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Is there a way to throw an exception without adding the throws declaration?

I wonder if there is a way to encapsulate Exception and rethrow it in another Exception when method is already defined and don't have throws clause.

An example (with JMS onMessage method) :

 public void onMessage(Message message) {

    if(message instanceof ObjectMessage){

        ObjectMessage objectMessage = (ObjectMessage)message;

        try {
            Object object = objectMessage.getObject();
        } catch (JMSException e) {
            throw new CustomException("blah blah", e); // ERROR HERE : Unhandled exception type CustomException



So, how can I encapsulate and dispatch CustomException in my code please ? Is there a way ? Thanks

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marked as duplicate by Lycha, Dylan, artbristol, jlordo, Don Roby Dec 29 '12 at 14:50

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Yes it is. Sorry – Olivier J. Dec 29 '12 at 14:45

3 Answers 3

You need to use a subclass of RuntimeException.

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I will do that. Thank you – Olivier J. Dec 29 '12 at 14:49

If a method does not declare any exceptions, the only way is to throw an exception which subclasses of RuntimeException.

In your case CustomException should extend RuntimeException.

A bit of theory from Oracle on Exceptions.

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This would have worked if CustomException was an unchecked exception (run time exception). You can read about checked vs unchecked exceptions here - Java: checked vs unchecked exception explanation

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