54

So I have a RegExp regex = /asd/

I am storing it as a as a key in my key-val store system.

So I say str = String(regex) which returns "/asd/".

Now I need to convert that string back to a RegExp.

So I try: RegExp(str) and I see /\/asd\//

this is not what I want. It is not the same as /asd/

Should I just remove the first and last characters from the string before converting it to regex? That would get me the desired result in this situation, but wouldn't necessarily work if the RegExp had modifiers like /i or /g

Is there a better way to do this?

11
  • 6
    Does (new RegExp(regex)).source() help before storage? developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – jedifans
    Aug 25, 2016 at 20:34
  • @jedifans I see what you're saying, yeah that should work. That way I'm not storing the slashes in the string Aug 25, 2016 at 20:38
  • I shall convert it to an answer :)
    – jedifans
    Aug 25, 2016 at 20:39
  • 2
    In ES6 there is also flags along with source, but it's not widely supported yet.
    – Xotic750
    Aug 25, 2016 at 21:15
  • 1
    Well, to be fair, I didn't read any of the answers. From like 15 years of Perl, I've gleaned that pre-compiled regexes of the form /../xxx, can't contain all the modifiers available at the time of execution. If it can't do that, it's better to have it all available in a hash, or if it applies to all of them (like 'g') then it doesn't matter. Usually, you'd take the path of least resistance, but if you don't know if it works for every thing, it's better to be conservative and slightly basic. The foundation of good code.
    – user557597
    Aug 25, 2016 at 21:15

5 Answers 5

60

If you don't need to store the modifiers, you can use Regexp#source to get the string value, and then convert back using the RegExp constructor.

var regex = /abc/g;
var str = regex.source; // "abc"
var restoreRegex = new RegExp(str, "g");

If you do need to store the modifiers, use a regex to parse the regex:

var regex = /abc/g;
var str = regex.toString(); // "/abc/g"
var parts = /\/(.*)\/(.*)/.exec(str);
var restoredRegex = new RegExp(parts[1], parts[2]);

This will work even if the pattern has a / in it, because .* is greedy, and will advance to the last / in the string.

If performance is a concern, use normal string manipulation using String#lastIndexOf:

var regex = /abc/g;
var str = regex.toString(); // "/abc/g"
var lastSlash = str.lastIndexOf("/");
var restoredRegex = new RegExp(str.slice(1, lastSlash), str.slice(lastSlash + 1));
6
  • 2
    I suppose it's also worth mentioning you could just do var restoredRegex = eval(str); but that will be slower, and has the ability to execute arbitrary JavaScript.
    – 4castle
    Aug 25, 2016 at 20:54
  • How about regex.toString().split('/')
    – Xotic750
    Aug 25, 2016 at 21:34
  • 4
    @Xotic750 That will fail if a / is in the regex pattern itself
    – 4castle
    Aug 25, 2016 at 21:35
  • 2
    So close to greatness -- var restoredRegex = RegExp.apply(RegExp, str.match(/\/(.*)\/(.*)/)); Apr 8, 2017 at 8:36
  • 1
    A different problem: Using new RegExp('\n', 'g') gives me a different string result than /\n/g. Looks like the backslash has to be escaped in the string. Also, I think one can also use var regex = /abc\n/g; var str = regex.source; var flags = regex.flags; var restoredRegex = new RegExp(str, flags); -- I think this is cleaner than the string parsing. Of course, it is two strings instead of just one.
    – Mörre
    Sep 6, 2018 at 19:48
14
const regex = /asd/gi;

converting RegExp to String

const obj = {flags: regex.flags, source: regex.source};
const string = JSON.stringify(obj);

then back to RegExp

const obj2 = JSON.parse(string);
const regex2 = new RegExp(obj2.source, obj2.flags);

Requires ES6+.

0
2

You can use the following before storage of your regex literal:

(new RegExp(regex)).source

See https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/RegExp/source

Example:

regex = /asd/

string = (new RegExp(regex)).source
// string is now "asd"

regex = RegExp(string)
// regex has the original value /asd/
4
  • And if it is regex = /asd/ig? Also, it should be source, not source(). Aug 25, 2016 at 20:41
  • 1
    Why are you calling new RegExp? It's already a regex. Wouldn't you just do string = regex.source?
    – 4castle
    Aug 25, 2016 at 21:09
  • 1
    True @WiktorStribiżew, source does not take account of that, though I suppose .flags could be stored too. @4castle, I wasn't sure if a regex literal was actually a RegExp instance.
    – jedifans
    Aug 25, 2016 at 21:13
  • Ah, well yes. A regex literal is syntactic sugar for making a RegExp instance.
    – 4castle
    Aug 25, 2016 at 21:18
1

let rx = RegExp.apply(RegExp, str.match(/\/(.*)\/(.*)/).slice(1));

A modified version of @PegasusEpsilon answer

1
  • ES6+ syntax should be RegExp(...str.match(/\/(.*)\/(.*)/).slice(1))
    – tsh
    Sep 25, 2018 at 5:12
0

StackOverflow saves the day again, thanks @4castle! I wanted to store some regex rules in a JS file, and some in a DB, combine them into an array of objects like so:

module.exports = {
    [SETTINGS.PRODUCTION_ENV]: [

        {
            "key": /<meta name="generator"[\s\S]*?>/gmi,
            "value": "",
            "regex": true
        },

        ...
    ]
}

Then, loop through each environment's objects and apply it to a string of text. This is for a node/lambda project, so I wanted to use ES6. I used @4castle's code, with some destructuring, and I ended up with this:

    let content = body;
    const regexString = replacement.key.toString();
    const regexParts = /\/(.*)\/(.*)/.exec(regexString);
    const {1: source, 2: flags} = regexParts;
    const regex = new RegExp(source, flags);
    content = content.replace(regex, replacement.value);
    
    return content;

Works a treat!

Your Answer

By clicking “Post Your Answer”, 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.