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I'm going out on a limb here, assuming that it is possible but I'm not quite sure. Basically what I'm looking for is a way to switch at compile-time between using a default constructor or a constructor that takes one argument by reference.

i.e.

T* create<T>()
{
    return new T(1); // if possible
}

T* create<T>()
{
    return new T(); // fallback to here
}

I'm using the VS2010 compiler and it does not support std::is_constructible but I can use decltype.

I went digging in the VS2012 type_traits header and looked at the std::is_constructible implementation and well I got a bit turned around. I don't get it how people write code that way. The headers are the most convoluted piece of code I've ever seen. Anyway, I saw that it was using decltype and it got me think, hopefully someone with more experienced can provide me with an answer.

After going through @ipc's answer I've settled on the following code

// std::declval is not supported by VS2010
template <typename T> typename std::add_rvalue_reference<T>::type declval();

template <class T, class R0>
decltype(new T(declval<R0>()))
createInstance_(R0& r0, int = 0)
{
    return new T(r0);
}

template <class T, class R0>
T*
createInstance_(R0&, ...)
{
    return new T();
}

The above code will work but it does confuse the IntelliSense Engine, anyway I thought it was nice that you could omit the extra function by simply using a default argument. I've tested this code with VS 2010 and it compiles fine and runs as expected.

share|improve this question
    
Out of curiosity looked inside <type_traits>. Maybe one of the reasons of such code is because VC2012 still doesn't support variadic templates, but they wanted STL to behave accordingly to the Standard. –  prazuber Dec 5 '12 at 19:16
    
Yeah, they did the same thing with make_shared... –  John Leidegren Dec 5 '12 at 19:30
    
Use SFINAE, surely. –  Lightness Races in Orbit Dec 5 '12 at 19:38

1 Answer 1

up vote 5 down vote accepted

I have no VS2010 to check if it compiles there, but the following matches your example.

template <typename T> // if std::declval is not supported by VS10
typename std::add_rvalue_reference<T>::type declval();

template <typename T>
decltype(new T(declval<std::string>()))
create_(std::string param, int) { return new T(param); }
template <typename T>
T * create_(std::string, ...) { return new T(); }

template <typename T>
T * create(std::string param) { return create_<T>(param, 0); }

int main()
{
  std::cout << *create<int>("a") << '\n';
  std::cout << *create<std::string>("b") << '\n';
}

Output:

0
b
share|improve this answer
    
A very nice implementation. –  Lightness Races in Orbit Dec 5 '12 at 19:40
    
Okay, but what if you need to parameterize int as well. I used int as a silly example, int is really a user defined type in my situation. I didn't explicitly state this in the question, I know the type, it's always the same but the funny thing here is that you're utilizing a literal in the type to make that thing work... –  John Leidegren Dec 5 '12 at 19:44
    
error C4519: default template arguments are only allowed on a class template –  Lol4t0 Dec 5 '12 at 19:45
    
@Lol4t0 hmm, I think that actually explains some of the implementation details in VS2012 since they just shipped the CTP bits with support for that... though, I cannot use it. –  John Leidegren Dec 5 '12 at 19:47
    
I've removed the default template argument and added a parametrized int. –  ipc Dec 5 '12 at 19:51

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