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Is there any advantage to using the following over the bottom one? And is there any other way to create template function aliases?

template <typename T, typename... Args>
auto MakeShared(Args&&... args) -> decltype(std::make_shared<T>(std::forward<Args>(args)...)) 
{
    return std::make_shared<T>(std::forward<Args>(args)...);
}

And:

template <typename T, typename... Args>
inline SharedPtr<T> MakeShared(Args&&... args)
{
    return std::make_shared<T>(args...);
}

The last seems more readable to me, and, what's more, Visual Assist highlights the inlined version like a proper function but seems confused about the first (yeah, I know it's a minor point, but still).

What about performance, flexibility, etc?

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What is your specific question? –  Robert Harvey Oct 24 '13 at 17:24
    
How does this make anything more readable o_O? (The obvious advantage of the first version is that it forwards its arguments properly) –  R. Martinho Fernandes Oct 24 '13 at 17:24
    
Well, in C++14, you can get rid of the trailing return type and just use auto. –  chris Oct 24 '13 at 17:25
2  
C++ doesn't exactly have a reputation for readability, especially from the "user" perspective. Why would a "user" need to read code? Is there a question in here somewhere? –  Robert Harvey Oct 24 '13 at 17:27
1  
I cannot determine whether your question is about the specific SharedPtr<T> case, or about aliasing templated functions in general. If you mean the former, I would not alias std::make_shared because it would mean more "conventions" to learn for the later developer, and more code for everyone to maintain. –  Escualo Oct 24 '13 at 17:32

1 Answer 1

up vote 2 down vote accepted

You cannot alias functions, you can write new functions that forward the actual work to existing functions, but you cannot just provide aliases.

Now, it is unclear what the real question is. For starters, I would not write wrappers around the standard library features, since that is only making your code more obscure. Wether you like std::make_shared better or worse than MakeShared or not, the former is well known to any C++ programmer, while the former is something non-obvious that needs to be looked up. (And I personally don't like function names starting with capital letters, but that is a different issue).

If the question is about the implementation, considering that you already know the return type of the wrapper, I would not use decltype, which really makes the code more obscure. But it is still important to use std::forward:

template <typename T, typename... Args>
std::shared_ptr<T> MakeShared(Args&&... args)
{
    return std::make_shared<T>(std::forward<Args>(args)...);
}

Adding the trailing return type and the decltype when the type is simpler to write and does not depend on the arguments at all is absurdly typing for no reason. The std::forward is needed to provide perfect forwarding of the template arguments. Otherwise you might end up calling the incorrect version of the constructor:

std::string f();
auto p = std::make_shared<std::string>(f());
    // calls std::string(std::string &&)
auto q = MakeShared<std::string>(f());          // assume no std::forward was used
    // calls std::string(std::string const &)

Without the std::forward in the implementation of MakeShared an rvalue passed as an argument to the function will be forwarded as an lvalue, causing the allocation of a new string, copying data and finally release of the old string at the end of the complete statement. With std::forward, the newly allocated std::string will move out of the argument string.

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