17

Is it somehow possible? I want that to enable compile-time passing of arguments. Suppose it's only for user convenience, as one could always type out the real type with template<class T, T X>, but for some types, i.e. pointer-to-member-functions, it's pretty tedious, even with decltype as a shortcut. Consider the following code:

struct Foo{
  template<class T, T X>
  void bar(){
    // do something with X, compile-time passed
  }
};

struct Baz{
  void bang(){
  }
};

int main(){
  Foo f;
  f.bar<int,5>();
  f.bar<decltype(&Baz::bang),&Baz::bang>();
}

Would it be somehow possible to convert it to the following?

struct Foo{
  template<auto X>
  void bar(){
    // do something with X, compile-time passed
  }
};

struct Baz{
  void bang(){
  }
};

int main(){
  Foo f;
  f.bar<5>();
  f.bar<&Baz::bang>();
}
  • @GMan: Updated, hope it makes more sense now. :) – Xeo Apr 11 '11 at 22:27
13

After your update: no. There is no such functionality in C++. The closest is macros:

#define AUTO_ARG(x) decltype(x), x

f.bar<AUTO_ARG(5)>();
f.bar<AUTO_ARG(&Baz::bang)>();

Sounds like you want a generator:

template <typename T>
struct foo
{
    foo(const T&) {} // do whatever
};

template <typename T>
foo<T> make_foo(const T& x)
{
    return foo<T>(x);
}

Now instead of spelling out:

foo<int>(5);

You can do:

make_foo(5);

To deduce the argument.

  • 4
    This is even more useful in C++0x, where you can use auto my_foo(make_foo(5)); without ever having to name the type foo<int> in entirety. – James McNellis Apr 11 '11 at 22:22
  • if passing the argument to a function would have been a concern then asker could have directly used f.bar(5); and declare the method simply as template<typename T>void bar(T &X);. What is the use of your make_foo() ? – iammilind Apr 12 '11 at 3:30
  • @iammilind: It was for an old guess to his question, before he clarified. – GManNickG Apr 12 '11 at 3:58
  • 1
    @iamm: template argument deduction only works with functions, not classes. – Dennis Zickefoose Apr 12 '11 at 4:02
  • Why isn't this possible, all the information is available to the compiler, it seems like a very arbitrary limitation? – Jonathan. May 18 '16 at 15:13
3

It was added in C++17 Now you can write

template<auto n> struct B { /* ... */ };
B<5> b1;   // OK: non-type template parameter type is int
B<'a'> b2; // OK: non-type template parameter type is char

See http://en.cppreference.com/w/cpp/language/template_parameters, point 4 of Non-type template parameter section

1

It's NOT possible. The only way to achieve is to pass argument into the function:

struct Foo{
  template<class T> void bar(T& X) {}
};

And then call the function as,

f.bar(5);
f.bar(&Baz::bang);

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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