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Section: 99 [auto.ptr.conv] Status: Resolved Submitter: Hubert Tong Opened: 2015-05-28 Last modified: 2020-09-06
Priority: 4
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Discussion:
In C++14 sub-clause 99 [auto.ptr.conv], there appears to be no requirement that the formation of an auto_ptr_ref<Y> from an auto_ptr<X> is done only when X* can be implicitly converted to Y*.
For example, I expect formation of the auto_ptr_ref<A> from the prvalue of type auto_ptr<B> to be invalid in the case below (but the wording does not seem to be there):
#include <memory>
struct A { };
struct B { } b;
std::auto_ptr<B> apB() { return std::auto_ptr<B>(&b); }
int main() {
std::auto_ptr<A> apA(apB());
apA.release();
}
The behaviour of the implementation in question on the case presented above is to compile and execute it successfully (which is what the C++14 wording implies). The returned value from apA.release() is essentially reinterpret_cast<A*>(&b).
There is nothing in the specification oftemplate <class X> template <class Y> operator auto_ptr<X>::auto_ptr_ref<Y>() throw();
which implies that X* should be implicitly convertible to Y*.
The implementation in question uses the reinterpret_cast interpretation even when Y is an accessible, unambiguous base class of X; the result thereof is that no offset adjustment is performed.[2015-07, Telecon]
Marshall to resolve.
[2016-03-16, Alisdair Meredith comments]
This issue is a defect in a component we have actively removed from the standard. I can't think of a clearer example of something that is no longer a defect!
[2016-08-03, Alisdair Meredith comments]
As C++17 removes auto_ptr, I suggest closing this issue as closed by paper N4190.
Previous resolution [SUPERSEDED]:
This wording is relative to ISO/IEC 14882:2014(E).
Change 99 [auto.ptr.conv] as indicated:
template<class Y> operator auto_ptr_ref<Y>() throw();-?- Requires: X* can be implicitly converted to Y*.
-3- Returns: An auto_ptr_ref<Y> that holds *this. -?- Notes: Because auto_ptr_ref is present for exposition only, the only way to invoke this function is by calling one of the auto_ptr conversions which take an auto_ptr_ref as an argument. Since all such conversions will call release() on *this (in the form of the auto_ptr that the auto_ptr_ref holds a reference to), an implementation of this function may cause instantiation of said release() function without changing the semantics of the program.template<class Y> operator auto_ptr<Y>() throw();-?- Requires: X* can be implicitly converted to Y*.
-4- Effects: Calls release(). -5- Returns: An auto_ptr<Y> that holds the pointer returned from release().
[2016-08 - Chicago]
Thurs AM: Moved to Tentatively Resolved
Proposed resolution:
Resolved by acceptance of N4190.