1780

I would like to create a String.replaceAll() method in JavaScript and I'm thinking that using a regex would be most terse way to do it. However, I can't figure out how to pass a variable in to a regex. I can do this already which will replace all the instances of "B" with "A".

"ABABAB".replace(/B/g, "A");

But I want to do something like this:

String.prototype.replaceAll = function(replaceThis, withThis) {
    this.replace(/replaceThis/g, withThis);
};

But obviously this will only replace the text "replaceThis"...so how do I pass this variable in to my regex string?

2

26 Answers 26

2270

Instead of using the /regex\d/g syntax, you can construct a new RegExp object:

var replace = "regex\\d";
var re = new RegExp(replace,"g");

You can dynamically create regex objects this way. Then you will do:

"mystring1".replace(re, "newstring");
3
  • 316
    If you need to use an expression like /\/word\:\w*$/, be sure to escape your backslashes: new RegExp( '\\/word\\:\\w*$' ). Nov 9, 2010 at 23:04
  • 50
    The question suggests that the RegEx is only used to do a constant string replacement. So this is answer is wrong as it would fail if the string contains RegEx meta characters. Sad it is voted this high, will make many headaches...
    – dronus
    Feb 12, 2014 at 20:32
  • 32
    An example of this passing a variable would make this a good answer. I'm still struggling after reading this.
    – Goose
    Jun 5, 2015 at 18:44
261

As Eric Wendelin mentioned, you can do something like this:

str1 = "pattern"
var re = new RegExp(str1, "g");
"pattern matching .".replace(re, "regex");

This yields "regex matching .". However, it will fail if str1 is ".". You'd expect the result to be "pattern matching regex", replacing the period with "regex", but it'll turn out to be...

regexregexregexregexregexregexregexregexregexregexregexregexregexregexregexregexregexregex

This is because, although "." is a String, in the RegExp constructor it's still interpreted as a regular expression, meaning any non-line-break character, meaning every character in the string. For this purpose, the following function may be useful:

 RegExp.quote = function(str) {
     return str.replace(/([.?*+^$[\]\\(){}|-])/g, "\\$1");
 };

Then you can do:

str1 = "."
var re = new RegExp(RegExp.quote(str1), "g");
"pattern matching .".replace(re, "regex");

yielding "pattern matching regex".

10
  • 5
    You know that the first parameter to replace can be a normal string and don't have to be a regexp? str1 = "."; alert("pattern matching .".replace(str1, "string"));
    – some
    Jan 30, 2009 at 10:31
  • @some: of course. That's because the above example is trivial. When you need to search for or replace a pattern combined with a regular string, do str.match(new RegExp("https?://" + RegExp.escape(myDomainName)), for instance. It's annoying that the escape function is not built in.
    – Gracenotes
    Jan 30, 2009 at 19:57
  • (continued) Plus, apparentl JC Grubbs required a global replace; implementing a global replace with String.replace(String, String) could be slow for large input. I'm just saying, the top two solutions are buggy, and will fail unexpected on certain input.
    – Gracenotes
    Jan 30, 2009 at 20:00
  • 5
    developer.mozilla.org/en-US/docs/JavaScript/Guide/… offers a similar function, but they exclude -, and include =!:/.
    – chbrown
    Dec 15, 2012 at 21:12
  • 8
    The correct term is "escape", not "quote". Just BTW. Dec 4, 2015 at 5:19
142

"ABABAB".replace(/B/g, "A");

As always: don't use regex unless you have to. For a simple string replace, the idiom is:

'ABABAB'.split('B').join('A')

Then you don't have to worry about the quoting issues mentioned in Gracenotes's answer.

9
  • 17
    And have you measured that this is faster than regex?
    – Mitar
    Apr 10, 2013 at 3:12
  • 4
    This seems preferable, especially when needing to match on special regex characters like '.'
    – Krease
    Apr 24, 2013 at 18:41
  • 1
    Uhm... Doesn't split take a RegExp too; if so, wouldn't it cause the same problem ? Anyway... .split().join() may be slower on some platforms, because it's two operations, whereas .replace() is one operation and may be optimized.
    – user1985657
    Jun 12, 2013 at 22:47
  • 5
    @PacMan--: both split and replace can take either a string or a RegExp object. The problem that replace has that split doesn't is that when you use a string you only get a single replacement.
    – bobince
    Jun 13, 2013 at 9:05
  • 2
113

