3

In C++11 I'm somewhat confused about the difference between the types T and reference to T as they apply to expressions that name variables. Specifically consider:

int main()
{
    int x = 42;
    int& y = x;

    x; // (1)
    y; // (2)
}

What is the type of the expression x in (1) in the above? Is it int or lvalue reference to int ? (Its value category is clearly an lvalue, but this is separate from its type)

Likewise what is the type of the expression y at (2) in the above? Is it int or lvalue reference to int ?

It says in 5.1.1.8:

The type of [an identifier primary expression] is the type of the identifier. The result is the entity denoted by the identifier. The result is an lvalue if the entity is a function, variable, or data member and a prvalue otherwise.

10

The bit you're missing is this (§5/5):

If an expression initially has the type “reference to T” (8.3.2, 8.5.3), the type is adjusted to T prior to any further analysis.

So although the identifier y has type int&, the expression y has type int. An expression never has reference type, so the type of both of your expressions is int.

  • 4
    As I like to think of it, "values never have reference type, only variables do". – Kerrek SB May 15 '13 at 14:03
  • @KerrekSB: Yes values have value categories instead I guess. – Andrew Tomazos May 15 '13 at 14:22
  • 2
    @KerrekSB: A different approach that I find more sensible is that reference is just an alias to the original object. After the reference is created any use of the reference and the original object are exactly equivalent – David Rodríguez - dribeas May 15 '13 at 15:02
3

The expression denotes an lvalue of type int, in both cases. An expression cannot be a reference, although you can bind the result of an expression with an lvalue or rvalue reference.

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

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