I am designing a regular expression tester in HTML and JavaScript. The user will enter a regex, a string, and choose the function they want to test with (e.g. search, match, replace, etc.) via radio button and the program will display the results when that function is run with the specified arguments. Naturally there will be extra text boxes for the extra arguments to replace and such.

My problem is getting the string from the user and turning it into a regular expression. If I say that they don't need to have //'s around the regex they enter, then they can't set flags, like g and i. So they have to have the //'s around the expression, but how can I convert that string to a regex? It can't be a literal since its a string, and I can't pass it to the RegExp constructor since its not a string without the //'s. Is there any other way to make a user input string into a regex? Will I have to parse the string and flags of the regex with the //'s then construct it another way? Should I have them enter a string, and then enter the flags separately?

up vote 482 down vote accepted

Use the RegExp object constructor to create a regular expression from a string:

var re = new RegExp("a|b", "i");
// same as
var re = /a|b/i;
  • 1
    would be nice to have online tool with a input field – holms Nov 14 '13 at 4:10
  • 41
    When doing it this way, you must escape the backslash, e.g. var re = new RegExp("\\w+"); – JD Smith Sep 12 '14 at 15:59
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    @holms regexr.com is the bomb diggity – Neal Ehardt Oct 22 '15 at 19:17
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    @holms regex101.com is a great regex online tool as well – Fran Herrero Jul 18 '16 at 8:38
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    @JDSmith I didn't mean it in your example. I meant that you need to escape double quotes if you want them to be a part of the regex provided it is hard coded. Obviously, none of this applies if the string is in a variable like from an <input> HTML tag. var re = new RegExp("\"\\w+\""); is an example of a hard coded regex using the RegExp constructor and the escaping of the double quotes is necessary. What I mean by a string in a variable is that you can just do var re = new RegExp(str); and str may contain double quotes or backslashes without a problem. – Luis Paulo Apr 17 at 0:23
var flags = inputstring.replace(/.*\/([gimy]*)$/, '$1');
var pattern = inputstring.replace(new RegExp('^/(.*?)/'+flags+'$'), '$1');
var regex = new RegExp(pattern, flags);

or

var match = inputstring.match(new RegExp('^/(.*?)/([gimy]*)$'));
// sanity check here
var regex = new RegExp(match[1], match[2]);
  • You should consider that an invalid input like /\/ is recognized. – Gumbo May 17 '09 at 15:14
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    Or let the RegExp constructor fail, "trailing \ in regular expression", instead of writing a complicated parser. – Anonymous May 17 '09 at 15:23
  • ES6 adds the "u" flag (for unicode regex) – Benja Sep 3 '16 at 5:19
  • does not work when no flags (inputstring='/bxxx/b') – kofifus Sep 8 '16 at 22:44

Use the JavaScript RegExp object constructor.

var re = new RegExp("\\w+");
re.test("hello");

You can pass flags as a second string argument to the constructor. See the documentation for details.

Here is a one-liner: str.replace(/[|\\{}()[\]^$+*?.]/g, '\\$&')

I got it from the escape-string-regexp NPM module.

Trying it out:

escapeStringRegExp.matchOperatorsRe = /[|\\{}()[\]^$+*?.]/g;
function escapeStringRegExp(str) {
    return str.replace(escapeStringRegExp.matchOperatorsRe, '\\$&');
}

console.log(new RegExp(escapeStringRegExp('example.com')));
// => /example\.com/

In my case the user input somethimes was sorrounded by delimiters and sometimes not. therefore I added another case..

var regParts = inputstring.match(/^\/(.*?)\/([gim]*)$/);
if (regParts) {
    // the parsed pattern had delimiters and modifiers. handle them. 
    var regexp = new RegExp(regParts[1], regParts[2]);
} else {
    // we got pattern string without delimiters
    var regexp = new RegExp(inputstring);
}
  • 1
    you could always use the .split() function instead of a long regex string. regParts = inputstring.split('/') this would make regParts[1] the regex string, and regParts[2] the delimiters (assuming the setup of the regex is /.../gim). You could check if there are delimiters with regParts[2].length < 0. – Jaketr00 Apr 21 '16 at 17:17

I suggest you also add separate checkboxes or a textfield for the special flags. That way it is clear that the user does not need to add any //'s. In the case of a replace, provide two textfields. This will make your life a lot easier.

Why? Because otherwise some users will add //'s while other will not. And some will make a syntax error. Then, after you stripped the //'s, you may end up with a syntactically valid regex that is nothing like what the user intended, leading to strange behaviour (from the user's perspective).

This will work also when the string is invalid or does not contain flags etc:

function regExpFromString(q) {
  let flags = q.replace(/.*\/([gimuy]*)$/, '$1');
  if (flags === q) flags = '';
  let pattern = (flags ? q.replace(new RegExp('^/(.*?)/' + flags + '$'), '$1') : q);
  try { return new RegExp(pattern, flags); } catch (e) { return null; }
}

console.log(regExpFromString('\\bword\\b'));
console.log(regExpFromString('\/\\bword\\b\/gi'));
            

Thanks to earlier answers, this blocks serves well as a general purpose solution for applying a configurable string into a RegEx .. for filtering text:

var permittedChars = '^a-z0-9 _,.?!@+<>';
permittedChars = '[' + permittedChars + ']';

var flags = 'gi';
var strFilterRegEx = new RegExp(permittedChars, flags);

log.debug ('strFilterRegEx: ' + strFilterRegEx);

strVal = strVal.replace(strFilterRegEx, '');
// this replaces hard code solt:
// strVal = strVal.replace(/[^a-z0-9 _,.?!@+]/ig, '');

You can ask for flags using checkboxes then do something like this:

var userInput = formInput;
var flags = '';
if(formGlobalCheckboxChecked) flags += 'g';
if(formCaseICheckboxChecked) flags += 'i';
var reg = new RegExp(userInput, flags);
  • looks like RegEx is missing trailing p .. Stack wouldn't let me make a 1 character edit – gnB Sep 21 '15 at 1:06

protected by Community Jul 16 '15 at 10:32

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