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"a struct has public inheritance by default" what does this statement really mean? And why is the following code in error just because I have omitted the keyword 'public' while deriving the class d from c??

struct c 
{
protected:
    int i;
public:
    c(int ii=0):i(ii){} 
    virtual c *fun();
};

c* c::fun(){
    cout<<"in c";
    return &c();
}

class d : c
{  
public:
    d(){}
    d* fun()
    {
        i = 9;
        cout<<"in d"<<'\t'<<i;
        return &d();
    }
};


int main()
{
    c *cc;
    d dd;
    cc = &dd;
    cc->fun();
}
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don't ignore the warnings the compiler throws at you. –  moooeeeep May 6 '12 at 19:17

3 Answers 3

up vote 5 down vote accepted

It means that

struct c;
struct d : c

is equivalent to

struct d : public c

Your code is a class extending a struct:

struct c;
class d : c;

is equivalent to

class d : private c;

because class has private inheritance by default.

And it means that all inherited and not overriden/overloaded/hidden methods from c are private in d.

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the error is in the second last line of main cc = &dd. Here we are simply assigning the address of the derived class to a pointer to a base class. What has the public and private inheritance to do with it?? –  user1232138 May 6 '12 at 19:10
    
@user1232138 with private inheritance, class d is not a c. –  juanchopanza May 6 '12 at 19:20
    
There is a mistake in this answer: struct c; class d : c; is equivalent to class d : public c; "Structs have public inheritance" means that they are publicly inherited by default. Proof: the following code compiles: struct A { int x; }; class B : A { void foo() { x = 2; } }; –  Benoit Jacob Feb 26 '13 at 2:57
    
@BenoitJacob I know this is an old comment, but it is completely incorrect. That code compiles because you are accessing x from within class B. Accessing x from an unrelated scope still fails however. Proof: ideone.com/fkX5SN –  bcrist Nov 25 '14 at 23:30

"a struct has public inheritance by default" means that this

struct Derived : Base {};

is equivalent to

struct Derived : public Base {};

Classes have private inheritance by default, so when you remove the public from a class inheritance you have the equivalent of

class Derived : private Base {};

In this private inheritance scenario, Derived does not have an is-a relationship with Base, it essentially has-a Base. So the conversion you are trying to attempt here:

cc = &dd;

is not allowed.

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When you write a struct and inherit from something without specifying an access specifier, that inheritance is treated as public. When you write a class and inherit from something without specifying an access specifier (even if that something is a struct), that inheritance is treated as private. In your code, you're doing the latter, so the inheritance is private, hence the observed error.

Put another way, to say that struct inheritance is public by default really means that inheritance done when writing a struct is public by default, not that inheriting from a struct is public by default.

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