4789

I have this string in my JavaScript code:

"Test abc test test abc test test test abc test test abc"

Doing:

str = str.replace('abc', '');

Seems to only remove the first occurrence of abc in the string above.

How can I replace all occurrences of it?

4
  • 10
    When replacing all occurrences of aba in ababa with ca, which result do you expect? caba? abca? cca? – reinierpost Aug 2 '19 at 12:58
  • 7
    String.prototype.replaceAll() is now a standard part of ECMAScript tc39.es/ecma262/#sec-string.prototype.replaceall, documented at developer.mozilla.org/docs/Web/JavaScript/Reference/… and shipped in Safari 13.1, Firefox 77 and Chrome Dev/Canary and will ship in Chrome 85. From the docs: “If searchValue is a string, replaces all occurrences of searchValue (as if .split(searchValue).join(replaceValue) or a global & properly-escaped regular expression had been used). If searchValue is a non-global regular expression, throws an exception” – sideshowbarker Jun 29 '20 at 5:26
  • 7
    Use regex instead of string, should look like str.replace(/abc/g, ''); so g to get all matches. – sarea Jul 29 '20 at 6:17
  • Just a suggestion, maybe select an answer below that is more acceptable by the community's judgment? Thanks, great question! – HoldOffHunger Mar 2 at 21:36

72 Answers 72

7

You can simply use below method

/**
 * Replace all the occerencess of $find by $replace in $originalString
 * @param  {originalString} input - Raw string.
 * @param  {find} input - Target key word or regex that need to be replaced.
 * @param  {replace} input - Replacement key word
 * @return {String}       Output string
 */
function replaceAll(originalString, find, replace) {
  return originalString.replace(new RegExp(find, 'g'), replace);
};
7

The following function works for me:

String.prototype.replaceAllOccurence = function(str1, str2, ignore)
{
    return this.replace(new RegExp(str1.replace(/([\/\,\!\\\^\$\{\}\[\]\(\)\.\*\+\?\|\<\>\-\&])/g,"\\$&"),(ignore?"gi":"g")),(typeof(str2)=="string")?str2.replace(/\$/g,"$$$$"):str2);
} ;

Now call the functions like this:

"you could be a Project Manager someday, if you work like this.".replaceAllOccurence ("you", "I");

Simply copy and paste this code in your browser console to TEST.

7

Check this answer may it will help and I used in my project.

function replaceAll(searchString, replaceString, str) {
   return str.split(searchString).join(replaceString);
}
replaceAll('abc', '',"Test abc test test abc test test test abc test test abc" ); // "Test  test test  test test test  test test "
6

I use p to store the result from the previous recursion replacement:

function replaceAll(s, m, r, p) {
    return s === p || r.contains(m) ? s : replaceAll(s.replace(m, r), m, r, s);
}

It will replace all occurrences in the string s until it is possible:

replaceAll('abbbbb', 'ab', 'a') → 'abbbb' → 'abbb' → 'abb' → 'ab' → 'a'

To avoid infinite loop I check if the replacement r contains a match m:

replaceAll('abbbbb', 'a', 'ab') → 'abbbbb'
6

I use split and join or this funcion

function replaceAll( text, busca, reemplaza ){
  while (text.toString().indexOf(busca) != -1)
      text = text.toString().replace(busca,reemplaza);
  return text;
}
6

This can be achieved using regular expressions. A few combinations that might help someone:

var word = "this,\\ .is*a*test,    '.and? / only /     'a \ test?";
var stri = "This      is    a test         and only a        test";

To replace all non alpha characters,

console.log(word.replace(/([^a-z])/g,' ').replace(/ +/g, ' ')); 
Result: [this is a test and only a test]

To replace multiple continuous spaces with one space,

console.log(stri.replace(/  +/g,' ')); 
Result: [This is a test and only a test]

To replace all * characters,

console.log(word.replace(/\*/g,'')); 
Result: [this,\ .isatest,    '.and? / only /     'a  test?]

