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By mistake, I wrote something along the lines of constexpr bool{};, and while GCC and Clang rejected this, MSVC was more than happy to compile it (see Godbolt). From my understanding, functions (and thus constructors) evaluated at compile time cannot have side effects, therefore this can never have any effect, but is it indeed ill-formed?

(In my experience, MSVC tends to be wrong, but in this specific case I didn’t find where the standard forbids this.)

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    Baffling! For what it's worth, MSVC seems equally content with just constexpr bool;. I don't think this has anything to do with functions or side-effects. – Drew Dormann Dec 3 '19 at 20:23
  • Nothing is compiled. It is thrown out by the compiler as useless. But good question, what does the standard say? gcc error expected primary-expression before... with google is unclear. – lakeweb Dec 3 '19 at 20:25
  • @DrewDormann constexpr; is also fine! Even with /permissive-. This should be clearly ill-formed. And constexpr bool{} constexpr; gives me this not quite related error message: "<source>(2): error C2144: syntax error: 'int' should be preceded by ';'" – walnut Dec 3 '19 at 20:25
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That's just not valid syntax. It is "forbidden" by the standard by virtue of not being a possible grammar production.

A declaration such as

constexpr bool b{};

is a simple-declaration and has the syntax decl-specifier-seq init-declarator-list(opt) ; (see C++17 [dcl.dcl]/1). The keyword constexpr is a decl-specifier, and so is bool (although only some decl-specifiers have an effect on the type; bool does, but constexpr does not).

The rest of the declaration, b{}, is an init-declarator, which consists of a declarator plus an optional initializer, which in this case is {}. (See [dcl.decl]/1.) The declarator is b. In general, a declarator must contain an identifier such as b. See [dcl.decl]/4.

There is a similar grammar production called an abstract-declarator which lacks an identifier (See [dcl.name]/1). Abstract declarators are allowed in particular contexts, such as when writing down a type-id, or in a parameter-declaration-clause (function parameters are allowed to be unnamed). However, an init-declarator must contain a declarator, not an abstract-declarator.

There is no other grammar production that would match constexpr bool{}; either.

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    If I understand you correctly, just bool{}; is legal due to it being a type-id. But a constexpr is not allowed in a type-specifier-seq, therefore it must be a decl-specifier-seq, which then again results in the statement being a simple-declaration. But according to [dcl.type]/1, const as being a cv-qualifier is allowed in a type-specifier-seq, hence const bool{}; is a possible grammar production? I am sure there is an error in my reasoning, as Clang and GCC disagree once more. – Emma X Dec 5 '19 at 12:05
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    @EmmaX A function-style cast such as bool{} requires the type to be a simple-type-specifier or typename-specifier. See [expr.post]/1, [expr.type.conv]. This is more restrictive than a type-id. const bool does not fit into the grammar of a simple-type-specifier. To use a general type-id for a cast, you must enclose it with parentheses, or use a C++-style cast. – Brian Bi Dec 5 '19 at 16:13

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