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In C++11, we get user-defined literals. The C++ standard has examples of these, such as:

long double operator "" _w(long double);

And it says the literal should start with an underscore:

17.6.4.3.5 User-defined literal suffixes
Literal suffix identifiers that do not start with an underscore are reserved for future standardization.

However, there's another section in the standard that says

17.6.4.3.2 Global names
Certain sets of names and function signatures are always reserved to the implementation:
— Each name that contains a double underscore _ _ or begins with an underscore followed by an uppercase letter (2.12) is reserved to the implementation for any use.
— Each name that begins with an underscore is reserved to the implementation for use as a name in the global namespace.

I'm looking to better understand exactly what 17.6.4.3.2 (Global names) says/means and how it relates to 17.6.4.3.5 (User-defined literal suffixes). Specifically:

  • Does the second part of 17.6.4.3.2 (Global names) require user-defined literals (like the above _w) to be defined in a namespace (that is, not in the global namespace)? If so, I wish the standard would've illustrated this.
  • I presume that the first part of 17.6.4.3.2 (Global names) rules out user-defined literals like _W (followed by upper case) and __w and _w__ (two consecutive underscores). Correct?

Edit:

As a follow up, there's a part of the standard that says:

13.5.8 User-defined literals
[...]
2 A declaration whose declarator-id is a literal-operator-id shall be a declaration of a namespace-scope function or function template (it could be a friend function (11.3)), an explicit instantiation or specialization of a function template, or a using-declaration (7.3.3). A function declared with a literal-operator-id is a literal operator. A function template declared with a literal-operator-id is a literal operator template.

Emphasis mine. When it says "namespace-scope" does that mean user-defined literals need to be declared in a user-defined namespace (i.e. not in the global namespace)?

Later edit:

It did not exist when the question was first asked, but now there is also this related question and answer, which readers can additionally check after reviewing the answers below.

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Ha, interesting! That looks like an oversight, if you ask me. –  Konrad Rudolph Oct 4 '12 at 6:39
    
A literal suffix is not a name. According to that interpretation, 17.6.4.3.2 does not apply to 17.6.4.3.5. –  nneonneo Oct 4 '12 at 6:39
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Consider this. It does still get mangled by the pp, which can apply to _<capital> and __, but a global variable of the same name (e.g. declaring _i and making a suffix _i) does not conflict, so there's no problem with the global scope part of the second rule interfering with your suffixes. –  chris Oct 4 '12 at 6:40
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@chris: Except that the preprocessor is rather blindly replacing the token there; it's not an indication that it is a name at all. This is akin to the way the preprocessor can replace keywords which aren't names. It also shouldn't affect the suffix when actually used as a suffix. –  nneonneo Oct 4 '12 at 6:45
    
From 3.3.6 Namespace scope [basic.scope.namespace]: "3 The outermost declarative region of a translation unit is also a namespace, called the global namespace. A name declared in the global namespace has global namespace scope (also called global scope). [...]" –  Luc Danton Oct 5 '12 at 10:34

1 Answer 1

up vote 7 down vote accepted

What's in a name? 3 Basic concepts [basic] tells us:

4 A name is a use of an identifier (2.11), operator-function-id (13.5), literal-operator-id (13.5.8), conversion-function-id (12.3.2), or template-id (14.2) that denotes an entity or label (6.6.4, 6.1).

which we cross-reference with 13.5.8 User-defined literals [over.literal]:

literal-operator-id:
operator "" identifier

While the name of a literal operator involves an identifier, that identifier does not denote an entity. (Or it's a different identifier and different name that denotes another entity or label altogether.) As such the name of a literal operator never starts with an underscore.

Something like operator""__w is problematic but this is not new: int i__0; is reserved as well.

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So the distinction is between name and identifier? Names in global namespace starting with underscore are reserved, but not identifiers. –  Konrad Rudolph Oct 4 '12 at 6:51
    
@KonradRudolph It's cleverer than that (made me do a triple take). The identifier must denote something, and then it's a name (with applicable restrictions). If you just declare operator"" _w (i.e. there isn't an int _w; in the same scope or whatever), then _w is an identifier in operator"" _w, but doesn't denote anything on its own (_w alone is invalid) so it's not a name. –  Luc Danton Oct 4 '12 at 6:53
    
Well 17.6.4.3.5 explicitly calls that bit the “literal suffix identifier”. I’m aware that it cannot be used on its own but it’s still a defined entity in the standard. –  Konrad Rudolph Oct 4 '12 at 6:55
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@LucDanton: Isn't the literal _W (capital) also problematic because it becomes a potential conflict for implementation defined macros? Because when you declare it, there must be a space between the quotes and the identifier (i.e. "" _W), and so _W is fair game for a replacement by the preprocessor. Correct? –  Cornstalks Oct 4 '12 at 16:13
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