To replace question marks (?)

console.log(word.replace(/\?/g,'#')); 
Result: [this,\ .is*a*test,    '.and# / only /     'a  test#]

To replace quotation marks,

console.log(word.replace(/'/g,'#'));  
Result: [this,\ .is*a*test,    #.and? / only /     #a  test?]

To replace all ' characters,

console.log(word.replace(/,/g,'')); 
Result: [this\ .is*a*test    '.and? / only /     'a  test?]

To replace a specific word,

console.log(word.replace(/test/g,'')); 
Result: [this,\ .is*a*,    '.and? / only /     'a  ?]

To replace back-slash,

console.log(word.replace(/\\/g,''));  
Result: [this, .is*a*test,    '.and? / only /     'a  test?]

To replace forward slash,

console.log(word.replace(/\//g,''));  
Result: [this,\ .is*a*test,    '.and?  only      'a  test?]

To replace all spaces,

console.log(word.replace(/ /g,'#'));  
Result: [this,\#.is*a*test,####'.and?#/#only#/#####'a##test?]

To replace dots,

console.log(word.replace(/\./g,'#')); 
Result: [this,\ #is*a*test,    '#and? / only /     'a  test?]
6

Method 1

Try to implement a regular expression:

"Test abc test test abc test test test abc test test abc".replace(/\abc/g, ' ');

Method 2

Split and join. Split with abc and join with empty space.

"Test abc test test abc test test test abc test test abc".split("abc").join(" ")

5

My implementation, very self explanatory

function replaceAll(string, token, newtoken) {
    if(token!=newtoken)
    while(string.indexOf(token) > -1) {
        string = string.replace(token, newtoken);
    }
    return string;
}
3
  • 1
    This is incorrect. replaceAll("123434", "1234", "12") should return "1234" but instead returns "12". – Bryan Apr 16 '13 at 13:58
  • 2
    it depends if you allow to replace "recursively" or not. – Vitim.us Apr 16 '13 at 16:16
  • 9
    replaceAll("abc", "a", "ab") never terminates – user1002973 May 16 '13 at 14:44
5

Most people are likely doing this to encode a URL. To encode a URL, you shouldn't only consider spaces, but convert the entire string properly with encodeURI.

encodeURI("http://www.google.com/a file with spaces.html")

to get:

http://www.google.com/a%20file%20with%20spaces.html
5

For replacing all kind of characters, try this code:

Suppose we have need to send " and \ in my string, then we will convert it " to \" and \ to \\

So this method will solve this issue.

String.prototype.replaceAll = function (find, replace) {
     var str = this;
     return str.replace(new RegExp(find.replace(/[-\/\\^$*+?.()|[\]{}]/g, '\\$&'), 'g'), replace);
 };

var message = $('#message').val();
             message = message.replaceAll('\\', '\\\\'); /*it will replace \ to \\ */
             message = message.replaceAll('"', '\\"');   /*it will replace " to \\"*/

I was using Ajax, and I had the need to send parameters in JSON format. Then my method is looking like this:

 function sendMessage(source, messageID, toProfileID, userProfileID) {

     if (validateTextBox()) {
         var message = $('#message').val();
         message = message.replaceAll('\\', '\\\\');
         message = message.replaceAll('"', '\\"');
         $.ajax({
             type: "POST",
             async: "false",
             contentType: "application/json; charset=utf-8",
             url: "services/WebService1.asmx/SendMessage",
             data: '{"source":"' + source + '","messageID":"' + messageID + '","toProfileID":"' + toProfileID + '","userProfileID":"' + userProfileID + '","message":"' + message + '"}',
             dataType: "json",
             success: function (data) {
                 loadMessageAfterSend(toProfileID, userProfileID);
                 $("#<%=PanelMessageDelete.ClientID%>").hide();
                 $("#message").val("");
                 $("#delMessageContainer").show();
                 $("#msgPanel").show();
             },
             error: function (result) {
                 alert("message sending failed");
             }
         });
     }
     else {
         alert("Please type message in message box.");
         $("#message").focus();

     }
 }

 String.prototype.replaceAll = function (find, replace) {
     var str = this;
     return str.replace(new RegExp(find.replace(/[-\/\\^$*+?.()|[\]{}]/g, '\\$&'), 'g'), replace);
 };
0
5

In my apps, I use a custom function that is the most powerful for this purpose, and even wrapping the split/join solution in the simpler case, it is a little bit faster in Chrome 60and Firefox 54 (JSBEN.CH) than other solutions. My computer runs Windows 7 64 bits.

