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I'm trying to implement my own Set template, and have issues with trying to do a breadth- first search using my Queue template that works independently.

The weird part is that I get this error in my Set template when trying to compile. Why can't it convert from one pointer to a different one that is the same data type?

error C2440: '=' : cannot convert from 'Set<T>::Node<T> *' to 'Set<T>::Node<T> *'
      with
      [
          T=std::string
      ]
      Types pointed to are unrelated; conversion requires reinterpret_cast, C-style cast or function-style cast
      c:\users\programming\Set\Set.h(96) : while compiling class template member function 'void Set<T>::print(Set<T>::Node<T> *)'
      with
      [
          T=std::string
      ]
      c:\users\programming\Set\main.cpp(13) : see reference to class template instantiation 'Set<T>' being compiled
      with
      [
          T=std::string
      ]

Queue Class Template

template <typename T>
class Queue
...
T* front()
{
    if (first != NULL)
        return first->item;
    else
        return NULL;
}

Set Class Template

template <typename T>
Class Set
...
Queue<Node<T> *> q;
void print(Node<T> *p)
{
    q.push(p);
    while (p != NULL)
    {
        cout << p->item << "(" << p->height << ") ";
        if (p->left != NULL)
            q.push(p->left);
        if (p->right != NULL)
            q.push(p->right);
        if (!q.size())
        {
            // Error is at this line
            p = q.front();
            q.pop();
        }
        else
            p = NULL;
    }
    cout << endl;
}
share|improve this question
2  
cannot convert from 'Set<T>::Node<T> *' to 'Set<T>::Node<T> *' with T = ... and T = ..._ –  K-ballo Jun 4 '12 at 14:02
1  
I suspect that isn't the entire error message. What is the type of q and what does front return? –  molbdnilo Jun 4 '12 at 14:03
    
Maybe q is a set of pointer-to-const? –  Ernest Friedman-Hill Jun 4 '12 at 14:06
    
I've included the missing information I'll copy the whole error message I didn't noticed it was on multiple lines. I've also looked to see if there was a possibly of it becoming a const but couldn't see where that might be causing the issue. –  LF4 Jun 4 '12 at 14:11
1  
Grrr... what line generates the error? Why not post that? –  Eitan T Jun 4 '12 at 14:11

1 Answer 1

up vote 2 down vote accepted

Your Queue class is instantiated with a Node<T>* type already ... you are then attempting to return a pointer to a type T from your Queue<T>::front method. If you are instantating your Queue<T> class with T=Node<T>*, then you only need to return a type T from your front method, not a T*. So change your front method signature to the following:

template <typename T>
class Queue
...
T front()
{
    if (first != NULL)
        return first->item;
    else
        return NULL;
}

Now this could cause you a bunch of problems if T was not a pointer type ... therefore you may want to create a specialization of your Queue<T>::front method for cases where T is already a pointer type. For instance:

//pointer-type specialization
template<typename T>
T Queue<T*>::front()
{
    if (first != NULL)
        return first->item;
    else
        return NULL;
}

//non-specialized version where T is not a pointer-type
template<typename T>
T* Queue<T>::front()
{
    if (first != NULL)
        return &(first->item);
    else
        return NULL;
}
share|improve this answer
    
front should probably return a reference to the element (to be consistent with front on the standard library components). –  David Rodríguez - dribeas Jun 4 '12 at 14:28
    
Thanks I'm still new to templates, my Queue, Stack and Set are how I'm learning with them. –  LF4 Jun 4 '12 at 14:28
    
@DavidRodríguez-dribeas What happens if the queue is empty? I understand that with std::queue the assumption is that you cannot call front on an empty queue, but in this case his Queue class is setup so that front can be called when the queue is empty. –  Jason Jun 4 '12 at 14:32
    
In the standard library it is undefined behavior to call front (or back) on an empty container. But I see what you say, I had not realized that in his design calling front on an empty container is well defined... –  David Rodríguez - dribeas Jun 4 '12 at 14:35
    
@Jason: you should return a reference to a dummy object, then. –  Kuba Ober Jun 4 '12 at 14:36

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