775

I have a string, let's say Hello world, and I need to replace the char at index 3. How can I replaced a char by specifying an index?

var str = "hello world";

I need something like

str.replaceAt(0,"h");
4
  • 258
    What's weird is that str[0] = 'x' doesn't seem to throw any errors, yet doesn't have the desired effect!
    – Michael
    Nov 15, 2013 at 19:43
  • 9
    @Michael with that you would get the index at 0, set it to 'x', that statement at itself would return the new value; 'x'. but all of it doesnt change the origional, so its perfectly valid, just not what you expected. its not a reference Nov 21, 2013 at 14:46
  • 18
    @Michael it does if "use strict" is activated: Uncaught TypeError: Cannot assign to read only property '0' of string 'hello world' (at least in webkit browsers)
    – Jan Turoň
    Oct 27, 2016 at 20:15
  • 9
    Javascript strings are immutable, they cannot be modified "in place" so you cannot modify a single character. in fact every occurence of the same string is ONE object. May 7, 2019 at 20:33

30 Answers 30

840

In JavaScript, strings are immutable, which means the best you can do is to create a new string with the changed content and assign the variable to point to it.

You'll need to define the replaceAt() function yourself:

String.prototype.replaceAt = function(index, replacement) {
    return this.substring(0, index) + replacement + this.substring(index + replacement.length);
}

And use it like this:

var hello = "Hello World";
alert(hello.replaceAt(2, "!!")); // He!!o World
23
  • 185
    Note that it's generally not a good idea to extend base JavaScript classes. Use a plain utility function instead.
    – Ates Goral
    Sep 16, 2009 at 5:40
  • 101
    I must ask why? Prototype support is there for this purpose. Sep 16, 2009 at 6:58
  • 42
    @CemKalyoncu: It can make code play bad with other libraries. But I haven't ever been bitten by that myself.
    – alex
    Jul 21, 2011 at 4:53
  • 9
    @alex: you are right about that, you really need to check if that function exists before doing it. But still even if it does, it should do exactly the same operation. Jul 21, 2011 at 10:11
  • 112
    I disagree, even if you detect whether the function exists a later library may still use/create a similar function -- 2 bad ideas making a worse one. In general, just never play around with other peoples code (include the core system). Create a new function.
    – martyman
    Jun 5, 2012 at 1:05
164

There is no replaceAt function in JavaScript. You can use the following code to replace any character in any string at specified position:

function rep() {
    var str = 'Hello World';
    str = setCharAt(str,4,'a');
    alert(str);
}

function setCharAt(str,index,chr) {
    if(index > str.length-1) return str;
    return str.substring(0,index) + chr + str.substring(index+1);
}
<button onclick="rep();">click</button>

4
  • I prefere this solution because you can replace a single character with it. The solution that has the most upvotes doesn't work if you want to replace only one character. It only works when replacing two characters! Also, substr should be replaced with substring as mentioned in many other comments.
    – gignu
    Jan 14, 2020 at 11:31
  • 1
    In my tests this method was quickest by far... and even faster if you don't need to verify that [index] isn't bigger than the string length. Modified: function setCharAt(str,idx,newChr){ return str.substring(0,idx)+newChr+str.substring(idx+1);}
    – ashleedawg
    Sep 10, 2020 at 7:09
  • 1
    @ScottTesler - This answer uses substring, not substr... and where in your link does it say that either function is "legacy" or should be avoided? ...substring and substr serve different purposes.
    – ashleedawg
    Sep 10, 2020 at 7:13
  • @ashleedawg It looks like it's no longer deprecated. Sep 11, 2020 at 20:46
124

