How do I parse a String value in Java to a char type?

I know how to do it to int and double (for example Integer.parseInt("123")), Is there a class for Strings and Chars?

  • There is the Character class – Sibbo Oct 21 '11 at 18:10
  • You want to parse a String into a char array? Please be more specific. – Zsombor Erdődy-Nagy Oct 21 '11 at 18:12
  • possible duplicate of How can I convert a String to a char array? – John Flatness Oct 21 '11 at 18:12
  • 1
    Yeah but I don't see any method in it that will help me change a String such as "a" to a char such as 'a' – Yokhen Oct 21 '11 at 18:13
  • 4
    I don't think it is a duplicate. I am trying to just convert a single letter. – Yokhen Oct 21 '11 at 18:14

14 Answers 14

up vote 261 down vote accepted

If your string contains exactly one character the simplest way to convert it to a character is probably to call the charAt method:

char c = s.charAt(0);

You can use the .charAt(int) function with Strings to retrieve the char value at any index. If you want to convert the String to a char array, try calling .toCharArray() on the String.

String g = "line";
char c = g.charAt(0);  // returns 'l'
char[] c_arr = g.toCharArray(); // returns a length 4 char array ['l','i','n','e']
  • Well, true, although I was seeking to convert a single character in a string, I guess that could work too. – Yokhen Oct 21 '11 at 18:16
  • broken link. upvote anyway – Nobody Oct 10 at 9:47

you can use this trick :

String s = "p";

char c = s.charAt(0);
  • But that will turn "123" into '1', is that what you're after? – aioobe Oct 21 '11 at 18:19
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    I didn't mean to specifically use "123". I was just using as an example. For char it would be a different example like "p" since a char is a single character, not multiple ones. – Yokhen Oct 21 '11 at 18:42
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    the toCharArray() function returns an array of chars in case you want to split your string into chars – Genjuro May 7 '13 at 8:27

If the string is 1 character long, just take that character. If the string is not 1 character long, it cannot be parsed into a character.

 String string = "This is Yasir Shabbir ";
 for(char ch : string.toCharArray()){

 }

or If you want individually then you can as

char ch = string.charAt(1);

org.apache.commons.lang.StringEscapeUtils.(un)EscapeJava methods are probaby what you want

Answer from brainzzy not mine :

https://stackoverflow.com/a/8736043/1130448

If you want to parse a String to a char, whereas the String object represent more than one character, you just simply use the following expression: char c = (char) Integer.parseInt(s). Where s equals the String you want to parse. Most people forget that char's represent a 16-bit number, and thus can be a part of any numerical expression :)

  • This is wrong. Parsing a string to a number means that the number was converted to a string, and we want to get the number back. Exactly the same way, parsing a character from a string means that the character was converted to a string, and we want the character back. Using an intermediate number is not what the OP asked about. – Vlad Dec 14 '15 at 14:38
  • @Vlad He did ask for a number, because that's what a char is, just like int and double. He even gave the example String "123". and who says you can't convert a char to a String with a length larger than one, and back? Try it yourself with char c = 123 : String.valueOf((int) c).equals("123") returns true. – Adam Martinu Dec 14 '15 at 18:12
  • Sorry, but everything boils down to the numbers, that's not the point of the question. You can have a look at the accepted answer, which clearly excludes an intermediate int. For your example, you needed to cast to int, which means that you are working not with the original char, but with an int, which happens to somehow correspond to the original char. – Vlad Dec 14 '15 at 18:23

The simplest way to convert a String to a char is using charAt():

String stringAns="hello";
char charAns=stringAns.charAt(0);//Gives You 'h'
char charAns=stringAns.charAt(1);//Gives You 'e'
char charAns=stringAns.charAt(2);//Gives You 'l'
char charAns=stringAns.charAt(3);//Gives You 'l'
char charAns=stringAns.charAt(4);//Gives You 'o'
char charAns=stringAns.charAt(5);//Gives You:: Exception in thread "main" java.lang.StringIndexOutOfBoundsException: String index out of range: 5

