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I'm trying to access the object (called a Vector) pointed to by a pointer held in a vector container, but I can't seem to get to it.

Here are the important code snippets:

int main{
    Vector<double>* test = new Vector<double>(randvec<double>());

    test->save();

    cout << Element::vectors[0];
return 0;
}

Where Vector is a template class, randvec<T>() returns a reference to a vector, save() is

template <class T>
void Vector<T>::save()
{
    vectors.push_back(this);
}

and vectors is static std::vector<Element*> vectors; defined in Element.h, the base class of Vectors.

Am I going about this all wrong? I'm trying to contain all the elements of a derived class in a static data member of the base class by using a vector of pointers to the main class.

My output from main() might tell you what's going on – I get the pointer 0x1001000a0. However, if I try to dereference that pointer, I get the following error:

error: no match for 'operator<<' in 'std::cout << * Element::vectors. 
std::vector<_Tp, _Alloc>::operator[] [with _Tp = Element*, _Alloc = std::allocator<Element*>](0ul)'

Why can't I dereference this pointer?

share|improve this question
2  
Why dynamically allocate that at all? (Hint: you're leaking!) – GManNickG Jun 22 '10 at 6:52
    
It took me three times reading your description to get an idea how the different parts you name are entangled with each other! Does this really need two-phase construction? If all the objects are to be stored in a base class static data member, why not store them in their constructor? And why are you using dynamic allocation for test? You're leaking it. What's wrong with automatic objects? Oh, and in C++ file != class. – sbi Jun 22 '10 at 7:17

The problem is not with dereferencing. The problem is that "<<" operator is not defined for Element::vectors

share|improve this answer

It looks like you're missing an operator<< overload that can be used to output an Element. Note that it won't work if you just define the overload for Vector<T> because dereferencing Element::vectors[0] gives you an object of type Element.

Here's an (untested, sorry) example of how you can go about allowing derived classes (like Vector<T>) to override the stream-insertion behaviour of Element:

Add a virtual member function to Element:

class Element
{
   // other stuff

   virtual void write_to_stream(std::ostream& stream) const = 0;
};

Overload operator<< for Element to call this function:

std::ostream& operator<<(std::ostream& stream, const Element& element)
{
    element.write_to_stream(stream);  // dynamic dispatch as we call through reference
    return stream;
}

Then override the virtual member function in the derived classes to control how they should be written:

template<class T>
class Vector : public Element
{
   // other stuff
   virtual void write_to_stream(std::ostream& stream) const
   {
      // whatever you like goes here
   }
};
share|improve this answer
    
Wait, why wouldn't dereferencing twice give me an object of type Vector<T>? I've defined an output operator for Vector<T>, and that's the operator I'm trying to use. How do I interact with that version – do I have to cast the pointer? – Nick Sweet Jun 22 '10 at 4:42
    
The static type of *Element::vectors[0] is Element (because Element::vectors[0] is an Element*), even though the dynamic type of the object it points to is indeed Vector<T> (you're right that I probably shouldn't say it's an "object of type Element"!) One way to get the ability to overload the operator<< in Vector<T> is to delegate to a virtual function - I'll add an example to my answer. – Mike Dinsdale Jun 22 '10 at 4:51
    
...where by "it points to" I mean "Element::vectors[0] points to"... – Mike Dinsdale Jun 22 '10 at 5:09
    
In the original question the dereference operator is not present: cout << Element::vectors[0]; so the static type is pointer to ... At least from the code. Then again I don't use that compiler so I am not used to the error messages, and the error message might be actually saying that while copying the question to SO the star fell off. – David Rodríguez - dribeas Jun 22 '10 at 7:52
    
@David Rodriguez: I think the code he's actually showing is what he's describing when he says "My output from main() might tell you what's going on – I get the pointer 0x1001000a0". Then he says "However, if I try to dereference that pointer..." which I interpreted to mean he added the * to the code (which would then make sense out of the * in the error message). But I could have misunderstood, I had to read it a few times before hitting on this interpretation! – Mike Dinsdale Jun 22 '10 at 8:15

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