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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>();
}
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You need to clarify what that even means. That's like having a definition of triangle and asking "but what if it had four sides?" Templates generate types from arguments: how do you auto an argument? –  GManNickG Apr 11 '11 at 22:18
    
@GMan: Updated, hope it makes more sense now. :) –  Xeo Apr 11 '11 at 22:27

2 Answers 2

up vote 9 down vote accepted

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.

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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

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);
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