If you want to get all occurrences (g), be case insensitive (i), and use boundaries so that it isn't a word within another word (\\b):

re = new RegExp(`\\b${replaceThis}\\b`, 'gi');

let inputString = "I'm John, or johnny, but I prefer john.";
let replaceThis = "John";
let re = new RegExp(`\\b${replaceThis}\\b`, 'gi');
console.log(inputString.replace(re, "Jack"));

5
  • 1
    thank you! (afaict, yours is the only answer explicitly with Emacs/rx-style interpolation, via template strings.) Apr 8, 2020 at 3:30
  • What about replaceAll? Would it work the same as replace with the global flag?
    – cezar
    Oct 19, 2021 at 9:45
  • 1
    @cezar technically you could use replaceAll with the exact regex above (including global flag) - but it would have no benefit. You would get an error if you tried to use it without the global flag, see this.
    – JBallin
    Oct 19, 2021 at 16:51
  • 1
    hi i'm trying to use this but not working 'const regex = new RegExp(/(?=.{\\b${digits}\\b}).*/g);' whereas digits is a numeric variable I'm passing down as a parameter. If possible can u explain how can I fix this? Jan 18 at 15:50
  • @joekevinrayan96 integers work fine when I test them with my current example. Please create a separate question with a minimal reproducible example.
    – JBallin
    Sep 6 at 0:28
38

This:

var txt=new RegExp(pattern,attributes);

is equivalent to this:

var txt=/pattern/attributes;

See http://www.w3schools.com/jsref/jsref_obj_regexp.asp.

1
  • 28
    yep, but in first example it uses pattern as variable, in 2nd as a string
    – vladkras
    Jul 9, 2013 at 4:16
37

For anyone looking to use a variable with the match method, this worked for me:

var alpha = 'fig';
'food fight'.match(alpha + 'ht')[0]; // fight
0
32
this.replace( new RegExp( replaceThis, 'g' ), withThis );
1
  • 1
    I like this answer as it doesn't create the extra (& pointless) variable.
    – Wick
    Apr 4, 2019 at 15:20
22

You need to build the regular expression dynamically and for this you must use the new RegExp(string) constructor with escaping.

There is a built-in function in jQuery UI autocomplete widget called $.ui.autocomplete.escapeRegex:

It'll take a single string argument and escape all regex characters, making the result safe to pass to new RegExp().

If you are not using jQuery UI you can copy its definition from the source:

function escapeRegex( value ) {
    return value.replace( /[\-\[\]{}()*+?.,\\\^$|#\s]/g, "\\$&" );
}

And use it like this:

"[z-a][z-a][z-a]".replace(new RegExp(escapeRegex("[z-a]"), "g"), "[a-z]");
//            escapeRegex("[z-a]")       -> "\[z\-a\]"
// new RegExp(escapeRegex("[z-a]"), "g") -> /\[z\-a\]/g
// end result                            -> "[a-z][a-z][a-z]"
10
String.prototype.replaceAll = function (replaceThis, withThis) {
   var re = new RegExp(replaceThis,"g"); 
   return this.replace(re, withThis);
};
var aa = "abab54..aba".replaceAll("\\.", "v");

Test with this tool

0
6
String.prototype.replaceAll = function(a, b) {
    return this.replace(new RegExp(a.replace(/([.?*+^$[\]\\(){}|-])/ig, "\\$1"), 'ig'), b)
}

Test it like:

var whatever = 'Some [b]random[/b] text in a [b]sentence.[/b]'

console.log(whatever.replaceAll("[", "<").replaceAll("]", ">"))
5

To satisfy my need to insert a variable/alias/function into a Regular Expression, this is what I came up with:

oldre = /xx\(""\)/;
function newre(e){
    return RegExp(e.toString().replace(/\//g,"").replace(/xx/g, yy), "g")
};

String.prototype.replaceAll = this.replace(newre(oldre), "withThis");

where 'oldre' is the original regexp that I want to insert a variable, 'xx' is the placeholder for that variable/alias/function, and 'yy' is the actual variable name, alias, or function.

1
  • After trying every single solution for inserting a variable inside the regular expression, yours was the only one that worked for me. Thank you sooo much!
    – RoberRM
    Jun 26, 2020 at 1:23
5

You can use a string as a regular expression. Don’t forget to use new RegExp.

