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This program is correct and does compile and run. But why does method 'a' not have a throws declaration?

class Exception1 {
      public void a() 
        {
            int array[] = new int[5];
            try
            {
                System.out.println("Try");
                array[10]=1;
            }
            catch (Exception e)
            {
               System.out.println("Exception");

                throw e;
            }
            finally
            {
                System.out.println("Finally");
                return;
            }
        }
    public static void main(String[] args) 
        {
            Exception1 e1 = new Exception1();

            try {
                e1.a();
            } 
            catch(ArrayIndexOutOfBoundsException e)
            {
                System.out.println("Catch");
            }
            System.out.println("End of main");
        }
}
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3  
Note that having a return in a finally block is a very bad idea. It hides all exceptions from the try and catch blocks! –  Joachim Sauer May 11 '11 at 8:31
    
Really, Joachim got a point here. run: try { return 5;} catch(Exception ex) { return 6;} finally {return 7;} to have some fun :) –  Jan Zyka May 11 '11 at 8:34
    
Interresting question I think, because even experimenced guy failed to see the real reason. –  Nicolas Bousquet May 11 '11 at 9:00

2 Answers 2

up vote 4 down vote accepted

The problem is the return in the finally block:

Since the finally will always be executed and it will always complete abruptly (either with an unchecked exception or with a return), there is no way that the throw e in the catch-block (or any unchecked exception in the try block) could ever be propagated downwards on the call stack.

If you remove the return, then you'll notice that the compiler will not accept the code, stating that Exception is not declared to be thrown on the method a().

share|improve this answer
    
You are right. My bad I didn't read it in more details. +1 –  Jan Zyka May 11 '11 at 8:37

ArrayIndexOutOfBoundsException is unchecked exception which means it is neither required to be declared nor catched explicitely.

So to put it simple. In java you have checked and unchecked exceptions (and Errors, lets leave them for now). Checked one extends Exception and must be declared if thrown and handled if the code possibly throws them.

On the other hand unchecked exception extends RuntimeException and it is not necessary to declare them and you are not required to handle them. NullPointerException as an example. If you are required to handle them, you will need a lot of try catches since NPE can possibly happen on nearly any line of code.

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This isn't the problem here: there's a throw e in the catch block and e is declared as Exception. This should mean that a() must be declared as throws Excpetion. Read my answer for why that's not the case. –  Joachim Sauer May 11 '11 at 8:35
    
Man (if you read it) Joachim got it right. Voted for him, dunno what more to do :) –  Jan Zyka May 11 '11 at 8:55

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