Here is a full script:

import java.util.Scanner;

class demo {
    String accNo,name,fatherName,motherName;
    int age;
    static double rate=0.25;
    static double balance=1000;
    Scanner scanString=new Scanner(System.in);
    Scanner scanNum=new Scanner(System.in);

    void input()
    {
        System.out.print("Account Number:");
        accNo=scanString.nextLine();
        System.out.print("Name:");
        name=scanString.nextLine();
        System.out.print("Father's Name:");
        fatherName=scanString.nextLine();
        System.out.print("Mother's Name:");
        motherName=scanString.nextLine();
        System.out.print("Age:");
        age=scanNum.nextInt();
        System.out.println();
    }

    void withdraw() {
        System.out.print("How Much:");
        double withdraw=scanNum.nextDouble();
        balance=balance-withdraw;
        if(balance<1000)
        {
            System.out.println("Invalid Data Entry\n Balance below Rs 1000 not allowed");
            System.exit(0);
        }       
    }

    void deposit() {
        System.out.print("How Much:");
        double deposit=scanNum.nextDouble();
        balance=balance+deposit;
    }

    void display() {
        System.out.println("Your  Balnce:Rs "+balance);
    }

    void oneYear() {
        System.out.println("After one year:");
        balance+=balance*rate*0.01;
    }

    public static void main(String args[]) {
        demo d1=new demo();
        d1.input();
        d1.display();
        while(true) {//Withdraw/Deposit
            System.out.println("Withdraw/Deposit Press W/D:");
            String reply1= ((d1.scanString.nextLine()).toLowerCase()).trim();
            char reply=reply1.charAt(0);
            if(reply=='w') {
                d1.withdraw();
            }
            else if(reply=='d') {
                d1.deposit();
            }
            else {
                System.out.println("Invalid Entry");
            }
            //More Manipulation 
            System.out.println("Want More Manipulations: Y/N:");
            String manipulation1= ((d1.scanString.nextLine()).toLowerCase()).trim();

            char manipulation=manipulation1.charAt(0);
            System.out.println(manipulation);

            if(manipulation=='y') { }
            else if(manipulation=='n') {
                break;
            }
            else {
                System.out.println("Invalid Entry");
                break;
            }
        }   

        d1.oneYear();
        d1.display();   
    }
}
import java.io.*;
class ss1 
{
    public static void main(String args[]) 
    {
        String a = new String("sample");
        System.out.println("Result: ");
        for(int i=0;i<a.length();i++)
        {
            System.out.println(a.charAt(i));
        }
    }
}
  • Please add some explenation to your answer. – André Kool May 8 '16 at 16:49

You can do the following:

String str = "abcd";
char arr[] = new char[len]; // len is the length of the array
arr = str.toCharArray();
  • You can shorten this to a oneliner String str = "abc"; char[] char_str = str.toCharArray(); – Abhyudaya Srinet Dec 3 '17 at 14:11

You can simply use the toCharArray() to convert a string to char array:

    Scanner s=new Scanner(System.in);
    System.out.print("Enter some String:");
    String str=s.nextLine();
    char a[]=str.toCharArray();

I may be a little late but I found this useful, understand cadena as String, and left column title as Convert to. :-)

UPDATE: So, I finally got back my password, I updated with copiable text so may others can just copy and paste like always, and for some others that can get indexation of the data (if it does). :-) Happy November Mustache.

Convertion Table

double  --> Double.parseDouble(String);
float   --> Float.parseFloat(String);
long    --> Long.parseLong(String);
int     --> Integer.parseInt(String);
char    --> StringGoesHere.parseFloat(int position);
short   --> Short.parseShort(String);
byte    --> Byte.parseByte(String);
boolean --> Boolean.parseBoolean(String);
  • 4
    Why thumbs down? This really answer the question, so as you can check how to parse in other types – Davide May 5 at 15:35
  • 2
    @Davide Probably because posts should't include the important information as image when it can be posted as text. Images can't be searched and copy/pasted, are often blocked and can't be read by users relying on screen readers. – Modus Tollens May 5 at 15:46
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    If you don't copy and paste you learn more :-) – Davide May 5 at 15:47
  • Please edit your post and show the actual text instead of screenshots. Others can't copy and paste from your images. See here for details. Thank you. – Pang Jun 12 at 2:29
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    I agree with @Davide question - "Why thumbs down?". I believe that this will make the user that got this not to contribute with stackoverflow in the future and I believe that this should not be the case. From my perspective "thumbs down" should not ever be used! It's negative in its essence and doesn't bring any value at all. – Marco Aug 28 at 10:45

An Essay way :

public class CharToInt{  
public static void main(String[] poo){  
String ss="toyota";
for(int i=0;i<ss.length();i++)
  {
     char c = ss.charAt(i); 
    // int a=c;  
     System.out.println(c); } } 
} 

For Output see this link: Click here

Thanks :-)

You can use the .charAt(int) function with Strings to retrieve the char value at any index. If you want to convert the String to a char array, try calling .toCharArray() on the String. If the string is 1 character long, just take that character by calling .charAt(0) (or .First() in C#).

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