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Suppose I have a following class:

 class Sample {
 public:
     Sample( int ) {}
 };

some function returning an int

int SomeFunction()
{
    return 0;
}

and this code:

Sample* sample = new Sample( SomeFunction() );

Now I expect the following sequence:

  • SomeFunction() is run, then
  • ::operator new() is run to allocate memory for the object, then
  • class Sample constructor is run over allocated memory

Is this order fixed or can it be changed by an implementation such that say first memory is allocated, then SomeFunction() is called, then constructor is run? In other words, can call to operator new() function and call to class constructor be interleaved with anything?

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one thing is surely specified that SomeFunction() will be called always before constructor Sample(). So question will narrow down only between SomeFunction() and operator new. –  iammilind May 4 '11 at 11:32

5 Answers 5

up vote 8 down vote accepted

The order is unspecified. [5.3.4]/21 reads:

Whether [operator new] is called before evaluating the constructor arguments or after evaluating the constructor arguments but before entering the constructor is unspecified. It is also unspecified whether the arguments to a constructor are evaluated if [operator new] returns the null pointer or exits using an exception.

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1  
+1: The only thing that must hold is that the allocation function must return before the constructor is called. –  Charles Bailey May 4 '11 at 11:12
    
@Charles Bailey: True. In fact the only possible sequences (assuming new doesn't throw) are: a) operator new, SomeFunction(), Sample ctor b) SomeFunction(), operator new, Sample ctor –  decltype May 4 '11 at 11:21

The order of the calls to operator new and SomeFunction is unspecified - so it may change based on optimisation settings, compiler version, etc.

The constructor call I think has to come last.

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Yes, it could be interleaved.

class A
{
public:
    A(int i)
    {
        cout << "constructor" << endl;
    }
    void* operator new(size_t size)
    {
        cout << "new" << endl;
        return malloc(size);
    }
    void operator delete(void*, size_t)
    {
        cout << "delete" << endl;
    }
};

int f()
{
    cout << "f()" << endl;
    return 1;
}

int main()
{
    A* a = new A(f());
}

Output:
new
f()
constructor

Though not guaranteed by the standard, compilers do have a reason to allocate memory first. If memory allocation fails, the constructor won't be called at all. So evaluating constructor arguments too early is probably not a good idea.

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Which compiler does it happen with? –  sharptooth May 4 '11 at 11:27
    
I'm using MSVC 2005 –  Eric Z May 4 '11 at 11:41
    
You could just as well say that if the argument evaluation throws an exception, then the constructor won't be called at all, and so calling new too early is a bad idea! –  Steve Jessop May 4 '11 at 13:33

Actually, what I think happens is:

  • new is used to allocate raw memory
  • SomeFunction() is called returning a value X
  • the constructor is called, with X as a a parameter

but I could be wrong. I would say that this shows that you shouldn't be worrying about the order.

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1  
Except the order of the first two bullet points could be reversed. There would be reason to worry about order if SomeFunction returned a pointer to dynamically allocated memory, in which case the code should be rewritten for exception-safety. –  decltype May 4 '11 at 11:24

You can't change what happens when you run that line of code. You can run some different lines of code.

void * p = ::operator new (sizeof (SomeFunction));
SomeFunction temp;
SomeFunction* sample = new (p) SomeFunction(temp);
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