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Can anyone tell me why this doesn't compile:

struct A { };
struct B : public A { };

int main()
{
  B b;
  A* a = &b;
  B* &b1 = static_cast<B*&>(a);
  return 0;
}

Now, if you replace the static cast with:

B* b1 = static_cast<B*>(a);

then it does compile.

Edit: It is obvious that the compiler treats A* and B* as independent types, otherwise this would work. The question is more about why is that desirable?

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2  
a is not a reference to pointers its a pointer. –  andre Jan 17 '13 at 15:45
    
@MrLister B*& is a reference to a pointer to B. –  Joachim Pileborg Jan 17 '13 at 15:47
    
FYI, dynamic_cast would be more safer –  user814628 Jan 17 '13 at 15:54
    
@user814628 Only if you do not know (because of program logic) that the cast is valid, and using dynamic_cast forces the compiler to embed runtime type information into that class hierarchy. Combine this with the relatively slow operation of dynamic_cast and it's a solution which you don't want to use unless it's necessary. –  Agentlien Jan 17 '13 at 16:03
3  
@user814628 dynamic_cast would not be legal here. –  James Kanze Jan 17 '13 at 16:04

4 Answers 4

up vote 3 down vote accepted

B is derived from A, but B* isn't derived from A*. A pointer to a B is not a pointer to an A, it can only be converted to one. But the types remain distinct (and the conversion can, and often will, change the value of the pointer). A B*& can only refer to a B*, not to any other pointer type.

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non-constant lvalue reference (B*&) cannot bind to a unrelated type (A*).

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You are trying to cast an A* to a B*. This is the wrong way around and not very useful. You probably want to store a pointer to derived in a pointer to base, which is useful and doesn't even need a cast.

I suppose a dynamic_cast might work here, but the result is implementation defined if I'm not mistaken.

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You cannot use dynamic_cast to convert a A* to a B*&. It's not legal, and the code won't compile. –  James Kanze Jan 17 '13 at 16:05
    
Casting from A* to B* is the only direction in which static_cast make sense. In the other direction, there is nothing to be done. –  PierreBdR Jan 17 '13 at 16:39

Handling of references is something the compiler does for you, there should be no need to cast to reference.

If we refactor the code to:

B b;
A* a = &b;
B* b_ptr = static_cast<B*>(a);
B*& p1 = b_ptr;

It will compile.

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I agree (see my post), but this doesn't do the same. For example, changing the pointee in p1 doesn't change the pointee in a. –  PierreBdR Jan 17 '13 at 16:40

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