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I have a class with a template constructor, and the code is actually calling the copy constructor, after the default-constructor, which does not make sense to me as the type is incorrect.

For example:

class A
{
  public:
    A(void); // default constructor
    A(const A& other); // copy constructor
    template<class TYPE>
    A(const TYPE& object_to_ref);  // template constructor
};

This template constructor works (is properly called in other cases), but is not properly recognized as the "correct" constructor from another template function:

template<class TYPE>
A& CreateA(const TYPE& object_to_ref)
{
  // THIS FUNCTION IS NEVER SPECIALIZED WITH "A", ONLY WITH "B" !!
  return *new A(object_to_ref);  // CALLS "A::A(const A&)" !!??
}

Example fail:

B my_b;
A& my_a = CreateA(my_b);  // "A::A(const A&)" called, not "A::A(const B&)"!

This does not make sense to me. The types are wrong to match the copy constructor. What happened? (MSVC2008)

My work-around is to not use the template constructor in this case:

template<class TYPE>
A& CreateA(const TYPE& object_to_ref)
{
  A* new_a = new A(); //DEFAULT CONSTRUCTOR
  new_a->setObjectToRef(object_to_ref); //OTHER TEMPLATE MEMBER FUNCTION
  return *new_a;
}

QUESTION: Why was the template constructor not called in this case?

(Work-around seems to behave properly, do you suggest an alternative?)

EDIT: B is unrelated, with no conversions specified between B and/or A:

class B
{
};
share|improve this question
11  
Tangential note: Code that does return *new is almost always a bad idea... –  Oliver Charlesworth Apr 2 '12 at 21:05
3  
For values of almost that are absurdly close to 100%. –  Benjamin Lindley Apr 2 '12 at 21:07
    
If B is implicitly convertible to A then this happens because the compiler finds a matching constructor without needing to ever generate the template code. –  Chad Apr 2 '12 at 21:08
2  
Does B inherit from A? –  Philipp Apr 2 '12 at 21:09
1  
I can't reproduce that with GCC. Regardless of whether B inherits from A, the template constructor is called. –  Philipp Apr 2 '12 at 21:53

1 Answer 1

up vote 1 down vote accepted

You didn't provide definition of B, so I'm going ahead assuming that A is B's ancestor and B can be implicitly cast to A. In this case your template for B is not being instantiated, because there is a perfectly suitable call already.

share|improve this answer
    
Sorry, updated the question, no, B is unrelated. Weird. –  charley Apr 2 '12 at 21:42
1  
That doesn't make sense. You probably oversimplified your example. Is there any other implicit method of converting B to A? Like operator A ()? –  cababunga Apr 2 '12 at 22:14
    
You were right: Didn't make sense, I oversimplified. There were more template<>==>traits==>template<> conversions going on, and one of them was unexpected-but-legitimate, ultimately causing the copy-constructor to be invoked in this case. My fault! (GOOD! IT WAS DRIVING ME CRAZY.) –  charley Apr 3 '12 at 15:39

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