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So I have the following classes:

class A {}
class B : public A {}
class C : public B {}

When I try do the following, I get an error:

vector<C*> v1; //already instantiated with a vector of pointers to C.
vector<A*>* v2 = &v1;

error C2440: 'initializing' : cannot convert from 'std::vector<_Ty> *'
to 'std::vector<_Ty> *' Types pointed to are unrelated; conversion
requires reinterpret_cast, C-style cast or function-style cast

If C is a descendant of A, why is this happening?

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2  
Because vector<A *> isn't base of vector<C *>? –  Karel Petranek Oct 27 '12 at 15:23
2  
Yes, C is a descendent of A does not imply that vector<C*> is a descendent of vector<A*>. C++ simply doesn't work like that. Perhaps you need to allocate a new vector and copy items one by one, or perhaps you should start with vector<A*> in the first place. –  john Oct 27 '12 at 15:24
    
Thanks for your quick answers! –  Gerardo Oct 27 '12 at 15:27
    
@Gerardo you can think of it in the way that it's just part of the name. For example, vector<C*> is like vector_Cptr and vector<A*> is like vector_Aptr. They are not related in any way, their names just happen to be a little similar. –  Seth Carnegie Oct 27 '12 at 15:31

1 Answer 1

up vote 4 down vote accepted

While C is derived from A, std::vector<C*> isn't derived from std::vector<A*>, so you can't assign the address of an object of the former type to a pointer for the latter.

Imagine what would become possible if you could do this:

vector<A*>* v2 = &v1;

/* *v2 is declared as a vector<A*> so we can do this: */
v2->push_back(new B);

/* Now we have effectively added a pointer to a B object
   to the vector v1, which is supposed to be a vector of
   C objects only! */

However, of course the following is possible:

int main()
{
  std::vector<C*>  v1;
  std::vector<A*>  v2(begin(v1),end(v1));
  return 0;
}

Here, we create a new vector v2 and copy the elements of v1 into it. This is possible because C is derived from A.

share|improve this answer
    
I sense a most vexing parse... Nope, guess not, looks like C++ checks if begin and end are types or not. –  Seth Carnegie Oct 27 '12 at 15:32

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