7

In my answer here, Barry pointed out that it's better to call views::transform(&Planter::getPlants) because views::transform([](Planter const& planter){... accidentally copies.

#if 1
    auto plants = planters
        | std::views::transform([](Planter const& planter){ return planter.getPlants();})
        | std::views::join
        | std::views::common
        ;
// Plant copy constructor
// Plant copy constructor
// Plant copy constructor
// Plant copy constructor
// Plant copy constructor
#else
    auto plants = planters
        | std::views::transform(&Planter::getPlants)
        | std::views::join
        ;
#endif
// Plant copy constructor
// Plant copy constructor

Here Plant is a wrapper around int and Planter is a wrapper around std::vector<int>.

https://godbolt.org/z/dr7PM5Tvd

1 Answer 1

7

Oh I actually know this one. The deduced return type of the lambda actually decays the const ref qualifiers of getPlants.

You can fix this by declaring the return type of the lambda to be decltype(auto)

views::transform([](Planter const& planter) -> decltype(auto){...});

https://godbolt.org/z/ocK5PG1z1

7
  • Then how it is possible to be a copy?
    – UserUsing
    Oct 16, 2022 at 4:56
  • @UserUsing you'll have to clarify Oct 16, 2022 at 5:10
  • 1
    Good one, I lost count of how many times I've made this mistake.
    – thedemons
    Oct 16, 2022 at 7:35
  • views::transform([](Planter const& planter){... accidentally copies. I am wondering how; because what we returning in the lambda is a ref wrapper to the vector of "Plant"/ int. This is a const ref, so no copy, right?
    – UserUsing
    Oct 16, 2022 at 16:22
  • 2
    @UserUsing Yes, the return type of getPlants is Planter const& but without decltype(auto) the return type of the lambda is just Planter Oct 16, 2022 at 21:24

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