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If all of the members of std::tuple are of standard layout types, is that std::tuple itself standard layout? The presence of a user-defined copy-constructor makes it non-trivial, but I was wondering if it can still be standard layout.

A quote from the spec would be good.

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If you want to know this because you'd like an optimization opportunity, you should use std::is_standard_layout and take a compile-time branch. Then you can rest knowing that you're being optimal without knowing all the details of the type itself. –  GManNickG Mar 23 '12 at 3:18
    
It seems like it would, but I can't find any mention of standard layout in the section of the standard that covers tuple. There might be a mention somewhere else, but if so I haven't found it yet. –  Jerry Coffin Mar 23 '12 at 3:21
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1 Answer

up vote 4 down vote accepted

No, standard layout requires that all nonstatic data members belong to either one base subobject or directly to the most derived type, and typical implementations of std::tuple implement one member per base class.

Because a member-declaration cannot be a pack expansion, in light of the above requirement, a standard layout tuple cannot have more than one member. An implementation could still sidestep the issue by storing all the tuple "members" inside one char[], and obtaining the object references by reinterpret_cast. A metaprogram would have to generate the class layout. Special member functions would have to be reimplemented. It would be quite a pain.

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Typical implementations, yes, but not good implementations (according to Howard :-P); I suspect they could have required that tuples of standard-layout types only be standard layout... –  ildjarn Mar 23 '12 at 3:11
    
@ildjarn see edited answer –  Potatoswatter Mar 23 '12 at 3:11
    
See edited comment. ;-] –  ildjarn Mar 23 '12 at 3:12
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I think it's impossible for user code (edit: I standard corrected here), but the standard library is allowed to use magic. (The compiler could generate classes as needed internally.) In any case, this answer is pretty much along the right vein: standard library implementations are allowed to derive from whatever they want, as long as it has a reserved name. And that 'whatever' could have virtual functions, members, mixed-access members, etc. (§17.6.5.11) –  GManNickG Mar 23 '12 at 3:15
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@Potatoswatter: since we are talking C++11, you could be using a combination of std::aligned_storage to have a block suitably aligned to begin with and constexpr functions to give the offset of each member. However, you would not get EBO. –  Matthieu M. Mar 23 '12 at 10:10
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