The advantage is that this custom function can handle many substitutions at the same time using strings or characters, which can be a shortcut for some applications.

Like a split/join above solution, the solution below has no problem with escape characters, differently than regular expression approach.

  function replaceAll(s,find,repl,caseOff,byChar){
  if (arguments.length<2)  return false; 
  var destDel = ! repl;       // if destDel delete all keys from target
  var isString = !! byChar;   // if byChar, replace set of characters 
  if (typeof find !==typeof repl && ! destDel)  return false; 
  if (isString  &&  (typeof find!=="string"))   return false; 

  if (! isString &&  (typeof find==="string"))  {
    return s.split(find).join(destDel?"":repl);
  }

  if ((! isString)  &&  ( ! Array.isArray(find) ||
          ( ! Array.isArray(repl) && ! destDel)   ))  return false;

     // if destOne replace all strings/characters by just one element
  var destOne = destDel ? false : (repl.length===1);   

     // Generally source and destination should have the same size
  if (! destOne && ! destDel && find.length!==repl.length)  return false    

  var prox,sUp,findUp,i,done;   
  if (caseOff)  {    // case insensitive    
       // Working with uppercase keys and target 
    sUp = s.toUpperCase();   
    if (isString)
       findUp = find.toUpperCase()   
    else
       findUp = find.map(function(el){  return el.toUpperCase();});    

  } else  {         // case sensitive
     sUp = s;
     findUp =find.slice();  // clone array/string
  }  

  done = new Array(find.length);  // size: number of keys
  done.fill(null);              

  var pos = 0;       // initial position in target s
  var r = "";   // initial result
  var aux, winner;
  while (pos < s.length)  {       // Scanning the target
     prox  = Number.MAX_SAFE_INTEGER;
     winner = -1;  // no winner at start
     for (i=0;i<findUp.length;i++)   // find next occurence for each string
       if (done[i]!==-1) {    // key still alive
             // Never search for the word/char or is over?
         if (done[i]===null || done[i]<pos)  { 
           aux = sUp.indexOf(findUp[i],pos);
           done[i]=aux;  // Save the next occurrence
         } else
           aux = done[i]   // restore the position of last search
         if (aux<prox && aux!==-1) {   // if next occurrence is minimum
           winner = i;     // save it  
           prox = aux;
         }  
       }  // not done

      if (winner===-1) {   // No matches forward
         r += s.slice(pos);   
         break;
      } // no winner

      // found the character or string key in the target

      i = winner;  // restore the winner
      r += s.slice(pos,prox);   // update piece before the match

            // Append the replacement in target 
      if (! destDel) r += repl[ destOne?0:i ];  
      pos = prox + ( isString?1:findUp[i].length );       // go after match

  }  // loop
  return r;  // return the resulting string
}

The documentation is below

           replaceAll    
 Syntax    
 ======     
      replaceAll(s,find,[ repl ,caseOff, byChar)     

 Parameters    
 ==========    

   "s" is a string target of replacement.    
   "find" can be a string or array of strings.     
   "repl" should be the same type than "find" or empty     

  if "find" is a string, it is a simple replacement for      
    all "find" occurrences in "s" by string "repl"    

  if "find" is an array, it will replaced each string in "find"    
    that occurs in "s" for corresponding string in "repl" array.
  The replace specs are independent: A replacement part cannot    
    be replaced again. 


  if "repl" is empty all "find" occurrences in "s" will be deleted.   
  if "repl" has only one character or element,    
      all occurrences in "s" will be replaced for that one.   

