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Suppose some type Foo has an overloaded operator-> that returns a Bar*:

struct Foo
{
    Bar* operator->();
};

If I want to destruct the returned Bar instance in-place from within the Foo class, can I write the following?

this->~Bar();

g++ does not like that code. It works if I write this:

(*this)->~Bar();

Does the "rescursive forwarding rule" not apply in this case? Why not?

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3 Answers

up vote 3 down vote accepted

Here is the rule for chaining ->, found in 13.5.6 [over.ref] of the standard:

An expression x->m is interpreted as (x.operator->())->m for a class object x of type T if T::operator->() exists and if the operator is selected as the best match function by the overload resolution mechanism (13.3).

Since this is a pointer, not a class object, it doesn't apply.

Instead, this rule in 5.2.5 ([expr.ref]) is applicable:

For the second option (arrow) the first expression shall have pointer to complete class type. The expression E1->E2 is converted to the equivalent form (*(E1)).E2; the remainder of 5.2.5 will address only the first option (dot).

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Because this is a pointer and not a reference and -> for a pointer doesn't have a return value for forwarding to take place on. Consider equivalently

shared_ptr<std::string>* ptr = // some init
ptr->push_back('0'); // error
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Of course -> on a pointer has a return value. (Well, 5.2.5 causes this->~Bar() to be replaced by (*(this)).~Bar, and 13.6 provides a return type for (*(this)).) The recursion rule simply doesn't apply when -> is used with a pointer. –  Ben Voigt Aug 9 '11 at 13:16
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this is a pointer to an object of type Foo. You overwrote the operator -> for the object, not the pointer.

this->~Bar()

attempts to call the ~Bar() method in Foo.

(*this)->~Bar()

works because you call the -> operator of the object.

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That's why Fred asked about chaining. –  Ben Voigt Aug 9 '11 at 13:17
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