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I thought I had a pretty good handle on memory management for objective-c, but I can't figure out the following situation:


@protocol MyProtocol
@end


@interface MyObject : NSObject {
    id<MyProtocol> reference;
}
@property (nonatomic, retain) id<MyProtocol> reference;
@end


@implementation MyObject 
@synthesize reference;
-(void) dealloc {
    [reference release];
    [super dealloc];
}
...
@end


This gives me a "warning: '-release' not found in protocol(s)". Can I safely ignore this error? Or am I doing something horribly wrong?

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up vote 30 down vote accepted

Yes you can safely ignore this error. An object declared as type id<MyProtocol> may not inherit from NSObject (you do not have to use the Cocoa libraries to program in Objective-C and there are other root classes even in Cocoa such as NSProxy). Since retain (and release, autorelease) are declared in NSObject, the compiler cannot know that the instance declared as type id<MyProtocol> responds to these messages. To get around this, Cocoa also defines the NSObject protocol which mirrors the NSObject API. If you declare your protocol as

@protocol MyProtocol <NSObject>
@end

indicating that MyProtocol extends the NSObject protocol, you'll be set.

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Ordinarily, when you declare an object as id it counts an an "any" object (meaning that Objective-C will let you invoke any method from any class or protocol on the id without warning).

However, when you declare an object as id<SomeProtocol>, the meaning changes. In this case, you are instead saying: I will only invoke SomeProtocol methods on this object.

The method:

- (void)release;

is declared in the NSObject protocol but you have explicitly stated: I will only invoke MyProtocol methods. So the compiler gives you a warning to tell you that you've broken your own promise.

Therefore, instead of:

id<MyProtocol> reference;

you should actually declare:

id<MyProtocol, NSObject> reference;

or:

NSObject<MyProtocol> reference;

since NSObject (the class) implements NSObject (the protocol).

or:

id reference;

which is the broadest of the lot: let me invoke anything on this object and never complain.

You can also (as Barry Wark suggested) have MyProtocol include the NSObject protocol -- although from a design perspective, you normally only do this if implementing MyProtocol necessarily means using NSObject. Normally, we only do this if NSObject and MyProtocol are linked heritarily or semantically.


A little information about the NSObject protocol:

Everything you invoke retain/release/autorelease upon must implement this protocol. As you can infer from this: basically everything implements the NSObject protocol (even though a few things don't descend from the NSObject base class).

Another quick clarification: NSObject (the class) and NSObject (the protocol) are not reimplementations of the same API. They are split as follows:

  • NSObject (protocol) implements everything required to handle/inspect an existing object in a generic sense (retain/release, isEqual, class, respondsToSelector: etc).

  • NSObject (class) implements less generic methods: construction/destruction, thread integration, scripting integration.

So in most senses, the protocol is the more important of the two. Remeber that the class includes the protocol so if you descend from NSObject, you get both.

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Change

@property (nonatomic, retain) id<MyProtocol> reference;

to

@property (nonatomic, assign) id<MyProtocol> reference;

Why bother to retain the object implementing the protocol? All you need is a pointer to the object by which we can call methods declared in your protocol.

share|improve this answer
    
what if it gets deallocated? – user102008 Jul 26 '11 at 1:50
    
You can't assume he doesn't needs to retain the object without more context. – pablasso Apr 27 '12 at 16:56

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