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A member is defined as

std::shared_ptr<std::array<std::string, 6> > exit_to;

which points to additional data shared among others. When try to initiate the pointer "exit_to". The correct way is

node_knot.exit_to = std::make_shared<std::array<std::string, 6> >();

But it's in another file and I'd like to keep the pointer type consistent, something like this:

node_knot.exit_to = std::make_shared<decltype(*node_knot.exit_to)>();

But won't compile:

 /usr/include/c++/4.6/bits/shared_ptr_base.h:798:54: error: '__p'
 declared as a pointer to a reference of type
 'std::array<std::basic_string<char>, 6> &'
         __shared_ptr(const __shared_ptr<_Tp1, _Lp>& __r, _Tp* __p)
                                                             ^ /usr/include/c++/4.6/bits/shared_ptr.h:93:31: note: in instantiation
 of template class
 'std::__shared_ptr<std::array<std::basic_string<char>, 6> &, 1>'
 requested here
     class shared_ptr : public __shared_ptr<_Tp>
                               ^ ../node_booker.h:757:20: note: in
 instantiation of template class
 'std::shared_ptr<std::array<std::basic_string<char>, 6> &>' requested
 here
                                                         n.exit_to = std::make_shared<decltype(*n.exit_to)>();

I'm under Ubuntu 12.10, clang++ 3.2, with --std=c++11

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2 Answers 2

up vote 6 down vote accepted

You need to remove the reference from the type you are passing to make_shared. The following should work:

node_knot.exit_to = std::make_shared<std::remove_reference<decltype(*node_knot.exit_to)>::type>();
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Great! I'll see if remove_reference does the trick! –  cpp initiator Mar 20 '13 at 19:48

The problem is that the type of *exit_to is a reference, and you can't have a shared_ptr to a reference.

You could remove the reference, but instead of finding the type returned by operator* and then stripping the reference off it, it's probably easier to just ask the shared_ptr what type it contains:

node_knot.exit_to = std::make_shared<decltype(node_knot.exit_to)::element_type>();

The nested element_type is the type stored by the shared_ptr.

Another option would be to add a typedef to the class and use it consistently wherever you need it:

typedef std::array<std::string, 6> string_array;
std::shared_ptr<string_array> exit_to;

// ... 

node_knot.exit_to = std::make_shared<Node::string_array>();

This is a lot more readable than using decltype

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I would argue that the construct decltype(node_knot.exit_to)::element_type defeats the purpose of using decltype, since you are assuming (or adding the constraint that) the type of node_knot.exit_to has an element_type member, which isn't even true for most all STL types. Your second solution sounds better though. One observation though, including the name of the type in the typedef itself kind of devalues a typedef doesn't it. And advantage of typedefs is you can change the underlying container type of your string_array to whatever else without changing all occurrences in code. –  Zadirion Mar 20 '13 at 19:35
    
However putting the _array in string_array kind of defeats that purpose, since once the underlying type changes, the name no longer reflects the type. See that dreadful thing called the Hungarian Notation, yuck: en.wikipedia.org/wiki/Hungarian_notation –  Zadirion Mar 20 '13 at 19:36
    
@Zadirion, so using make_shared doesn't already assume shared_ptr? As for the typedef, I agree in general, but it depends what the requirements are on the type. If it could be any sequence, putting array in the name would be misleading, but if it is a design requirement that it has contiguous elements of some string-like type then calling it a string_array is fine, and still works even if you change the implementation to vector<string>, or just to an array of different length. Without knowing more context you can't say if the name should be more generic. –  Jonathan Wakely Mar 20 '13 at 20:21
    
my apologies, I overlooked the fact that std::make_shared was assigning back to node_knot.exit_to itself instead of other shared pointer, in which case what I said would have made sense. –  Zadirion Mar 20 '13 at 20:23
    
as for Without knowing more context you can't say if the name should be more generic. . Well, being particular is a lot more unsafe than being general and encompassing all possibilities :P. typedef std::array<std::string, 6> string_container; Is a bit better. Still has string in the name, but at least string can be std::string or std::wstring or CString or whatnot. But that's just me nitpicking. Back on topic, your answer is quite good, I upvoted. I'd still go with remove_reference though just because its a more general approach. It all boils down to a matter of preference though –  Zadirion Mar 20 '13 at 20:29

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