For example 'a' has ASCII code 97 and we could use

char ch = 'a';

or

char ch = 97;

With auto we could write

auto ch = 'a';

for the first case, but how to get char variable by numerical ascii code during deduction?

This doesn't work for me:

auto ch = '\97';
  • 1
    Note: 'a' doesn't mean ASCII code 97. The compiler transcodes literal characters from the -fsource-charset to -fexec-charset (/source-charset to /execution-charset). Here, "charset" means character encoding. The code author, program builder and program user should all be on the same page about character encodings. Often the author attempts to write "portable code" that would work correctly no matter which system the code is built for. Many systems use the UTF-8 character encoding of the Unicode character set throughout. – Tom Blodget Oct 23 at 0:33
  • 2
    sounds strange to simultaneously want a specific type and auto – sudo rm -rf slash Oct 23 at 6:39
up vote 37 down vote accepted

You have to use octal or hex value for escape sequence

auto ch  = '\141';
auto ch2 = '\x61';

For more info https://en.cppreference.com/w/cpp/language/escape

If you want to use decimal values, you have two options:

  1. Cast to char

    auto ch = static_cast<char>(97);
    
  2. User-defined literals

    char operator "" _ch(unsigned long num)
    {
         return static_cast<char>(num);
    }
    //...
    auto ch = 97_ch;
    
  • 4
    Indeed. The cause of the OP's problem is the fact that '\97' is invalid octal. – Mr Lister Oct 23 at 10:03

There's no decimal escape, but you can use hexadecimal: '\x61', or octal, '\141'.
If you really need decimal, you need to cast; char{97}.

There is no integral literal that specifies a char. You have to explicitly name the type, e.g.

auto ch = char{97};
  • But if the OP had used a hex integer, then '\0x61' would work fine. – Martin Bonner Oct 22 at 16:19

Cast an integral literal to char:

auto ch = static_cast<char>(97);
  • The point is not to write char or any big construction, when I use auto. – Denis Sablukov Oct 29 at 20:01

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.