1

So say I have an object/pointer/whatever the definition of such a thing is:

A* a = new A();

who happens to have methods

b();
c();

The way of doing things that I've found out is this:

a->b();

and the method worked very well. However now I have seen people doing it this way:

(*a).b();

The question is: What is the difference (i.e. how are addresses and values managed in each) between these two ways of calling methods and according to that, which is best one to use?

If this a duplicate of other question, just let me know, I will erase it after I see the original question.

  • 1
    No difference just easier to see what it's doing. Plus other languages call methods that way. – qwertymk Feb 21 '12 at 18:40
6

There is no difference. It just a different notation.

2

For pointers, there is no difference:

If you declare:

A* pointer_to_A = new A();

Then these two are equivalent by definition:

pointer_to_A->b();
(*pointer_to_A).b();

If, however, you declare on object:

A a;

Then these two are not necessarily equivalent:

a->b();
(*a).b();

In this case, the first line invokes A::operator->() while the second invokes A::operator*(). (Aside: this case is somewhat rare. It is most often used for objects that behave like pointers: iterators, smart points and such. If they are well-designed, then the two forms above are still identical.)

  • I think you mean to say (*pointer_to_A).b(); in your code. Correct me if I'm wrong. Also, I see what you mean. So the deal is different with a self-initializing object. – Yokhen Feb 21 '12 at 18:46
  • @Yokhen - Thank you. I've fixed that now. – Robᵩ Feb 21 '12 at 18:55
0

There is no difference. Prefer -> as it is cleaner and states what you mean better.

However, -> and * can be overloaded. So for certain classes they may do different things, although this is very very uncommon, and impossible for pointers.

0

The -> notation is syntactic sugar.

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.