You can't. Take the characters before and after the position and concat into a new string:

var s = "Hello world";
var index = 3;
s = s.substring(0, index) + 'x' + s.substring(index + 1);
3
  • Actually, yes, you can, but it would be an overkill. You could set up a regular expression to skip the first index - 1 characters and match the character at the index. You can use String.replace with that regular expression to do a direct, in-place replacement. But it's an overkill. So, in practice you can't. But in theory, you can.
    – Ates Goral
    Sep 16, 2009 at 5:42
  • 15
    @Ates: The replace function doesn't do an in-place replacement, it creates a new string and returns it.
    – Guffa
    Sep 16, 2009 at 5:55
  • 4
    MDN suggests to use String.prototype.substring over String.prototype.substr. Feb 10, 2019 at 11:55
81
str = str.split('');
str[3] = 'h';
str = str.join('');
8
  • 9
    Clear and simple, but currently won't work with emoji (such as 😀) when using split and join
    – Green
    Jun 26, 2016 at 10:15
  • 4
    With es6 I think that Array.from(str) might be a better option now, but I came here with that knowledge and learned something just as concise from you so thank you! Jun 23, 2018 at 3:23
  • 1
    @DavidKamer I'm late to the party, but it seems Array.from is significantly slower than str.split. blog.shovonhasan.com/…
    – Charles
    Oct 8, 2021 at 12:05
  • @Green if your string contains emojis it's probably a user input, hence I don't think there are obvious reasons to change a character in the string using this method, if you want to change a part in an input transformation scenario you should use replace method with regexp instead.
    – vdegenne
    Mar 24, 2022 at 10:47
  • 1
    @KadenSkinner It's an array, so you could str.splice(3, h.length, ...h.split('')) or str.splice.apply(str, [3, h.length].concat(h.split(''))) but this seems crazy compared to str.substring(0,3) + h + str.substring(5).
    – colllin
    Apr 7, 2022 at 18:27
37

There are lot of answers here, and all of them are based on two methods:

  • METHOD1: split the string using two substrings and stuff the character between them
  • METHOD2: convert the string to character array, replace one array member and join it

Personally, I would use these two methods in different cases. Let me explain.

@FabioPhms: Your method was the one I initially used and I was afraid that it is bad on string with lots of characters. However, question is what's a lot of characters? I tested it on 10 "lorem ipsum" paragraphs and it took a few milliseconds. Then I tested it on 10 times larger string - there was really no big difference. Hm.

@vsync, @Cory Mawhorter: Your comments are unambiguous; however, again, what is a large string? I agree that for 32...100kb performance should better and one should use substring-variant for this one operation of character replacement.

But what will happen if I have to make quite a few replacements?

I needed to perform my own tests to prove what is faster in that case. Let's say we have an algorithm that will manipulate a relatively short string that consists of 1000 characters. We expect that in average each character in that string will be replaced ~100 times. So, the code to test something like this is:

var str = "... {A LARGE STRING HERE} ...";

for(var i=0; i<100000; i++)
{
  var n = '' + Math.floor(Math.random() * 10);
  var p = Math.floor(Math.random() * 1000);
  // replace character *n* on position *p*
}

I created a fiddle for this, and it's here. There are two tests, TEST1 (substring) and TEST2 (array conversion).

Results:

  • TEST1: 195ms
  • TEST2: 6ms

It seems that array conversion beats substring by 2 orders of magnitude! So - what the hell happened here???

What actually happens is that all operations in TEST2 are done on array itself, using assignment expression like strarr2[p] = n. Assignment is really fast compared to substring on a large string, and its clear that it's going to win.

So, it's all about choosing the right tool for the job. Again.

