im new to java and am writing a program that will let you input your first and last name and will give you your initials, but i want the intitials to always be in upper case.

I get a "char cannot be dereferenced" error whenever i run the code.

    import java.util.*;

    public class InitialHere
    {
        public static void main (String[] args)
        {
            Scanner getInput = new Scanner (System.in);
            String firstName;
            String lastName;
            char firstInitial;
            char lastInitial;

            System.out.println("What is your first name?");
            System.out.println();
            firstName = getInput.nextLine();
            System.out.println();
            System.out.println("Thankyou, what is your last name?");
            System.out.println();
            lastName = getInput.nextLine();

            firstInitial = firstName.charAt(0);
            lastInitial = lastName.charAt(0);
            firstInitial = firstInitial.toUpperCase();
            lastInitial = lastInitial.toUpperCase();

            System.out.println();
            System.out.println("Your initials are " + firstInitial + "" + lastInitial + ".");

        }
    }
  • 1
    What makes you think that there is a toUpperCase method on a char? Or in fact any methods at all? – Boris the Spider Sep 28 '14 at 15:13
up vote 4 down vote accepted

In Java, primitives have no methods, only their boxed types do. If you want to get the uppercase version of a char, the Character class has a method just for that: Character.toUpperCase:

 firstInitial = Character.toUpperCase(firstInitial);

(Do the same for lastInitial)

  • Very helpful, thankyou. I decided to just turn the string last and first Name to all uppercase. I dont want to run before i can crawl. – user4076858 Sep 28 '14 at 15:28

firstInitial is of type char which has no method toUpperCase. (Being a primitive, it has no methods at all.) Call toUpperCase on the original String instead.

Update (see comments): The documentation of Character.toUpperCase says:

In general, String.toUpperCase() should be used to map characters to uppercase. String case mapping methods have several benefits over Character case mapping methods. String case mapping methods can perform locale-sensitive mappings, context-sensitive mappings, and 1:M character mappings, whereas the Character case mapping methods cannot.

Therefore, the most robust approach would be to use

String firstName = firstName.trim();  // ignore leading white space
final String firstInitial = firstName.substring(0, firstName.offsetByCodePoints(0, 1)).toUpperCase();
  • 2
    Not quite right, the OP needs to call Character.toUpperCase. – Boris the Spider Sep 28 '14 at 15:15
  • Why would that be “more correct”? There could be a problem if the name starts with a character that has an uppercase representation worth more than one character. But in this case, the most robust approach would be to convert the extracted first character into a string and then call toUpperCase on that string. – 5gon12eder Sep 28 '14 at 15:20

Another solution:

firstInitial = (char) (firstInitial >= 97 && firstInitial <= 122 ? firstInitial - 32 : firstInitial);
lastInitial = (char) (lastInitial >= 97 && lastInitial <= 122 ? lastInitial - 32 : lastInitial);
  • That seems extremely complicated, and too be honest i don't think it even works :P – user4076858 Sep 28 '14 at 15:27
  • @Dylex It definitely works. The char between 97 and 122 represents a to z, while the one between 65 to 90 is A to Z. So just minus 32 to get the upper-case character. – Jiang Sep 28 '14 at 15:34
  • It works if ASCII characters is all that concerns you. – 5gon12eder Sep 28 '14 at 15:36

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