31

What is the difference between:

auto x = vector<int>();

and

vector<int> x;

Are both of these declarations equivalent, or is there some difference with the run-time complexity?

  • 5
    The first results in a call to a default constructor and a call to a move constructor. The second results in a call to a default constructor. Even if the compiler optimizes both to result in the same assembly, the second one is the one to go for readability. – DeiDei Apr 16 at 3:19
  • 2
    Note that they are not the same for all classes. E.g. std::array<int,10>. The first will initialize to all 0, the second may not. – Matt Apr 16 at 12:09
43

They have the same effect since C++17. Both construct an object named x with type std::vector<int>, which is initialized by the default constructor of std::vector.

Precisely the 1st one is copy initialization, x is copy-initialized from a value-initialized temporary. From C++17 this kind of copy elision is guaranteed, as the result x is initialized by the default constructor of std::vector directly. Before C++17, copy elision is an optimization:

even when it takes place and the copy/move (since C++11) constructor is not called, it still must be present and accessible (as if no optimization happened at all), otherwise the program is ill-formed:

The 2nd one is default initialization, as a class type x is initialized by the default constructor of std::vector.

Note that the behaviors might be different for other types, depending on the type's behavior and x's storage duration.

  • 1
    @HTNW Pretty sure it's still copy-initialization. The term is defined in terms of syntax, not semantics. – Barry Apr 16 at 15:35
  • @Barry Hmm, you're right. – HTNW Apr 16 at 15:45

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