95

In C++, the operator :: is used to access classes, functions and variables in a namespace or class.

If the language specification used . instead of :: in those cases too like when accessing instance variables/methods of an object then would that cause possible ambiguities that aren't present with ::?

Given that C++ doesn't allow variable names that are also a type name, I can't think of a case where that could happen.

Clarification: I'm not asking why :: was chosen over ., just if it could have worked too?

124

Due to attempts to make C++ mostly compatible with the existing C code (which allows name collisions between object names and struct tags), C++ allows name collisions between class names and object names.

Which means that:

struct data {
    static int member;
};

struct data2 {
    int member;
};

void f(data2& data) {
    data.member = data::member;
}

is legit code.

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  • 11
    So the answer to the question in the title is Yes, it would, isn't it? – Enrico Maria De Angelis Feb 1 at 20:37
  • 2
    @EnricoMariaDeAngelis it's not that simple. Were C++ developed as a completely new language, like Java or C#, the ambiguity could probably be avoidable. But C++ was developed as "C with classes", and that's why it's not. "Yes, it will" is a correct answer, but to a different question. – Kit. Feb 1 at 20:58
  • Wait, isn't the assignment line just showing that putting . or :: between the same two "words" has different effect (data.member refers to the member of the data object of class data2, whereas data::member refers to the member of the class data)? – Enrico Maria De Angelis Feb 1 at 21:03
  • 1
    Yes, but it's not something that language designers should be proud of. It's just an artifact of compatibility decisions. – Kit. Feb 1 at 21:19
  • Ok, I understand that how C++ is today and has been so far (also) depends on what C was at the time C++ developed from it. But talking of C++ as it is, and leaving aside why it is as it is, there would an ambiguity if all :: were changed to .. In a way you answered yes already. I simply cannot breach into you first comment. Maybe my level makes that comment look smoky to me. – Enrico Maria De Angelis Feb 1 at 21:27
37

An example where both are valid, but refer to different objects:

#include <iostream>

struct A {
    int i;
};

struct B {
    int i;
    A B;
};

int main() {
    B x {0, 1};
    std::cout << x.B.i << '\n';
    std::cout << x.B::i << '\n';
}

See live on coliru.

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  • And this one couldn't be easily resolved with different design decisions! – user253751 Feb 3 at 15:48
7

There is difference between a::b and a.b where :: implies that a used as namespace, which means that it is namespace or typename. Provided that C++ supports non-virtual plural inheritance and that a variable can have same name as a type, this strips chances of referencing wrong object. It's necessary for template metaprogramming.

Another example would be &B::foo vs &B.foo in context of class B.

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2

Let extend @Deduplicator example:

#include <iostream>

struct A {
    int i;
};

struct B : public A {
    int i;
    A A;
};

int main() {
    B x {1, 2};
    std::cout << x.i << '\n';
    std::cout << x.B::i << '\n';  // The same as the line above.
    std::cout << x.A.i << '\n';
    std::cout << x.A::i << '\n';  // Not the same as the line above.
}

Live on Coliru Viewer

Not having a possibility to differentiate with help of ::, which member we want to access, it is impossible to access members declared in a parent class with identical names.

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  • A A (variable name that is also a type name) isn't valid in C++ though, so this example doesn't work for now – Jimmy R.T. Feb 14 at 10:41
  • 1
    @JimmyR.T. There is the working life example on Coliru Viewer. Confirm your statement please with a paragraph from the standard. – S.M. Feb 14 at 15:51
  • if one would add the cursed inheritance diamond here with same thing on other side, it would be a pinnacle of naming schizophrenia possible in C++ – Swift - Friday Pie Feb 15 at 9:08

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