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I have this regex:

^(^?)*\?(.*)$

If I understand correctly, this is the breakdown of what it does:

  • ^ - start matching from the beginning of the string
  • (^?)* - I don't know know, but it stores it in $1
  • \? - matches a question mark
  • (.*)$ - matches anything until the end of the string

So what does (^?)* mean?

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Could you specify the regex engine being used here? –  JaredPar Mar 4 '13 at 16:23
    
Lua! lua.org/pil/20.1.html –  doremi Mar 4 '13 at 16:30
    
@doremi: After I read the doc, Lua's regex is quite a beast of its own. The meaning of the regex may change whether it is used with gmatch or match. –  nhahtdh Mar 4 '13 at 18:38
    
You should accept RBerteig's answer since it's the most relevant to lua and he explains it in much more detail on what's happening. –  greatwolf Mar 5 '13 at 18:50
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4 Answers

up vote 12 down vote accepted

The (^?) is simply looking for the literal character ^. The ^ character in a regex pattern only has special meaning when used as the first character of the pattern or the first character in a grouping match []. When used outside those 2 positions the ^ is interpreted literally meaning in looks for the ^ character in the input string

Note: Whether or not ^ outside of the first and grouping position is interpreted literally is regex engine specific. I'm not familiar enough with LUA to state which it does

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Hmm. I still don't get it. Can you give me an example of a string where this would match? FYI - this is being used on a url with a query string. –  doremi Mar 4 '13 at 16:18
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no comment on the pointelessness of (^?)*? i.e. it's a 0 or one character match, matching only the character ^, matching 0 to many times - the same (probably) as (^*) unless the multiple groups are being used –  AD7six Mar 4 '13 at 16:18
    
It could be a bad regex as it would provided to me by someone else. That's part of the reason why I'm trying to understand what it does. –  doremi Mar 4 '13 at 16:19
    
@AD7six agreed that's most likely bogus. It could be valid it certain regex engines (Vim with no magic for example) but that setting would also invalidate my answer. Very likely bogus but wanted to know the regex engine before I dove outside the specifics of the question –  JaredPar Mar 4 '13 at 16:23
    
@JaredPar: Your example is very confusing. .NET is a pretty bad example, since it has special meaning in every single case you have there. It may be true that Lua treat ^ as literal character, but let me double check. –  nhahtdh Mar 4 '13 at 18:25
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Lua does not have a convention regexp language, it has Lua patterns in its place. Interpreted as a Lua pattern, the example has a syntax error and will match no strings at all.

Lua patterns are described in PiL, and at a first glance are similar enough to a conventional regexp to cause confusion. The biggest differences are probably the lack of an alternation operator |, parenthesis are only used to mark captures, quantifiers (?, -, +, and *) only apply to a character or character class, and % is the escape character not \. A big clue that this example was probably not written with Lua in mind is the lack of the Lua pattern quoting character % applied to any (or ideally, all) of the non-alphanumeric characters in the pattern string, and the suspicious use of \? which smells like a conventional regexp to match a single literal ?.

The simple answer to the question asked is: (^?)* is an error, it matches no input.

To see why this is the case, let's take the pattern given and analyze it as a Lua pattern. The enter pattern is:

^(^?)*\?(.*)$

Handed to string.match(), it would be interpreted as follows:

^ anchors the match to the beginning of the string.

( marks the beginning of the first capture.

^ is not at the beginning of the pattern or a character class, so it matches a literal ^ character. For clarity that should likely have been written as %^.

? matches exactly zero or one of the previous character.

) marks the end of the first capture.

* at this position is an error; the pattern functions will return nil and match nothing.

\ in a pattern matches itself, it is not an escape character in the pattern language. However, it is an escape character in a Lua string literal, making the following character not special to the string literal parser which in this case is moot because the ? that follows was not special to it in any case.

? matches exactly zero or one of the previous charcter.

( marks the beginning the second capture.

. matches any character at all, effectively a synonym for the class [\000-\255] (remember, in Lua numeric escapes are in decimal not octal as in C).

* matches zero or more of the previous character, greedily.

) marks the end of the second capture.

$ anchors the pattern to the end of the string.

Without the error caused by the extra *, it matches and captures an optional ^ at the beginning of the string, followed by an optional \ which is not captured, and captures the entire rest of the string. string.match would return two strings on success (either or both of which might be zero length), or nil on failure.

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In this case, the (^?) refers to the previous string "^" meaning the literal character ^ as Jared has said. Check out regexlib for any further deciphering.

For all your Regex needs: http://regexlib.com/CheatSheet.aspx

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It looks to me like the intent of the creator of the expression was to match any number of ^ before the question mark, but only wanted to capture the first instance of ^. However, it may not be a valid expression depending on the engine, as others have stated.

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