3

I compiled these codes in MSVC:

int a=sizeof(struct{char c;});

and

int b=((struct{char c;} *)0,0);

and

printf("%p",(struct{char c;} *)0);

As C codes, they can pass compiling, with a warning (warning c4116: unnamed type definition in parentheses. If you give a name, it's "warning c4115: "Whatever" : named type definition in parentheses");
As C++ codes, they are compiled with a bunch of errors.

My questions are:
1. In C, are type definitions in parentheses valid? Why do I get that warning?
2. In C++, are type definitions in parentheses valid?

EDIT :
3. Why?

  • I'm fairly sure this is invalid in C++ and possibly valid in C (or maybe just an extension). – chris Dec 12 '13 at 9:08
  • What is the point of this question? Where would this be useful? – RedX Dec 12 '13 at 9:10
  • @user1920482, That's not a good test at all. Consider int &r = 5;, which can compile with MSVC, and is known as an evil compiler extension. Or consider VLAs, which are, as of C++11, still not standard, but many people use them. – chris Dec 12 '13 at 9:13
  • @user1920482, That was a quick example. I didn't test it and my version of MSVC might have the whole thing fixed, but take a look at these questions. Among the examples, R4F is nice enough to give a warning: rise4fun.com/Vcpp/XDfp – chris Dec 12 '13 at 9:18
  • 1
    @zwhconst, Why would you need a macro for that? – chris Dec 12 '13 at 9:23
4

In C, sizeof can be applied to any type-name that is not an incomplete type (6.5.3.4p1); a struct-or-union-specifier that contains a struct declaration list (6.7.2.1p1) is a type-specifier and thus a type-name. MSVC's warning is there for two reasons: first, because some older compilers (or a C++ compiler used as a C compiler) might not support this usage, and second, because it's unusual and might not be what you intended.

In C++, sizeof can be applied to a type-id; a class-specifier is a type-specifier and thus a type-id, but a class specifier that defines a class (or an enum specifier that defines an enumeration) can only appear in a class declaration or a using declaration (7.1.6p3). This is probably because C++ classes can have linkage and allowing them to appear in general expressions (not just definitions) would complicate this.

2

In C:

sizeof(struct{char c;})

and

sizeof((struct{char c;} *)0,0)

are both valid expressions. An implementation is free to issue an additional informational diagnostic messages for valid C code.

  • @V-X it is an expression formed with the C comma operator – ouah Dec 12 '13 at 9:39
  • @V-X, The comma operator has the lowest precedence, so it's much more than 0,0, but it's effectively just 0 in this case, save the optional diagnostics on the first part. – chris Dec 12 '13 at 9:39
  • This helps. But in C++? What clauses make it valid/invalid in the standard? – zwhconst Dec 12 '13 at 9:45
  • 1
    @zwhconst, 7.1.6 [dcl.type], paragraph 3: A type-specifier-seq shall not define a class or enumeration unless it appears in the type-id of an alias-declaration. – ach Dec 12 '13 at 9:48
  • @zwhconst in C it is valid because it follows the syntax for C structure declarations, where the tag identifier is optional (C99, 6.7.2.1 Structure and union specifiers, Syntax) – ouah Dec 12 '13 at 9:56

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