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I want to replace all the occurances of a dot(.) in a JavaScript string

For example, I have:

var mystring = 'okay.this.is.a.string';

I want to get: okay this is a string.

So far I tried:

mystring.replace(/./g,' ')

but this ends up with all the string replaced to spaces.

Any idea how to resolve this?

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5  
aefxx's answer is correct, but just as an FYI is that the period character in a regex means match everything, thus everything being a space. Escaping it with the backslash means match on periods. –  swilliams Jul 27 '10 at 16:52
    
Thanks for the tip. I have has some AHA moments (when building the app) with Regex. I really hate it _, do you have some cool, good tutorial? –  Omar Abid Jul 31 '10 at 1:32
    
rubular.com is what you're looking for –  LanguagesNamedAfterCofee Jul 17 '12 at 15:41
    
Don't use a regex for something this trivial. –  Steven Lu May 2 '13 at 18:42
    
Unfortunately it does not look like a non-regex can allow for replacement of a string multiple times. –  Steven Lu May 4 '13 at 23:41
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11 Answers 11

up vote 356 down vote accepted

Almost ... you need to escape the . because it has the meaning of "an arbitrary character" in a regular expression.

mystring.replace(/\./g,' ')
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11  
just to clarify, the \ escapes special characters in regular expressions, like the . in this case –  realgt Sep 27 '11 at 20:30
    
looks like sed.. somehow.. :) –  Paschalis Jul 9 '12 at 19:23
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One more solution which is easy to understand :)

var newstring = mystring.split('.').join(' ');
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7  
I like this for some reason. –  Oliver Pearmain Mar 23 '12 at 9:09
15  
@HaggleLad because you don't need to mess with regex –  ton.yeung Apr 4 '12 at 3:30
4  
Isn't this much slower than regexing? –  Jasper Kennis Jun 6 '12 at 14:10
79  
7  
@BetoFrega Nothing like some empirical data to make your case :). Thanks for providing the link! –  testing123 Sep 28 '12 at 4:41
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/**
 * ReplaceAll by Fagner Brack (MIT Licensed)
 * Replaces all occurrences of a substring in a string
 */
String.prototype.replaceAll = function( token, newToken, ignoreCase ) {
    var _token;
    var str = this + "";
    var i = -1;

    if ( typeof token === "string" ) {

        if ( ignoreCase ) {

            _token = token.toLowerCase();

            while( (
                i = str.toLowerCase().indexOf(
                    token, i >= 0 ? i + newToken.length : 0
                ) ) !== -1
            ) {
                str = str.substring( 0, i ) +
                    newToken +
                    str.substring( i + token.length );
            }

        } else {
            return this.split( token ).join( newToken );
        }

    }
return str;
};

alert('okay.this.is.a.string'.replaceAll('.', ' '));

Faster than using regex...

EDIT: Maybe at the time I did this code I did not used jsperf. But in the end such discussion is totally pointless, the performance difference is not worth the legibility of the code in the real world, so my answer is still valid, even if the performance differs from the regex approach.

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1  
thanks a lot :) –  peplamb May 2 '12 at 23:41
1  
Very useful. FYI: There are rogue characters after the semi-colon in the alert statement. –  Patrick Nov 27 '12 at 11:24
    
What you mean for "rogue character"? –  Fagner Brack Feb 6 '13 at 23:09
1  
He means entity & #8203 ; twice, which is Unicode Character 'ZERO WIDTH SPACE' (U+200B). More information on fileformat.info/info/unicode/char/200b/index.htm –  Cœur Feb 7 '13 at 14:07
    
Oh got it, thanks! –  Fagner Brack Feb 7 '13 at 20:33
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str.replace(new RegExp(".","gm")," ")
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1  
Worked great for replace function =) –  afreeland Jul 26 '12 at 18:09
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For this simple scenario, i would also recommend to use the methods that comes build-in in javascript.

You could try this :

"okay.this.is.a.string".split(".").join("")

Greetings

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I add double backslash to the dot to make it work. Cheer.

var st = "okay.this.is.a.string";
var Re = new RegExp("\\.","g");
st = st.replace(Re," ");
alert(st);
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String.prototype.replaceAll = function(character,replaceChar){
    var word = this.valueOf();

    while(word.indexOf(character) != -1)
        word = word.replace(character,replaceChar);

    return word;
}
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2  
won't this get stuck in an infinite loop if you give it something like: replaceAll('&', '&') ? (admittedly that is not a case in the OP's question) –  Anentropic Jun 17 '13 at 14:19
    
But "&" contains a & so the loop never runs out of things to replace (and the string keeps on growing). I tried it just now and it locked up my browser... –  Anentropic Jul 3 '13 at 9:46
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Here's another implementation of replaceAll. Hope it helps someone.

    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;
    };

Then you can use it:

var myText = "My Name is George";
var newText = myText.replaceAll("George", "Michael");

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1  
This doesn't handle case-insensitive search/replace. So it is functionally equivalent to: string.split(stringToFind).join(stringToReplace) –  sstur May 21 '13 at 4:09
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This is more concise/readable and should perform better than the one posted by Fagner Brack (toLowerCase not performed in loop):

String.prototype.replaceAll = function(search, replace, ignoreCase) {
  if (ignoreCase) {
    var result = [];
    var _string = this.toLowerCase();
    var _search = search.toLowerCase();
    var start = 0, match, length = _search.length;
    while ((match = _string.indexOf(_search, start)) >= 0) {
      result.push(this.slice(start, match));
      start = match + length;
    }
    result.push(this.slice(start));
  } else {
    result = this.split(search);
  }
  return result.join(replace);
}

Usage:

alert('Bananas And Bran'.replaceAll('An', '(an)'));
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1  
Actually, it appears escaped RegEx performs better than indexOf! Doesn't sound right, but JSPerf indicates it's much faster: jsperf.com/replaceall-indexof-vs-regex –  sstur May 21 '13 at 5:27
    
Maybe at the time I did that code I did not used jsperf. But in the end such discussion is totally pointless, the performance difference is not worth the legibility of the code in the real world, so my answer is still valid. –  Fagner Brack Jan 16 at 20:32
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Example: I want to replace all double Quote (") into single Quote (') Then the code will be like this

str= "Hello"

   var regex = new RegExp('"', 'g');
   str = str.replace(regex, '\'');

Output : Str = 'Hello'

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var mystring = 'okay.this.is.a.string';
var myNewString = escapeHtml(mystring);

function escapeHtml(text) {
if('' !== text) {
    return text.replace(/&/g, "&")
               .replace(/&lt;/g, "<")
               .replace(/&gt;/g, ">")
               .replace(/\./g,' ')
               .replace(/&quot;/g, '"')
               .replace(/&#39/g, "'");
} 
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