34

I'm puzzled. Isn't const auto ch = unsigned char{'p'}; a perfectly valid initialization expression? Fails to be compiled by all three major compilers with almost identical error messages:

error: expected '(' for function-style cast or type construction

Swapping curly braces for ('p') changes nothing. It does, however, compile without the signed or unsigned keyword.

Online demo.

  • @FrançoisAndrieux: so does const auto ch = static_cast<unsigned char>('p'), but that's conversion, not initialization. – Violet Giraffe Mar 1 at 15:00
  • 3
    using T = unsigned char; const auto ch = T{'p'}; seems to work. – François Andrieux Mar 1 at 15:02
  • @FrançoisAndrieux: Hm, do you think the compiler simply fails to parse unsigned char as a single type name in this context? – Violet Giraffe Mar 1 at 15:04
  • 1
    const auto ch = (unsigned char){'p'};? – Yakk - Adam Nevraumont Mar 1 at 18:24
42

Because only single-word type name could be used for this kind of explicit type conversion.

A single-word type name followed by a braced-init-list is a prvalue of the specified type designating a temporary (until C++17) whose result object is (since C++17) direct-list-initialized with the specified braced-init-list.

unsigned char is not a single-word type name, while char is. And this is true for functional cast expression too, that's why ('p') doesn't work either.

As the workaround, you can

using uc = unsigned char;  // or use typedef
const auto ch = uc{'p'};

Or change it to other cast styles.

const auto ch = (unsigned char) 'p';  // c-style cast expression
const auto ch = static_cast<unsigned char>('p');  // static_cast conversion
  • 5
    Do you happen to know the reason for this limitation? Like, if multi-word type names were allowed here, what other things would become broken? – Violet Giraffe Mar 1 at 15:08
  • 1
    @VioletGiraffe To be honest I don't know; I only know that the standard says so. – songyuanyao Mar 1 at 15:10
  • 2
    @VioletGiraffe Because uc{'p'}/uc('p') is a functional cast. A function name can't have a space in it so neither can the type name. – NathanOliver Mar 1 at 16:10
  • 1
    @NathanOliver A functional cast isn't really a function call. – curiousguy Mar 1 at 16:12
  • 4
    C-style cast, really? How about static_cast instead (or in case Boost is used, boost::implicit_cast)? The language allows a simple-type-specifier or (in a template) a typename-specifier, BTW, in a function-style cast, to be precise. Your statement that it "can't have a space" is slightly misleading because e.g. std :: uint8_t has spaces and is a valid simple-type-specifier. – Arne Vogel Mar 1 at 16:16

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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