Example:

var yourFunction = new RegExp(
        '^-?\\d+(?:\\.\\d{0,' + yourVar + '})?'
      )
5

And the CoffeeScript version of Steven Penny's answer, since this is #2 Google result....even if CoffeeScript is just JavaScript with a lot of characters removed...;)

baz = "foo"
filter = new RegExp(baz + "d")
"food fight".match(filter)[0] // food

And in my particular case:

robot.name = hubot
filter = new RegExp(robot.name)
if msg.match.input.match(filter)
  console.log "True!"
2
  • why a downvote? coffeescript -IS- javascript with it's own specific syntax.
    – keen
    Aug 26, 2015 at 15:53
  • 3
    robot.name=hubot is not javascript.
    – codepleb
    Jan 31, 2020 at 14:14
4

Here's another replaceAll implementation:

    String.prototype.replaceAll = function (stringToFind, stringToReplace) {
        if ( stringToFind == stringToReplace) return this;
        var temp = this;
        var index = temp.indexOf(stringToFind);
        while (index != -1) {
            temp = temp.replace(stringToFind, stringToReplace);
            index = temp.indexOf(stringToFind);
        }
        return temp;
    };
4

You can use this if $1 does not work for you:

var pattern = new RegExp("amman", "i");
"abc Amman efg".replace(pattern, "<b>" + "abc Amman efg".match(pattern)[0] + "</b>");
3

While you can make dynamically-created RegExp's (as per the other responses to this question), I'll echo my comment from a similar post: The functional form of String.replace() is extremely useful and in many cases reduces the need for dynamically-created RegExp objects. (which are kind of a pain 'cause you have to express the input to the RegExp constructor as a string rather than use the slashes /[A-Z]+/ regexp literal format)

3

This self calling function will iterate over replacerItems using an index, and change replacerItems[index] globally on the string with each pass.

  const replacerItems = ["a", "b", "c"];    

    function replacer(str, index){
          const item = replacerItems[index];
          const regex = new RegExp(`[${item}]`, "g");
          const newStr = str.replace(regex, "z");
          if (index < replacerItems.length - 1) {
            return replacer(newStr, index + 1);
          }
          return newStr;
    }

// console.log(replacer('abcdefg', 0)) will output 'zzzdefg'
3

None of these answers were clear to me. I eventually found a good explanation at How to use a variable in replace function of JavaScript

The simple answer is:

var search_term = new RegExp(search_term, "g");
text = text.replace(search_term, replace_term);

For example:

$("button").click(function() {
  Find_and_replace("Lorem", "Chocolate");
  Find_and_replace("ipsum", "ice-cream");
});

function Find_and_replace(search_term, replace_term) {
  text = $("textbox").html();
  var search_term = new RegExp(search_term, "g");
  text = text.replace(search_term, replace_term);
  $("textbox").html(text);
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<textbox>
  Lorem ipsum Lorem ipsum Lorem ipsum Lorem ipsum Lorem ipsum Lorem ipsum
</textbox>
<button>Click me</button>

1
  • 1
    You're overwriting a closure variable, no need to use var here. Also, if you pass \b or \1 it would break.
    – CyberAP
    Nov 6, 2018 at 19:00
2

You can always use indexOf repeatedly:

String.prototype.replaceAll = function(substring, replacement) {
    var result = '';
    var lastIndex = 0;

    while(true) {
        var index = this.indexOf(substring, lastIndex);
        if(index === -1) break;
        result += this.substring(lastIndex, index) + replacement;
        lastIndex = index + substring.length;
    }

    return result + this.substring(lastIndex);
};

This doesn’t go into an infinite loop when the replacement contains the match.

2

One way to implement is by taking the value from a text field which is the one you want to replace and another is the "replace with" text field, getting the value from text-field in a variable and setting the variable to RegExp function to further replace. In my case I am using jQuery, but you can also do it by only JavaScript too.

JavaScript code:

  var replace =document.getElementById("replace}"); // getting a value from a text field with I want to replace
  var replace_with = document.getElementById("with"); //Getting the value from another text fields with which I want to replace another string.

  var sRegExInput = new RegExp(replace, "g");
  $("body").children().each(function() {
    $(this).html($(this).html().replace(sRegExInput,replace_with));
  });

This code is on the Onclick event of a button, and you can put this in a function to call.