  "caseOff" is true if replacement is case insensitive     
       (default is FALSE)

  "byChar" is true when replacement is based on set of characters.    
  Default is false   

  if "byChar", it will be replaced in "s" all characters in "find"   
  set of characters for corresponding character in  "repl"
  set of characters   

 Return   
 ======   
  the function returns the new string after the replacement.  

To be fair, I ran the benchmark with no parameter test.

Here is my test set, using Node.js

function l() { return console.log.apply(null, arguments); }

var k=0;
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      ["ri","nea"],["do","fa"]));  //1
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      ["ri","nea"],["do"]));  //2
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      ["ri","nea"]));  //3
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
     "aeiou","","",true));  //4
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      "aeiou","a","",true));  //5
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      "aeiou","uoiea","",true));  //6
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      "aeiou","uoi","",true));  //7
l(++k,replaceAll("banana is a ripe fruit harvested near the river",
      ["ri","nea"],["do","fa","leg"]));  //8
l(++k,replaceAll("BANANA IS A RIPE FRUIT HARVESTED NEAR THE RIVER",
      ["ri","nea"],["do","fa"]));  //9
l(++k,replaceAll("BANANA IS A RIPE FRUIT HARVESTED NEAR THE RIVER",
      ["ri","nea"],["do","fa"],true)); //10
return;

And the results:

1 'banana is a dope fruit harvested far the dover'
2 'banana is a dope fruit harvested dor the dover'
3 'banana is a pe fruit harvested r the ver'
4 'bnn s rp frt hrvstd nr th rvr'
5 'banana as a rapa fraat harvastad naar tha ravar'
6 'bununu is u ripo frait hurvostod nour tho rivor'
7 false
8 false
9 'BANANA IS A RIPE FRUIT HARVESTED NEAR THE RIVER'
10 'BANANA IS A doPE FRUIT HARVESTED faR THE doVER'

2
  • Downvoted because using this much code to achieve something so basic feels overkill to me. – Bart Read Sep 4 '17 at 6:53
  • 1
    It's matter of opinion. For me It's a powerhouse and fast function. I've used for years. One cannot do it on fewer lines. For those who just want to replace chars and pieces in strings without worrying about escape characters from regular expressions, it might be a good choice. The number of lines does not matter much, since it works is a tested black box – Paulo Buchsbaum Sep 5 '17 at 18:34
5

In terms of performance related to the main answers these are some online tests.

While the following are some performance tests using console.time() (they work best in your own console, the time is very short to be seen in the snippet)

console.time('split and join');
"javascript-test-find-and-replace-all".split('-').join(' ');
console.timeEnd('split and join')

console.time('regular expression');
"javascript-test-find-and-replace-all".replace(new RegExp('-', 'g'), ' ');
console.timeEnd('regular expression');

console.time('while');
let str1 = "javascript-test-find-and-replace-all";
while (str1.indexOf('-') !== -1) {
    str1 = str1.replace('-', ' ');
}
console.timeEnd('while');

The interesting thing to notice is that if you run them multiple time the results are always different even though the RegExp solution seems the fastest on average and the while loop solution the slowest.

4
function replaceAll(str, find, replace) {
    var $r="";
    while($r!=str){ 
        $r = str;
        str = str.replace(find, replace);
    }
    return str;
}
1
  • 3
    if the replacement contains the "find" youi will have an infinite loop – Jonathan ANTOINE Jun 24 '16 at 8:44
4

Here is the working code with prototype:

String.prototype.replaceAll = function(find, replace) {
    var str = this;
    return str.replace(new RegExp(find.replace(/([.*+?^=!:${}()|\[\]\/\\])/g, "\\$1"), 'g'), replace);
};
4

There is now a finished proposal for integrating String.prototype.replaceAll into the official specification. Eventually, developers will not have to come up with their own implementations for replaceAll - instead, modern Javascript engines will support it natively.

The proposal is at stage 4, which means that everything is complete, and all that's left is for browsers to start implementing it.

