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I have written a template-based factory system for a project I'm working on. These are the signatures for some of the function templates I have:

template <typename Interface, typename... Args>
void register_factory(identifier id, function<shared_ptr<Interface> (Args...)> factory);

template <typename Interface, typename... Args>
void unregister_factory(identifier id);

template <typename Interface, typename... Args>
shared_ptr<Interface> create(identifier id, Args... args);

As you see, I have to give all my function templates a typename... Args argument, because I need to access the variables in which I store factory functions:

template <typename Interface, typename... Args>
struct factory_storage {
  static map<identifier, function<shared_ptr<Interface> (Args...)> factories;
};

But logically, I should only need those for register_factory and create, everywhere else knowing Interface should suffice (all factory functions for the same interface have the same signature). In fact, if I had used void* instead of std::function, I could have gotten rid of most occurrences of typename... Args in my code.

Is there a way I could keep the type-safety of std::function and also avoid some of the clutter. I've seen std::tuple used for storing typename... arguments, and those could be one possible solution to my problem, but they seem overly complicated and I'm hoping to be able to avoid them.

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This may be related, I used it to solve a similar problem. –  πάντα ῥεῖ May 25 at 6:55
    
As the user have to remember the matching between id and Args type, does it make sense to return a template class ID based on Interface and Args instead of simple identifier id ? –  Jarod42 May 25 at 10:37
    
I need to make an std::function<Interface>(Args...) function type in any case. How could I construct that type if I don't receive Interface and Args as template arguments? –  Elektito May 25 at 10:49
    
@Elektito: I mean if id was something like identifier<Interface, Args...>, the template arguments you want can be deduced from id. –  Jarod42 May 26 at 7:10
    
That might be possible, but identifier here is an int typedef, widely used throughout the code for various purposes. I'd need to change a lot of code to make it like this. –  Elektito May 26 at 7:21

1 Answer 1

If the number of signature of std::function are fixed, a variant (as the one from Boost) is a possible solution.

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That is not the case, I'm afraid. This is a library, and I have no control over how it is going to be used later. –  Elektito May 25 at 10:21

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