5

In C++, we can define a variable by reference like:

int foo = 3;
int &bar = foo;

Then, the following code

cout << foo << " " << bar;

will print

3 3

because the "value" of bar is tied to the value of foo by reference(&). I'm wondering, is there a way to tie the value of "bar" to two variables? Say I have three variables: geddy, neil, and alex, and I want neil to always equal alex + geddy. Is there a way two write something like:

int alex = 4;
int geddy = 5;
int &neil = alex + geddy;

So that neil will return 9? Then, if I change alex to 7, neil will return 12?

  • c++ does not work the way you want. neil will not dynamically change its value after the assignment if alex or geddy change. There is no syntax to make that happen. – drescherjm Apr 30 '16 at 1:48
  • Isn't this just a function? Besides, what would happen if you tried to assign something to neil? – Kateract Apr 30 '16 at 1:49
  • I think "complete nonsense" is a bit harsh. I misplaced an "&". Anyway, it's fixed now. – awwsmm Apr 30 '16 at 1:53
6

No, not really. You could make a function or functor though:

int alex = 4;
int geddy = 5;

auto neil = [&]() { return alex + geddy; };
std::cout << neil() << "\n";
  • Well that's unfortunate. But if that's the best I've got, I'll have to figure out how to work with it. Thanks! – awwsmm Apr 30 '16 at 2:31
  • 2
    @AndrewWatson: You can automate the () call as a conversion operator on an object of class type, so you can get the notation that you apparently want. But making things implicit is often an Ungood Idea™, especially when it doesn't remove verbosity. In std::cout << neil() << "\n" a reader can see what this does, that there is a function call, but in std::cout << neil << "\n" the call is not apparent. That said, it sounds as if you really want spreadsheet functionality, not a C++ program. A spreadsheet can be a good ad hoc solution to a practical problem. – Cheers and hth. - Alf Apr 30 '16 at 2:57

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