It has shipped in the latest versions of Chrome, Firefox, and Safari.

Here are the implementation details:

Per the current TC39 consensus, String.prototype.replaceAll behaves identically to String.prototype.replace in all cases, except for the following two cases:

  1. If searchValue is a string, String.prototype.replace only replaces a single occurrence of the searchValue, whereas String.prototype.replaceAll replaces all occurrences of the searchValue (as if .split(searchValue).join(replaceValue) or a global & properly-escaped regular expression had been used).
  2. If searchValue is a non-global regular expression, String.prototype.replace replaces a single match, whereas String.prototype.replaceAll throws an exception. This is done to avoid the inherent confusion between the lack of a global flag (which implies "do NOT replace all") and the name of the method being called (which strongly suggests "replace all").

Notably, String.prototype.replaceAll behaves just like String.prototype.replace if searchValue is a global regular expression.

You can see a spec-compliant polyfill here.

In supported environments, the following snippet will log foo-bar-baz, without throwing an error:

const str = 'foo bar baz';
console.log(
  str.replaceAll(' ', '-')
);

0
4

Here's very simple solution. You can assign a new method to String object

String.prototype.replaceAll = function(search, replace){
   return this.replace(new RegExp(search, 'g'), replace)
}

var str = "Test abc test test abc test test test abc test test abc";
str = str.replaceAll('abc', '');

console.log(str) // -> Test  test test  test test test  test test
3
  • Assigning to the prototype of a global object is called prototype population and considered a pretty bad anti pattern. It is only acceptable for polyfills that implement the specified behavior of a function for old engines that don't support it yet. This implementation has different semantics than the spec. Consider 'hi'.replaceAll('.', 'x') // => 'xx' – Moritz Jul 28 '20 at 15:16
  • Thanks Moritz I think extending or modification of the prototypes of any objects, especially native ones is consider bad practice, but not to add new method If you have any source Please share – Iftikhar Hussain Jul 29 '20 at 16:38
  • 1
    Extending and "adding new methods" seems like the same thing to me. This is a problem because now there actually is a replaceAll method in the spec and it has different semantics which might break code, even in external dependencies. See: flaviocopes.com/javascript-why-not-modify-object-prototype – Moritz Jul 30 '20 at 17:24
3

If using a library is an option for you then you will get the benefits of the testing and community support that goes with a library function. For example, the string.js library has a replaceAll() function that does what you're looking for:

// Include a reference to the string.js library and call it (for example) S.
str = S(str).replaceAll('abc', '').s;
3

In string first element search and replace

var str = '[{"id":1,"name":"karthikeyan.a","type":"developer"}]'
var i = str.replace('"[','[').replace(']"',']');
console.log(i,'//first element search and replace')

In string global search and replace

var str = '[{"id":1,"name":"karthikeyan.a","type":"developer"}]'
var j = str.replace(/\"\[/g,'[').replace(/\]\"/g,']');
console.log(j,'//global search and replace')

3

For unique replaceable values

String.prototype.replaceAll = function(search_array, replacement_array) {
  //
  var target = this;
  //
  search_array.forEach(function(substr, index) {
    if (typeof replacement_array[index] != "undefined") {
      target = target.replace(new RegExp(substr, 'g'), replacement_array[index])
    }
  });
  //
  return target;
};

//  Use:
var replacedString = "This topic commented on :year. Talking :question.".replaceAll([':year', ':question'], ['2018', 'How to replace all occurrences of a string in JavaScript']);
//
console.log(replacedString);

3
  • Your code doesn't work if words share the same letters. Example : var test = "Groups_4_Questions_0__Options_0_Wording".replaceAll([4, 0, 0], [100, 200, 300]) – rak007 Apr 20 '18 at 13:19
  • Not meant for it. Only for unique replaceable values. – TheAivis Apr 20 '18 at 13:52
  • 1
    this is useless then in most case – rak007 Apr 20 '18 at 13:53
3
str = "Test abc test test abc test test test abc test test abc"

str.split(' ').join().replace(/abc/g,'').replace(/,/g, ' ')
3

In November 2019 a new feature is added to the JavaScript string.prototype.replaceAll().

