17

I need to modify the following javascript regex because the negative lookbehind in it throws an error in firefox:

content = content.replace(/(?![^<]*>)(?:[\"])([^"]*?)(?<!=)(?:[\"])(?!>)/g, 'โ€ž$1โ€œ');

Does anyone have an idea and can help me out?

5
  • You just can move the = to the negated character class, /(?![^<]>)"([^"=]?)"(?!>)/g Apr 24, 2018 at 22:47
  • 1
    Please vote for the issue in firefox at bugzilla.mozilla.org/show_bug.cgi?id=1225665
    – bradlis7
    Jun 6, 2019 at 16:30
  • @bradlis7 How do you vote? (It is quite a while since I logged in to bugzilla, but I still don't see a vote button. I did start following it - is that the same thing?) And this seems one of the few things that there is no shim for. Sep 6, 2019 at 12:32
  • 2
    @DarrenCook After logging in, in the "Details Panel", It says "27 Votes [Vote]". It's a clunky UI, as you have to go to your vote page, check the issue and then submit.
    – bradlis7
    Sep 9, 2019 at 19:06
  • Perhaps real soon now: bugzilla.mozilla.org/show_bug.cgi?id=1634135
    – mplungjan
    May 29, 2020 at 7:18

4 Answers 4

28

July 1, 2020 Update

Starting with the FireFox 78 version, RegExp finally supports lookbehinds, dotAll s flag, Unicode escape sequences and named captures, see the Release Notes:

New RegExp engine in SpiderMonkey, adding support for the dotAll flag, Unicode escape sequences, lookbehind references, and named captures.

Thank you very much, FireFox developers!!! ๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘๐Ÿ‘


Lookbehinds are only available in browsers supporting ECMA2018 standard, and that means, only the latest versions of Chrome can handle them.

To support the majority of browsers, convert your pattern to only use lookaheads.

The (?<!=) negative lookbehind makes sure there is no = immediately to the left of the current location. [^"] is the atom that matches that character (note that ? quantifier makes it optional, but " that is before [^"] can't be = and there is no need restricting that position).

So, you may use

content = content.replace(/(?![^<]>)"([^"=]?)"(?!>)/g, 'โ€ž$1"');
                                      ^^^^^

Note that (?:[\"]) is equal to ". [^"=]? matches 1 or 0 occurrences of a char other than " and =.

See the regex demo.

2
  • So this 2 regexes work the same, right? Previous regex: (?![^<]*>)(?:[\"])([^"]*?)(?<!=)(?:[\"])(?!>) New regex: (?![^<]*>)"([^"=]*?)"(?!>)
    – Cla
    Apr 25, 2018 at 7:27
  • @Cla I wouldn't have posted if they were not. Apr 25, 2018 at 7:29
2

Lookbehind assertions are part of ES2018. They are not yet supported by firefox, that's why you're getting an error.

Chrome supports them since version 62, and you can use them in Node.js >= 6.4 with the harmony flag, or in >= 9 without any flag.

You can check the proposal here & browser support here

4
  • Do you know a workaround for this problem? I'm trying to rewrite the regex without the lookbehind but don't know how.
    – Cla
    Apr 24, 2018 at 22:20
  • Post the text you want to match, and expected result, and we will be able to help you. Apr 24, 2018 at 22:21
  • Still not supported in Firefox 69: caniuse.com/#feat=js-regexp-lookbehind Sep 30, 2019 at 7:21
  • Still not supported in Firefox 77.0.1 (64-bit). Yay progress! Jun 5, 2020 at 3:38
2

The exact equivalent of your regex (?![^<]*>)"([^"]*?)(?<!=)"(?!>)

without the lookbehind assertion is:

(?![^<]*>)"((?:[^"=]+|=(?!"))*)"(?!>)

Readable version

 (?! [^<]* > )
 "
 (                             # (1 start)
      (?:
           [^"=]+ 
        |  
           = 
           (?! " )
      )*
 )                             # (1 end)
 "
 (?! > )

Note this is not like your chosen answer, which is not an equivalent .

1
  • 1
    @EugeneBarsky - Thanks for the typo fixes .
    – user557597
    Aug 31, 2018 at 20:37
1

2 years later, Firefox is finally catching up. ES2018 RegExp features will be included in FF78, due to be released end of June, 2020: https://developer.mozilla.org/en-US/docs/Mozilla/Firefox/Releases/78#JavaScript

Your Answer

By clicking โ€œPost Your Answerโ€, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.