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I want to write a regex such that I only match the first number NOT enclosed by square brackets.

e.g. asdadsas,*&(*&(*2asdasd*U(*&*()&(*3 should match 2 ( no square brackets )

and asdadsas,*&(*&(*[2]asdasd*U(*&*()&(*3 should match 3

The regex I have so far is : (?<!\[)[0-9](?!\])

However, the problem I have is that [2 should still match 2.

I only want to skip the number if it has a [ to the left AND a ] to the right.

I don't know how ( or if its even possible) to implement this kind of conditional logic in a regex.

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Clarify: will the number be the only thing in the square brackets? If there is a [2a] near the beginning of the string should that be skipped or returned? –  Gareth Nov 8 '13 at 17:40
    
hmmm. you know what i did not think of that... I think for the purpose of this question it does not matter. But it would be cool if you could show both ways :p i.e. if it only works for [2] I will give u the tick :) –  Marc HPunkt Nov 8 '13 at 17:41
    
You need to specify the language you are using..java doesn't support quantifier in lookbehind and javascript doesn't support lookbehind at all –  Anirudha Nov 8 '13 at 17:45
    
+1 What we have here is a good regex question: The goal is well-stated with examples, OP has made a reasonable attempt (which works for the most part), and the problem is shown (again with example) and clearly explained. –  iamnotmaynard Nov 8 '13 at 18:18
1  
@iamnotmaynard the only thing missing is which regex engine is missing but still deserves a +1 –  HamZa Nov 8 '13 at 18:23
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5 Answers

up vote 2 down vote accepted

The following should work:

[0-9](?!(?<=\[.)\])

Example: http://rubular.com/r/0vKy8hyMy0

Explanation: [0-9] matches a digit, (?!(?<=\[.)\]) enforces the requirement that the character before and after that digit are not [ and ] respectively. To break this down, consider the following regex:

(?<=\[.)\]

This can be read as "match a ] but only if the character two places ago was a [". By putting this into a negative lookahead just after we match the digit, we can fail if the character two places ago was a [ and the next character is a ].

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If any number of digits was wanted, would [0-9]+(?!(?<=\[[0-9]+)\]) work? –  Quincunx Nov 8 '13 at 17:52
1  
Only if variable length lookbehinds were supported, however you may be able to get it to work with a backreference: ([0-9]+)(?!(?<=\[\1)\]). –  Andrew Clark Nov 8 '13 at 18:11
    
@F.J: This last pattern (for multiple digits) can't work for two reasons. The first is that the regex engine will backtrack before the last digit (ex: [123] will give 12 as result). The second is only for engines that don't support variable length lookbehinds: using a backreference doesn't make the subpattern inside the lookbehind less variable. –  Casimir et Hippolyte Nov 9 '13 at 2:28
    
You can solve these problems using an alternation: (?<=\[)\d++(?!])|(?<![\[\d])\d+ or (?<=\[)\d+(?!\d|])|(?<!\[|\d)\d+, or using a conditional (PCRE): (?(?<=\[)\d++(?!])|(?<!\d)\d+) –  Casimir et Hippolyte Nov 9 '13 at 2:57
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Regex only solution would be an overkill

Simply use (^|\D)(\d+)($|\D) and then select the first that matches your criteria..

In c#,you can do it this way

string output=Regex.Matches(input,@"(^|\D)(\d+)(\D|$)")
                   .Cast<Match>()
                   .Where(x=>!(x.Value.StartsWith("[")&& x.Value.EndsWith("]")))
                   .First()
                   .Groups[2]
                   .Value;
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(?!    # start negative lookahead
    \[ # open bracket
    \d # digit (use \d+ if needed)
    \] # close bracket
)      # end negative lookahead
\[     # literal bracket
(\d)   # capture digit
|      # alternation (OR)
(?<!   # start negative lookbehind
\[     # literal bracket
)
(\d)   # capture digit

This will capture the digits as back references. If you need the digit to be the full match, you can probably use a lookahead.

http://rubular.com/r/C8YSRiY1d0

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Try using look-arounds and alternation. This matches either a digit not preceded by [ or a digit not followed by ]:

(?<!\[)\d|\d(?!\])

In order for it to work with numbers of more than one digit, you'd need to add look-arounds to ensure the previous/next character is neither a bracket nor a digit:

(?<!\[|\d)\d+|\d+(?!\]|\d)

viz. (using Ruby; should work similarly elsewhere):

>> rex = /(?<!\[|\d)\d+|\d+(?!\]|\d)/
>> "&(*25asdasd*U(*&*()&(*3".match rex #=> #<MatchData "25">
>> "&(*[25asdasd*U(*&*()&(*3".match rex #=> #<MatchData "25">
>> "&(*25]asdasd*U(*&*()&(*3".match rex #=> #<MatchData "25">

but

>> "&(*[25]asdasd*U(*&*()&(*3".match rex #=> #<MatchData "3">
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I believe simplest regex that should for you is:

(?<!\[)[0-9]+|[0-9]+(?!\])

Live Demo: http://www.rubular.com/r/xWXFg7QXZJ

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