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I have a custom UIViewController and custom UIView. I'd like to override the viewcontroller.view property to return MyCustomUIView.

Right now I have:

@interface MyViewController : UIViewController {    
    IBOutlet MyView* view;
}

@property (nonatomic, retain) IBOutlet MyView* view;

This compiles but I get a warning: property 'view' type does not match super class 'UIViewController' property type.

How do I alleviate this warning?

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2  
I think you should rather use @dynamic. Please read this question, the answers there were really helpful to me :) – Ondrej Oct 20 '10 at 14:41
3  
There is very nice article called Overriding UIViewController's View Property, Done Right. – lambdas Jan 23 '13 at 8:26
up vote 17 down vote accepted

The short answer is that you don't. The reason is that properties are really just methods, and if you attempt to change the return type, you get this:

  • (UIView *)view;
  • (MyView *)view;

Objective-C does not allow return type covariance.

What you can do is add a new property "myView", and make it simply typecast the "view" property. This will alleviate typecasts throughout your code. Just assign your view subclass to the view property, and everything should work fine.

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+1 for giving exactly the parts missing from what I answered :) – Jesse Rusak Mar 14 '09 at 19:54

@lpaul7 already posted a link to Travis Jeffery's blog as a comment, but it's so much more correct than all the other answers that it really needs the code to be an answer:

ViewController.h:

@interface ViewController : UIViewController

@property (strong, nonatomic) UIScrollView *view;

@end

ViewController.m:

@implementation ViewController

@dynamic view;

- (void)loadView {
  self.view = [[UIScrollView alloc] initWithFrame:[[UIScreen mainScreen] applicationFrame]];
}

@end

If you using a xib, instead of overriding loadView change the type of your view controller's root view and add IBOutlet to the property.

See Overriding UIViewController's View Property, Done Right for more details.

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Using that approach I get the following compiler warning: "property type 'MyScrollView *' is incompatible with type 'UIView *' inherited from 'UIViewController'" – Koen Nov 3 '13 at 15:55
    
@Koen Is your MyScrollView a subclass of UIView? Do you get the compiler warning if you use UIScrollView instead of MyScrollView? – JosephH Nov 3 '13 at 16:34
    
MyScrollView is a subclass of UIScrollView. I ended up making the scrollView just a container for MyCustomView where I do all the drawing. As opposed to doing all the drawing the MyScrollView. – Koen Nov 3 '13 at 17:35
    
I spy with my little eyes and UIScrollView w/ a retain count of 1 not being dealloc :X - corrected me if i'm wrong. – Lifely Apr 8 '14 at 15:36
    
@Lifely If you're not using ARC, you're spot on :-) If you are using ARC the code is correct (and an you'd get a compiler error if you did put in the autorelease). Alternate answer: make sure you don't get any compiler or analysis warnings and you should be good! – JosephH Apr 9 '14 at 9:31

The UIViewController's view property/method will return your view automatically. I think you'll just have to cast the result to MyView (or just use the id type):

MyView *myView = (MyView*)controller.view;
id myView = controller.view;

I think the code you have posted above will cause you trouble. You probably don't want to create a view member yourself (because then the controller will be storing 2 views, and might not use the right one internally) or override the view property (because UIViewController has special handling for it.) (See this question for more info about the latter.)

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Sorry, but your short answer is wrong.

The correct implementation of this would be to add a @property to the header file with your return type. Then instead of @synthesize you add the getter and setter manually and return a cast type from [super view]

for instance my class is a PlayerViewController

PlayerViewController.h

@property (strong, nonatomic) IBOutlet PlayerView *view;

PlayerViewController.m

- (PlayerView *)view{
    return (PlayerView*)[super view];
}
- (void)setView:(PlayerView *)view{
    [super setView:view];
}

the important thing is to put the correct class into the view.

Putting a UIView where a PlayerView goes would likely work in the Interface Builder, but would not function correctly in the code.

I am currently using this implementation.

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i know this question was old. But I found this and then came up with my own answer. Hope this help the future users. – The Lazy Coder Apr 25 '12 at 22:36
    
Do you think the property should be strong? I mean, UIView already have strong property view that holds the same value. Isn't readonly modifier is more appropriate? – lambdas Jan 23 '13 at 8:20
    
+1: I thought this was possible. Thanks for confirming it. @lpaul7 - No, readonly doesn't make sense because then you couldn't be able to set the view property- hence the meaning of readonly. You need to have this property as strong to override the superclass view property (which has a property declaration of strong). – JRG-Developer Mar 8 '13 at 4:23
    
you can use weak if you like, but it really does not matter if you make sure to set it to nil on dealloc. – The Lazy Coder Mar 8 '13 at 17:11

If anyone is on Swift 2.0+, you can use protocol extensions for a reusable implementation:

// Classes conforming to this protocol...
protocol CustomViewProvider {

    typealias ViewType
}

// ... Will get customView accessor for free
extension CustomViewProvider where Self: UIViewController, Self.ViewType: UIView {

    var customView: Self.ViewType {
        return view as! Self.ViewType
    }
}


// Example:
extension HomeViewController: CustomViewProvider {
    typealias ViewType = HomeView
}

// Now, we can do something like
let customView: HomeView = HomeViewController().customView
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