set of states in v, you need to change into anti-accept, to make v into aa(v). Would that not depend on the string s? I hope I am clearer now. –  Aryabhatta Jun 8 '10 at 17:40
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I have a feeling that there are two distinct questions being asked here:

  • Are Regex engines that encorporate "lookaround" more powerful than Regex engines that don't?
  • Does "lookaround" empower a Regex engine with the ability to parse languages that are more complex than those generated from a Chomsky Type 3 - Regular grammar?

The answer to the first question in a practical sense is yes. Lookaround will give a Regex engine that uses this feature fundamentally more power than one that doesn't. This is because it provides a richer set of "anchors" for the matching process. Lookaround lets you define an entire Regex as a possible anchor point (zero width assertion). You can get a pretty good overview of the power of this feature here.

Lookaround, although powerful, does not lift the Regex engine beyond the theoretical limits placed on it by a Type 3 Grammar. For example, you will never be able to reliably parse a language based on a Context Free - Type 2 Grammar using a Regex engine equipped with lookaround. Regex engines are limited to the power of a Finite State Automation and this fundamentally restricts the expressiveness of any language they can parse to the level of a Type 3 Grammar. No matter how many "tricks" are added to your Regex engine, languages generated via a Context Free Grammar will always remain beyond its capabilities. Parsing Context Free - Type 2 grammar requires pushdown automation to "remember" where it is in a recursive language construct. Anything that requires a recursive evaluation of the grammar rules cannot be parsed using Regex engines.

To summarize: Lookaround provides some practical benefits to Regex engines but does not "alter the game" on a theoretical level.

EDIT

Is there some grammar with a complexity somewhere between Type 3 (Regular) and Type 2 (Context Free)?

I believe the answer is no. The reason is because there is no theoretical limit placed on the size of the NFA/DFA needed to describe a Regular language. It may become arbitrarily large and therefore impractical to use (or specify). This is where dodges such as "lookaround" are useful. They provide a short-hand mechanism to specify what would otherwise lead to very large/complex NFA/DFA specifications. They do not increase the expressiveness of Regular languages, they just make specifying them more practical. Once you get this point, it becomes clear that there are a lot of "features" that could be added to Regex engines to make them more useful in a practical sense - but nothing will make them capable of going beyond the limits of a Regular language.

The basic difference between a Regular and a Context Free language is that a Regular language does not contain recursive elements. In order to evaluate a recursive language you need a Push Down Automation to "remember" where you are in the recursion. An NFA/DFA does not stack state information so cannot handle the recursion. So given a non-recursive language definition there will be some NFA/DFA (but not necessarily a practical Regex expression) to describe it.

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Is it necessarily true that a grammar more powerful than regular grammar must be as powerful as context-free? ie. is it known that there is no grammar "between" the two? –  BlueRaja - Danny Pflughoeft Jun 7 '10 at 17:41
    
@BlueRaja: Exactly what I was thinking: the 'grammar continuum hypothesis' :-) –  Aryabhatta Jun 7 '10 at 18:08
    
@Moron @BlueRaja - I have edited my answer for you. Hope it helps. –  NealB Jun 7 '10 at 20:14
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Of course there are many classes of grammars strictly between the class of regular grammars and the class of context-free grammars, including trivial examples such as the class of regular grammars together with the grammars for the language of balanced brackets. The deterministic context free grammars are a more useful example. –  Christian Semrau Jun 7 '10 at 20:44
    
An NFA/DFA does not stack state information so cannot handle the recursion. Yes. So PLEASE STOP TRYING TO PARSE HTML WITH REGULAR EXPRESSIONS! –  Cruncher Dec 20 '13 at 21:07
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