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If you have:

catch (FooException ex) {
    throw new BarException (ex);
}
catch (BarException ex) {
    System.out.println("hi");
}

...and the first catch clause is triggered (i.e. FooExcepetion has occurred), does the new BarException get immediately caught by the subsequent "catch" clause?

Or is the new BarException thrown one level up the continuation stack?

I realize this is a basic question. : )

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Not sure if "continuation stack" is correct terminology. I was going to say "call stack", but of course try/catch blocks can be arbitrarily nested, and thus we're not necessarily dealing with a stack of method calls here. –  Aaron Fi Aug 19 '10 at 20:42
    
Why community wiki? –  Federico Culloca Aug 19 '10 at 20:46
    
rushed mis-click... : / –  Aaron Fi Aug 19 '10 at 20:47

2 Answers 2

up vote 4 down vote accepted

It does not get caught by the 2nd catch clause, no.

Each catch clause in the list is tried, to see if it matches. The first one that matches is the only one that runs, then the code moves on to the finally clause.

Another result of this is that if you have:

try {
    throw SubTypeOfException(...);
} catch(Exception e) {
    ... block 1 ...
} catch(SubTypeOfException e) {
    ... block 2 ...
}

then block 1 is the only one that will run, even though block 2 would have matched. Only the first matching catch clause is evaluated.

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Yup, I knew about this -- i.e. you should always list your catch clauses in decreasing order of Exception specificity. I long for Java 7's catch(ExceptionType1 | ExceptionType2 ex) syntax.... –  Aaron Fi Aug 19 '10 at 20:47
    
Indeed, that will be a nice addition. –  RHSeeger Aug 19 '10 at 21:13
    
@Aaron F. Wow! I can't wait for that!! –  Nate W. Aug 19 '10 at 21:22

It's thrown one level up.

You'll need another try//catch block.

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