0

I am new to Java and I wanted to know how do you check if a a user has typed in only letters for his/hers name. If they have not then ask them for their name again.

System.out.print("Welcome - What is your family's surname? ");
familySurname = keyboard.nextLine();
while (familySurname.isEmpty())  
{
    System.out.print("Invalid name - What is your family's surname? ");
    familySurname = keyboard.nextLine();
    if (familySurname.matches("[a-zA-Z]"))
    {
        System.out.println("Invalid Input.");
    }
}

This is the code I have so far, but it's still accepting numbers.

0
4

Your loop condition should be :

 while (!familySurname.matches("[a-zA-Z]+")){
     System.out.print("Invalid name - What is your family's surname? ");
     familySurname = keyboard.nextLine();
 }
0
1
if (!familySurname.matches("[a-zA-Z]+")) // need ! and +
1

Or for speed-

public static boolean isAlpha(final String value) {

    if(value == null || value.isEmpty()){
        return false;
    }

    char[] chars = value.toCharArray();

    for (char c : chars) {
        if(!Character.isLetter(c)) {
            return false;
        }
    }

    return true;
}

And your snippet can be modified to-

while (!isAlpha(familySurname)){

    System.out.print("Invalid name - What is your family's surname? ");
    familySurname = keyboard.nextLine();

}
0
System.out.print("Welcome - What is your family's surname? ");
    familySurname = keyboard.nextLine();
    while (familySurname.isEmpty())  
    {
        System.out.print("Invalid name - What is your family's surname? ");
        familySurname = keyboard.nextLine();
        if (!familySurname.isLetter(source.charAt(i)))
        return "";
    }
0

Don't you want to capture and trim it?

System.out.print("Welcome - What is your family's surname? ");
String familySurname = "";
while (familySurname.length() == 0) { // while we don't have a surname.
  if (keyboard.hasNextLine()) { // check that there is a line of input.
    familySurname = keyboard.nextLine().trim(); // get the line and trim() it.
    for (char c : familySurname.toCharArray()) {
      if (!Character.isLetter(c)) { // Test for not a letter.
        System.out.print("Invalid name - What is your family's surname? ");
        familySurname = "";
        break;
      }
    }
  }
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.