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.

In the below code, where will the thrown Exception be caught?

public interface MyInterface {
    public void execute() throws Exception;
}

public class MyImplementor implements MyInterface {
    public void execute() throws Exception {
        throw new MyException();
    }
}

public class MyMainClass {
    public static void main(String args[]) {
        try {
            MyImplementor temp = new MyImplementor();
            temp.execute();
        } catch(MyException e) {
            sysout("MyException");
        } catch(Exception e) {
            sysout("Exception");
        }
    }
}

(MyException is a class extending Exception)

So where is this exception caught? Also, what is the logic used by the compiler to decide where it is caught?

If I placed the

catch(Exception e)

before the

catch(IOException e)

would it change the flow of control?

share|improve this question
    
Instead of MyInterface I would use the standard interface Callable<Void> ;) –  Peter Lawrey May 2 '11 at 9:07
    
I suggest you use Java style array declaration, rather than the C style array declaration, like String[] args or even String... args –  Peter Lawrey May 2 '11 at 9:23
    
Just a small note to starting programmers that you should only very sparingly (if at all) throw or catch the parent classes Exception/RuntimeException outside of main() loops. –  Maarten Bodewes - owlstead May 2 '11 at 9:28
    
You should have a directory to place some Testcode in. There you could compile your file and find out on your own. –  user unknown May 2 '11 at 10:10

5 Answers 5

up vote 5 down vote accepted

So where is this exception caught?

In the first handler.

Also, what is the logic used by the compiler to decide where it is caught?

It is not the compiler that "decides" ...

The behavior is specified by the Java Language Specification section 11.3:

"When an exception is thrown, control is transferred from the code that caused the exception to the nearest dynamically-enclosing catch clause of a try statement (§14.20) that handles the exception."

(Emphasis added.)

In other words, the exception that is propagating is compared (using the equivalent of instanceof) against the exception type of each of the handlers, in the declared order of the handlers. The first one that matches the exception is executed.

If I placed the "catch(Exception e)" before the "catch(IOException e)" would it change the flow of control?

Yes. (Assuming that you meant MyException rather than IOException.) This is a direct logical consequence of the behavior described above.


What this means is that you should order the handlers with the handlers for the most specific exceptions first. Some Java compilers and code quality / bug detector tools will warn you if you get this wrong, but this is not a compilation error.

share|improve this answer
    
That was the most comprehensive answer I could've hoped for. Thanks!!! –  Shailesh Tainwala May 2 '11 at 10:16

Its some what like the if...else if .If one condition is satisfied it will get out from the remaining conditions... In case of exceptions, catch(Exception e) satisfies all the kind of exceptions since it is the parent of all exceptions. So the exception is caught at the top level itself. The compiler won't allow this. So put catch according to the order of inheritance from bottom to top . Then only you can get the exception according to its type.

share|improve this answer

you can't do that. The sequence of the (checked-)Exceptions are according to inheritance sequence. You can not add your parent exception before an exception which's inherited from this parent. IDE complains and the code will not be compiled!

In your case if your code throws an IOException, that will catched in IOException catch block, before it reaches Exception catch block. In other cases, Exception- catch block will catch any other exceptions

share|improve this answer
    
Hey I had made a small typo in the code. Can you take another look at it please. –  Shailesh Tainwala May 2 '11 at 9:08
    
it's same situation again. You can catch MyException before Exception, because MyException "is a" Exception and a subclass of Exception. But, you can't catch Exception (Super type of MyException) before MyException. However, there is no ambiguity with exception mechanism. If a "MyException" is thrown in your code, then the first catch block with MyException will catch this, otherwise, any other exceptions will be caught by the blocks following, in this case, Exception- catch block – Erhan Bagdemir 6 mins ago –  Erhan Bagdemir May 2 '11 at 9:19

In your code MyException is not defined but it should extend Exception or RuntimeException. It won't make any difference anyway, your program will print "MyException" as it is the type of exception thrown.

share|improve this answer

a) you can't reverse the order of the catch blocks. If you did, the block for IOException would become unreachable - an instance of IOException is also an instance of Exception, so the catch (Exception e) block would catch it and you'd never hit the catch (IOException e) block. The code would then not compile - unreachable code is not allowed.

b) since MyException extends Exception and not IOException, it will not ever be caught by the catch (IOException e) block. It will therefore be caught by the catch (Exception e) block.

UPDATE

You've now changed the question, so the answer is slightly different:

a) You still can't reverse the blocks.

b) Now that you've changed the first block to catch (MyException e), the thrown exception will be caught there. The procedure is, the compiler looks at each catch block. If the exception it's trying to handle is an instance of the exception being caught, that catch block is executed. If not, it proceeds to the next catch block. If there are no more catch blocks, execution is terminated abruptly (a term from the Java Language Specification).

share|improve this answer

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.