Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

A requirement of A.B is that A must declare @synthesize before using the setter or getter but A->B doesn't require this.

I don't understand which is better and what one uses the least amount of memory?

If I convert from A.B to A->B will it use less memory or the same amount? A->B uses less memory because you don't need to declare @synthesize, right?

share|improve this question
    
@peoro: Objective-C is related to C (and, less so, C++). It would make sense to leave the tags there. –  BoltClock Jan 21 '11 at 16:55
1  
@BoltClock: this question contains some objective-c specific things (like @synthesize). Besides any C question would be related to Objective C and to C++ (a little less); let's alias these three tags then... –  peoro Jan 21 '11 at 16:59
2  
The dynamics of . and -> for Objective C properties are different enough from C and C++ that I think those tags should be removed. The current C and C++ answers are incorrect for Objective C. –  Matt B. Jan 21 '11 at 17:01
1  
There is no need for either @synthesize or @property for a.b to work. –  bbum Jan 21 '11 at 18:38

5 Answers 5

up vote 3 down vote accepted

If a is an Objective-C object then a.b = c; is the same as to write [a setB:c];.

setB: in this case is a default name for automatic generated setter method when you are specifying @property (...) typeB b; and @synthesize b. Instead of ... you can place corresponding memory specifier, as retain, assign, copy. By writing a->b = c you avoid using setter method, and access b directly.

So, construction a->b generates less extra-code but breaks one of the major OOP notion of "Encapsulation" and you also should handle memory related staff manually.

For example if you've specified retain in b's @property, then construction a.b = c will behave almost in the same fashion as a->b = [c retain].

share|improve this answer
    
thank you Martin Babacaev you answer clearly –  RAGOpoR Jan 21 '11 at 17:29

Since your question is tagged C too, a->b and a.b access the same element (b) of the structure (a), but in the first case a is a pointer to a structure, while in the second a is a structure itself.

share|improve this answer

It's not a case of one being better than the other. They do different things.

If you declare a property (i.e., an @property and a @synthesize or @dynamic), then the compiler will generate getters and setters for you, both using the standard Objective-C naming conventions.

a->b is actually a C construct. It can be used in Objective-C but is much less common. Perhaps the easiest way to explain is with the following code:

typedef struct { int a; int b; } someType;

someType a;
someType* b;

// assign values 
a.a = 1;
a.b = 2;

// also assign values (assume memory has been allocated)
b->a = 1;
b->b = 2;

(This is from memory. There may be typos.)

share|improve this answer
    
can you tell me if i convert from a.b into a->b is that will use less memory or it not change? –  RAGOpoR Jan 21 '11 at 17:23
a.b => member b of object a
a->b => member b of object pointed by a

In first memory to object a is allocated on stack. In the second case, memory for the object that a is pointing to is given from free store.

Note: Since your question tagged C++.

share|improve this answer

if a is a struct use a.b

if a is a pointer to a struct use a->b

if a is an object pointer and b is a ivar use a->b

if a is an object pointer and b is a property use a.b

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.