10
  • 8
    Moved your test to jsperf, with vastly different results: jsperf.com/string-replace-character. It's all about choosing the right tool for the job ;)
    – colllin
    Oct 30, 2014 at 3:11
  • 1
    @colllin: I absolutely agree. So I almost literally cloned the tests from jsfiddle to jsperf. However, aside from using the right tool, you have to do it in the right way. Pay attention to the problem, we're talking about what will happen if we have to make quite a few replacements in an algorithm. The concrete example includes 10000 replacements. This means one test should include 10000 replacements. So, using jsperf, I got quite consistent results, see: jsperf.com/…. Oct 30, 2014 at 9:22
  • 1
    this is why i don't like javascript. such frequent, intuitive, obvious use cases aren't provisioned for. You'd think it would occur to the writers of javascript that people may want to substitute characters within strings, and that they'd decide to put in convenience methods into the language.
    – ahnbizcad
    Mar 26, 2015 at 4:43
  • 1
    @colllin did something different to OzrenTkalcecKrznaric. OzrenTkalcecKrznaric made the assumption that the string is static and and the split can be optimized before the runs. Which is not necessarily true. if you have to split at every run then the substring approach is about twice-4x faster on small strings, and only faster the bigger the string gets. In my opinion this makes the substring the better implementation for most use cases, barring large numbers of changes on a large static string.
    – WiR3D
    Mar 2, 2016 at 15:33
  • 4
    The problem is that on test2 the split and join are outside the for loop, where you compare single char replacement with a multiple one (unfair), the first method is faster for single replacements and the second one is better for chained replacements one after another Jul 22, 2016 at 11:40
35

EDIT: An elegant solution, though recommended only for small strings, is to work with arrays:

String.prototype.replaceAt=function(index, char) {
    var a = this.split("");
    a[index] = char;
    return a.join("");
}

Run this snippet:

String.prototype.replaceAt=function(index, char) {
    var a = this.split("");
    a[index] = char;
    return a.join("");
}

var str = "hello world";
str = str.replaceAt(3, "#");

document.write(str);

5
  • 11
    this is bad for large strings, no need to create an Array with crazy amount of cells if you can just use substr to cut it...
    – vsync
    Oct 24, 2011 at 8:30
  • 1
    Useful if you need to change a lot of characters, and it is simple.
    – Sheepy
    Aug 22, 2012 at 2:02
  • 7
    I created a test on jsperf: jsperf.com/replace-character-by-index -- Substr is way faster, and consistent from 32bytes up to 100kb. I upvoted this and as much as it hurts me to say, even though this feels nicer, substr is the better choice for strings of any size. May 9, 2013 at 3:37
  • This is quite unoptimal. Aug 25, 2014 at 7:09
  • This is a good quick solution if you know you are going to use small strings. If you are okay with extending the prototypes, then you could achieve similar behavior in 2 lines: Array.prototype.replace = function(index, val) { this[index] = val; return this; }; 'word'.split('').replace(1, '0').join(''); // returns 'w0rd' Mar 20, 2018 at 15:04
34

In Javascript strings are immutable so you have to do something like

var x = "Hello world"
x = x.substring(0, i) + 'h' + x.substring(i+1);

To replace the character in x at i with 'h'

21

function dothis() {
  var x = document.getElementById("x").value;
  var index = document.getElementById("index").value;
  var text = document.getElementById("text").value;
  var length = document.getElementById("length").value;
  var arr = x.split("");
  arr.splice(index, length, text);
  var result = arr.join("");
  document.getElementById('output').innerHTML = result;
  console.log(result);
}
dothis();
<input id="x" type="text" value="White Dog" placeholder="Enter Text" />
<input id="index" type="number" min="0"value="6" style="width:50px" placeholder="index" />
<input id="length" type="number" min="0"value="1" style="width:50px" placeholder="length" />
<input id="text" type="text" value="F" placeholder="New character" />
<br>
<button id="submit" onclick="dothis()">Run</button>
<p id="output"></p>

This method is good for small length strings but may be slow for larger text.

var x = "White Dog";
var arr = x.split(""); // ["W", "h", "i", "t", "e", " ", "D", "o", "g"]
arr.splice(6, 1, 'F');

/* 
  Here 6 is starting index and 1 is no. of array elements to remove and 
  final argument 'F' is the new character to be inserted. 
*/
var result = arr.join(""); // "White Fog"
5
  • 1
    Up voted because I found the extra description to be useful and the implementation simple and powerful. Thank you! :-D
    – Seth Eden
    Jun 24, 2020 at 21:55
  • 1
    Array.from might also be a good idea for string to array conversion
    – Valen
    Jul 25, 2020 at 9:51
  • Yes Array.from can also be used here. but Array.from was added in ES2015 and has no support in older browsers. Also, i personally prefer split function because it gives more freedom to play with the string patterns. Jul 26, 2020 at 17:42
  • 1
    If you want to replace just 1 character you can use arr[6]='F'; instead of .splice(). Feb 13, 2021 at 19:14
  • What you have suggested was already suggested by @fabio-phms in the answer above. i was just looking through another point of view where we have flexibility to replace one or more characters. Feb 14, 2021 at 21:00
18

