4

The following code doesn't compile GCC 6.1, but works in Clang 3.8.0 and Visual Studio 2015:

#include <memory>

class base {
public:
    base(std::unique_ptr<int>) {}
};

class derived : public base {
public:
    using base::base;
};

int main() {
    derived df(std::make_unique<int>());
}

With the following errors:

main.cpp: In constructor 'derived::derived(std::unique_ptr<int>)':

main.cpp:10:17: error: use of deleted function 
'std::unique_ptr<_Tp, _Dp>::unique_ptr(const std::unique_ptr<_Tp, _Dp>&) 
[with _Tp = int; _Dp = std::default_delete<int>]'

     using base::base;

                 ^~~~

In file included from /usr/local/include/c++/6.1.0/memory:81:0,

                 from main.cpp:1:

/usr/local/include/c++/6.1.0/bits/unique_ptr.h:356:7: note: declared here

       unique_ptr(const unique_ptr&) = delete;

       ^~~~~~~~~~

main.cpp: In function 'int main()':

main.cpp:14:39: note: synthesized method 'derived::derived(std::unique_ptr<int>)' 
first required here 

     derived df(std::make_unique<int>());

It appears to be trying to call the deleted copy constructor, but this works just fine:

void foo(std::unique_ptr<int>) {}

int main() {
    foo(std::make_unique<int>());
}

And this example with -fno-elide-constructors prints out move called.:

struct move_only {
    move_only() { std::cout << "default called."; }
    move_only(move_only&&) { std::cout << "move called."; }
};

void foo(move_only) { }

int main() {
    foo(move_only{});
}

I realize the two situations are not identical but it seems strange that && is required to make the inherited constructor example compile but not the latter. As a sanity check, explicitly doing move_only(const move_only&) = delete; and changing the signature to void foo(const move_only&) { } still compiles, except this time the move constructor is not even called (elision perhaps).

12.6.3 of the latest draft standard says:

1 When a constructor for type B is invoked to initialize an object of a different type D (that is, when the constructor was inherited ([namespace.udecl])), initialization proceeds as if a defaulted default constructor were used to initialize the D object and each base class subobject from which the constructor was inherited, except that the B subobject is initialized by the invocation of the inherited constructor. The complete initialization is considered to be a single function call; in particular, the initialization of the inherited constructor's parameters is sequenced before the initialization of any part of the D object. [ Example:

struct B1 {
  B1(int, ...) { }
};

// ...

struct D1 : B1 {
  using B1::B1;  // inherits B1(int, ...)
  int x;
  // ...
};

void test() {
  D1 d(2, 3, 4); // OK: B1 is initialized by calling B1(2, 3, 4),
                 // then d.x is default-initialized (no initialization is performed),
  // ...
}

// ...

So it should be exactly equivalent to foo(move_only) right?

2
  • 1
    Inheriting constructor semantics underwent a giant overhaul in the current working draft; nobody has implemented the new version yet.
    – T.C.
    May 6, 2016 at 6:09
  • It looks like a regression in g++ 6.1. It compiles in g++5.3
    – Niall
    May 6, 2016 at 6:19

1 Answer 1

3

This appears to be a bug (reported as bug 70972). N4140 [class.inhctor]/8:

An implicitly-defined inheriting constructor performs the set of initializations of the class that would be performed by a user-written inline constructor for that class with a mem-initializer-list whose only mem-initializer has a mem-initializer-id that names the base class denoted in the nested-name-specifier of the using-declaration and an expression-list as specified below, and where the compound-statement in its function body is empty (12.6.2). If that user-written constructor would be ill-formed, the program is ill-formed. Each expression in the expression-list is of the form static_cast<T&&>(p), where p is the name of the corresponding constructor parameter and T is the declared type of p.

In other words, the inheriting constructor at issue here should be moving, not copying, its parameter.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.