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

var str = "hello world";

I need something like

str.replaceAt(0,"h");
share|improve this question
25  
Don't know why this was voted down, it's a legitimate question. –  Sasha Chedygov Sep 16 '09 at 5:33
5  
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 '13 at 19:43
    
@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 –  Paul Scheltema Nov 21 '13 at 14:46
    
@SashaChedygov Because SOME people over here have become quite over-zealous. –  finitenessofinfinity Apr 10 at 13:10

10 Answers 10

up vote 152 down vote accepted

In JavaScript, strings are immutable, which means the best you can do is 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, character) {
    return this.substr(0, index) + character + this.substr(index+character.length);
}

And use it like this:

str = str.replaceAt(3, "a");
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22  
Note that it's generally not a good idea to extend base JavaScript classes. Use a plain utility function instead. –  Ates Goral Sep 16 '09 at 5:40
44  
I must ask why? Prototype support is there for this purpose. –  Cem Kalyoncu Sep 16 '09 at 6:58
6  
@CemKalyoncu: It can make code play bad with other libraries. But I haven't ever been bitten by that myself. –  alex Jul 21 '11 at 4:53
3  
@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. –  Cem Kalyoncu Jul 21 '11 at 10:11
23  
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 '12 at 1:05

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.substr(0,index) + chr + str.substr(index+1);
}

<button onclick="Rep();">click</button>
share|improve this answer
    
Initial capitalization should be reserved for constructor methods as a convention in JavaScript. The function Rep should be renamed rep. –  janaspage Sep 2 at 0:31

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.substr(0, index) + 'x' + s.substr(index + 1);
share|improve this answer
    
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 '09 at 5:42
6  
@Ates: The replace function doesn't do an in-place replacement, it creates a new string and returns it. –  Guffa Sep 16 '09 at 5:55

Work with vectors is usually most effective to contact String.

I suggest the following function:

String.prototype.replaceAt=function(index, char) {
    var a = this.split("");
    a[index] = char;
    return a.join("");
}
share|improve this answer
4  
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 '11 at 8:30
1  
Useful if you need to change a lot of characters, and it is simple. –  Sheepy Aug 22 '12 at 2:02
4  
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. –  Cory Mawhorter May 9 '13 at 3:37
    
This is quite unoptimal. –  Radko Dinev Aug 25 at 7:09

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.

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1  
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 at 3:11
    
@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/…. –  OzrenTkalcecKrznaric Oct 30 at 9:22

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

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

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

share|improve this answer
str = str.split('');
str[3] = 'h';
str = str.join('');
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This works similar to Array.splice:

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

@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!"
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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.

share|improve this answer
10  
No go - that will replace every occurrence of the character at the position you specify. –  Nate Cook May 31 '11 at 16:48
    
Not actually. In fact it will replace the first occurrence of the character. Still wrong. –  Tomáš Zato Jan 5 at 20:03

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