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I have code like:

pattern = 'arrayname[1]'; // fetch from dom, make literal here just for example
reg = new RegExp(RegExp.quote(pattern), 'g');
mystring.replace(reg, 'arrayname[2]');

but it fails with an error message saying: "RegExp.quote is not a function".

Am I missing something simple?

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8 Answers 8

up vote 88 down vote accepted

This question got me searching on Google for a RegEx.quote function in JavaScript, which I was not aware of. It turns out that the function exists in only one place, namely in an answer by Gracenote here on StackOverflow. The function is defined like this:

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

If you wish to use this function, you will need to include the above definition somewhere above the point where you use the function in your script.

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22  
Now SO generates answers to problems before they even exist! –  RedFilter Apr 7 '10 at 15:20
3  
That's a neat function, but it's important to be careful with things like that. It only works when you know that the string containing the pattern really does not intend to be interpreted with real regular expression metacharacters. –  Pointy Apr 7 '10 at 15:21
    
@Pointy: I can only agree! –  Jørn Schou-Rode Apr 7 '10 at 15:27
    
Oh, thanks! I searched out this question just a while ago, but i stop when i saw RegExp.quote in using, i thought RegExp.quote was a core function. But when i place the function in my scripts, it says: str.replace is not a function. Anyway, i can use the codes inside to escape my pattern. –  Edward Apr 7 '10 at 15:27
3  
Edited to add | to the list of characters to escape. –  Mike Samuel Jan 16 '12 at 16:24

If you're replacing literally, you don't need a regexp in the first place:

 str = str.split(search).join(replace)
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2  
Upvoted, but you some times need to combine user input with your own regex, in which case you couldn't just do the above. –  Juan Mendes Jun 1 '12 at 6:24

Here is the exact function Google's closure library uses.

/**
 * Escapes characters in the string that are not safe to use in a RegExp.
 * @param {*} s The string to escape. If not a string, it will be casted
 *     to one.
 * @return {string} A RegExp safe, escaped copy of {@code s}.
 */
goog.string.regExpEscape = function(s) {
  return String(s).replace(/([-()\[\]{}+?*.$\^|,:#<!\\])/g, '\\$1').
      replace(/\x08/g, '\\x08');
};

See link

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But I wonder why the heck they're replacing \x08 in particular. You know what they say, Google works in mysterious ways. –  Camilo Martin Sep 13 at 2:29

From the mozilla dev docs

function escapeRegExp(string){
  return string.replace(/([.*+?^=!:${}()|\[\]\/\\])/g, "\\$1");
}

This is out of the ordinary, but in this particular scenario, I would create a function like this

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

Usage

new RegExp(RegExp.escape('http://www.google.com'));
//=> /http\:\/\/www\.google\.com/
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Well, first of all you can define the regular expression with its own constant syntax:

var reg = /arrayname\[1\]/;

Inside the regular expression you quote things with backslash. Now, if you're starting from a string, you have to "protect" those backslashes inside the string constant. In that case, the pattern is being parsed twice: once when the string constant is gobbled by the Javascript parser, and then once by the RegExp constructor:

var pattern = "arrayname\\[1\\]";
var reg = new RegExp(pattern);

The backslashes are doubled so that the string "pattern" will look like the regular expression in my first example - one backslash before each bracket character.

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The thing here is that we don't know which is going to be the string. –  levhita Nov 24 '12 at 18:24

Previous answers escape too much characters.

According to What special characters must be escaped in regular expressions?, only the following characters need to be escaped:

  • .^$*+?()[{\| outside character classes.
  • ^-]\ inside character classes.

Then, this function does the trick:

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

var better_to_stay_safe = any_string.replace(/\W/g, "\\$&");
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Mozilla recommends to use this function to espace character from regex :

function escapeRegExp(string){
  return string.replace(/([.*+?^${}()|\[\]\/\\])/g, "\\$1");
}

You can find this one at the end of this chapter in Mozilla Javascript Guide: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Guide/Regular_Expressions#Using_Special_Characters

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