Currently it's only supported with babel.JS, but maybe in the future it can be implemented in all the browsers. For more information, read here.

1
  • 5
    Wow, javascript is finally adding what Java 1.0 had in 1995. Great! – Click Upvote Dec 13 '19 at 15:59
2

This can be solved using regular expressions and the flag g, which means to not stop after finding the first match. Really, regular expressions are life savers!

function replaceAll(string, pattern, replacement) {
    return string.replace(new RegExp(pattern, "g"), replacement);
}

// or if you want myString.replaceAll("abc", "");

String.prototype.replaceAll = function(pattern, replacement) {
    return this.replace(new RegExp(pattern, "g"), replacement);
};
2

I just want to share my solution, based on some of the functional features of last versions of JavaScript:

   var str = "Test abc test test abc test test test abc test test abc";

   var result = str.split(' ').reduce((a, b) => {
      return b == 'abc' ? a : a + ' ' + b;   })

  console.warn(result)
2

This should work.

String.prototype.replaceAll = function (search, replacement) {
    var str1 = this.replace(search, replacement);
    var str2 = this;
    while(str1 != str2) {
        str2 = str1;
        str1 = str1.replace(search, replacement);
    }
    return str1;
}

Example:

Console.log("Steve is the best character in Minecraft".replaceAll("Steve", "Alex"));
3
  • @aabbccsmith: In what way? Can you elaborate? – Peter Mortensen Mar 8 '20 at 18:26
  • The edit certainly cleared it up. Regardless, loops on strings like this shouldn't be endorsed as they are rather slow and could cause major lag on the main thread in large scale applications where this is ran multiple times per second. – alistair Mar 9 '20 at 13:13
  • " loops on strings like this shouldn't be endorsed " it would be good if that programming language wasn't so crappy – Luiz Felipe May 6 '20 at 16:49
2

The best solution, in order to replace any character we use the indexOf(), includes(), and substring() functions to replace the matched string with the provided string in the current string.

  • The String.indexOf() function is to find the nth match index position.
  • The String.includes() method determines whether one string may be found within another string, returning true or false as appropriate.
  • String.substring() function is to get the parts of String(preceding,exceding). Add the replace String in-between these parts to generate final return String.

The following function allows to use any character.
where as RegExp will not allow some special character like ** and some characters need to be escaped, like $.

String.prototype.replaceAllMatches = function(obj) { // Obj format: { 'matchkey' : 'replaceStr' }
    var retStr = this;
    for (var x in obj) {
        //var matchArray = retStr.match(new RegExp(x, 'ig'));
        //for (var i = 0; i < matchArray.length; i++) {
        var prevIndex = retStr.indexOf(x); // matchkey = '*', replaceStr = '$*' While loop never ends.
        while (retStr.includes(x)) {
            retStr = retStr.replaceMatch(x, obj[x], 0);
            var replaceIndex = retStr.indexOf(x);
            if( replaceIndex <  prevIndex + (obj[x]).length) {
                break;
            } else {
                prevIndex = replaceIndex;
            }
        }
    }
    return retStr;
};
String.prototype.replaceMatch = function(matchkey, replaceStr, matchIndex) {
    var retStr = this, repeatedIndex = 0;
    //var matchArray = retStr.match(new RegExp(matchkey, 'ig'));
    //for (var x = 0; x < matchArray.length; x++) {
    for (var x = 0; (matchkey != null) && (retStr.indexOf(matchkey) > -1); x++) {
        if (repeatedIndex == 0 && x == 0) {
            repeatedIndex = retStr.indexOf(matchkey);
        } else { // matchIndex > 0
            repeatedIndex = retStr.indexOf(matchkey, repeatedIndex + 1);
        }
        if (x == matchIndex) {
            retStr = retStr.substring(0, repeatedIndex) + replaceStr + retStr.substring(repeatedIndex + (matchkey.length));
            matchkey = null; // To break the loop.
        }
    }
    return retStr;
};

We can also use the regular expression object for matching text with a pattern. The following are functions which will use the regular expression object.

