I have an int int the range 0-255, and I want to create a String (of length 1) so that the ASCII value of this single character is the specified integer.

Is there a simple way to do this in Java ?

example:

65  -> "A"
102 -> "f"
  • 3
    this is not a duplicate as mentioned above. This is not conversion from integer but from char (ascii) – Chathuranga Chandrasekara Oct 8 '11 at 0:32
  • 10
    Not a duplicate of "How to convert from int to String?"... anyway, FWIW, ASCII is only 7-bits with values [0, 127] ;-) – user166390 Oct 8 '11 at 0:33
  • @phooji I think that that post sais how to convert 1->"1" etc' – Belgi Oct 8 '11 at 0:35
  • 1
    @pst - it's extended ASII ;-) – Belgi Oct 8 '11 at 0:36
  • 3
    @Belgi - you'll need to explicitly state your encoding if you want to correctly transcode values 128-255. The term "extended ASCII" is not meaningful. – McDowell Oct 8 '11 at 9:45

10 Answers 10

up vote 193 down vote accepted

Character.toString ((char) i);

  • For MIDP 2 / CLDC 1.1 based platforms (which don't have Character.toString(char), stackoverflow.com/a/6210938/923560 provides additional solutions. – Abdull Sep 22 '14 at 12:07
  • What is the reason for the (char) designation? In other words, why can't I just put Character.toString(i); ? (Java noob) – Adam Hughes Oct 9 '15 at 14:19
  • because Character.toString doesn't accept ints – behelit Apr 13 '16 at 5:10
  • Note that this will not work for the Integer type, you will get a "java.lang.Integer cannot be cast to java.lang.Character" error. Add a cast to int first, e.g.: Character.toString((char)(int)myInteger); – gbmhunter Jun 7 '16 at 4:00
  • The i values (0-255) would be from the ISO-8859-1 character set. (The question asker declined to identify which "extended ASCII" [vague term] was wanted, except by accepting this answer.) – Tom Blodget Nov 3 '17 at 13:30

System.out.println((char)65); would print "A"

  • REPL tip: If you happen to be using JShell (Java 9) you can omit the System.out. Just type (char) 65 to find out what character it is. – DavidS Jan 23 at 23:55

String.valueOf(Character.toChars(int))

Assuming the integer is, as you say, between 0 and 255, you'll get an array with a single character back from Character.toChars, which will become a single-character string when passed to String.valueOf.

Using Character.toChars is preferable to methods involving a cast from int to char (i.e. (char) i) for a number of reasons, including that Character.toChars will throw an IllegalArgumentException if you fail to properly validate the integer while the cast will swallow the error (per the narrowing primitive conversions specification), potentially giving an output other than what you intended.

  • Assuming that the integer is in the range 0 to 255 (as you state that you do ... and as the question specifies), it is unnecessary and suboptimal to use toChars. – Stephen C Oct 8 '11 at 0:51
  • 5
    You're completely correct that something like Character.toString((char) i) is faster than String.valueOf(Character.toChars(i)). Running a quick benchmark of converting 1,000,000 random integers in the given range (100 times, to be safe) on my machine gives an average time of 153.07 nanoseconds vs. 862.39 nanoseconds. However, in any interesting application, there will be far more important things to optimize. The added value of the safe, deterministic handling and ease of expanding outside the [0,255] range should it be required outweighs the minor performance hit. – zjs Oct 8 '11 at 2:26
int number = 65;
char c = (char)number;

it is a simple solution

new String(new char[] { 65 }))

You will end up with a string of length one, whose single character has the (ASCII) code 65. In Java chars are numeric data types.

One can iterate from a to z like this

int asciiForLowerA = 97;
int asciiForLowerZ = 122;
for(int asciiCode = asciiForLowerA; asciiCode <= asciiForLowerZ; asciiCode++){
    search(sCurrentLine, searchKey + Character.toString ((char) asciiCode));
}

An easier way of doing the same:

Type cast integer to character, let int n be the integer, then:

Char c=(char)n;
System.out.print(c)//char c will store the converted value.
    for (int i = 0; i < 256; i++) {
        System.out.println(i + " -> " + (char) i);
    }

    char lowercase = 'f';
    int offset = (int) 'a' - (int) 'A';
    char uppercase = (char) ((int) lowercase - offset);
    System.out.println("The uppercase letter is " + uppercase);

    String numberString = JOptionPane.showInputDialog(null,
            "Enter an ASCII code:",
            "ASCII conversion", JOptionPane.QUESTION_MESSAGE);

    int code = (int) numberString.charAt(0);
    System.out.println("The character for ASCII code "
            + code + " is " + (char) code);
  • Explain your answer please – want2learn Nov 2 '17 at 16:57

This is an example, which shows that by converting an int to char, one can determine the corresponding character to an ASCII code.

public class sample6
{
    public static void main(String... asf)
    {

        for(int i =0; i<256; i++)
        {
            System.out.println( i + ". " + (char)i);
        }
    }
}

upper answer only near solving the Problem. heres your answer:

Integer.decode(Character.toString(char c));

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