2

I do not know if this is even possible : Lets say I have an interface which defines :

virtual void func()=0;

is it possible that in the concrete class I override it like the following :

template <std::size_t  number> 
void func(){ /* do something with number... */ }

Thanks!

  • 1
    I meant : template <typename T> void func() { //do something with T} – Tahar HARAZ Oct 19 '18 at 7:42
  • If the entire class containing the override is made templated, then you can override and do stuff with number, so long as you're okay having the entire class being templated. – alter igel Oct 19 '18 at 8:30
6

is it possible that in the concrete class I override it like the following :

No, that won't work.

Think of this case.

struct Base
{
   virtual void func()=0;
};

struct Derived : Base
{
   template <std::size_t  number> 
   void func(){}
};

and

Base* b = new Derived;
b->func(); // Which of the Derived::func() should that resolve to at run time?
           // Derived::func<0>()?
           // Derived::func<10>()?
           // ...

That does not make conceptual sense at all.

  • You mean b->func( ) ? – YesThatIsMyName Oct 19 '18 at 7:50
  • 1
    @YesThatIsMyName, indeed. – R Sahu Oct 19 '18 at 7:51
  • 1
    Is it intended that you switch from a size_t template value in your class definition to a typename in the comments about calling the function? – Shadow Oct 19 '18 at 7:55
  • 1
    @Shadow, that was an error on my part. – R Sahu Oct 19 '18 at 7:59
  • 1
    @YesThatIsMyName, That needed to be a value instead of a type. – R Sahu Oct 19 '18 at 8:00
3

No.

Function templates never override a virtual function, pure or otherwise.

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