One-liner using String.replace with callback (no emoji support):

// 0 - index to replace, 'f' - replacement string
'dog'.replace(/./g, (c, i) => i == 0? 'f': c)
// "fog"

Explained:

//String.replace will call the callback on each pattern match
//in this case - each character
'dog'.replace(/./g, function (character, index) {
   if (index == 0) //we want to replace the first character
     return 'f'
   return character //leaving other characters the same
})
1
  • 1
    beautifully simplistic - great option that doesn't force extending the prototype or creating new functions. Thank you! May 11, 2021 at 17:13
11

Generalizing Afanasii Kurakin's answer, we have:

function replaceAt(str, index, ch) {
    return str.replace(/./g, (c, i) => i == index ? ch : c);
}

let str = 'Hello World';
str = replaceAt(str, 1, 'u');
console.log(str); // Hullo World

Let's expand and explain both the regular expression and the replacer function:

function replaceAt(str, index, newChar) {
    function replacer(origChar, strIndex) {
        if (strIndex === index)
            return newChar;
        else
            return origChar;
    }
    return str.replace(/./g, replacer);
}

let str = 'Hello World';
str = replaceAt(str, 1, 'u');
console.log(str); // Hullo World

The regular expression . matches exactly one character. The g makes it match every character in a for loop. The replacer function is called given both the original character and the index of where that character is in the string. We make a simple if statement to determine if we're going to return either origChar or newChar.

6

var str = "hello world";
console.log(str);
var arr = [...str];
arr[0] = "H";
str = arr.join("");
console.log(str);

2
5

This works similar to Array.splice:

String.prototype.splice = function (i, j, str) {
    return this.substr(0, i) + str + this.substr(j, this.length);
};
5

You could try

var strArr = str.split("");

strArr[0] = 'h';

str = strArr.join("");
2
  • 1
    Not much explanation here. Could you explain how it works? Is "0" supposed to be the index that I want to change?
    – Seth Eden
    Jun 24, 2020 at 21:53
  • 1
    @SethEden Yes, "0" is supposed to be the index that you want to change.
    – Mehulkumar
    Jul 13, 2020 at 13:22
5

this is easily achievable with RegExp!

const str = 'Hello RegEx!';
const index = 11;
const replaceWith = 'p';

//'Hello RegEx!'.replace(/^(.{11})(.)/, `$1p`);
str.replace(new RegExp(`^(.{${ index }})(.)`), `$1${ replaceWith }`);

//< "Hello RegExp"
2
  • 1
    As far as contemporary JavaScript goes, in 2022, this is by far the best answer.
    – JΛYDΞV
    Jun 30, 2022 at 4:24
  • 2
    For the record, lookbehind can be used to avoid capturing groups. Haven't checked performance implications of this approach (which could be a big concern), but it leads to overall simplification: str.replace(new RegExp(`(?<=^.{${index}}).`), replaceWith) Dec 10, 2022 at 4:09
5

Using the spread syntax, you may convert the string to an array, assign the character at the given position, and convert back to a string:

const str = "hello world";

function replaceAt(s, i, c) {
  const arr = [...s];  // Convert string to array
  arr[i] = c;          // Set char c at pos i
  return arr.join(''); // Back to string
}

// prints "hallo world"
console.log(replaceAt(str, 1, 'a'));

1
  • I would be careful in putting this into a function like this. Because inevitably someone will run the function inside a loop. Which in this case will be terribly suboptimal compared to if they had to simply write the "convert to array" and "join" themselves, when they needed it. Then they'd naturally put it outside the loop.
    – Magne
    Apr 29, 2022 at 7:59
5

You could try

var strArr = str.split("");

strArr[0] = 'h';

str = strArr.join("");

Check out this function for printing steps

steps(3)
//       '#  '
//       '## '
//       '###'

function steps(n, i = 0, arr = Array(n).fill(' ').join('')) {
  if (i === n) {
    return;
  }

  str = arr.split('');
  str[i] = '#';
  str = str.join('');
  console.log(str);

  steps(n, (i = i + 1), str);
}

4

@CemKalyoncu: Thanks for the great answer!

