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I've jumped on the ARC bandwagon. In the past I would have my delegate properties declared like this:

@property(assign) id<MyProtocol> delegate;

So I thought I would do this under ARC:

@property(weak) id<MyProtocol> delegate;

Not so. On the @synthesize statement in the .m I have a compile error:

*Semantic Issue: Existing ivar 'delegate' for __weak property 'delegate' must be __weak*

I HAVE declared it as weak though! Also how do I pass a class implementing a protocol to a weakly referenced property. Do I have to wrap it in one of those weird obj_unretained calls?

Any help on this would be very much appreciated.

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2  
ARC can be discussed publicly. iOS 5 specific API cannot. –  bbum Jun 30 '11 at 5:08
    
The implication is that iOS 5 supports GC Obj-C, which is presumably confidential unless Apple's announced it (I don't know if they have; I've been too busy to keep up). –  tc. Jul 1 '11 at 2:50

1 Answer 1

up vote 62 down vote accepted

"ivar" means "instance variable", which you have not shown. I'm betting it looks something like this:

@interface Foo : NSObject {
    id delegate;
}

@property (weak) id delegate;

What the error is saying is that it must look like this:

@interface Foo : NSObject {
    __weak id delegate;
}

@property (weak) id delegate;

If the property claims to be weak, the ivar that the value ends up being stored in must be weak as well.

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43  
Or you could just remove the ivar altogether and let the @synthesize line handle that for you as well. :) –  Dave DeLong Jun 30 '11 at 2:07
3  
your assumption was correct. And DaveDelong - are you telling me that for 1.5 years I've been writing iOS with ivars in the header as well as the @property declaration and I don't need ivar when I synthesize?! this is amazing lol! Thankyou! –  Mike S Jun 30 '11 at 4:32
2  
@Mike don't feel to bad. The ability to do that sort of accreted across architectures and couplers in the last year+. It is now complete, though. –  bbum Jun 30 '11 at 5:10
1  
However, if an ivar is not declared it will not be visible in Xcode. (bug filed). –  Zaph Jun 30 '11 at 19:18
4  
@Dylan: You need two underscores. –  tc. Sep 8 '11 at 14:57

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