5

There are at least two places in C++ standard that prohibit defining objects with incomplete types (http://eel.is/c++draft/basic.def#5, http://eel.is/c++draft/basic.types#5). However, providing non-defining declarations for objects of incomplete type is generally allowed in C++. And I don't seem to be able to pinpoint the specific part that would prohibit declaring incomplete "objects" of void type in that fashion. (Granted, void is not an object type in C++, but neither are reference types, for one example.) So, is this

extern void a;

really ill-formed in C++?

In C providing non-defining declarations for void objects (as shown above) is allowed and both GCC and Clang accept the above in C code (definitions are not allowed, of course). But in C++ code both compilers issue errors for such declarations. Which part of the standard makes them to do so?

[basic.fundamental] lists possible uses of void type (http://eel.is/c++draft/basic.types#basic.fundamental-13) but it does not appear to be intended as a complete list.

  • References (like pointers) form a compound type with the type they are applied to. So they are part of the type information of the variable being declared. – Galik Dec 30 '18 at 8:25
  • 1
    Possible duplicate of Why can't we declare a variable of type void? – xskxzr Dec 30 '18 at 13:57
7

I believe the relevant passages are the following:

[dcl.stc]

5 The extern specifier shall be applied only to the declaration of a variable or function.

[basic]

6 A variable is introduced by the declaration of a reference other than a non-static data member or of an object. The variable's name, if any, denotes the reference or object.

[basic.types]

8 An object type is a (possibly cv-qualified) type that is not a function type, not a reference type, and not cv void.

a, being a variable declaration, must denote a reference or an object according to [basic]¶6. That covers references which are indeed not object types. However, since void is neither a reference nor an object type, the declaration is ill-formed.

  • 3
    And as an aside, even if that declaration was not ill-formed, you could never form the definition that it is supposed to declare. so why allow it? – StoryTeller Dec 30 '18 at 8:26
  • Well, one can also ask "Why disallow it?" if disallowing it requires extra effort. As I stated in the question, C actually allows it, even though a matching definition is impossible to form. – AnT Jan 13 at 14:50
  • @AnT - IIRC the C++ standard does try to disallow certain truly pointless or erroneous constructs whenever it can identify them. – StoryTeller Jan 13 at 14:52

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