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I want to extend Array class so that it can know whether it is sorted (ascending) or not. I want to add a computed property called isSorted. How can I state the elements of the Array to be comparable?

My current implementation in Playground

extension Array {
  var isSorted: Bool {
    for i in 1..self.count {
      if self[i-1] > self[i] { return false }
    }
    return true
  }
}

// The way I want to get the computed property
[1, 1, 2, 3, 4, 5, 6, 7, 8].isSorted //= true
[2, 1, 3, 8, 5, 6, 7, 4, 8].isSorted //= false

The error Could not find an overload for '>' that accepts the supplied arguments

Of course, I still got an error because Swift doesn't know how to compare the elements. How can I implement this extension in Swift? Or am I doing something wrong here?

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3  
You can't extend Array<Comparable>, but you can implement a function that operates on Array<Comparable>. Have a look at stackoverflow.com/a/24565627/1489997 –  Sebastian Jul 7 at 3:37
    
@Sebastian I think the link that you gave is quite different than my intention. It's pretty easy to make category for this kind of thing in obj-c, so I thought it should be as trivial in Swift. –  Ikhsan Assaat Jul 7 at 13:45
    
@IkhsanAssaat this is not any easier in Objective C. You still have to find a way to compare elements, and ObjC doesn't give you a magical function to do that. I suggest you try writing such a function in Objective C, then maybe you'll understand why. –  Kevin Jul 13 at 17:31
    
@Kevin: The problem is easier in Objective-C since an NSArray can only store objects, and you can ask them whether they implement a protocol or respond to a selector (compare:). Also, you can force casting in Objective-C. With Swift, the problem is harder as Swift doesn't allow you to "work around" the compiler. Also, there are @objc protocols and non-@objc protocols and you can only check whether a type conforms to the later, but Comparable is non-@objc. That's why let foo = (bar as Any) as? Comparable doesn't work: the compiler does not allow you to "trick" it. –  DarkDust Jul 13 at 17:54

2 Answers 2

up vote 5 down vote accepted
+50

The alternative solution to a free function is to do what Swift's built-in Array.sort and Array.sorted methods do, and require that you pass a suitable comparator to the method:

extension Array {
    func isSorted(isOrderedBefore: (T, T) -> Bool) -> Bool {
        for i in 1..<self.count {
            if !isOrderedBefore(self[i-1], self[i]) {
                return false
            }
        }
        return true
    }
}

[1, 5, 3].isSorted(<) // false
[1, 5, 10].isSorted(<) // true
[3.5, 2.1, -5.4].isSorted(>) // true
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You've hit a problem with Swift's generics that can't be solved the way you like it right now (maybe in a future Swift version). See also Swift Generics issue.

Currently, you'll need to define a function (for example at the global scope):

func isSorted<T: Comparable>(array: Array<T>) -> Bool {
    for i in 1..<array.count {
        if array[i-1] > array[i] {
            return false
        }
    }

    return true
}

let i = [1, 2, 3]
let j = [2, 1, 3]
let k = [UIView(), UIView()]
println(isSorted(i)) // Prints "true"
println(isSorted(j)) // Prints "false"
println(isSorted(k)) // Error: Missing argument for parameter #2 in call

The error message is misleading, IMHO, as the actual error is something like "UIView doesn't satisfy the type constraint Comparable".

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I'm still confused with these kind of cases in swift. Still need to adapt from the runtime flexibility of obj-c to strictness of swift's syntax (optionals, generics, etc). I guess my intention won't be the right way of thinking in Swift afterall. –  Ikhsan Assaat Jul 13 at 18:48
    
Both have their up- and downsides, and of course both make certain patterns easier/"more natural" than the other. Will take some time for most of us to learn how to make use of Swift's features in the best possible ways. –  DarkDust Jul 13 at 19:04

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