9

I came upon an interesting scenario with flow control while working on my language. What happens if an exception is thrown while processing a break statement. GCC seems to believe the break flow is lost, but the standard seems somewhat silent on what should happen.

For example, what should the following program actually do?

#include <iostream>
using namespace std;

struct maybe_fail {
    bool fail;
    ~maybe_fail() {
        if( fail )
            throw 1;
    }
};

int main() {
    for( int i=0; i < 6; ++i ) {
        cout << "Loop: " << i << endl;

        try {
            maybe_fail mf;
            mf.fail = i % 2;
            if( i == 3 )
                break;

        } catch( int ) {
            cout << "Caught" << endl;
        }
    }
    return 0;
}

Note that a return will also be blocked, as will a continue (add output after the catch to see that). Attempt to goto outside of the block will also be caught.

What is the correct flow? The standard doesn't seem to address this: section 6.6 on jump statements makes no mention, neither does section 15 on exception handling. I do understand that exceptions in destructors is in terribly bad form, but if you are using something like BOOST_SCOPE_EXIT for defer statements this behaviour might become quite important.

Perhaps of interest, the same flow happens in Java and Python, so at least there seems to be some consistency in the imperative languages.

Improve this question
9
  • Your question seems to vindicate the advice in the C++ FAQ: parashift.com/c++-faq-lite/dtors-shouldnt-throw.html Basically, don't throw exceptions in destructors. This question in the FAQ was saying how terminate() is called if you're in a "double-exception-handling" situation, but your example seems to continue the advice that it's just bad to do so.
    – Kevin Anderson
    Apr 19 '13 at 4:13
  • 1
    @Kevin, absolutely, that advice would then extend to any "defer" like statement in any language (including BOOST_SCOPE_EXIT for C++).
    – edA-qa mort-ora-y
    Apr 19 '13 at 4:15
  • how else would you interpret the behavior? throw the exception in the destructor, and then what?
    – bdwain
    Apr 19 '13 at 6:31
  • @bdwain, the end of the throw statement could continue with the break statement and exit the loop (exiting the loop is what is intended when somebody writes break so it makes an equal amount of sense, if not more)
    – edA-qa mort-ora-y
    Apr 19 '13 at 6:45
  • it is what they indended but the break statement finishes before the exception is thrown. If there was no exception, the of control would continue like break intended. But since there is, that flow is interrupted and never returned because of the exception. The break statement itself isn't interrupted though. Just the flow it set in motion. It just jumped to the end of the block, which started the sequence of destructors.
    – bdwain
    Apr 19 '13 at 7:03
4

This is covered in 15.1 Throwing an exception:

2 When an exception is thrown, control is transferred to the nearest handler with a matching type (15.3); “nearest” means the handler for which the compound-statement or ctor-initializer following the try keyword was most recently entered by the thread of control and not yet exited.

Once control is transferred to the exception handler, it just continues from there. There is no mechanism to "remember" that the code was in the middle of a break and then somehow resume that after the exception is handled.

Improve this answer
5
  • I'm not certain this is enough clarity. Consider that 6.6 section requires the jump statements to do as indicated and makes no mention of interruption to that flow. That is, I think the requirement you state and the jump reuirements are in conflict.
    – edA-qa mort-ora-y
    Apr 19 '13 at 4:14
  • @edA-qamort-ora-y Would a reference to the standard to the effect of "destructors are called before the jump has occurred" answer this question?
    – Drew Dormann
    Apr 19 '13 at 4:16
  • @edA-qamort-ora-y: To be honest, having looked at 6.6 (especially the second paragraph), and I not sure I am seeing the ambiguity.
    – NPE
    Apr 19 '13 at 4:17
  • The problem is that the jump statements make no mention of attempting to transfer flow, just that they do. In a very similar wording 15.1 there indicates a similar control transfer. Consider that goto uses the phrase unconditionally transfers, a stronger wording than exceptions, yet it is also caught by the exception.
    – edA-qa mort-ora-y
    Apr 19 '13 at 4:20
  • Correct. The exception happens after the break, obviously, because it happens when leaving the scope, and that cannot happen before the break.
    – MSalters
    Apr 19 '13 at 6:45
0

In light of the specific wording in the stadnard, I'm going to say it is ambiguous. The text is insufficient to identify the intended flows these situations. It is quite possible the convention we have now is merely incidental due to how compilers are written.

Refer to my blog topic How to catch a "return" statement.

Improve this answer

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.