I also adapted it slightly to make it more like the Array.splice method (and took @Ates' note into consideration):

spliceString=function(string, index, numToDelete, char) {
      return string.substr(0, index) + char + string.substr(index+numToDelete);
   }

var myString="hello world!";
spliceString(myString,myString.lastIndexOf('l'),2,'mhole'); // "hello wormhole!"
1
  • Not sure why this was voted down. It's a legit answer. It works as indicated. And it's consistent with Array.splice type functionality.
    – Scrimothy
    May 18, 2015 at 14:40
3

If you want to replace characters in string, you should create mutable strings. These are essentially character arrays. You could create a factory:

  function MutableString(str) {
    var result = str.split("");
    result.toString = function() {
      return this.join("");
    }
    return result;
  }

Then you can access the characters and the whole array converts to string when used as string:

  var x = MutableString("Hello");
  x[0] = "B"; // yes, we can alter the character
  x.push("!"); // good performance: no new string is created
  var y = "Hi, "+x; // converted to string: "Hi, Bello!"
3

You can extend the string type to include the inset method:

String.prototype.append = function (index,value) {
  return this.slice(0,index) + value + this.slice(index);
};

var s = "New string";
alert(s.append(4,"complete "));

Then you can call the function:

2

You can concatenate using sub-string function at first select text before targeted index and after targeted index then concatenate with your potential char or string. This one is better

const myString = "Hello world";
const index = 3;
const stringBeforeIndex = myString.substring(0, index);
const stringAfterIndex = myString.substring(index + 1);
const replaceChar = "X";
myString = stringBeforeIndex + replaceChar + stringAfterIndex;
console.log("New string - ", myString)

or

const myString = "Hello world";
let index = 3;
myString =  myString.substring(0, index) + "X" + myString.substring(index + 1);
2

My safe approach with negative indexes:

/**
 * @param {string} str
 * @param {number} index
 * @param {string} replacement
 * @returns {string}
 */
function replaceAt(str, index, replacement) {
  if (index < 0) index = str.length + index;
  if (index < 0 || index >= str.length)
    throw new Error(`Index (${index}) out of bounds "${str}"`);
  return str.substring(0, index) + replacement + str.substring(index + 1);
}

Use it like this:

replaceAt('my string', -1, 'G') // 'my strinG'
replaceAt('my string', 2, 'yy') // 'myyystring'
replaceAt('my string', 22, 'yy') // Uncaught Error: Index (22) out of bounds "my string"
1

I did a function that does something similar to what you ask, it checks if a character in string is in an array of not allowed characters if it is it replaces it with ''

    var validate = function(value){
        var notAllowed = [";","_",">","<","'","%","$","&","/","|",":","=","*"];
        for(var i=0; i<value.length; i++){
            if(notAllowed.indexOf(value.charAt(i)) > -1){
               value = value.replace(value.charAt(i), "");
               value = validate(value);
            }
       }
      return value;
   }
1

Here is a version I came up with if you want to style words or individual characters at their index in react/javascript.

replaceAt( yourArrayOfIndexes, yourString/orArrayOfStrings ) 

Working example: https://codesandbox.io/s/ov7zxp9mjq

function replaceAt(indexArray, [...string]) {
    const replaceValue = i => string[i] = <b>{string[i]}</b>;
    indexArray.forEach(replaceValue);
    return string;
}

And here is another alternate method

function replaceAt(indexArray, [...string]) {
    const startTag = '<b>';
    const endTag = '</b>';
    const tagLetter = i => string.splice(i, 1, startTag + string[i] + endTag);
    indexArray.forEach(tagLetter);
    return string.join('');
}

And another...

function replaceAt(indexArray, [...string]) {
    for (let i = 0; i < indexArray.length; i++) {
        string = Object.assign(string, {
          [indexArray[i]]: <b>{string[indexArray[i]]}</b>
        });
    }
    return string;
}
1

Here is my solution using the ternary and map operator. More readable, maintainable end easier to understand if you ask me.

