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I'm trying to replace a character at a specific index in a string.

What I'm doing is:

String myName = "domanokz";
myName.charAt(4) = 'x';

This gives an error. Is there any method to do this?

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I realize this has been answered to death, but it's worth noting that it is never allowed to assign the result of a function call in java. There are no such things as the references of C(?) and C++. – ApproachingDarknessFish Apr 14 '13 at 0:11
@ValekHalfHeart in VB, you use parenthesis to access index of an array, that may be the reason why I'm confused when I was starting in Java :D – dpp Aug 13 '13 at 2:40

9 Answers 9

up vote 204 down vote accepted

String are immutable in Java. You can't change them.

You need to create a new string with the character replaced.

String myName = "domanokz";
String newName = myName.substring(0,4)+'x'+myName.substring(5);

Or you can use a StringBuilder:

StringBuilder myName = new StringBuilder("domanokz");
myName.setCharAt(4, 'x');

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Ah, you mean like the replace method which will not modify the string but will just return a new string? – dpp Aug 5 '11 at 6:39
That's kinda complicated Mr.Petar. Is that the best way you to do it? Ah, I heard of StringBuilder before, does that make any difference? Will it give me an easier method? – dpp Aug 5 '11 at 6:41
yes, StringBuilder is mutable – Petar Ivanov Aug 5 '11 at 6:43

Turn the String into a char[], replace the letter by index, then convert the array back into a String.

String myName = "domanokz";
char[] myNameChars = myName.toCharArray();
myNameChars[4] = 'x';
myName = String.valueOf(myNameChars);
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Really nice, Thanks – delive Oct 26 at 8:58

String is an immutable class in java any methods which seem to modify it always return a new string object with modification. if you want to manipulate a string consider StringBuilder or StringBuffer in case you require thread safety

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I agree with Petar Ivanov but it is best if we implement in following way:

public String replace(String str, int index, char replace){     
        return str;
    }else if(index<0 || index>=str.length()){
        return str;
    char[] chars = str.toCharArray();
    chars[index] = replace;
    return String.valueOf(chars);       
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and what makes your solution better? – dpp May 3 '12 at 1:43
Failing silently, because that is such a nice thing... – Luan Nico May 12 at 16:24

You can overwrite a string, as follows:

String myName = "halftime";
myName = myName.substring(0,4)+'x'+myName.substring(5);  

Note that the string myName occurs on both lines, and on both sides of the second line.

Therefore, even though strings may technically be immutable, in practice, you can treat them as editable by overwriting them.

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I haven't downvoted your answer but I must admit I have a problem with the term "overwrite" (though I think we agree on the concept behind). The object itself remains unchanged. You just make your variable reference another object. By the way it you be interesting to mention that you create at least four String instances in your example. – C.Champagne Oct 20 at 12:47

As previously answered here, String instances are immutable. StringBuffer and StringBuilder are mutable and suitable for such a purpose whether you need to be thread safe or not.

There is however a way to modify a String but I would never recommend it because it is unsafe, unreliable and it can can be considered as cheating : you can use reflection to modify the inner char array the String object contains. Reflection allows you to access fields and methods that are normally hidden in the current scope (private methods or fields from another class...).

public static void main(String[] args) {
    String text = "This is a test";
    try {
        //String.value is the array of char (char[])
        //that contains the text of the String
        Field valueField = String.class.getDeclaredField("value");
        //String.value is a private variable so it must be set as accessible 
        //to read and/or to modify its value
        //now we get the array the String instance is actually using
        char[] value = (char[])valueField.get(text);
        //The 13rd character is the "s" of the word "Test"
        //We display the string which should be "This is a text"
    } catch (NoSuchFieldException | SecurityException e) {
    } catch (IllegalArgumentException e) {
    } catch (IllegalAccessException e) {
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First thing I should have noticed is that charAt is a method and assigning value to it using equal sign won't do anything. If a string is immutable, charAt method, to make change to the string object must receive an argument containing the new character. Unfortunately, string is immutable. To modify the string, I needed to use StringBuilder as suggested by Mr. Petar Ivanov.

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just a little modification String myName = "domanokz"; String newName = myName.substring(0,4)+'x'+myName.substring(5); myName=newName;

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. – Davide Pastore Oct 20 at 12:10

this will work

   String myName="domanokz";
   String p=myName.replace(myName.charAt(4),'x');

Output : domaxokz

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yeah.. thanks.. – Diabolus Infernalis Aug 23 '12 at 16:37
although i strongly detest this method of being allowed "editability" of other's work on this StackOverFlow site. thoroughly unfair :/ – Diabolus Infernalis Aug 23 '12 at 16:39
Syntax error. And even if corrected, say I want to replace the first 'o' with 'x', the second 'o' will be replaced too. – dpp Sep 7 '12 at 4:46
This will replace all character which is same as charAt 4. – Shripad Bhat Aug 8 at 13:10

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