Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have some useful code in constructor or class Valuable. I want be sure it's executed before submain. How can I guarantee that it's not optimized out?

int main()
{
    // Dear compiler, please don't optimize ctor call out!
    Valuable var;

    return submain();
}

Is local variable enough? Do I need to use static:

static Valuable *v = new Valuable();
delete v;
v = NULL;

Can I shorten previous to one liner:

delete new Valuable();
share|improve this question
2  
Make it volatile. Or should I even suggest that..? –  0x499602D2 Apr 18 '13 at 1:07
3  
If your constructor has side effects, then it will not be optimized out, unless it is a copy constructor, which is not the case here. If your constructor doesn't have side effects, then you won't be able to tell if it's optimized out or not, so it makes no difference. –  Benjamin Lindley Apr 18 '13 at 1:08
    
Have you tried volatile? –  uberwulu Apr 18 '13 at 1:08
1  
@demi: Correct, essentially. –  Benjamin Lindley Apr 18 '13 at 1:18
1  
@demi: Optimizations aren't allowed to make your program wrong or every compiler's full optimization flag would just treat your program as int main(){}. Unless you have evidence of the compiler screwing your program up, you shouldn't be worrying about things you don't even know are a problem. –  GManNickG Apr 18 '13 at 1:22
show 6 more comments

1 Answer 1

up vote 12 down vote accepted

If your constructor or destructor has observable behavior, the compiler is not allowed to optimize it out. So there's no need to do anything tricky.

share|improve this answer
    
What if side effects are in destructor? Actually this 3rd party class initializes static mutex in destructor, that's why it's here. –  demi Apr 18 '13 at 1:13
    
It seems useful to be careful about the use of the word "side effects" (as opposed to "observable behaviour") in this context: stackoverflow.com/a/8287110/777186 –  jogojapan Apr 18 '13 at 1:20
1  
@demi: No, the compiler also not allowed to optimize out the object in that case as well. The compiler must ensure that the program behaves identically to the abstract state machine specified by the C++ language standard. The only time that the standard allows constructors to be elided is in two very specific situations involving copy constructors (returning a non-volatile automatic object from a function and copying certain unbound temporary objects); see C++03 §12.8/15. –  Adam Rosenfield Apr 18 '13 at 1:23
    
So, to be very specific, mutex init in ctor and/or dtor will not be optimized out, right? That is observable behavior? –  demi Apr 18 '13 at 1:24
1  
@demi: Yes, those have observable behavior, since they call into external library functions (e.g. pthread_mutex_init() on POSIX systems), which the compiler doesn't know anything about since their implementations haven't been linked in yet at the time of compilation. So, it must assume that they have observable behavior. If they were instead macros which had no body, then the compiler might optimize it out, since doing nothing has no observable behavior. –  Adam Rosenfield Apr 18 '13 at 1:27
add comment

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.