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.

Here is my code:

import java.util.Scanner;

public class empMod

{
public static void main(String[] args)
    {
    int choice;

    Scanner input = new Scanner(System.in);

    do
        {
        choice = -1;
        System.out.println("Employee Data:");
        System.out.println("1. - Employee Name:");
        System.out.println("2. - Employee Hire Date:");
        System.out.println("3. - Employee Address:");
        System.out.println("4. - Employee Number:");
        System.out.println("5. - Exit");

        choice = input.nextInt();
        input.nextLine();

        switch (choice)
            {
            case 1:

            String empName = new String ();
            System.out.println("Enter the name of the employee:");
            String name = input.nextLine();
            break;

            case 2:

            String empDate = new String ();
            System.out.println("Enter the hire date of the employee:");
            String date = input.nextLine();
            break;

            case 3:

            String empAddress = new String ();
            System.out.println("Enter the address of the employee:");
            String address = input.nextLine();
            break;

            case 4:

            String empNumb = new String ();
            System.out.println("Enter the Employee number:");
            int number = input.nextInt();
            break;

            case 5:

            System.out.print("\n");
            System.out.println("The name of the employee is: " + empName); // <-- This is the line where the error occurs.
            break;

            default:
            continue;
            }

        }
    while (choice != 6);
    } 
}

The intent of the program is to have the user input information about the employee, and then at request, have the information displayed. When I go to compile the program, I get the following error:

empMod.java:57: error: variable empName might not have been initialized
                                System.out.println("The name of the employee is:
 " + empName);

     ^

The string variable is initialized in another case though, so I am not sure of the problem.

share|improve this question
    
@SotiriosDelimanolis So, if I have the code print out the information outside of the switch statement, will that work? –  Boxasauras Aug 31 '13 at 16:15

3 Answers 3

switch (choice) and cases later means, that according to value in switch (choice) one of case will be choosen. If it will be 5, your variable will not be initialized.

you need to initialize empName before switch, of in every case in whitch it's used.

And you should not use String empName = new String (); but String empName = "";- it will use String Pool.

share|improve this answer
    
So, if I have the code print out the information outside of the switch statement, will that work? –  Boxasauras Aug 31 '13 at 16:16

The empName variable is only initialized in the case 1 section. So what would happen if this block was never executed, and the case 5 section was? What would be printed, since the variable has never been initialized to anything?

Add

String empName = "";

before the loop.

share|improve this answer

A switch block contains a scope. Variables declared in that scope can only be used there. Think of the switch as multiple if-elses. If the if (the case) that initializes you variable doesn't get executed, then you are left with an uninitialized variable. That's what the compiler is complaining about.

In

case 5:
    System.out.print("\n");
    System.out.println("The name of the employee is: " + empName); // <-- This is the line where the error occurs.
    break;

empName is only initialized if execution flowed through all the cases (ie. choice had value 1 and your cases did not have breaks). But the compiler cannot be sure of this.

The way to fix this is to declare your empName variable outside the switch block so that its scope is method scope and not limited to inside the switch. You would need to initialize it to some default value so that the compiler knows that it is initialized.

String empName = "Not a Name";
share|improve this answer
    
It's not really a matter of scope. The variable is visible from the case 5 section, because it's in the same block as the case 1 section. But there is no guarantee it has been initialized. –  JB Nizet Aug 31 '13 at 16:19
    
@JBNizet Sure. It won't be initialized for certain because execution might not have passed through all cases. –  Sotirios Delimanolis Aug 31 '13 at 16:20

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.