9

[over.unary]/2

The unary and binary forms of the same operator are considered to have the same name. [ Note: Consequently, a unary operator can hide a binary operator from an enclosing scope, and vice versa. —end note ]

I'd like to see a compiling example of a snippet where this hiding occurs.

1 Answer 1

11

A fairly simple example1:

struct foo {
    void operator+(foo const&) {}
};

struct bar : foo {
    void operator+() {}
};

int main() {
    bar a, b;
    a + b; // Can't add two bars
}

The name of the member function is operator+, so the one declared in bar hides the one in foo when we overload it. That makes the addition at the end of main ill-formed.

But if you had two foo objects (that are not bar), the addition would be perfectly okay.


1 - Pardon me it's a non-compiling one, but usually the issue with name hiding is that it prevents programs from building all of a sudden.

1
  • 1
    To construct an example that still compiles, but selects a different overload, one could use a mixture of member and non-member overloads, where the member one is a better conversion (but hidden by inheritance)
    – Ben Voigt
    Apr 16, 2018 at 14:37

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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