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Say I have the following:

std::unique_ptr<A> pA;
pA(new A);

In this convoluted example, what should the behavior of pA(new A); be?

As far as I can tell, in MSVC2010, void operator()(T*) const; from default_delete is called right after new returns and deletes the pointer right away. Whereas g++(4.7.0) gave me no match for call (std::unique_ptr<A>)(A*) error.

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2 Answers 2

up vote 6 down vote accepted

The code should not compile. std::unique_ptr does not overload operator().

The Visual C++ 2011 Developer Preview rightly rejects the code. Visual C++ 2010 only accepts the code due to a bug in its std::unique_ptr implementation.

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Thanks, very fast answer and even gave me a link to the bug. –  Jesse Good Dec 11 '11 at 23:00

MSVC employs the state-less deleter optimization for unique_ptr, i.e. it exploits the empty-base-class-optimization and just inherits from the deleter. Unfortunately, the inheritance is public, which is why you have access to the overloaded operator() of the default_delete functor.

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I wonder why they would make the inheritance public in the first place? –  Jesse Good Dec 11 '11 at 23:02
    
@Jesse: A fluke maybe? Only STL knows. :P –  Xeo Dec 11 '11 at 23:05
    
Yeah, from what I heard, STL implements this stuff by himself, so I guess we would have to cut him some slack. –  Jesse Good Dec 11 '11 at 23:20

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