89

Is there a standard way to make a "pure virtual function" in Swift, ie. one that must be overridden by every subclass, and which, if it is not, causes a compile time error?

  • You could implement it in the super class and make an assertion. I've seen this used in Obj-C, Java and Python. – David Skrundz Jun 8 '14 at 22:12
  • 8
    @NSArray This causes a runtime, and not a compile time, error – JuJoDi Jun 8 '14 at 22:35
  • This answer will help you too. enter link description here – Chamath Jeevan Apr 4 '16 at 10:11
  • A pure virtual function is implemented by protocols (compared to interfaces in Java) If you need to use them like abstract methods have look at this question/answer: stackoverflow.com/a/39038828/2435872 – jboi Aug 19 '16 at 12:23
140

You have two options:

1. Use a Protocol

Define the superclass as a Protocol instead of a Class

Pro: Compile time check for if each "subclass" (not an actual subclass) implements the required method(s)

Con: The "superclass" (protocol) cannot implement methods or properties

2. Assert in the super version of the method

Example:

class SuperClass {
    func someFunc() {
        fatalError("Must Override")
    }
}

class Subclass : SuperClass {
    override func someFunc() {
    }
}

Pro: Can implement methods and properties in superclass

Con: No compile time check

  • 3
    @jewirth you still wouldn't get a compile time check on the subclasses – drewag Jun 8 '14 at 22:28
  • 5
    The protocol can't implement methods but you can provide them via extension methods instead. – David Moles Mar 11 '15 at 18:22
  • 2
    As of Swift 2.0 there are now protocol extensions too :) Apple Reference. – Ephemera Sep 13 '15 at 9:25
  • 4
    While fatalError doesn't provide compile-time checking, it is nice that the compiler is at least smart enough to not require you to provide a return value for the method when the execution path calls fatalError. – bugloaf Mar 7 '17 at 18:29
  • 2
    Case 2: Mind the fact, that if you call super.someFunc() from the overridden method, you get the error despite the fact that you overridden it. You know that you are not suppose to call it, but someone else doesn't have to know that and just follow the standard practice. – Jakub Truhlář Jul 13 '18 at 12:46
41

The following allows to inherit from a class and also to have the protocol's compile time check :)

protocol ViewControllerProtocol {
    func setupViews()
    func setupConstraints()
}

typealias ViewController = ViewControllerClass & ViewControllerProtocol

class ViewControllerClass : UIViewController {

    override func viewDidLoad() {
        self.setup()
    }

    func setup() {
        guard let controller = self as? ViewController else {
            return
        }

        controller.setupViews()
        controller.setupConstraints()
    }

    //.... and implement methods related to UIViewController at will

}

class SubClass : ViewController {

    //-- in case these aren't here... an error will be presented
    func setupViews() { ... }
    func setupConstraints() { ... }

}
  • 1
    nice, typealias to the rescue :) – Chris Allinson Aug 26 '18 at 18:41
  • Any way to stop users of this API from deriving their clild classes from ViewControllerClass instead of from ViewController? This is great solution for me because I'll be deriving from my type alias a few years from now and will have forgotten about what functions need to be overridden by then. – David Rector Jan 3 '19 at 21:46
  • @David Rector, are you able to make your class private and your typealias public? Sorry messaging from my phone, can’t check myself. – ScottyBlades Feb 3 '19 at 18:24
  • Perfect solution, thank you for that. As underlined by @DavidRector, it would be great if there was a solution to also make it so only the typealias was public, but it doesn't seem to be possible unfortunately. – CyberDandy May 14 '19 at 9:28
34

There isn't any support for abstract class/ virtual functions, but you could probably use a protocol for most cases:

protocol SomeProtocol {
    func someMethod()
}

class SomeClass: SomeProtocol {
    func someMethod() {}
}

If SomeClass doesn't implement someMethod, you'll get this compile time error:

error: type 'SomeClass' does not conform to protocol 'SomeProtocol'
  • 28
    Note this only works for the topmost class that implements the protocol. Any subclasses can blithely ignore the protocol requirements. – memmons Oct 15 '15 at 17:05
  • 1
    Also, using generics on protocols is not supported =( – Dielson Sales Sep 8 '16 at 17:15
14

Another workaround, if you don't have too many "virtual" methods, is to have the subclass pass the "implementations" into the base class constructor as function objects:

class MyVirtual {

    // 'Implementation' provided by subclass
    let fooImpl: (() -> String)

    // Delegates to 'implementation' provided by subclass
    func foo() -> String {
        return fooImpl()
    }

    init(fooImpl: (() -> String)) {
        self.fooImpl = fooImpl
    }
}

class MyImpl: MyVirtual {

    // 'Implementation' for super.foo()
    func myFoo() -> String {
        return "I am foo"
    }

    init() {
        // pass the 'implementation' to the superclass
        super.init(myFoo)
    }
}
  • 1
    not so useful if you have a few more virtual methods – Bushra Shahid Mar 11 '15 at 2:45
  • @xs2bush If more of your methods are virtual than not you're probably better off declaring them in a protocol, and providing the 'non-virtual' ones via extension methods. – David Moles Mar 11 '15 at 18:22
  • 1
    thats exactly what i ended up doing – Bushra Shahid Mar 24 '15 at 5:57
0

You can use protocol vs assertion as suggested in answer here by drewag. However, example for the protocol is missing. I am covering here,

Protocol

protocol SomeProtocol {
    func someMethod()
}

class SomeClass: SomeProtocol {
    func someMethod() {}
}

Now every subclasses are required to implement the protocol which is checked in compile time. If SomeClass doesn't implement someMethod, you'll get this compile time error:

error: type 'SomeClass' does not conform to protocol 'SomeProtocol'

Note: this only works for the topmost class that implements the protocol. Any subclasses can blithely ignore the protocol requirements. – as commented by memmons

Assertion

class SuperClass {
    func someFunc() {
        fatalError("Must Override")
    }
}

class Subclass : SuperClass {
    override func someFunc() {
    }
}

However, assertion will work only in runtime.

-2

Being new to iOS development, I'm not entirely sure when this was implemented, but one way to get the best of both worlds is to implement an extension for a protocol:

protocol ThingsToDo {
    func doThingOne()
}

extension ThingsToDo {
    func doThingTwo() { /* Define code here */}
}

class Person: ThingsToDo {
    func doThingOne() {
        // Already defined in extension
        doThingTwo()
        // Rest of code
    }
}

The extension is what allows you to have the default value for a function while the function in the regular protocol still provides a compile time error if not defined

  • abstract functions are the opposite of default implementations – Hogdotmac Jul 1 '19 at 8:46

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