It is more into es6 and best practices.

function replaceAt() {
  const replaceAt = document.getElementById('replaceAt').value;

  const str = 'ThisIsATestStringToReplaceCharAtSomePosition';
  const newStr = Array.from(str).map((character, charIndex) => charIndex === (replaceAt - 1) ? '' : character).join('');

  console.log(`New string: ${newStr}`);
}
<input type="number" id="replaceAt" min="1" max="44" oninput="replaceAt()"/>

0
0

Lets say you want to replace Kth index (0-based index) with 'Z'. You could use Regex to do this.

var re = var re = new RegExp("((.){" + K + "})((.){1})")
str.replace(re, "$1A$`");
3
  • Any idea why is this tagged not useful?
    – ksp
    Mar 17, 2017 at 21:05
  • 1
    I haven't checked if this regex works, but maybe it's downvoted because it's probably a lot faster to create a new string, than compiling a state machine (regular expression), which is very expensive. Apr 8, 2017 at 15:29
  • This answer also has errors, it has a syntax error where var re = var re and it has a semantic error, where it uses without $` any need
    – flen
    Jul 27, 2023 at 6:02
0

You can use the following function to replace Character or String at a particular position of a String. To replace all the following match cases use String.prototype.replaceAllMatches() function.

String.prototype.replaceMatch = function(matchkey, replaceStr, matchIndex) {
    var retStr = this, repeatedIndex = 0;
    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;
};

Test:

var str = "yash yas $dfdas.**";

console.log('Index Matched replace : ', str.replaceMatch('as', '*', 2) );
console.log('Index Matched replace : ', str.replaceMatch('y', '~', 1) );

Output:

Index Matched replace :  yash yas $dfd*.**
Index Matched replace :  yash ~as $dfdas.**
0
0

I se this to make a string proper case, that is, the first letter is Upper Case and all the rest are lower case:

function toProperCase(someString){
    
    return someString.charAt(0).toUpperCase().concat(someString.toLowerCase().substring(1,someString.length));
    
};

This first thing done is to ensure ALL the string is lower case - someString.toLowerCase()

then it converts the very first character to upper case -someString.charAt(0).toUpperCase()

then it takes a substring of the remaining string less the first character -someString.toLowerCase().substring(1,someString.length))

then it concatenates the two and returns the new string -someString.charAt(0).toUpperCase().concat(someString.toLowerCase().substring(1,someString.length))

New parameters could be added for the replacement character index and the replacement character, then two substrings formed and the indexed character replaced then concatenated in much the same way.

1
  • To achieve 'proper case', would it be less complicated to make the whole string lower case, then capitalize the first character? You wouldn't have to deal with a substring then.
    – Jeter-work
    Apr 11, 2023 at 14:38
-1

The solution does not work for negative index so I add a patch to it.

String.prototype.replaceAt=function(index, character) {
    if(index>-1) return this.substr(0, index) + character + this.substr(index+character.length);
    else return this.substr(0, this.length+index) + character + this.substr(index+character.length);
    
}
-3
"hello world".replace(/(.{3})./, "$1h")
// 'helho world'
0
-4

The methods on here are complicated. I would do it this way:

var myString = "this is my string";
myString = myString.replace(myString.charAt(number goes here), "insert replacement here");

This is as simple as it gets.

2
  • 8
    Not actually. In fact it will replace the first occurrence of the character. Still wrong. Jan 5, 2014 at 20:03
  • Is so incorrect that it becomes funny haha Jan 17, 2023 at 12:45

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