2

On C++ weekly ep. 48 by Jason Turner there is the following code:

template<typename ... B>
struct Merged : B...
{
  template <typename ... T>
  Merged(T && ... t) : B(std::forward<T>(t))...
  {  }

  using B::operator()...;
};

It fails with the following on gcc 7.1:

error: mismatched argument pack lengths while expanding 'B'

What is the proper way to Expand B?

(BTW, in the above link, the code seems to compile with some 7.0 snapshot).

Edit1:

As noted by @Jarod42, it will compile with Structs acting as the functors. The actual video use lambda and it seems to break there.

auto l1 = [] { return 4 ; };
auto l2 = [](const int i) { return i * 10; };
// This would work, S1, S2 are just functors structs
Merged<S1, S2> merged1(42, "hello");
// This fails
Merged merged2 = Merged(l1, l2);

Edit2:

Seems like User-defined deduction guides does not work here.

template <typename ... T>
Merged(T...) -> Merged<std::decay_t<T>...>;

The above should have enable the following:

Merged merged(l1, l2);

But it does not. It seems like you have to pass the types to Merged<>

Merged<t1, t2> merged(l1, l2);

which probably not really what the tutorial wanted to demonstrate.

  • isnt that c++17 and not c++11 ? At least I get quite different errors when compiling with c++11 – formerlyknownas_463035818 May 12 '17 at 15:47
  • 2
    I suppose that you have provided the wrong number of parameters to the constructor? – Quentin May 12 '17 at 15:52
  • Works here. – Jarod42 May 12 '17 at 16:19
  • @Jarod42 - yes, clang would take it. Gcc would not.BTW - This has nothing to do with wrong number of params. And yes - as the video suggests, I'm using c++1z. – Kobi May 12 '17 at 16:34
  • 1
    @tobi303: using B::operator()...; is legal only in C++1z. – Jarod42 May 12 '17 at 16:37
2

Seems like there is no need to have any constructor defined here, and instead, just using C++17 aggregate:

template<typename ... B>
struct Merged : B...
{
//  This is not needed, it would actually render this class
//  to be a non-aggregate one.
//  template <typename ... T>
//  Merged(T && ... t) : B(std::forward<T>(t))...
//  {  }

    using B::operator()...;
};

// C++17 class deduction guidance (user defined)
template <typename ... T>
Merged(T...) -> Merged<T...>;

int main()
{
    auto l1 = [] { return 4 ; };
    auto l2 = [](const int i) { return i * 10; };
    // Note here, using {} for initializing an aggregate
    Merged merged{l1, l2};
}

Note the C++17 class deduction user defined guidance, plus using {} for initializing an aggregate.

Constructor is not needed. If we had it, this class would not be an aggregate anymore and the syntax used for initializing, would stop working.

1

With

template <typename ... T>
Merged(T&& ... t) : B(std::forward<T>(t))...
{}

sizeof...(T) should be equal to sizeof...(B): You have to provide one argument by base.

And then it works.

If you don't provide same number of argument, you hace error similar to:

error: mismatched argument pack lengths while expanding 'B'

  • OK @Jarod42 . Seems like the issue comes from the lambda part. this does not work. The link will be very close to the actual code in the video. – Kobi May 12 '17 at 16:40
  • 1
    It seems it is the auto type deduction which fails, see modified example with lambda – Jarod42 May 12 '17 at 16:48
  • Bingo @Jarod42. That works. thanks! – Kobi May 12 '17 at 16:50
  • BTW - it does mean that C++17 deduction guide feature is not working. The whole idea was to use this and not pass the template params explicitly. – Kobi May 12 '17 at 17:08
  • @Kobi use a deduction guide that removes references. – Guillaume Racicot May 12 '17 at 17:21

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.