13

What protocol do I have to implement to control the way an object is represented within a string interpolation in Swift?

I wan't to specify what get's printed in something like this:

struct A{

}

var a = A()
println("\(a)")
24

You need to implement the Printable protocol:

This protocol should be adopted by types that wish to customize their textual representation. This textual representation is used when objects are written to an OutputStreamType.

protocol Printable {
    var description: String { get }
}

There's also the DebugPrintable protocol when it's only for debugging purposes:

This protocol should be adopted by types that wish to customize their textual representation used for debugging purposes. This textual representation is used when objects are written to an OutputStreamType.

protocol DebugPrintable {
    var debugDescription: String { get }
}

Documentation (Thanks @MartinR)

Note: As @Antonio and @MartinR mentioned in the comments, this doesn't work in the playground (as of Xcode6 GM anyway); that's a known bug. It does work in compiled apps.

From the Xcode6 GM Release Notes:

In Playgrounds, println() ignores the Printable conformance of user-defined types. (16562388)

As of Swift 2.0 Printable has now become CustomStringConvertible. Everything stays the same as before, you still need to implement

 var description: String { get }

But now its called CustomStringConvertible. And debug is CustomDebugStringConvertible

6
  • 1
    Are you sure this works? I thought the same, tried on a playground and it shows something like __lldb_expr_551.Test. Regardless of Printable implemented or not
    – Antonio
    Sep 12 '14 at 20:45
  • 1
    Also documented here: developer.apple.com/library/prerelease/ios/documentation/….
    – Martin R
    Sep 12 '14 at 20:46
  • 1
    Interesting. It works in a compiled app, but not in a playground.
    – Martin R
    Sep 12 '14 at 20:52
  • That's why... I knew it was Printable, but after verifying it didn't work, I thought I was just wrong. Instead it's the playground. Thanks @MartinR
    – Antonio
    Sep 12 '14 at 21:06
  • @Antonio After some digging I found it mentioned in the Xcode release notes that the Playground ignores Printable (known issue). Thanks for pointing it out. I edited the answer to reflect that.
    – Mike S
    Sep 12 '14 at 21:16
4

In Swift 5 Apple introduced Custom String Interpolation.

Suppose you have person struct with two properties name and age.

struct Person {
  var name: String
  var age: Int
} 

If you wanted to add a special string interpolation for that so that we can print persons in descriptive way, we can add an extension to String.StringInterpolation with a new appendInterpolation() method.

 extension String.StringInterpolation {
       mutating func appendInterpolation(_ person: Person) {
       appendInterpolation("My name is \(person.name) and I'm \(person.age) years old.")
    }
}

Now If we print the person details like:

 let person = Person(name: "Yogendra", age: 28)
 print("Person Details: \(person)")

Output will be:

Person Details: My name is Yogendra and I'm 28 years old.
1

I would like to put an alternative solution here:

The protocol for string interpolation in Swift is StringInterpolationConvertible. That is, any class which implements the protocol, can be constructed from a string interpolation.

Back to the question, to control what is printed out for a String string interpolation of instances of class A, you would need to create a String extension and overload the init(stringInterpolationSegment expr: A) function.

extension String {
    init(stringInterpolationSegment expr: A) {
        //do custom work here
        //for example: self.init(expr.description)
    }
}

In case you are looking for a way to remove the annoying "Optional(...)" when interpolating Optional variables, which I think is the main reason why people would want to control how an object gets printed out, just have a look at the pod NoOptionalInterpolation here.

Additional information (edited): Confirm that overriding description will only work for your own struct/class, but not for existing struct/class such as Int and Optional.

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