0

In C++14 When we have

class A{};

and if we initialize an object of class A in the form below

A a = A();

not traditionally

A a;

So what happens in A a = A(); ?

2
  • Please provide a minimal reproducible example. With your given code snippets and compiler optimization nothing will happen because a is not used. Sep 18, 2019 at 8:17
  • Nitpick: A a = A() isn't an expression. A a = A(); is a statement. The ; is required
    – Caleth
    Sep 18, 2019 at 8:43

1 Answer 1

3

Before C++17, copy elision might happen else you have move/copy constructor call but anyway the move/copy constructor should be available.

Since C++17, no copy/move constructor happens (and doesn't need neither to be accessible).

1
  • Additionally, A a = A(); value-initializes the object, while A a; default-initializes it. Sep 18, 2019 at 8:56

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.