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If a type has its default member(s)s deleted, does it make a difference what the accessibility of the declaration is?

class FooA {
public:
  FooA() = delete;
  FooA(FooA const&) = delete;
  FooA& operator=(FooA const&) = delete;
}

class FooB {
private:
  FooB() = delete;
  FooB(FooB const&) = delete;
  FooB& operator=(FooB const&) = delete;
}

class FooC {
protected:
  FooC() = delete;
  FooC(FooC const&) = delete;
  FooC& operator=(FooC const&) = delete;
}
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visibility != accessibility. I changed your text to be as intended. –  Johannes Schaub - litb Feb 4 at 10:23
1  
It does make a difference wrt the produced diagnostic. See this answer. –  Daniel Frey Feb 4 at 11:27

2 Answers 2

up vote 5 down vote accepted

Though accessibility and deletedness are orthogonal, it's hard to see how there could be a practical difference in the case you propose.

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Might be artificial, but it does make a little difference

class FooA {
private:
  FooA& operator=(FooA const&) = delete;
};

class FooB : FooA {
  // ill-formed because FooB has no access
  using FooA::operator=;  
};

Whether it's a practical difference... I don't really know. If FooA is a template parameter and you say using T::BazBang, it might happen in practice.

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