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In a simple "Single View" test project using XCode 4.3.3:

  1. I subclassed UIView and specified it in the storyboard's Property Inspector as the class to be used as the viewController's default view.

  2. In my custom UIView class, TestUIView, I define a property called "drawSwitch."

  3. I import the header of my custom class in my viewController class.

When trying to compile the project, I was surprised that the compiler does not recognize my subclass with the line of code below, giving the error: Property 'drawSwitch' not found on object of type 'UIView'. This seems odd since my custom class TestUIView is indicated as the class for the viewController view outlet (shown in image below).

[self.view setDrawSwitch:2];

Yet if I cast it, the code compiles and runs fine:

[(TestUIView*) self.view setDrawSwitch:2];

When I view the properties of my viewController, my custom class is indicated as the Outlet for the view property.

So I am confused at what is going on with the storyboard here.

  • Is storyboard/XCode letting me do something which the compiler isn't happy with, simply a GUI loophole?

  • I know I can create an IBOutlet for my custom view (per below: "testView") but it seems redundant to create an additional outlet when the view outlet is already defined.

Am I missing something here? (beyond "that's the way it works", which may just be the case).

enter image description here

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2 Answers

up vote 1 down vote accepted

The compiler doesn't know anything about what you have set up in the storyboard. All it knows is that the .view property of your view controller will be a UIView. This works fine, since you can assign any subclass of UIView to this property at run time without a problem.

Your problem comes when you try to use the view property as if it were a more specific subclass. The compiler doesn't know that, at run time, what it thinks is a UIView will actually be a different class.

Your "redundant" outlet is actually the way that Apple has implemented this situation with UITableViewController. UITableViewController has a .view and a .tableView property, and these both point to exactly the same object - the table view.

An alternative is to override the property to have a different class, as discussed here and here but this may have unforseen effects with a view controller. I'd recommend sticking with a separate property with a more specific class - it will certainly make your code more readable.

Off-topic - this is my 1000th answer on Stack Overflow - you're welcome!

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Hey thanks for the concise answer (and congrats on the 1k!). Wasn't looking for hacks or to color outside the lines - just that it's confused me - the two outlets pointing to the same object. –  TOMATO Jul 29 '12 at 17:30
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There is something that you might not have posted but is wrong or may be I did not understand the problem right.

A simple example I tried works as expexted, no required cast and easy usage via the Storyboard.

So here is the code of SVTView.h:

@interface SVTView : UIView{

}
-(void)sampleSet:(int)value;


@end

and SVTView.m:

#import "SVTView.h"

@implementation SVTView

- (id)initWithFrame:(CGRect)frame
{
    self = [super initWithFrame:frame];
    if (self) {
        // Initialization code
    }
    return self;
}

/*
// Only override drawRect: if you perform custom drawing.
// An empty implementation adversely affects performance during animation.
- (void)drawRect:(CGRect)rect
{
    // Drawing code
}
*/

-(void)sampleSet:(int)value{
  NSLog(@"setting value %d",value);
}


@end

And finally the usage within the ViewController:

#import <UIKit/UIKit.h>
#import "SVTView.h"

@interface SVTViewController : UIViewController{

  IBOutlet SVTView * testView;
}

@property(nonatomic, retain) SVTView * testView;

@end

And Viewcontroller.m:

#import "SVTViewController.h"

@interface SVTViewController ()

@end

@implementation SVTViewController

@synthesize testView;

- (void)viewDidLoad
{
    [super viewDidLoad];
    // Do any additional setup after loading the view, typically from a nib.
  [testView sampleSet:2];
}

- (void)viewDidUnload
{
    [super viewDidUnload];
    // Release any retained subviews of the main view.
}

- (BOOL)shouldAutorotateToInterfaceOrientation:(UIInterfaceOrientation)interfaceOrientation
{
  return (interfaceOrientation != UIInterfaceOrientationPortraitUpsideDown);
}

@end

The referencing Outlet has been connected via Storyboard, so that the instance variable is used. The log console shows the disred result:

2012-07-28 07:51:02.227 SingleViewTest[1490:f803] setting value 2

Imo it is not redundant to use the correct class, the redundant part is probably the class cast.

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Thanks for the reply. My question is about setting the subclass as the class used by the default (built-in) view of the viewController. When I do this and have a printf statement in initWithCoder, it gets called - so my subclass is getting instanced as the default view without being defined as an IBOutlet. What is confusing is that the properties of this subclass are not being recognized by the compiler (without casting). –  TOMATO Jul 28 '12 at 6:11
    
Ok, as far as i understand the IBOutlet is only for XCode and will be used for instrumentation code inserted by the GUI. And in deed it looks a bit confusing, however I would prefer to use the ordinary way to avoid some conflicts with future versions or updates of the Storyboard. –  iOS Jul 28 '12 at 6:26
    
It is confusing - and I wondered why XCode/Storyboard would let me do it if it isn't supported. I'm not looking for hacks or anything, so I agree about following the supported methods. –  TOMATO Jul 28 '12 at 6:58
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