16

Why does this code compile?

std::function<void(const int&)> f = [](int a)
{

};

Aren't int and const int& different types?

  • 3
    f can easily forward a const reference to the lambda, so it's valid. Try defining a function that accepts a const reference and forward it to a function that accepts an int like your lambda. It works, right? So, why shouldn't it work in this case? – skypjack Jul 29 '17 at 9:11
  • A gentleman with a rather handsome beard named Arthur O'Dwyer gave a talk at CppCon 2016 on templates and template type deduction which is available on youtube youtube.com/watch?v=vwrXHznaYLA – systemcpro Jul 29 '17 at 10:18
20

They are different, but it does not matter, because const int& argument can be passed to int parameter, and that is all that is required.

16

The reason for your code to work is that the templated constructor of std::function<R(Args...)> taking an arbitrary function object F requires F to be callable with Args... returning R.

template<class R, class... ArgTypes> 
class function<R(ArgTypes...)> { 
    template<class F> function(F f); 
};

Requires: F shall be CopyConstructible. f shall be Callable for argument types ArgTypes and return type R. [...]

A function object taking int is callable using const int& and thus this code is valid and meets the requirements since both return void.

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