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I am a little confused if it possible an how to use a variadic tuple as an argument in a function and how to initialize it.

    template <typename T, Arg ...> 
      void foo (int a, std::tuple<T, sizeof(Arg)> TupleTest);
...

foo(TupleTest(2, "TEST", 5.5));

How could that be implemented using c++0x?

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1  
This is a bit unclear - what are you trying to achieve? You can just say template <typename ...Args> void foo(std::tuple<Args...> t) { /* ... */ }. –  Kerrek SB Jan 5 '12 at 18:19
    
What is TupleTest? Is it a type of tuple? Why int a is outside of the Tuple? What's the meaning of putting sizeof(Arg) there? –  kennytm Jan 5 '12 at 18:27

2 Answers 2

up vote 4 down vote accepted

You don't need to get the number of template arguments. Just do this:

template <typename... T>
void foo(int a, std::tuple<T...> TupleTest);

// make_tuple so we don't need to enter all the type names
foo(0, std::make_tuple(2, "TEST", 5.5));
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What do you want sizeof for? Just use the variadic expansion:

template <typename T, typename Arg ...> 
void foo(int a, std::tuple<T, Arg...> TupleTest);

And here, TupleTest is the name of the argument, not a type name. So when invoking the method, don’t use it.

foo(42, std::tuple<int, char const*, double>(2, "TEST", 5.5));

Finally, the type argument T serves no real purpose (unless you explicitly want to forbid an empty template list) so you can just remove it without loss.

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