2

Here is some code from a presentation about async tasks in C++

template <class T> class Future<T>{
  //something
  void  foo(std::function<void(T)> cb);    
  //something
};

What does void(T) mean?

  • 2
    void(T) is a function signature (type) – user2249683 May 14 '14 at 12:19
  • void is the return type, as you can read in the reference. – Theolodis May 14 '14 at 12:19
7

What does void(T) mean?

That specifies a function type; specifically, a function taking a single parameter of type T, and returning nothing. In general, type specifiers for complex types look like their corresponding variable declarations, but without a variable name:

void f(T); // declare a function
void(T)    // specifier for a function type

int a[42]; // declare an array
int[42]    // specifier for an array type

In this case, the function type is used to specify the signature of the function-call operator of the std::function:

void operator()(T);

so that the function object can be used like a function with that type:

T some_t;
cb(some_t); // usable like a function taking `T`
6

cb is a std::function whose operator() takes a T and returns void.

1

void(T) is a function signature (type)

Note the signature is not a pointer to a function, not a pointer to a member function and no lambda:

#include<functional>

void a(int) {}
struct B {
    void f(int) {}
};


int main() {
    std::function<void(int)> fn;
    fn = a;

    B b;
    fn = std::bind(&B::f, b, std::placeholders::_1);

    auto lambda = [](int) {};
    fn = lambda;
}
0

The explanation can be as follows based on the C++11 specifications : A parameter list consisting of a single unnamed parameter of non-dependent type void is equivalent to an empty parameter list.

void is not a valid argument type for a function, however T in void(T) is a dependent type, it depends on a template parameter. That way you can have no arguments in the function based on the parameter of the template.

  • That would (partly) explain what void(void) meant, but doesn't answer this question. – Mike Seymour May 14 '14 at 12:24
  • I am going to explain what I think, void is not a valid argument type for a function, however T in void(T) is a dependent type--it depends on a template parameter. That way you can have no arguments in the function based on the parameter of the template. Is that right? – stripthesoul May 14 '14 at 12:30
  • Yes, the template would still be valid if instantiated with T=void, for the reason you describe. But that's got nothing to do with the question, which is "What does void(T) means?" – Mike Seymour May 14 '14 at 12:32
  • Understood, saw your answer to the post. – stripthesoul May 14 '14 at 12:35

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