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Consider the following case:

void Set(const std::function<void(int)> &fn);
void Set(const std::function<void(int, int)> &fn);

Now calling the function with

Set([](int a) {
    //...
});

Gives "ambiguous call to overloaded function" error. I am using Visual Studio 2010. Is there a work around or another method to achieve something similar. I cannot use templates, because these functions are stored for later use because I cannot determine the number of parameters in that case. If you ask I can submit more details.

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2  
Please explain "I cannot use templates, because the functions are stored for later use." As far as I know, there is nothing preventing the storage of an object whose type is specified by a template parameter. –  Michael Price Nov 8 '11 at 16:25
1  
@MichaelPrice: Thinking about it, its not much related with storage, but, if I use a template type for the function I will never know the number of parameters that I can pass to it. –  Cem Kalyoncu Nov 8 '11 at 16:31
3  
A better context for this question is, "Why is this call ambiguous when using a lambda?", "Is there a work around?". –  deft_code Nov 8 '11 at 16:42
1  
1  
@Xeo: I am asking how to solve it, not why it is like that. Questions are linked but not duplicates. –  Cem Kalyoncu Nov 8 '11 at 17:28

3 Answers 3

up vote 10 down vote accepted

I would suggest this solution. It should work with lambdas as well as with function-objects. It can be extended to make it work for function pointer as well (just go through the link provided at the bottom)

Framework:

template <typename T>
struct function_traits : public function_traits<decltype(&T::operator())>
{};

template <typename ClassType, typename ReturnType, typename... Args>
struct function_traits<ReturnType(ClassType::*)(Args...) const>
{
    enum { arity = sizeof...(Args) };
};

template<typename Functor, size_t NArgs>
struct count_arg : std::enable_if<function_traits<Functor>::arity==NArgs, int>
{};

Usage:

template<typename Functor>
typename count_arg<Functor, 1>::type Set(Functor f) 
{
    std::function<void(int)> fn = f;
    std::cout << "f with one argument" << std::endl;
}

template<typename Functor>
typename count_arg<Functor, 2>::type Set(Functor f)
{
    std::function<void(int, int)> fn = f;
    std::cout << "f with two arguments" << std::endl;
}

int main() {
        Set([](int a){});
        Set([](int a, int b){});
        return 0;
}

Output:

f with one argument
f with two arguments

Demo : http://ideone.com/vtCDO

I took some help from the accepted answer of this topic:


Work around for Visual Studio 2010

Since Microsoft Visual Studio 2010 doesn't support variadic templates, then the framework-part can be implemented as:

template <typename T>
struct function_traits : public function_traits<decltype(&T::operator())>
{};

template <typename C, typename R, typename T0>
struct function_traits<R(C::*)(T0) const> { enum { arity = 1 }; };

template <typename C, typename R, typename T0, typename T1>
struct function_traits<R(C::*)(T0,T1) const> { enum { arity = 2 }; };

template <typename C, typename R, typename T0, typename T1, typename T2>
struct function_traits<R(C::*)(T0,T1,T2) const> { enum { arity = 3 }; };

//this is same as before 
template<typename Functor, size_t NArgs, typename ReturnType=void>
struct count_arg : std::enable_if<function_traits<Functor>::arity==NArgs, ReturnType>
{};

A full demo (without variadic template) : http://ideone.com/wbNj9

EDIT
Now this code supports any return type.

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Looks perfect, I will be trying in a couple of hours. I hope it will work with Visual Studio 2010. –  Cem Kalyoncu Nov 8 '11 at 17:14
    
Nice work. Tested on g++-4.6. +1 –  sehe Nov 8 '11 at 17:18
    
@CemKalyoncu: Edited and improved! –  Nawaz Nov 8 '11 at 17:19
    
Sadly it doesn't work in VS 2010, my hopes are with the next version of it. I will accept the answer since it solves the issue in more compliant compilers. I hope Visual Studio will not turn into Internet Explorer. –  Cem Kalyoncu Nov 8 '11 at 18:22
1  
Thanks a lot, you fix works. I was trying to get something similar using macros (like in VS own code, I was digging how they managed functional without variadic templates) but your way is much easier. –  Cem Kalyoncu Nov 8 '11 at 18:55

I suggest:

  void Set(void(*f)(int, int))
  { 
      std::function<void(int,int)> wrap(f);
      // ...
  }

  void Set(void(*f)(int))
  { 
      std::function<void(int)> wrap(f);
      // ...
  }
share|improve this answer
    
but then it won't work if he passes a function object –  Dani Nov 8 '11 at 16:57
    
It doesn't work with lambdas in VS 2010. They cannot be used as function pointers even without capturing. –  Cem Kalyoncu Nov 8 '11 at 17:06
    
@CemKalyoncu: that's surprising. Perhaps you'd need to sepcify the return type ([](int a) -> void { ... }) –  sehe Nov 8 '11 at 17:17
2  
@sehe: No, the problem is that the automatic conversion came into the standard too late for VS2010. –  Xeo Nov 8 '11 at 17:25

You can manually specify the type:

Set(std::function<void(int)>([](int a) {
    //...
}));
share|improve this answer
    
I know that works, but I'm trying to avoid it. I can also rename the functions. –  Cem Kalyoncu Nov 8 '11 at 17:03
    
@CemKalyoncu: if you can rename the functions you can just use Set1 with 1 parameter and Set2 with 2 parameters? –  Dani Nov 8 '11 at 17:07
    
The last resort will be that. There are actually four more Set functions which works fine (two for normal function pointers, two for class member functions). I'm now trying to expand it, and the problem is to support lambdas. –  Cem Kalyoncu Nov 8 '11 at 17:10

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