Short question:

Are C++11 static (non thread_local) variables always destructed on main thread?

Are they always destroyed on program exit only (considering we do not call manually their destructors)?

UPDATE

For brevity, lets assume that destructors ARE called. (we did not pull the plug, we did not kill -9)

  • 1
    Are you asking if the C++ language spec guarantees that the destructors of static objects will be called when the program exits? (I don't know the answer, but I would not count on it.) – james large Nov 9 '17 at 17:30
  • So you're wondering if the main thread is the one that calls the destructors when your program is multi-threaded? And that the destructors are always called at program termination, and never skipped? – Mark Ransom Nov 9 '17 at 17:31
  • @jameslarge the standard may well guarantee that destructors will be called, but I don't know the answer either. – Mark Ransom Nov 9 '17 at 17:32
  • > So you're wondering if the main thread is the one that calls the destructors when your program is multi-threaded? - Yes. STATIC objects destructor. – tower120 Nov 9 '17 at 17:32
  • en.cppreference.com/w/cpp/language/storage_duration says they're deallocated on program exit, but nothing about the destructor firing. I'd sure hope it does. – user4581301 Nov 9 '17 at 17:33
up vote 11 down vote accepted

Destructors of the global objects are called by std::exit. That function is called by the C++ run-time when main returns.

It is possible to arrange for std::exit to be called by a thread other than that which entered main. E.g.:

struct A
{
    A() { std::cout << std::this_thread::get_id() << '\n'; }
    ~A() { std::cout << std::this_thread::get_id() << '\n'; }
};

A a;

int main() {
    std::thread([]() { std::exit(0); }).join();
}

Outputs:

140599080433472
140599061243648

Showing that one thread called the constructor and another the destructor.

See std::exit and std::atexit for more details.

  • Ugh. Race condition when the other thread takes longer than 60s. I'm amazed that people still think "sleep" was a thread synchronization primitive. – Arne Vogel Nov 10 '17 at 10:53
  • To add a bit of more constructive criticism, using join() instead of detach() would solve this issue. Of course the join will not succeed because std::exit() doesn't return, but this still removes any undefined behavior. IOW, any form of infinite wait that doesn't race with static storage duration d'tors is fine here. – Arne Vogel Nov 10 '17 at 10:59
  • @ArneVogel You are quite right. – Maxim Egorushkin Nov 10 '17 at 11:34

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