Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm trying to write a test (without examining the assembly code) to see whether a certain compiler is conformant with the thread-safe requirement of the c++11 standard about the initialization of static local objects.

So far I can only come up with non-deterministic approaches (sleeping for a long enough time on one thread to make it likely (but not surely, problem!) that the other thread has run to a certain point of execution).

Is there a way to do it deterministically?

share|improve this question
4  
No. See also programmers.stackexchange.com/questions/196105/… – nos Jun 29 '14 at 9:37
    
Read the manual. – Mankarse Jun 29 '14 at 11:06
    
You want to test with objects of arbitrary type, e.g. pods, I suppose. Because otherwise you could try some sync voodoo in a custom ctor. – Solkar Jun 29 '14 at 20:07
    
@Solkar Would you elaborate about "sync voodoo" please? I can use a custom ctor. – Nubcase Jun 29 '14 at 20:47
    
@Mankarse If you could point me to the MSVC12, GCC4.9, clang3.5 menus regarding this, please do. – Nubcase Jun 29 '14 at 20:49

E.g. a sync voodoo (see comments) like this:

#include <thread>
#include <mutex>
#include <chrono>
#include <iostream>

std::mutex g_mutex;

const std::chrono::seconds g_dura(1);

void log(const char* msg) {
    std::clog << std::this_thread::get_id() 
              << " "  << msg 
              << std::endl;
}

struct Asset {
    Asset () {
        log("before lock attempt");
        g_mutex.lock();
        log("after lock attempt");
        /*EDIT*/g_mutex.unlock();
    }
};

void test() {
    log("entering test()");
    static Asset asset; 
    log("leaving test()");
}

int main() {
    g_mutex.lock();
    std::thread t1(test), t2(test);
    std::this_thread::sleep_for(g_dura);

    // cleanup
    g_mutex.unlock();
    t1.join();
    t2.join();
}

This lets the first thread (not necessarily t1), which has to do the init, wait in the ctor, and desired behaviour is, that the second (not necessarily t1) thread waits before the pending static variable init (in the first thread) is completed.

So there is just one pair of "before lock attempt"/"after lock attempt" messages printed if the compiler works correctly.

g++ (Debian 4.8.2-16) behaved well.

That voodoo can be put to the top if the t1,t2 themselves manage the control flow of the main thread; I skipped that and simply set a timer.

share|improve this answer
1  
Not sure this is reliable. It gives the 'correct' output (ie. a single pair of lock attempt messages) on MSVC11, which does not implement magic statics. – ComicSansMS Jun 30 '14 at 8:44
    
also just one "before lock attempt" message? I originally forgot to unlock the mutex (set at /*EDIT*/). – Solkar Jun 30 '14 at 8:49
1  
Yes. I get t1 - entering, t1 - before attempt, t2 - entering, t2 - leaving, t1 - after attempt, t1 - leaving. Seems the second thread executes the function even though the object is not yet fully constructed. – ComicSansMS Jun 30 '14 at 8:54
    
Good point. Let's try to actually use that object in addition! Could well be that msvc just optimizes that 2nd call away. – Solkar Jun 30 '14 at 9:04
    
I was just wondering : why you used std::clog? (instead of std::cout or std::cerr) – BЈовић Jun 30 '14 at 9:13

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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