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I have been using a variadic template that acts as an exception firewall in an interface between C and C++. The template simply takes a function, followed by N arguments and calls the function inside a try catch block. This has been working fine, unfortunately one of the functions I wish to call now takes an additional default argument. As a result the function name is not resolved and the template fails to compile.

The error is:

perfect-forward.cpp: In function ‘void FuncCaller(Func, Args&& ...) [with Func = void (*)(const std::basic_string<char>&, double, const std::vector<int>&), Args = {const char (&)[7], double}]’:
perfect-forward.cpp:69:41: instantiated from here
perfect-forward.cpp:46:4: error: too few arguments to function

A simplified version of the code is as follows:

template< class Func, typename ...Args >
void FuncCaller( Func f, Args&&... params )
{
   try
   {
       cout << __func__ << " called\n";
       f(params...);
   }
   catch( std::exception& ex )
   {
       cout << "Caught exception: " << ex.what() << "\n";
   }
}

void Callee( const string& arg1, double d, const vector<int>&v = vector<int>{} )
{
   cout << __func__ << " called\n";
   cout << "\targ1: " << arg1 << "\n";
   cout << "\td: " << d << "\n";
   cout << "\tv: ";
   copy( v.begin(), v.end(), ostream_iterator<int>( cout, " "  ) );
   cout << "\n";
}

int main()
{
   vector<int> v { 1, 2, 3, 4, 5 };

   FuncCaller( Callee, "string", 3.1415, v );
   FuncCaller( Callee, "string", 3.1415 );  **// Fails to compile**

   return 0;
} 

Should this code work or am I expecting too much from the compiler?

Note: I have tested the use of perfect forwarding with constructors that have default arguments and the code compiles and works as expected,

i.e.:

template<typename TypeToConstruct> struct SharedPtrAllocator 
{
    template<typename ...Args> shared_ptr<TypeToConstruct> 
        construct_with_shared_ptr(Args&&... params) {
        return std::shared_ptr<TypeToConstruct>(new TypeToConstruct(std::forward<Args>(params)...));
    };
};

works when calling the cfollowing constructor with 2 or 3 arguments...

MyClass1( const string& arg1, double d, const vector<int>&v = vector<int>{} )
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1  
(It should be f(std::forward<Args>(params)...);, by the way.) –  Kerrek SB Nov 25 '11 at 19:46
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1 Answer

up vote 7 down vote accepted

I don't think there's any way this can be achieved. The default argument values are not part of the function signature. They're only code-generation short-hands that are expanded by the compiler when you call the function literally. Similarly, std::bind won't pick up default arguments, either.

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I thought it was something long those lines... Out of interest why does forwarding to a constructor with defaulted arguments work? –  mark Nov 25 '11 at 20:01
    
Well, you can call the function directly, which is what your code does (if you unravel all the template parameter substitutions). But in the original question, the function type itself is deduced, and that's where you lose the default argument. –  Kerrek SB Nov 25 '11 at 20:11
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