4
public String getIDdigits()
    {
        String idDigits = IDnum.charAt(0) + IDnum.charAt(IDnum.length() - 1) + "";
        return idDigits;
    }

In this simple method, where IDnum is a 13 digit string consisting of numbers and is a class variable, the given output is never what I expect. For an ID number such as 1234567891234, I would expect to see 14 in the output, but The output is always a three-digit number such as 101. No matter what ID number I use, it always is a 3 digit number starting with 10. I thought the use of empty quotation marks would avoid the issue of taking the Ascii values, but I seem to still be going wrong. Please can someone explain how charAt() works in this sense?

3 Answers 3

5

You are taking a char type from a String and then using the + operator, which in this case behaves by adding the ASCII numerical values together.

For example, taking the char '1', and then the char '4' in your code

IDnum.charAt(0) + IDnum.charAt(IDnum.length() - 1)

The compiler is interpreting this as its ASCII decimal equivalents and adding those

49 + 52 = 101

Thats where your 3 digit number comes from.

Eradicate this with converting them back to string before concatenating them...

String.valueOf(<char>);

or

"" + IDnum.charAt(0) + IDnum.charAt(IDnum.length() - 1)
5

Try this.

public String getIDdigits()
    {
        String idDigits = "" + IDnum.charAt(0) + IDnum.charAt(IDnum.length() - 1);
        return idDigits;
    }

When you first adding a empty it's add char like String if you put it in end it first add in number mode(ASCII) and then convert will converts that to String.

0
3

You have to be more explicit about the string concatenation and so solve your statement like this :

String idDigits = "" + IDnum.charAt(0) + IDnum.charAt(IDnum.length() - 1);

The result of adding Java chars, shorts, or bytes is an int:

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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