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Edit: sorry about the stupid title; by "pointer object" I think I mean dereferenced object pointer (if that's any clarification).

I'm new to C++, and I've been trying to get used to its idiosyncrasies (coming from Java).

I know it's not usually necessary, but I wanted to try passing an object by its pointer. It works, of course, but I was expecting this to work too:

void test(Dog * d) {
*d.bark();
}

And it doesn't. Why is this? I found out that I can do the following:

void test(Dog * d) {
Dog dawg = *d;
dawg.bark();
}

and it works flawlessly. It seems so redundant to me.

Any clarification would be appreciated. Thanks!

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Great answers. Thanks everyone. I had no idea you could separate something like *dog with parenthesis. –  avr Jul 4 '12 at 4:29
    
Edited my answer, Alex; hope it clarifies the reason you can do things like that :) –  WendiKidd Jul 4 '12 at 4:30
2  
@Alex Reidy: Slightly unrelated..but note that Dog dawg = *d; will create a copy of d object passed. So bark will be called on the copied object and not on the d. –  Naveen Jul 4 '12 at 4:31
    
@AlexReidy Also, please upvote and/or accept answers which helped you :) –  WendiKidd Jul 4 '12 at 4:32
    
@AlexReidy Actually I upvoted 3 other answers on this question because they were right, too. And your stats made me think you were new to the site, so I was trying to explain how things worked in case you weren't aware. Apologies if it came across the wrong way. –  WendiKidd Jul 4 '12 at 4:43

6 Answers 6

up vote 6 down vote accepted

You have to use the -> operator on pointers. The . operator is for non-pointer objects.

In your first code snippet, try d->bark();. Should work fine!


EDIT: Other answers suggest (*d).bark();. That will work as well; the (*d) dereferences the pointer (ie. turns it into a normal object) which is why the . operator works. To use the original pointer, simply d, you must use the -> operator as I described.

Hope this helps!

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Great explanation of both methods! I always thought order of operations and parenthesis were only for mathematical operations. –  avr Jul 4 '12 at 4:34
    
@AlexReidy Thank you! :) And nope, parentheses just mean "do this first". –  WendiKidd Jul 4 '12 at 4:35
2  
@WendiKidd: "You have to use the -> operator on pointers.". One can apply -> on non-pointer object of type T also, if T has overloaded operator-> . –  Nawaz Jul 4 '12 at 4:50

Imo . has precedence over dereference * , thus:

(*d).bark();

or, for pointers, as stated in other replies - use ->

d->bark();

be sure to check for null :)

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7  
IMO? Your opinion has absolutely nothing to do with it. –  Richard J. Ross III Jul 4 '12 at 4:26
    
Ah, right. Pardon my english, I meant AFAIK :) 8 years since C++ days –  Ondra Žižka Jul 4 '12 at 4:27

Just to clarify the situation, you can use either (*pointer).member(), or pointer->member() -- a->b is equivalent to (*a).b.

That, of course, is assuming you're dealing with "real" (built-in) pointers. It's possible to overload operator-> to do something different. Overloads of operator-> are somewhat restricted though, which generally prevents people from doing too strange of things with them. The one thing you might run into (e.g., with old implementations of some iterators) is simply failing to support operator-> at all, so trying to use it will result in a compile error. Though such implementations are (mostly?) long gone, you might still see some (typically older) code that uses (*iterator).whatever instead of -> because of this.

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Its all in the parentheses:

(*d).bark();
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Everyone is missing one point to answer: Operator Precedence.

The precedence of operator. is higher than that of (unary) pointer indirection (*) opeartor. That's why brackets are needed. It's just like putting parenthesis around + to get correct average:

int nAverage = (n1+n2) / 2;

For pointer indirection case, you are lukcy that compiler is giving you error!

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You need to use -> operator when using pointers, i.e. code should be d->bark();.

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Thanks! Forgot what that was for. –  avr Jul 4 '12 at 4:28

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