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As I discovered from this post the parameter types allowed for a user-defined literal type are as follows:

const char*
unsigned long long int
long double
char
wchar_t
char16_t
char32_t
const char*, std::size_t
const wchar_t*, std::size_t
const char16_t*, std::size_t
const char32_t*, std::size_t

Well, the only signed integer I see in that list is char, which is too small. What if I wanted to do something like this:

str operator"" _i(int i) {
    return i*2;
}

Then when I write -1000_i I expect to get -2000. How do I do this?

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Sidenote: char may or may not be a signed type depending on implementation. – user2079303 May 2 '14 at 14:20
2  
char (and wchar_t, char16_t and char32_t apply to single-quoted character literals. A string of digits is always an integer literal and it is always positive, because the - sign is not part of it. – Jan Hudec May 2 '14 at 14:22
up vote 25 down vote accepted

There is no such thing as a negative integer literal. -1000 is the application of the unary - operator to the literal 1000.

Then when I write -1000_i I expect to get -2000. How do I do this?

Define 1000_i in such a way that applying unary - gives -2000. You might for example make 1000_i a structure type with a custom overloaded operator-.

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1  
+1: Spot on and beat me to it. – PreferenceBean May 2 '14 at 14:25

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