2

Here's the thing, it seems it's possible to pass a templatized struct which contains some static functions like this:

template <class T> struct FunctionHolder {};

template <> struct FunctionHolder<string> {
    static void f(const string &s) {
        cout << "f call " << s << endl;
    }
};

template <class Key, class Value, class Holder = FunctionHolder<Key>>
class Foo {
  public:
    Foo(Key k) {
        Holder::f(k);
    }
};

int main(int argc, char *argv[]) {
    Foo<string, int> foo = Foo<string, int>("test_string");
}

But, would it be possible to pass directly templatized functions without been defined statically on templatized structs? I've tried this and it won't compile:

template <class string> static void f(const string &s) {
    cout << "f call " << k << endl;
}

template <class Key, class Value, typename func<Key>> class Foo {
  public:
    Foo(Key k) {
        func(k);
    }
};

int main(int argc, char *argv[]) {
    Foo<string, int> foo = Foo<string, int>("test_string");
}

Asking this cos it's not cool to be forced to create dummy structures (structures containing a bunch of static functions) to be used as template type of the main class.

1

Unfortunately function templates can't be used as template template arguments; you can use function pointer as the non-type template parameter instead, e.g.

template <class Key, class Value, void(*func)(const Key&) = f<Key>> class Foo {
  public:
    Foo(Key k) {
        func(k);
    }
};

LIVE

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.