Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have two problems. First, I have created an exception handling in this first part of my code, the try again concept.

do {
    try {
        if(exitType.length()==1){
            char exitChar = exitType.charAt(0);
            exit = exitChar;
            if (exit == 'Y' || exit == 'y' || exit == 'N' || exit == 'n') {
                x = 1; 
            } else {
                throw new StringException("Invalid letter...\n");
            }
        } else {
            throw new StringException("Invalid input a string...\n");
        } 
    } catch(StringException i) {
        System.out.println("-------------------------------------------");
        System.out.print("You typed: " + exitType + i);
        System.out.println("-------------------------------------------");

        System.out.println("Try again? (y/n): ");
        exitType = input.next();
        x = 0;
    }

The output when the user enters a letter besides y/n, would be:

Try again? (y/n): w
-------------------------------------------
You typed: wStringException: Invalid letter...
-------------------------------------------

First question: How do I put the StringException: Invalid letter... on the next line so it's not beside the 'w' (just for clarity and neatness of output). Hope you get me.

By the way, I have created my own exception:

public class StringException extends Exception {
    public StringException(String message) {
        super(message);
    }   
}

Second, I cannot figure out how to add exception handling in this part where the user is asked to enter the letter of choice:

public static void operation() {
    Scanner input = new Scanner(System.in);
    String choiceString = "";
    char choice = 'a';
    System.out.print("Enter letter of choice: ");
    choiceString = input.next();
    if (choiceString.length() == 1) {
        choice = choiceString.charAt(0);
        System.out.println("-------------------------------------------");

        switch(choice) {
            case 'a': {
                try {
                    System.out.print("Enter width: ");
                    double width = input.nextDouble();
                    System.out.print("Enter height: ");
                    double height = input.nextDouble();
                    System.out.print("What is the color of the shape? ");
                    String color = input.next();
                    System.out.println("-------------------------------------------");
                    Shape cia;
                    Shape rec = new Rectangle(color, width, height);
                    cia = rec;
                    System.out.println(rec);
                    Rectangle r = new Rectangle(color, width, height);
                    r.print();
                } catch(InputMismatchException i) {
                    System.out.println("InputMismatchException caught");
                }
                break;  
            }
            case 'b': {
            //**** 
            }
            case 'c': {
            //****
            }
            default:
                System.out.println("Invalid choice...");
        }
    } else {
        System.out.println("Invalid input...");
    }

I only need to know where I should place the try-catch block only on the part where it prompts about the letter of choice.

share|improve this question
    
Please add a tag to your question to specify the programming language. That will help you to attract the attention of people who can help. –  DOK Jan 11 '13 at 13:19
    
You shouldn't use exception as a control flow statement. Catch the error, and use if and while statements to control the program flow. –  Patrick Jan 11 '13 at 13:36
    
Don't change your question like that. If you have a new question you can post it separately. An objetive of the site is to generate information not just for you but for future searches by other people. –  madth3 Jan 11 '13 at 20:01

2 Answers 2

First question: How do I put the StringException: Invalid letter... on the next line so it's not beside the 'w'

Change

System.out.println("You typed: " + exitType);
System.out.println(" ");
System.out.println(i);

to

System.out.println("You typed: " + exitType + i);

println adds a newline after printing what is in the argument (which is different from print)

Second, I cannot figure out how to add exception handling in this part where the user is asked to enter the letter of choice:

You can add it in the default case or, better, in the else

else {
        throw new ...
    }
share|improve this answer
    
Your answer to the first question is wrong. exitType is the "w", and i is the exception text. –  Doorknob Jan 11 '13 at 13:25

First question: in your catch you have

System.out.print("You typed: " + exitType + i);

just change to

System.out.print("You typed: " + exitType + "\n" + i);

\n is an escaping code which acts as a new line. For sake of completeness, you should actually use \n\r for system compatibility

I didn't really get the second question, isn't it enough if you place your try/catch around choiceString = input.next();? It also depends how you want to manage the exception after you catch it.

share|improve this answer
    
There is another way to get line separator: System.getProperty("line.separator") –  tcb Jan 11 '13 at 20:14

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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