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Is there a way to find out what the return type of a function (or even better of a function pointer) is ?

I've got the following code, which breaks when I use a void function pointer, but works fine for any other return type. The error I get when using a void function pointer from gcc 4.5 is:

error: void value not ignored as it ought to be

Which makes sense. So obviously I need to check if function pointer returns something, and then obtain the result and return it.

template <class F,typename R> class Instruction
{
  protected:
    F (func);
    R result;

  public:

   template <typename T>
   Instruction(T const& f)
   {
     func = &f;
   };

   template <typename A> void execute(A const& a)
   {
     result = (func)(a);
   };
   template <typename A> void execute(A const& a,A const& b)
   {
     result = (func)(a,b);
   };
   template <typename A> void execute(A const& a,A const& b,A const& c)
   {
     result = (func)(a,b,c);
   };
   R get_result()
   {
     return result;
   }; 
};

Normally I use a function pointer to a function which does something mostly arithmetic and I can take care of any return type at instantiation other than void functions. I've tried instantiating as:

     Instruction<ptr2func2,void> foo(bar);
     Instruction<ptr2func2,(*void)> foo(bar);

but in both cases it fails.

The second template argument at instantiation is used in order to define what the return type will be.

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You don't need to check the return type of the function, you just need to check R. That should be easier, but I don't know how. –  ikegami Jun 20 '11 at 23:07

3 Answers 3

up vote 3 down vote accepted

Try a template partial specialization on void:

template <class F> class Instruction<F, void>
{
  protected:
    F (func);

  public:

   template <typename T>
   Instruction(T const& f)
   {
     func = &f;
   };

   template <typename A> void execute(A const& a)
   {
     (func)(a);
   };
   template <typename A> void execute(A const& a,A const& b)
   {
     (func)(a,b);
   };
   template <typename A> void execute(A const& a,A const& b,A const& c)
   {
     (func)(a,b,c);
   };
};
share|improve this answer
    
Thank you that worked perfectly ! So basically I overload the template argument for specialization with void only ? Thanks, I should had seen this before! :) –  Alex Jun 20 '11 at 23:48
    
Tip: because C++ allows you to return a void expression (he he), it's only the member variable part of the class that needs to be specialized. This part can be factored out as a base class, or as a member. –  Cheers and hth. - Alf Jun 21 '11 at 0:08

You may want to use Boost::FunctionTypes which provide a metafunction able to decompose function type and give you access to the return or argument type.

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In C++0x you can decltype. However, in C++03, by convention, function objects have a result_type typedef, and function pointers can have template deduction applied to them.

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