2

I read that often list-initialization is preferred over the 'old' way of using round braces, because they don't allow narrowing conversions. The auto keyword has similar attributes, in that it avoids conversions at all. I wonder whether the following two statements are equivalent:

auto a = SomeClass(arg_a, arg_b);
auto b = SomeClass{arg_a, arg_b};

That is, apart from the fact that b has a different name than a ;)

By equivalent, i mean that for whatever arguments SomeClass takes, in whatever situation, i can replace the expression leading to the construction of a, with the construction leading to the construction of b, provided of course that i am using the auto keyword. Is this the case, or are there any pitfalls/considerations?

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5

They may or may not be the same, it depends on the type. For instance, if you have a std::vector then

auto vec1 = std::vector<int>(1, 2);

calls the constructor with the form of

vector( size_type count,
        const T& value,
        const Allocator& alloc = Allocator());

Which creates a vector of size 1 with the element having the value of 2. With

auto vec1 = std::vector<int>{1, 2};

the

vector( std::initializer_list<T> init,
        const Allocator& alloc = Allocator() );

constructor is called which creates a vector of size 2 containing the elements {1, 2}.

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  • Very interesting, haven't thought about that! Is it equivalent for classes that don't have a constructor taking an initializer_list as argument? – LeonTheProfessional Jun 11 at 20:28
  • 3
    @ancientchild Yes. If there is no std::initializer_list constructor then they will be the same. It's once there is a std::initializer_list constructor that you have to be careful, or design the constructors in such a way where this can't happen. – NathanOliver Jun 11 at 20:29

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