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I have a template vector class, and I am trying to overload the arithmetic operators such that adding/subtracting vectors of different primitive types will yield a vector of the primitive type returned by the arithmetic operation (i.e., adding a vector of int and a vector of double will yield a vector of double). The relevant code follows:

template<typename T>
class Vector {
private:
T x, y, z;

public:
   // constructors, destructors, etc.

   T X() const { return ( this->x ); }
   T Y() const { return ( this->y ); }
   T Z() const { return ( this->z ); }

   template<typename U> auto operator+(const Vector<U> &v) const -> Vector<decltype(this->x + v.X())>
   {
       return ( Vector<decltype(this->x + v.X())>( this->x + v.X(), this->y + v.Y(), this->z + v.Z() ) );
   }
};

Then, in main.cpp:

Vector<double> d1(1,2,3), d2(4,5,6);
std::cout << d1 + d2;

I get the following error from Visual Studio 2012:

error C2893: Failed to specialize function template 'Vector<T> Vector<double>::operator +(const Vector<U> &) const'

with
[
T=unknown
]

With the following template arguments:

'double'

error C2676: binary '+' : 'Vector<T>' does not define this operator or a conversion to a type acceptable to the predefined operator

with
[
T=double
]

Please advise.

1

Visual C++ fails to determine the correct type of your decltype expression. By replacing your expression with decltype(*((T*)0) + *((U*)0)) you remove the dependency on this and the argument v, which leads to the intended result on VS as well.

Note: Bug was reproducable on VS2013.4 on which the fix was tested as well.

  • Thank you! That works. I am confused by the expression you have here; can you explain its meaning? – LRC Jan 27 '15 at 18:11
  • @LRC It dereferences a (null) pointer of appropriate type to create an lvalue of T and U respectively. This way, they need not be constructible in any specific way. – gha.st Jan 27 '15 at 18:26
  • Thank you for the explanation! That makes perfect sense! – LRC Jan 27 '15 at 20:06
  • decltype(std::declval<T>() + std::declval<U>()) seems more readable. – Jarod42 Jan 29 '15 at 9:01
  • @Jarod42 I agree, I was just too lazy to figure out if declval was supported on VS2012 already. – gha.st Jan 29 '15 at 11:14

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