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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?

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13 Answers 13

up vote 462 down vote accepted

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

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

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

"mystring".replace(re, "newstring");
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81  
If you need to use an expression like /\/word\:\w*$/, be sure to escape your backslashes: new RegExp( '\\/word\\:\\w*$' ). –  Jonathan Swinney Nov 9 '10 at 23:04
    
Right, +1 Jonathan –  Eric Wendelin Nov 10 '10 at 15:09
    
wendelin If I have string and I want to replace all "10" with "a" how do I do that with your function? –  gravityboy Jun 20 '11 at 21:02
1  
@gravityboy You can do ('' + myNumber).replace(/10/g, 'a') or if you want hex numbers, you can do parseInt('' + myNumber, 16) to convert to hex from decimal. –  Eric Wendelin Jun 21 '11 at 15:19
2  
Full escape explanation: stackoverflow.com/a/6969486/151312 –  CoolAJ86 Jun 3 '12 at 1:33
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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".

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1  
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 '09 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 '09 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 '09 at 20:00
2  
developer.mozilla.org/en-US/docs/JavaScript/Guide/… offers a similar function, but they exclude -, and include =!:/. –  chbrown Dec 15 '12 at 21:12
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"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.

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Cool idea, wouldn't have thought of doing that! –  chaiguy May 31 '12 at 19:01
    
Hey, thanks for this! What a simple solution! –  user416527 Jan 2 '13 at 0:51
3  
And have you measured that this is faster than regex? –  Mitar Apr 10 '13 at 3:12
    
This seems preferable, especially when needing to match on special regex characters like '.' –  Chris Apr 24 '13 at 18:41
3  
@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 '13 at 9:05
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For anyone looking to use variable with the match method, this worked for me

var baz = "foo";

var filter = new RegExp(baz + "d");

"food fight".match(filter)[0]; // food
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That's a really helpful example, thanks. –  Andrew Apr 3 '13 at 14:59
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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

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+1 for the Tool Link... –  Tareq Jan 26 '12 at 9:37
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this.replace( new RegExp( replaceThis, 'g' ), withThis );
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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.

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yep, but in first example it uses pattern as variable, in 2nd as a string –  vladkras Jul 9 '13 at 4:16
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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;
    };
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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.

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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)

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You can use this if $1 not work with you

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

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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("]", ">"))
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