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I have a short question about ARC and releasing objects.

In my little iPad App I have a "switch language" functionality realized with an observer. Every ViewController is registrating it self at my Observer at viewDidLoad.

- (void)viewDidLoad
{
    [super viewDidLoad];
    [observer registerObject:self];
}

Hits the user a language Button, the new language will be stored in my model and the observer will be notified to perform an updateUi selector on his registered objects.

Works great expect of the ViewControllers in my TabBarController because when the TabBar fires up, it gets the TabBar Buttons from its ViewControllers without initializing the view. so no language change will happen until the view is loaded or i do the register with my observer in the init method.

While doing the register in the viewDidLoad Method, i do my unregister in the viewDidUnload. This will not work in the ViewControllers for my TabBarController. So my idea was, to override the dealloc method to perform my unregister.

But here is my problem. When I do

- (void) dealloc
{
    [dataModel unregisterObject:self];
    [super dealloc];
}

Xcode says

ARC forbids explicit message send of 'dealloc'

Now I am trapped. Is there another way to get informed when my object is dying?

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As a side note - situation like this can cause a memory leak, which would not show in the Leaks tool. If the dataModel retains the reference to the observer (which is the default thing under ARC, even for ivars), the dealloc will never get called, as the retain count will be larger than zero. So, you may have to manually unregister the observer to enable the dealloc to be called in the first place. –  Blazej Czapp Aug 10 '12 at 16:03
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1 Answer

When using ARC, you simply do not call super's dealloc explicitly - it is handled for you (as described in the Clang LLVM ARC document, chapter 7.1.2):

- (void) dealloc
{
    [dataModel unregisterObject:self];
    // [super dealloc]; << provided by the compiler
}
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Wait, what is this "dataModel" you speak of? –  Aleph Dvorak Jan 12 at 21:39
2  
@AlephDvorak "dataModel" appears in the original question. It is specific to the example given. –  Jim Holland Jan 16 at 16:20
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