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Is there a way to conviniently call template operator-> ? It would be cool to have such possibility in classes like variant

For example: (thats just an example)

struct base_t
{
   template<class T>
   T* operator->()
   {
      return reinterpret_cast<T*>(this);
   }
};

int main(int argc, char* argv[])
{
   base_t x;
   x.operator-><std::pair<int,int>>()->first; //works, but inconvenient
   x<std::pair<int,int>>->first; // does not work
   x-><std::pair<int,int>>first; //does not work

   return 0;
}

I need proofs =)

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closed as primarily opinion-based by ʎǝɹɟɟɟǝſ, Nicholas Wilson, Richard Morgan, SchmitzIT, Oz123 Mar 18 '14 at 13:00

Many good questions generate some degree of opinion based on expert experience, but answers to this question will tend to be almost entirely based on opinions, rather than facts, references, or specific expertise. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
No. ⁠⁠⁠⁠⁠⁠⁠⁠⁠⁠⁠ –  Fanael Apr 5 '13 at 12:11
    
"It would be cool to have such possibility in classes like variant" No, it would not. If you think so, consider the fact that a variant holds an object whose type is only known at runtime. –  R. Martinho Fernandes Apr 5 '13 at 12:15
    
@R.MartinhoFernandes yep, but you should use it with cautions. There are other places, where it could be used =) It is like boost::get, throwing exception. Operator -> also could throw exception. –  kassak Apr 5 '13 at 12:18
    
It's not a matter of caution. It's a matter of not making sense at all. You cannot use a type determined at runtime in a compile-time construct like a template. –  R. Martinho Fernandes Apr 5 '13 at 12:20
    
@R.MartinhoFernandes There is no difference with current approaches of getting-pointer-calling-method. And type provided to operator-> is known at compile time. –  kassak Apr 5 '13 at 12:23

1 Answer 1

up vote 1 down vote accepted

No, it's not real, how this it's not real too

struct base_t
{
   template<class T>
   T operator () ()
   {
      return T();
   }
};

int main()
{
   base_t x;
   x.operator ()<int>(); // works
   x.()<int>(); // not works
}

An expression x->m is interpreted as (x.operator->())->m for a class object x of type T if T::operator->() exists and if the operator is selected as the best match function by the overload resolution mechanism

postfix-expression -> templateopt id-expression

postfix-expression -> pseudo-destructor-name

So, syntax x-><T> is simply incorrect.

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I understand, that I can do that many other ways. But does it somethere in standard? –  kassak Apr 5 '13 at 12:15
    
Or this is limitation by grammar, provided in standard? –  kassak Apr 5 '13 at 12:19
    
Okay, thanks, that what I wanted –  kassak Apr 5 '13 at 12:26

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