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//------------------------------------------------------------------------------
struct A
{
    A(){}
    A(A&&){}
    A& operator=(A&&){return *this;}
    void operator()(){}

private:
    A(const A&);
    A& operator=(const A&);

    int x;
};

//------------------------------------------------------------------------------
int main()
{
    A a;
    std::function<void()> func(std::move(a));
}

'A::A' : cannot access private member declared in class 'A'

It seems like when I capture something by reference or const I can make a non-copyable lambda. However when I do that it actually works to give it to a std::function.

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As a workaround, you could put a copyable adapter between std::function and your functor. The adapter has a dummy (move-on-copy) copy constructor and throws if copied. –  Valentin Milea Jun 19 '13 at 16:41
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2 Answers

up vote 10 down vote accepted

The short answer is that the C++11 specification requires your A to be CopyConstructible to be used with std::function.

The long answer is this requirement exists because std::function erases the type of your functor within the constructor. To do this, std::function must access certain members of your functor via virtual functions. These include the call operator, the copy constructor and the destructor. And since these are accessed via a virtual call, they are "used" whether or not you actually use std::function's copy constructor, destructor or call operator.

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Correct me if I'm wrong (and probably I am) but, in order to use virtual functions, you need a vtable and hence a base class. Which is the base class in this case? –  akappa Aug 1 '12 at 22:40
3  
See stackoverflow.com/questions/6324694/… for a description of how type erasure works. The base class is an implementation detail of std::function. The derived class is also an implementation detail, but is also templated on the supplied functor. –  Howard Hinnant Aug 1 '12 at 23:12
    
very interesting, thank you. –  akappa Aug 1 '12 at 23:17
1  
@HowardHinnant: Do you think if someone proposed an ammendment to granulate the requirements so it's per-operation it would go through? (Only require A be copy-constructible if the std::function is copied.) –  GManNickG Aug 2 '12 at 2:03
    
@GManNickG: The only chance it would go through is if there was an accompanying implementation that clearly demonstrated it could pass all existing unit tests and had a sufficiently friendly copyright license. Personally I currently do not know how to create such an implementation. But the thing I love about this industry is that I'm always learning something new. :-) –  Howard Hinnant Aug 2 '12 at 2:14
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It's a bug in Visual Studio. It attempts to ellide a copy (when actually it should be trying to ellide a move), which requires an accessible copy constructor. The best solution is simply to declare the copy constructor/assignment operator and never define them. The class will still be non-copyable but the code will compile, because VS will never attempt to actually call the copy constructor.

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2  
It apparently does try to call the copy ctor if I do as you suggest, because I get an unresolved external for it. –  Dave Aug 1 '12 at 22:09
    
@Dave: Yes, that's why it is a bug. The standard says that it should be allowed, but VS doesn't do it right. –  Nicol Bolas Aug 1 '12 at 22:11
    
@NicolBolas That's fine, but his workaround suggestion didn't work. I'm not allowed to say that? (I do appreciate the answer though DeadMG, thanks) –  Dave Aug 1 '12 at 22:12
    
The bug you mention exists (and is pretty damn annoying) but this is not the problem here. –  Alexandre C. Aug 1 '12 at 22:23
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