So now you can pass a variable in the replace function.

3
  • Your replace_with variable will contain the DOM element not the value itself Oct 27, 2017 at 14:26
  • The link is broken: "Page not found - Mindfire Solutions. 404. Looks like you are lost." Aug 22, 2021 at 11:54
  • Just ignor the link you can use the code given in the answer it should work accordingly Aug 24, 2021 at 11:42
0

For multiple replace without regular expressions I went with the following:

      let str = "I am a cat man. I like cats";
      let find = "cat";
      let replace = "dog";


      // Count how many occurrences there are of the string to find 
      // inside the str to be examined.
      let findCount = str.split(find).length - 1;

      let loopCount = 0;

      while (loopCount < findCount) 
      {
        str = str.replace(find, replace);
        loopCount = loopCount + 1;
      }  

      console.log(str);
      // I am a dog man. I like dogs

The important part of the solution was found here

0

If you pass the variable with the correct syntax, you can do this like so with the code below.

This has the added benefit of using the flags in the same variable.

Also you don't have to double escape \ in the regular expression when it comes to \w, etc.

var str = 'regexVariable example: This is my example of RegExp replacing with a regexVariable.'
var reVar = /(.*?)(regex\w+?iable)(.+?)/gi;
var resStr = str.replace(new RegExp(reVar), '$1 :) :) :) $2 :) :) :)$3');
console.log(resStr);

// Returns:
// :) :) :) regexVariable :) :) :) example: This is my example of RegExp replacing with a  :) :) :) regexVariable :) :) :).

The prototype version as per the OP's example:

var str = 'regexVariable prototype: This is my example of RegExp replacing with a regexVariable.'

String.prototype.regexVariable = function(reFind, reReplace) {
return str.replace(new RegExp(reFind), reReplace);
}

var reVar = /(.*?)(regex\w+?iable)(.+?)/gi;

console.log(str.regexVariable(reVar, '$1 :) :) :) $2 :) :) :)$3'));

// Returns:
// :) :) :) regexVariable :) :) :) prototype: This is my example of replacing with a  :) :) :) regexVariable :) :) :).

0

As a relative JavaScript novice, the accepted answer https://stackoverflow.com/a/494046/1904943 is noted / appreciated, but it is not very intuitive.

Here is a simpler interpretation, by example (using a simple JavaScript IDE).

myString = 'apple pie, banana loaf';

console.log(myString.replaceAll(/pie/gi, 'PIE'))
// apple PIE, banana loaf

console.log(myString.replaceAll(/\bpie\b/gi, 'PIE'))
// apple PIE, banana loaf

console.log(myString.replaceAll(/pi/gi, 'PIE'))
// apple PIEe, banana loaf

console.log(myString.replaceAll(/\bpi\b/gi, 'PIE'))
// [NO EFFECT] apple pie, banana loaf

const match_word = 'pie';

console.log(myString.replaceAll(/match_word/gi, '**PIE**'))
// [NO EFFECT] apple pie, banana loaf

console.log(myString.replaceAll(/\b`${bmatch_word}`\b/gi, '**PIE**'))
// [NO EFFECT] apple pie, banana loaf

// ----------------------------------------
// ... new RegExp(): be sure to \-escape your backslashes: \b >> \\b ...

const match_term = 'pie';
const match_re = new RegExp(`(\\b${match_term}\\b)`, 'gi')

console.log(myString.replaceAll(match_re, 'PiE'))
// apple PiE, banana loaf

console.log(myString.replace(match_re, '**PIE**'))
// apple **PIE**, banana loaf

console.log(myString.replaceAll(match_re, '**PIE**'))
// apple **PIE**, banana loaf

Application

E.g.: replacing (color highlighting) words in string / sentence, [optionally] if the search term matches a more than a user-defined proportion of the matched word.

