8

Note that this question is in the context of Julia, and therefore (to my knowledge) PCRE.

Suppose that you had a string like this:

"sssppaaasspaapppssss"

and you wanted to match, individually, the repeating characters at the end of the string (in the case of our string, the four "s" characters - that is, so that matchall gives ["s","s","s","s"], not ["ssss"]). This is easy:

r"(.)(?=\1*$)"

It's practically trivial (and easily used - replace(r"(.)(?=\1*$)","hell","k") will give "hekk" while replace(r"(.)(?=\1*$)","hello","k") will give "hellk"). And it can be generalised for repeating patterns by switching out the dot for something more complex:

r"(\S+)(?=( \1)*$)"

which will, for instance, independently match the last three instances of "abc" in "abc abc defg abc h abc abc abc".

Which then leads to the question... how would you match the repeating character or pattern at the start of the string, instead? Specifically, using regex in the way it's used above.

The obvious approach would be to reverse the direction of the above regex as r"(?<=^\1*)(.)" - but PCRE/Julia doesn't allow lookbehinds to have variable length (except where it's fixed-variable, like (?<=ab|cde)), and thus throws an error. The next thought is to use "\K" as something along the lines of r"^\1*\K(.)", but this only manages to match the first character (presumably because it "advances" after matching it, and no longer matches the caret).

For clarity: I'm seeking a regex that will, for instance, result in

replace("abc abc defg abc h abc abc abc",<regex here>,"hello")

producing

"hello hello defg abc h abc abc abc"

As you can see, it's replacing each "abc" from the start with "hello", but only until the first non-match. The reverse one I provide above does this at the other end of the string:

replace("abc abc defg abc h abc abc abc",r"(\S+)(?=( \1)*$)","hello")

produces

"abc abc defg abc h hello hello hello"
  • use this ^(\S+)(?:\s+\1)* and then do splitting on space character, – Avinash Raj Jul 19 '15 at 15:54
  • @AvinashRaj - if you read through the full question, you'll see that I'm wanting to know if it can be done without multiple steps - that is, just with a regex. I can do it with the end-of-string equivalent, with r"(.)(?=\1*$)" (or more generally r"(\S+)(?=( \1)*$)"). – Glen O Jul 19 '15 at 15:58
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    Reverse the string. ;-) – 1983 Jul 22 '15 at 23:04
  • @KingMob - you can do that, if you only want to match in one direction. But it's not a regex solution, and it doesn't help if you want to match in both directions (for instance, to capture the first sho in each part of the string "shorts shoes shop shovel shortstuff shoplifter shopshop", and not the second sho in shopshop, you need to look in both directions - you're basically figuring out which part isn't the delimiter, in a sense) – Glen O Jul 23 '15 at 3:49
  • Well, you could replace (\S+)((?= \1)|.*) with "hello$2" (JavaScript for example), but unfortunately you need to be able to reference the submatches in the replacement string which AFAIK you can't do in Julia :-( – 1983 Jul 23 '15 at 6:35
8
+50

You can use the \G anchor that matches the position after the previous match or at the start of the string. In this way you ensure the contiguity of results from the start of the string to the last occurrence:

\G(\S+)( (?=\1 ))?

demo

or to be able to match until the end of the string:

\G(\S+)( (?=\1(?: |\z)))?
  • 1
    This idea is too good! – Jonny 5 Jul 19 '15 at 18:02
  • 1
    +1 - This is certainly a great idea, and once Julia adds the PCRE2 substitution functionality, I think it'll allow me to do what I want to do... unfortunately, it's not going to give me the desired functionality in the meantime, because it captures the space as well. – Glen O Jul 20 '15 at 5:10
  • @GlenO: I don't think using a reference to a capture group in the replacement string is particular to PCRE2. I don't find the way to do it with julia (I don't know this language) nor any example with a capture in the documentation, so if it isn't possible, it is more an implementation particularity. Whatever, an easy workaround consists to use " hello" as replacement string and to trim the string with lstrip() (or another way to remove the first character). If this limitation really exists, I don't think there is another way to go. – Casimir et Hippolyte Jul 20 '15 at 10:29
  • @GlenO: I read somewhere that replace can use a function as replacement, but I don't know if the default parameter is the whole match or a match object (with the capture groups available) and if user defined functions are allowed. – Casimir et Hippolyte Jul 20 '15 at 10:33
  • 2
    Unfortunately, it's the whole match, not the match object. And I am aware that there are workarounds. What I was really hoping for was a way to achieve, as I said, the same thing that can be done at the end of the string - it's easy to match the repeating patterns at the end of the string... but at the start, the best I've seen is your trick, which doesn't work if there's no nice delimiter for the pattern. If nobody offers a solution that manages to do it perfectly within the next few days, I'll accept your answer as the best possible at this time. – Glen O Jul 21 '15 at 5:38
4

For PCRE style engines, unfortunately there is no way to do this without
variable length lookbehind.

A pure solution is not possible.
There is no \G anchor trickery that can accomplish this.

Here is why the \G anchor won't work.

With the anchor, the only guarantee you have is that the last match
resulted in a match where the forward overlap was checked to be equal
to the current match.

As a result, you can only globally match up to N-1 of the duplicate's from the beginning.

Here is a proof:

Regex:

 # (?:\G([a-c]+)(?=\1))

 (?:
      \G 
      ( [a-c]+ )                    # (1)
      (?=
           \1 
      )
 )

Input:

abcabcabcbca

Output:

 **  Grp 0 -  ( pos 0 , len 3 ) 
abc  
 **  Grp 1 -  ( pos 0 , len 3 ) 
abc  
------------
 **  Grp 0 -  ( pos 3 , len 3 ) 
abc  
 **  Grp 1 -  ( pos 3 , len 3 ) 
abc  

Conclusion:

Even though you know the Nth one is there from the previous lookahead,
the Nth one can't be matched without the condition of the current lookahead.

Sorry, and good luck!
Let me know if you find a pure regex solution.

  • 1
    I think you should clarify that in cases where there is no clear separator, it's not possible to do such replacement. While it was mentioned in the comment, it's not clear from the question. – nhahtdh Jul 23 '15 at 4:16
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    By the way, this is only possible with conditional replacement, which is available in Boost, AFAIK. This is a rare feature among the implementations. – nhahtdh Jul 23 '15 at 4:18
  • @nhahtdh - As far as a clear separator, that's the fallacy here. If the lookahead is optional then it will match a single instance. I offered a minimum proof that no way is valid. To think otherwise is a conceptual error. It kind of bugs me people don't accept facts, trying to get blood out of a stone. – sln Jul 23 '15 at 16:32
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    For the case with separator, something like this, I guess? regex101.com/r/bV0uA5/1 ^(\S+)( (?=\1(?: |$)))|(?!^)\G(\S+)( (?=\3(?: |$)))? and replacement hello$2$4 – nhahtdh Jul 23 '15 at 19:26
  • @nhahtdh - Yep, that takes care of the single instance part. But, I don't know, in a sense, it seems to me that the delimiter case is too specialized to be considered a solution since it is not aggregated with the repetition, but must be consumed as a condition for the next match. And I thought he was looking for a general solution... – sln Jul 23 '15 at 21:36

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