Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

After 1 or 2 hours spent to isolate a compilation error surrounded by a metaprogramming mess generating awfull compilation messages, here is a minimal and simple example that illustrates my problem:

#include <iostream>
#include <type_traits>
#include <array>
#include <utility>
#include <tuple>

template <class Crtp, class... Types>
struct Base
{
    Base(const Types&... rhs) : 
        data(std::forward_as_tuple(rhs...)) {;}
    std::tuple<Types...> data;
};

struct Derived 
: public Base<Derived, std::array<double, 3>>
{
    template <class... Args> 
    Derived(Args&&... args) :
        Base<Derived, std::array<double, 3>>(std::forward<Args>(args)...) {;}
};

int main(int argc, char* argv[])
{
    Derived a(std::array<double, 3>({{1, 2, 3}})); 
    Derived b(a);
    Derived c(std::array<double, 3>()); 
    Derived d(c); // Not working : why ?
    return 0;
}

This is compiled with g++ 4.8.1 and I do not understand exactly why the compiler complain when I try to copy c in d and not a in b.

Here is the error:

main.cpp: In instantiation of ‘Derived::Derived(Args&& ...) [with Args = {Derived (&)(std::array<double, 3ul> (*)())}]’:
main.cpp:28:16:   required from here
main.cpp:20:73: error: no matching function for call to ‘Base<Derived, std::array<double, 3ul> >::Base(Derived (&)(std::array<double, 3ul> (*)()))’
         Base<Derived, std::array<double, 3>>(std::forward<Args>(args)...) {;}
                                                                         ^
main.cpp:20:73: note: candidates are:
main.cpp:10:5: note: Base<Crtp, Types>::Base(const Types& ...) [with Crtp = Derived; Types = {std::array<double, 3ul>}]
     Base(const Types&... rhs) : 
     ^
main.cpp:10:5: note:   no known conversion for argument 1 from ‘Derived(std::array<double, 3ul> (*)())’ to ‘const std::array<double, 3ul>&’
main.cpp:8:8: note: constexpr Base<Derived, std::array<double, 3ul> >::Base(const Base<Derived, std::array<double, 3ul> >&)
 struct Base
        ^
main.cpp:8:8: note:   no known conversion for argument 1 from ‘Derived(std::array<double, 3ul> (*)())’ to ‘const Base<Derived, std::array<double, 3ul> >&’
main.cpp:8:8: note: constexpr Base<Derived, std::array<double, 3ul> >::Base(Base<Derived, std::array<double, 3ul> >&&)
main.cpp:8:8: note:   no known conversion for argument 1 from ‘Derived(std::array<double, 3ul> (*)())’ to ‘Base<Derived, std::array<double, 3ul> >&&’
share|improve this question

3 Answers 3

up vote 3 down vote accepted

This is the most vexing parse:

Derived c(std::array<double, 3>());

is a declaration of a function c which returns a Derived and takes one unnamed argument of type pointer to function that takes no argument and returns std::array<double, 3>. Therefore Derived d(c) tries to call Derived constructor from the function c. This is what GCC is saying here:

main.cpp: In instantiation of ‘Derived::Derived(Args&& ...) [with Args = {Derived (&)(std::array<double, 3ul> (*)())}]’:

Try this:

Derived c{std::array<double, 3>{}};
share|improve this answer
    
Is it a bug in GCC or is it normal ? –  Vincent Jul 5 '13 at 11:40
    
@Vincent: This is normal (and famously known as The most vexing parse) according to the C++ standard. –  Cassio Neri Jul 5 '13 at 12:52

Works with:

Derived c(std::array<double, 3> {});

The compiler considers the parameter in

Derived c(std::array<double, 3>());

to be a function.

clang gives a warning for this:
!!warning: parentheses were disambiguated as a function declarator.

share|improve this answer
2  
Deserves Emphasis: use the C++11-style initializer => saves much trouble, including the trodden caveat of declaring a function where you mean to construct an object. –  xtofl Jul 5 '13 at 11:09

First make your Derived constructor explicit. If that does not help add copy constructor, but I do not think that would be required

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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