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Compiler optimization can sometimes skip evaluation of certain statements which have no consequence. However, does this apply to the comma operator too?

The following code runs without any error on ideone, but I expected it to crash.

#include <iostream>

int main() {
    int x = (1/0, 2);
    std::cout << x << std::endl;
}

The program does crash if I change the statement to int x = 1/0;

share|improve this question
5  
Undefined behaviour is not the same as a guaranteed crash. – jogojapan Feb 21 '13 at 6:29
    
Fair enough, but what if the left operand is not UB? Can the compiler skip it? – Masked Man Feb 21 '13 at 6:46
    
I believe it's as Alok explains in the answer, i.e. it depends on whether anything observable happens. And this is true not only for the comma operator. (Btw, despite my comment, I think this is a good question, I +1ed both question and answer.) – jogojapan Feb 21 '13 at 6:48
up vote 8 down vote accepted

Compiler optimizations use the As-if rule.

The as-if rule

Allows any and all code transformations that do not change the observable behavior of the program

So Yes, the compiler can optimize this. Check the following modified sample:

#include <iostream>

int main() 
{
    int y = 1;
    int x = (y=1/0, 2);
    std::cout << x << std::endl;
    //std::cout << y << std::endl;
} 

Commenting the last line compiles and executes this code correctly while uncommenting it gives you the expected undefined behavior.

As @jogojapan correctly points out,
It is important to note that compiler optimizations are not guaranteed by the standard and divide by zero is a Undefined behavior. So this code does have an undefined behavior. Whether the observable behavior is because of compiler optimizing out the divide by zero or due to undefined behavior we can never know. Technically, it is Undefined behavior all the same.

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2  
I don't think that is so easy. What is "observable behavior"? If it evaluates 1/0, then you would "observe" a different behavior. Means, the behavior of the program is different based on the optimization decision. – Nawaz Feb 21 '13 at 6:16
3  
@AlokSave: it's not that the sub expression is never used, it also must consider side-effects of expressions. And this clearly has an observable side-effect. I can only assume that division by zero is undefined behavior, so the compiler can assume (incorrectly in this case) that there is no effective side effect, and then the as-if rule can apply. (assignment to a local variable does not count as a side-effect.) – Mooing Duck Feb 21 '13 at 6:22
3  
It's kind of futile to discuss whether undefined behaviour is observable... Btw a similar problem has been discussed here before: stackoverflow.com/questions/3863656/… – jogojapan Feb 21 '13 at 6:26
2  
@Nawaz: The key thing here is that compilator must preserve all defined behaviour. Behaviour of 1/0 is (explicitly) undefined and therefore the compiler may or may not trigger the exception. – Jan Hudec Feb 21 '13 at 6:36
3  
@MooingDuck: int main(){ int a=1/0;} is still Undefined behavior. So whether or not a compiler can or may optimize it is okay for the case of discussion but the discussion itself doesn't hold good because technically it is UB all the same. – Alok Save Feb 21 '13 at 6:38

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