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I'm trying to set following property of AVAudioPlayer, but it gives an error.

Error:

Cannot assign result of this property

Code:

self.player = AVAudioPlayer(contentsOfURL: url, error: &error)
self.player?.numberOfLoops = 0 // Error here
self.player?.delegate = self // Error here
if(!self.player?.prepareToPlay()){... } // This seems to good.

Fully confused? Is there any workaround behind this?

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2 Answers 2

up vote 1 down vote accepted

Optional chaining does not support the setting of property values. It is only used for querying (see: getting) properties, and calling methods.

Your code should instead read:

if let myPlayer = self.player? {
    myPlayer.numberOfLoops = 0
    myPlayer.delegate = self
}

This will only set the properties on the object if it has a value. Since your ivar is most likely defined as var player: AVAudioPlayer?, the compiler doesn't actually know whether it will have a value.

As mentioned in the language guide, under the Calling Properties Through Optional Chaining section:

You cannot, however, set a property’s value through optional chaining.

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What I do is declare the type of my class's player property as AVAudioPlayer!. I can do this because I happen to know that this class will always have an audio player. This means, in turn, that I don't have to use ? or ! ever again; I can just say self.player and everything just works.

If you use this approach and you are ever in doubt about whether you really have a player, simply say if self.player - it will be false if no player is there, and now you can avoid talking to self.player as if it were an actual AVAudioPlayer (which would crash your app).

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This approach is also excellent for variables that are set through nib loading (@IBOutlet), by the way. –  matt Jun 11 '14 at 6:19
    
In fact when you say @IBOutlet you get this approach for free; @IBOutlet effectively means (among other things) weak var myVar : Type! = nil –  matt Jun 11 '14 at 22:16

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