6
class Foo {
public:
    Foo(int a, int b);
        Foo();
};


Foo foo;
int main(){
 foo(1,3);
}

Is this the correct thing to do, if I am using a global class Foo?

If no, can you please which is the correct way to doing this?

NOTE: I want the class object globally.

2
  • Yes, that's the way to do it.
    – Lohrun
    Sep 16 '13 at 8:20
  • The only problem with your code is that you are using foo as a functor, but Foo has no operator(). Sep 16 '13 at 9:01
7

Yes, you can declare a global variable of any type, class or not.

No, you can't then "call" the constructor again inside a function to initialize it. You can however use the copy assignment operator to do it:

Foo foo;

int main()
{
    foo = Foo(1, 3);
}

Or you can have a "setter" function that is used to set or reinitialize the object.

By the way, and depending on the data in the class, you might want to read about the rule of three.

4
  • Does an explicit empty destructor ~Foo() { } break the rule of three, thus preventing the compiler to implicitly implement one of the three special member functions?
    – qrtLs
    Jul 7 '16 at 9:43
  • 1
    @ItsmeJulian The rule of three isn't anything enforced or implemented by the compiler, it's more of a guideline for programmers. Though these days it's more like the rule of five, or even better the rule of zero. Jul 7 '16 at 10:46
  • I have never been able to make this function in classes I create, do you need to manually create a copy constructor etc?
    – MadHatter
    Oct 25 '19 at 15:04
  • @MadHatter The assignment relies on the copy-assignment operator, which often is created automatically by the compiler. If it's not created automatically, and the class is trivially copy-able (or follows the rule of zero) then you can define a defaulted copy-assignment operator like class Foo { public: Foo& operator=(Foo const&) = default; }; Oct 25 '19 at 15:18
5

It's certainly possible to have global objects. The correct way in your case is:

Foo foo(1, 3);

int main()
{
    // ...
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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