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The following defines a variadic non-type nested class template, DEF. The non-type template parameters may be heterogeneous according to the type arguments provided for Ts.

template <typename ...Ts>
struct ABC {
  template <Ts ...Xs>
  struct DEF {};
};

A DEF object can be declared as follows:

ABC<int,bool>::DEF<17,true> x;

My question is, can the number of non-type template arguments provided to DEF be less than the number of type template arguments provided to ABC? For example, are either of these declarations valid:

ABC<int,bool>::DEF<17> y;
ABC<int,bool>::DEF<  > z;
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1 Answer

up vote 2 down vote accepted

No, because Ts... is a pack-expansion.

§14.5.3 [temp.variadic]

p4 A pack expansion consists of a pattern and an ellipsis, the instantiation of which produces zero or more instantiations of the pattern in a list (described below). The form of the pattern depends on the context in which the expansion occurs. Pack expansions can occur in the following contexts:

  • [...]
  • In a template parameter pack that is a pack expansion (14.1):
    • if the template parameter pack is a parameter-declaration; the pattern is the parameter-declaration without the ellipsis;
    • [...]

p6 The instantiation of a pack expansion [...] produces a list E1, E2, ..., EN, where N is the number of elements in the pack expansion parameters. [...]

So both your examples would be ill-formed, since DEF will take exactly <int, bool>.

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Thankyou Xeo. I wonder how this affects the nature of the Xs name? Would the implication from your answer not be that this assigns a name only to the last type? I see with Clang and GCC that a use of Xs... from the example above can expand to fill a tuple<int,bool>(17,true) via make_tuple(Xs...). –  user2023370 Nov 22 '12 at 7:34
1  
@user: Just because Ts... is a pack expansion doesn't mean that Xs is not a parameter pack. :) –  Xeo Nov 22 '12 at 12:13
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