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Is there an NOT operator in Regexes? Like in that string : "(2001) (asdf) (dasd1123_asd 21.01.2011 zqge)(dzqge) name (20019)"

I want to delete all \([0-9a-zA-z _\.\-:]*\) but not the one where it is a year: (2001).

So what the regex should return must be: (2001) name.

NOTE: something like \((?![\d]){4}[0-9a-zA-z _\.\-:]*\) does not work for me (the (20019) somehow also matches...)

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  • 1
    There is a String like above and I want to regex it up, that the result of the regex is: (2001) name.
    – Sonnenhut
    Sep 6, 2011 at 9:01

4 Answers 4

354

Not quite, although generally you can usually use some workaround on one of the forms

  • [^abc], which is character by character not a or b or c,
  • or negative lookahead: a(?!b), which is a not followed by b
  • or negative lookbehind: (?<!a)b, which is b not preceeded by a
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  • Yep, I think negative look-behind is (?<!a)b -- reference: regular-expressions.info/lookaround.html
    – jankins
    Sep 12, 2013 at 5:32
  • 24
    But [^abc] should mean not a or b or c, not "not the string abc".
    – VimNing
    May 24, 2019 at 16:21
  • Thanks. %[^sdf] or %(?!(s|d|f)) equals to "contains %", but not "%s", "%d" or "%f".
    – CoolMind
    Aug 6, 2021 at 9:37
  • negative look(ahead|behind) also allows for easy negation of multiple letters, e.g. you(?!tube) or (?<!docker)hub Dec 9, 2021 at 13:45
  • a(?!b) (a not followed by b) is brillant. Best answer. 👍
    – Avatar
    May 10 at 8:57
181

No, there's no direct not operator. At least not the way you hope for.

You can use a zero-width negative lookahead, however:

\((?!2001)[0-9a-zA-z _\.\-:]*\)

The (?!...) part means "only match if the text following (hence: lookahead) this doesn't (hence: negative) match this. But it doesn't actually consume the characters it matches (hence: zero-width).

There are actually 4 combinations of lookarounds with 2 axes:

  • lookbehind / lookahead : specifies if the characters before or after the point are considered
  • positive / negative : specifies if the characters must match or must not match.
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  • 1
    Thank you the ?! is what I was suggesting too, but anyway if I use \((?![\d]{4})[0-9a-zA-z _\.\-:]+\) there is still (20019) in it
    – Sonnenhut
    Sep 6, 2011 at 8:58
  • In the edit of your question you put the {4} outside the lookahead and in this comment you put it inside: which one did you try? Also: if you want (20019) to match, then you must add the \) inside your lookahead: \((?![\d]{4}\))[0-9a-zA-z _\.\-:]+\) Sep 6, 2011 at 9:00
  • With the regex above in your comment, it works. But I don't understand that... I don't get why you escape the following part \((?![\d]{4} -->\)<--)[0-9a-zA-z _\.\-:]+\) Then there is a bracket not closed, isn't it?
    – Sonnenhut
    Sep 6, 2011 at 9:10
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    I escape the closing parenthesis ) because I want to match the literal character ) (just as you do at the very beginning and the very end of your regex!). Then after I matched that, I end the lookahead by using an unescaped ). Sep 6, 2011 at 9:13
  • Got it. I was a little bit confused by all that characters. Thank you.
    – Sonnenhut
    Sep 6, 2011 at 9:17
1

You could capture the (2001) part and replace the rest with nothing.

public static string extractYearString(string input) {
    return input.replaceAll(".*\(([0-9]{4})\).*", "$1");
}

var subject = "(2001) (asdf) (dasd1123_asd 21.01.2011 zqge)(dzqge) name (20019)";
var result = extractYearString(subject);
System.out.println(result); // <-- "2001"

.*\(([0-9]{4})\).* means

  • .* match anything
  • \( match a ( character
  • ( begin capture
  • [0-9]{4} any single digit four times
  • ) end capture
  • \) match a ) character
  • .* anything (rest of string)
3
  • Use .replace() with a global regex flag, since .replaceAll() is not supported by a lot of browsers and also node.
    – Lorik
    Apr 28, 2021 at 11:52
  • 4
    @lorikku java != javascript
    – zyexal
    May 12, 2021 at 9:36
  • @zyexal Oh oops! I didn't realise it was java haha, my bad!
    – Lorik
    May 14, 2021 at 9:24
1

Here is an alternative:

(\(\d{4}\))((?:\s*\([0-9a-zA-z _\.\-:]*\))*)([^()]*)(( ?\([0-9a-zA-z _\.\-:]*\))*)

Repetitive patterns are embedded in a single group with this construction, where the inner group is not a capturing one: ((:?pattern)*), which enable to have control on the group numbers of interrest.

Then you get what you want with: \1\3

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