You will get SyntaxError when you are using an invalid regular expression pattern like '**'.

  • The String.replace() function is used to replace the specified String with the given String.
  • The String.match() function is to find how many time the string is repeated.
  • The RegExp.prototype.test method executes a search for a match between a regular expression and a specified string. Returns true or false.
String.prototype.replaceAllRegexMatches = function(obj) { // Obj format: { 'matchkey' : 'replaceStr' }
    var retStr = this;
    for (var x in obj) {
        retStr = retStr.replace(new RegExp(x, 'ig'), obj[x]);
    }
    return retStr;
};

Note that regular expressions are written without quotes.


Examples to use the above functions:

var str = "yash yas $dfdas.**";
console.log('String: ', str);

// No need to escape any special character
console.log('Index matched replace: ', str.replaceMatch('as', '*', 2));
console.log('Index Matched replace: ', str.replaceMatch('y', '~', 1));
console.log('All Matched replace: ', str.replaceAllMatches({'as': '**', 'y':'Y', '$':'-'}));
console.log('All Matched replace : ', str.replaceAllMatches({'**': '~~', '$':'&$&', '&':'%', '~':'>'}));

// You need to escape some special Characters
console.log('REGEX all matched replace: ', str.replaceAllRegexMatches({'as' : '**', 'y':'Y', '\\$':'-'}));

Result:

String:  yash yas $dfdas.**
Index Matched replace:  yash yas $dfd*.**
Index Matched replace:  yash ~as $dfdas.**

All Matched replace:  Y**h Y** -dfd**.**
All Matched replace:  yash yas %$%dfdas.>>

REGEX All Matched replace:  Y**h Y** -dfd**.**

1
  • In your loop you are repeatedly replacing in a string. This creates a new string on each iteration of the loop which for long strings will cost a lot of performance. Regex already have support to do all replaces in one go which is much faster as it will use tricks to avoid creating multiple new strings. – David Mårtensson May 20 '20 at 10:12
2

This solution combines some previous answers and conforms somewhat better to the proposed August 2020 standard solution. This solution is still viable for me in September 2020, as String.replaceAll is not available in the node binary I am using.


RegExp.escape is a separate issue to deal with, but is important here because the official proposed solution will automatically escape string-based find input. This String.replaceAll polyfill would not without the RegExp.escape logic.

I have added an answer which doesn't polyfill RegExp.Escape, in the case that you don't want that.


If you pass a RegExp to find, you MUST include g as a flag. This polyfill won't provide a nice TypeError for you and will cause you a major bad time.

If you need exact standards conformance, for an application which is rigorously relying on the standard implementation, then I suggest using babel or some other tool to get you the 'right answer' every time instead of SO dot com. That way you won't have any surprises.


Code:

if (!Object.prototype.hasOwnProperty.call(RegExp, 'escape')) {
  RegExp.escape = function(string) {
    // https://developer.mozilla.org/en-US/docs/Web/JavaScript/Guide/Regular_Expressions#Escaping
    // https://github.com/benjamingr/RegExp.escape/issues/37
    return string.replace(/[.*+\-?^${}()|[\]\\]/g, '\\$&'); // $& means the whole matched string
  };
}

if (!Object.prototype.hasOwnProperty.call(String, 'replaceAll')) {
  String.prototype.replaceAll = function(find, replace) {
    // https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/replaceAll
    // If you pass a RegExp to 'find', you _MUST_ include 'g' as a flag.
    // TypeError: "replaceAll must be called with a global RegExp" not included, will silently cause significant errors. _MUST_ include 'g' as a flag for RegExp.
    // String parameters to 'find' do not require special handling.
    // Does not conform to "special replacement patterns" when "Specifying a string as a parameter" for replace
    // Does not conform to "Specifying a function as a parameter" for replace
    return this.replace(
          Object.prototype.toString.call(find) == '[object RegExp]' ?
            find :
            new RegExp(RegExp.escape(find), 'g'),
          replace
        );
  }
}

