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Are these code statements equivalent? Is there any difference between them?

private void calculateArea() throws Exception {
        ....do something
    }

private void calculateArea() {
        try {
            ....do something

        } catch (Exception e) {
            showException(e);
        }
    }
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2  
Not really an answer, but you might be interested in Ned Batchelder's article Exceptions in the Rainforest, which helps explain the general cases where one style or the other is to be preferred. –  Daniel Pryden Jul 13 '10 at 21:30
    
instead of having "showException(e)" in the catch, were you asking if you had "throws e" in the catch instead (or not having the try/catch at all)? –  MacGyver Jan 22 '12 at 10:51

6 Answers 6

Yes, there's a huge difference - the latter swallows the exception (showing it, admittedly), whereas the first one will let it propagate. (I'm assuming that showException doesn't rethrow it.)

So if you call the first method and "do something" fails, then the caller will have to handle the exception. If you call the second method and "do something" fails, then the caller won't see an exception at all... which is generally a bad thing, unless showException has genuinely handled the exception, fixed whatever was wrong, and generally made sure that calculateArea has achieved its purpose.

You'll be able to tell this, because you can't call the first method without either catching Exception yourself or declaring that your method might throw it too.

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9  
When you mention that "Unless it genuinely handled the exception", that's a great point. I just thought I'd add that catching "Exception" itself rarely leads to intelligent "handling" of the actual exception which is the reason people recommend you catch the most specific exception possible. –  Bill K Jul 13 '10 at 21:30
5  
+1. Because Jon Skeet needs more reputation. Oh, and the answer was good too. –  Jonathan Spiller May 2 '13 at 10:37

Yes. The version which declares throws Exception will require the calling code to handle the exception, while the version which explicitly handles it will not.

i.e., simply:

performCalculation();

vs. moving the burden of handling the exception to the caller:

try {
    performCalculation();
catch (Exception e) {
    // handle exception
}
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First one throws Exception, so the caller needs to handle the Exception. Second one catches and handles Exception internally, so the caller doesn't have to do any exception handling.

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So in a nutshell , I should always use the second one. Am I right? The first one is actually a method which is used in different point of the program. That's why I decided to gruop together the instructions for further use but having done that I now realize that T was making a big mistake.. –  carlos Jul 13 '10 at 21:20
6  
No, both patterns are needed. If your method can handle the exception, use the second pattern, if not, use the first one to notifiy the caller. –  Andreas_D Jul 13 '10 at 21:23
    
Which version you use depends on your requirements - basically at what level do you need to handle that exception. The caller needs to be coded accordingly. If a caller was calling the first version, and you replace the method definition with the second version, your caller code will be forced to handle the exception as this is a checked exception. –  Samit G. Jul 13 '10 at 21:25

Yes, there is a great deal of difference between them. The in the first code block, you pass the exception to the calling code. In the second code block you handle it yourself. Which method is correct depends entirely on what you are doing. In some instances, you want your code to handle the exception (if a file isn't found and you want to create it, for instance) but in others, you want the calling code to handle the exception (a file isn't found and they need to specify a new one or create it).

Generally speaking as well, you don't want to catch a generic exception. Instead, you'll want to catch only specific ones, such as FileNotFoundException or IOException because they can mean different things.

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I assume that by "identical" you are referring to behavior.

A behavior of a function can be determined by:

1) Returned value

2) Thrown exceptions

3) Side effects (i.e changes in the heap, file system etc)

In this case, the first method propagates any exception, while the second throws no checked exception, and swallows most of the unchecked exceptions as well, so the behavior IS different.

However, if you guarantee that "do something" never throws an exception, then the behavior would be identical (though the compiler will require the caller to handle the exception, in the first version)

--edit--

From the point of view of API design, the methods are completely different in their contract. Also, throwing class Exception is not recommended. Try throwing something more specific to allow the caller to handle the exception better.

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There is one particular scenario where we cannot use throws, we have got to use try-catch. There is a rule "An overridden method cannot throw any extra exception other than what its parent class is throwing". If there is any extra exception that should be handled using try-catch. Consider this code snippet. There is a simple base class

package trycatchvsthrows;

public class Base {
public void show()
{
    System.out.println("hello from base");
}
}

and it's derived class:

package trycatchvsthrows;

public class Derived extends Base {

@Override
public void show()   {
    // TODO Auto-generated method stub
    super.show();

    Thread thread= new Thread();
    thread.start();
    try {
        thread.sleep(100);
    } catch (InterruptedException e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    }

    //thread.sleep(10);
    //here we can not use public void show() throws InterruptedException 
    //not allowed

}
}

When we have to call thread.sleep() we are forced to use try-catch, here we can not use:

 public void show() throws InterruptedException

because overridden method can not throw extra exceptions.

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