Note: original character case of matched term is retained. hl: highlight; re: regex | regular expression

mySentence = "Apple, boOk? BOoks; booKEd. BookMark, 'BookmarkeD', bOOkmarks! bookmakinG, Banana; bE, BeEn, beFore."

function replacer(mySentence, hl_term, hl_re) {
    console.log('mySentence [raw]:', mySentence)
    console.log('hl_term:', hl_term, '| hl_term.length:', hl_term.length)
    cutoff = hl_term.length;
    console.log('cutoff:', cutoff)

    // `.match()` conveniently collects multiple matched items
    // (including partial matches) into an [array]
    const hl_terms  = mySentence.toLowerCase().match(hl_re, hl_term);
    if (hl_terms == null) {
        console.log('No matches to hl_term "' + hl_term + '"; echoing input string then exiting ...')
        return mySentence;
    }
    console.log('hl_terms:', hl_terms)
    for (let i = 0;  i < hl_terms.length; i++) {
        console.log('----------------------------------------')
        console.log('[' + i + ']:', hl_terms[i], '| length:', hl_terms[i].length, '| parseInt(0.7(length)):', parseInt(0.7*hl_terms[i].length))
        // TEST: if (hl_terms[i].length >= cutoff*10) {
        if (cutoff >= parseInt(0.7 * hl_terms[i].length)) {
            var match_term = hl_terms[i].toString();

            console.log('matched term:', match_term, '[cutoff length:', cutoff, '| 0.7(matched term length):', parseInt(0.7 * hl_terms[i].length))

            const match_re = new RegExp(`(\\b${match_term}\\b)`, 'gi')

            mySentence = mySentence.replaceAll(match_re, '<font style="background:#ffe74e">$1</font>');
        }
        else {
            var match_term = hl_terms[i].toString();
            console.log('NO match:', match_term, '[cutoff length:', cutoff, '| 0.7(matched term length):', parseInt(0.7 * hl_terms[i].length))
        }
    }
    return mySentence;
}

// TESTS:
// const hl_term = 'be';
// const hl_term = 'bee';
// const hl_term = 'before';
// const hl_term = 'book';
const hl_term = 'bookma';
// const hl_term = 'Leibniz';

// This regex matches from start of word:
const hl_re = new RegExp(`(\\b${hl_term}[A-z]*)\\b`, 'gi')

mySentence = replacer(mySentence, hl_term, hl_re);
console.log('mySentence [processed]:', mySentence)

Output

mySentence [raw]: Apple, boOk? BOoks; booKEd. BookMark, 'BookmarkeD',
bOOkmarks! bookmakinG, Banana; bE, BeEn, beFore.

hl_term: bookma | hl_term.length: 6
cutoff: 6
hl_terms: Array(4) [ "bookmark", "bookmarked", "bookmarks", "bookmaking" ]

----------------------------------------
[0]: bookmark | length: 8 | parseInt(0.7(length)): 5
matched term: bookmark [cutoff length: 6 | 0.7(matched term length): 5
----------------------------------------
[1]: bookmarked | length: 10 | parseInt(0.7(length)): 7
NO match: bookmarked [cutoff length: 6 | 0.7(matched term length): 7
----------------------------------------
[2]: bookmarks | length: 9 | parseInt(0.7(length)): 6
matched term: bookmarks [cutoff length: 6 | 0.7(matched term length): 6
----------------------------------------
[3]: bookmaking | length: 10 | parseInt(0.7(length)): 7
NO match: bookmaking [cutoff length: 6 | 0.7(matched term length): 7

mySentence [processed]: Apple, boOk? BOoks; booKEd.
<font style="background:#ffe74e">BookMark</font>, 'BookmarkeD',
<font style="background:#ffe74e">bOOkmarks</font>! bookmakinG,
Banana; bE, BeEn, beFore.
0

example: regex start with

function startWith(char, value) {
    return new RegExp(`^[${char}]`, 'gi').test(value);
}
0

I found so many answers with weird examples in here and in other open tickets on stackoverflow or similar forums.

This is the simplest option in my opinion how u can put variable as template literal string;

const someString = "abc";
const regex = new RegExp(`^ someregex ${someString} someregex $`);

As u can see I'm not puting forward slash at the beginning or the end, the RegExp constructor will reconstruct the valid regex literal. Works with yup matches function also.

-1

All these answers seem extremely complicated, when there is a much simpler answer that still gets the job done using regex.

String.prototype.replaceAll = function(replaceThis, withThis) {
    const expr = `${replaceThis}`
    this.replace(new RegExp(expr, "g"), withThis);
};

Explanation

The RegExp constructor takes 2 arguments: the expression, and flags. By using a template string in the expression, we can pass in the variable into the class, and it will transform it to be /(value of the replaceThis variable)/g.

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