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Is there any difference about p.a and p->a where p is pointer? or they are just same thing.

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8  
p.a should not work. You should get a warning/error from your compiler. – RedX Apr 13 '11 at 12:59
    
@RedX - That's not completely true. p could be smart pointer and a could be some public method/member of it. Then, for example, p.operator->() will be perfectly fine. – Kiril Kirov Apr 13 '11 at 13:26
    
@Kiril yes that could be true. So i could rephrase. p.a will not work for pointers but p->a might work for instances that overload operator->. He is also specifically asking when p is a pointer. – RedX Apr 13 '11 at 13:39
    
@Kiril Kirov: Do you see a C++ tag? I don't. There's no operator overloading in C or smart pointers. – JeremyP Apr 13 '11 at 13:55
    
@JeremyP - Ohhh, damn, I knew I was missing something. Sorry, I didn't see, that this is C, not C++ and I know that there are no smart pointers, nor operator overloading in C (: – Kiril Kirov Apr 13 '11 at 14:24
up vote 4 down vote accepted

The . operator is actually the operator for structure member access.

struct Foo
{
    int bar;
    int baz;
} aFoo;

aFoo.bar = 3;

If you have a pointer to a struct, (very common) you can access its members using pointer dereferencing and the . operator.

struct Foo *p;
p = &aFoo;

(*p).baz = 4;

The parentheses are needed because . has higher precendence than *. The above dereferencing a member of a structure pointed to by something is extremely common, so -> was introduced as a shorthand.

p->baz = 4; // identical to (*p).baz = 4

If p is a pointer, you never see p.anything in plain C, at least not in anything that compiles. However, it is used to denote property access in Objective-C which was a mistake IMO.

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*p = &aFoo or *p = aFoo? – Alan Tam Apr 13 '11 at 13:29
    
@Alan - p = &aFoo, but here, the * is because of the declaration. It's equivalent to: struct Foo *p; p = &aFoo; – Kiril Kirov Apr 13 '11 at 13:33
    
@Alan: Apologies. The line declares a pointer and initialises the pointer to the address of the previous struct variable. I'll edit the answer to make what is happening more obvious. – JeremyP Apr 13 '11 at 13:50
    
ok, i c, thanks all – Alan Tam Apr 13 '11 at 13:52

Yes, you can't do p.a on a pointer, the dot operator requires an actual instance, i.e. a value of the proper struct type.

Note that "under the hood", p->a is equivalent to (*p).a, but easier to type and read. Nobody ever uses the latter form, but it's sometimes handy as a way of understanding what the arrow operator does.

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Can i undertand things like that if p is address we use p->a or (*p).a, and if p is instance we use p.a or (&p)->a – Alan Tam Apr 13 '11 at 13:11
1  
Better: if pointer use p->a; if instance p.a. Thats how it's done 99,9% of the time. – RedX Apr 13 '11 at 13:17

try (*p).a or (&p)->a where p is a pointer and an instance respectively ;-)

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If p is a pointer then p.a isn't valid syntax.

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It's compile time error.. p->a is valid only.

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