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Is it safe to use such smart pointer casting?

APtr a(new A());
BPtr & b = (Bptr&)a; // this is it

there,

class A
{
public:
   virtual ~A(){}
   virtual void methodA() = 0;
}
typedef std::tr1::shared_ptr<A> APtr;

class B : public A
{
public:
   virtual ~B(){}
   virtual void methodB() = 0;
}
typedef std::tr1::shared_ptr<B> BPtr;

/////////////////////////////////////////////////////////////////////////////////

BPtr & b = a; //this way doesn't work
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Sorry, what...? –  Lightness Races in Orbit Dec 5 '11 at 10:27
    
Why not just use BPtr b = a; –  kennytm Dec 5 '11 at 10:31
1  
@KennyTM: Not every A is a B. In fact, the A in question (a) most certainly isn't. –  Marcelo Cantos Dec 5 '11 at 10:38
    
@MarceloCantos: Oops sorry read the code as B being a base class of A. –  kennytm Dec 5 '11 at 10:43
1  
@student023: Your a isn't an instance of a B, so what are you trying to accomplish by treating it as one? –  Marcelo Cantos Dec 5 '11 at 10:45

3 Answers 3

up vote 4 down vote accepted

To downcast a smart pointer, you should use the xxxx_pointer_cast functions, e.g. a static cast

BPtr b = std::tr1::static_pointer_cast<B>(a);

or dynamic cast

BPtr b = std::tr1::dynamic_pointer_cast<B>(a);
share|improve this answer

Whether it is safe or not is another question. It is definitely unusual and not qutie possible to assign a smart to the reference of other type when also forcibly trying to make a dumb pointer of it.

I think you need to figure out what are these type first. And then. Well, the answer to your future question if you will insist on asking it will likely be "no".

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It is never a good idea to cast a base class into a sub class. I would suggest a short view to a c++ book. The chapter about inheritance would be a good start.

For your asked question the answer is no.

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