Code, Minified:

Object.prototype.hasOwnProperty.call(RegExp,"escape")||(RegExp.escape=function(e){return e.replace(/[.*+\-?^${}()|[\]\\]/g,"\\$&")}),Object.prototype.hasOwnProperty.call(String,"replaceAll")||(String.prototype.replaceAll=function(e,t){return this.replace("[object RegExp]"==Object.prototype.toString.call(e)?e:new RegExp(RegExp.escape(e),"g"),t)});

Example:

console.log(
  't*.STVAL'
    .replaceAll(
      new RegExp(RegExp.escape('T*.ST'), 'ig'),
      'TEST'
    )
);

console.log(
  't*.STVAL'
    .replaceAll(
      't*.ST',
      'TEST'
    );
);

Code without RegExp.Escape:

if (!Object.prototype.hasOwnProperty.call(String, 'replaceAll')) {
  String.prototype.replaceAll = function(find, replace) {
    // https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/String/replaceAll
    // If you pass a RegExp to 'find', you _MUST_ include 'g' as a flag.
    // TypeError: "replaceAll must be called with a global RegExp" not included, will silently cause significant errors. _MUST_ include 'g' as a flag for RegExp.
    // String parameters to 'find' do not require special handling.
    // Does not conform to "special replacement patterns" when "Specifying a string as a parameter" for replace
    // Does not conform to "Specifying a function as a parameter" for replace
    return this.replace(
          Object.prototype.toString.call(find) == '[object RegExp]' ?
            find :
            new RegExp(find.replace(/[.*+\-?^${}()|[\]\\]/g, '\\$&'), 'g'),
          replace
        );
  }
}

Code without RegExp.Escape, Minified:

Object.prototype.hasOwnProperty.call(String,"replaceAll")||(String.prototype.replaceAll=function(e,t){return this.replace("[object RegExp]"==Object.prototype.toString.call(e)?e:new RegExp(e.replace(/[.*+\-?^${}()|[\]\\]/g,"\\$&"),"g"),t)});

1
2

Use Split and Join

var str = "Test abc test test abc test test test abc test test abc";
var replaced_str = str.split('abc').join('');
console.log(replaced_str);

1

Try this:

String.prototype.replaceAll = function (sfind, sreplace) {
    var str = this;

    while (str.indexOf(sfind) > -1) {
        str = str.replace(sfind, sreplace);
    }

    return str;
};
2
1
 var myName = 'r//i//n//o//l////d';
  var myValidName = myName.replace(new RegExp('\//', 'g'), ''); > // rinold
  console.log(myValidName);

var myPetName = 'manidog';
var renameManiToJack = myPetName.replace(new RegExp('mani', 'g'), 'jack'); > // jackdog
1

You can do it without Regex, but you need to be careful if the replacement text contains the search text.

e.g.

replaceAll("nihIaohi", "hI", "hIcIaO", true)

So here is a proper variant of replaceAll, including string-prototype:

function replaceAll(str, find, newToken, ignoreCase)
{
    let i = -1;

    if (!str)
    {
        // Instead of throwing, act as COALESCE if find == null/empty and str == null
        if ((str == null) && (find == null))
            return newToken;

        return str;
    }

    if (!find) // sanity check 
        return str;

    ignoreCase = ignoreCase || false;
    find = ignoreCase ? find.toLowerCase() : find;

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

    return str;
}

Or, if you want to have a string-prototype function:

String.prototype.replaceAll = function (find, replace) {
    let str = this;

    let i = -1;

    if (!str)
    {
        // Instead of throwing, act as COALESCE if find == null/empty and str == null
        if ((str == null) && (find == null))
            return newToken;

        return str;
    }

    if (!find) // sanity check 
        return str;

    ignoreCase = ignoreCase || false;
    find = ignoreCase ? find.toLowerCase() : find;

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

    return str;
};

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