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ios - Why do Objective-C APIs return implicitly unwrapped optionals?

I am rather perplexed by this. If we take the method cellForRowAtIndexPath: in UITableView for example, it's method signature is:

func cellForRowAtIndexPath(_ indexPath: NSIndexPath!) -> UITableViewCell!

And its return value is:

An object representing a cell of the table or nil if the cell is not visible or indexPath is out of range.

That sounds like the perfect reason to use a standard optional. In fact, since all pointer based types in Objective-C can be nil... it seems to make sense that all Objective-C pointer types should be imported as standard optionals.

I know from the WWDC talk that they say that for implicitly unwrapped optionals:

  • Can be tested explicitly for nil
  • Can directly access properties/methods of the underlying value
  • Can be implicitly converted to its underlying value

And from Apple's Using Swift with Cocoa and Objective-C:

When you access the value in this kind of optional type without safely unwrapping it first, the implicitly unwrapped optional checks whether the value is missing. If the value is missing, a runtime error occurs.

So, instead of importing a possibly nil value into Swift as an optional, they decided to import it as something that states that this should never be nil... but could be? It sounds like they completely negated the safety of the optional type in Swift for Objective-C APIs by doing this. What do I seem to be missing?

Instead of giving a compile time error or warning, they decided a runtime error was better? This is very confusing.

Considering that nothing seems to answer this question that I have seen... I am thinking it is something obvious to everybody else that I am just not seeing but... Why is it like this?

Is it really just to save people from using if let or optional chaining when they use Objective-C APIs in Swift, or something more?

See Question&Answers more detail:os

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When you make an implicitly unwrapped optional in Swift, it does not mean that it is always going to be non-nil: all it means is that you tell the compiler that when you access their properties, you expect the object to be non-nil. The object that you reference can be explicitly checked for nil; setting it to nil will not cause an exception either, unless you try to access any of its properties after that.

When Apple used implicitly unwrapped optionals for the parameters of

func tableView(_ tableView: UITableView!, cellForRowAtIndexPath indexPath: NSIndexPath!) -> UITableViewCell!

function, they let you save on a few extra if - let. In this case, they know that they never pass you a nil; in other cases, they do not know it, and they expect you to nil-check the object.

They allow you to return nil, too. It is up to them to check the results for nil, unless, of course, you decide to call that function yourself. Although I cannot think of a valid reason to call cellForRowAtIndexPath from your own code, if you do make a call, it would be your responsibility to check the return value for nil.

If you consider an alternative of making the parameters UITableView? and NSIndexPath? instead, all implementations would have to either use an exclamation point after tableView and indexPath, or use the if - let idiom. Compared to this choice, implicitly unwrapped types look like a better choice.


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