11

Why is the following code legal in C++?

bool a(false);

I mean, the T a(VALUE) should call constructor, right? I suppose it's not parsed as function declaration. But bool is plain type, it doesn't have constructor. Or does it?

I'm using Visual Studio 2012 if it's relevant.

  • 4
    It is legal because the designers of the language said so. What would be a good reason to make it illegal? – juanchopanza Jul 31 '15 at 13:38
  • int x(5) is allowed as well. The "constructor" is just a no-op, if we want. – edmz Jul 31 '15 at 13:39
  • 1
    why plain types cannot have constructors? – user3528438 Jul 31 '15 at 13:39
  • I guess it isn't any different from int x(5), it's just that I never saw this syntax before. All I knew was bool a { false }; and bool a = false;. So I was just curious.. – graywolf Jul 31 '15 at 13:40
  • 3
    @Paladin bool a { false }; is the same as bool a(false); {} form was not available before c++11 – Slava Jul 31 '15 at 13:44
13

That is just a valid syntax to initialize POD types and have a similar behavior to a constructor (or even a copy constructor for that matter).

For example, the following would be valid:

bool a(false);
bool b(a);
bool c = bool(); // initializes to false

One interesting thing to note is that in

int main(int argc, const char *argv[])
{
  bool f();
  return 0;
}

f is a function declaration!

  • bool c = bool(); // initializes to false Are you sure? – user3528438 Jul 31 '15 at 13:52
  • 1
    @user3528438, yes, after that statement, c would be a bool with false as value. – Vincenzo Pii Jul 31 '15 at 13:54
  • Interesting, I thought bool c = bool(); is equivalent to bool c; and would give c a indeterminate value if c is not static storage duration. – user3528438 Jul 31 '15 at 14:04
26

Although bool is a primitive type, and as such has no constructor, language designers introduced unified initialization syntax that works for primitives as well as for classes. This greatly simplifies writing template code, because you can continue using the

T tVar(initialVal);

syntax without knowing if T, a template type parameter, is primitive or not. This is a very significant benefit to template designers, because they no longer need to think about template type parameters in terms of primitive vs. classes.

  • This should be accepted as an answer. I really like this answer because it explains the real reason behind this syntax. Bjarne Stroustrup also says exactly like this in his book "The C++ Programming language" Section 6.2.8. +5 – Destructor Dec 17 '15 at 7:05
  • Upvoted. now it has voted 2x more than the accepted answer. Hop you get gold badge now. ;-) – Nawaz Aug 20 '16 at 14:29
4

This is no different than any other primative type, e.g.

int a(5);

Primitive types have no constructors, what you are invoking is direct-initialization

  • 2
    That doesn't look like value initialization. – juanchopanza Jul 31 '15 at 13:52
  • 2
    I think you mean direct initialization. – Vaughn Cato Jul 31 '15 at 14:12
  • 3
    You are both correct. One day I'll get the right name without having to double-check cppreference! – CoryKramer Jul 31 '15 at 14:14

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