279

Getting the classname of an object as string using

object_getClassName(myViewController)

returns something like this

_TtC5AppName22CalendarViewController

I am looking for the pure version: "CalendarViewController". How do I get a cleaned up string of the class name?

I found some attempts of questions about this but not an actual answer. Is it not possible?

  • alternatively … what would an effective parser function for this look like? – Bernd Jun 30 '14 at 16:50
  • In case you wish to check if an object is of a certain class see this answer. – meaning-matters May 23 at 10:25

27 Answers 27

483

String from an instance:

String(describing: YourType.self)

String from a type:

String(describing: self)

Example:

struct Foo {

    // Instance Level
    var typeName: String {
        return String(describing: Foo.self)
    }

    // Instance Level - Alternative Way
    var otherTypeName: String {
        let thisType = type(of: self)
        return String(describing: thisType)
    }

    // Type Level
    static var typeName: String {
        return String(describing: self)
    }

}

Foo().typeName       // = "Foo"
Foo().otherTypeName  // = "Foo"
Foo.typeName         // = "Foo"

Tested with class, struct and enum.

  • 4
    Is this really the case? According to the docs for String for this initializer "an unspecified result is supplied automatically by the Swift standard library" when it doesn't conform to Streamable, or CustomStringConvertible, or CustomDebugStringConvertible. So while it may be displaying the desired value now, will it continue to do so in the future? – Tod Cunningham Apr 13 '16 at 22:16
  • 2
    Using this in Xcode 7.3.1 & Swift 2.2 produces the following, which is no ideal. ''let name = String(self) name String "<MyAppName.MyClassName: 0x########>"'' – CodeBender Jul 19 '16 at 16:39
  • 12
    In Swift 3, the proper answer is to call String(describing: MyViewController.self) as noted in a few answers below. – AmitaiB Oct 9 '16 at 20:07
  • 7
    But it returns "MyViewController.TYPE"! – orkenstein Dec 23 '16 at 2:03
  • 2
    @RudolfAdamkovič Yes, that would be true. But I don't like writing the class name explicitly (what If I rename the class Foo to Foo2 but create a class Foo elsewhere, that might brake the code). In case of subclassing you need to use either type(of:) or Type.self depending what fits your need. Probably type(of:) is more appropriate for getting the class name. – Marián Černý Mar 15 '18 at 16:22
151

UPDATED TO SWIFT 5

We can get pretty descriptions of type names using the instance variable through the String initializer and create new objects of a certain class

Like, for example print(String(describing: type(of: object))). Where object can be an instance variable like array, a dictionary, an Int, a NSDate, etc.

Because NSObject is the root class of most Objective-C class hierarchies, you could try to make an extension for NSObject to get the class name of every subclass of NSObject. Like this:

extension NSObject {
    var theClassName: String {
        return NSStringFromClass(type(of: self))
    }
}

Or you could make a static funcion whose parameter is of type Any (The protocol to which all types implicitly conform) and returns the class name as String. Like this:

class Utility{
    class func classNameAsString(_ obj: Any) -> String {
        //prints more readable results for dictionaries, arrays, Int, etc
        return String(describing: type(of: obj))
    }
} 

Now you can do something like this:

class ClassOne : UIViewController{ /* some code here */ }
class ClassTwo : ClassOne{ /* some code here */ }

class ViewController: UIViewController {

    override func viewDidLoad() {
        super.viewDidLoad()

        // Get the class name as String
        let dictionary: [String: CGFloat] = [:]
        let array: [Int] = []
        let int = 9
        let numFloat: CGFloat = 3.0
        let numDouble: Double = 1.0
        let classOne = ClassOne()
        let classTwo: ClassTwo? = ClassTwo()
        let now = NSDate()
        let lbl = UILabel()

        print("dictionary: [String: CGFloat] = [:] -> \(Utility.classNameAsString(dictionary))")
        print("array: [Int] = [] -> \(Utility.classNameAsString(array))")
        print("int = 9 -> \(Utility.classNameAsString(int))")
        print("numFloat: CGFloat = 3.0 -> \(Utility.classNameAsString(numFloat))")
        print("numDouble: Double = 1.0 -> \(Utility.classNameAsString(numDouble))")
        print("classOne = ClassOne() -> \((ClassOne).self)") //we use the Extension
        if classTwo != nil {
            print("classTwo: ClassTwo? = ClassTwo() -> \(Utility.classNameAsString(classTwo!))") //now we can use a Forced-Value Expression and unwrap the value
        }
        print("now = Date() -> \(Utility.classNameAsString(now))")
        print("lbl = UILabel() -> \(String(describing: type(of: lbl)))") // we use the String initializer directly

    }
}

Also, once we can get the class name as String, we can instanciate new objects of that class:

// Instanciate a class from a String
print("\nInstaciate a class from a String")
let aClassName = classOne.theClassName
let aClassType = NSClassFromString(aClassName) as! NSObject.Type
let instance = aClassType.init() // we create a new object
print(String(cString: class_getName(type(of: instance))))
print(instance.self is ClassOne)

Maybe this helps someone out there!.

  • 2
    This should be the accepted answer. Thanks, I was looking for a way of print the class name without have to instantiate it, and found the answer here. Thanks print(String(BaseAsyncTask)) – Bruno Coelho Oct 27 '15 at 14:16
  • 4
    classNameAsString can be simplified to className, for that "name" implied its type. theClassName is simillar to facebook's story, which is named thefacebook originally. – DawnSong Oct 19 '16 at 5:26
  • "diccionary"...the Italian version of Swift's dictionary collection :] – Andrew Kirna Jun 26 at 21:35
115

Swift 4.2

Here is the extension to get the typeName as a variable (for both value type or reference type).

protocol NameDescribable {
    var typeName: String { get }
    static var typeName: String { get }
}

extension NameDescribable {
    var typeName: String {
        return String(describing: type(of: self))
    }

    static var typeName: String {
        return String(describing: self)
    }
}

How to use:

// Extend with class/struct/enum...
extension NSObject: NameDescribable {}
extension Array: NameDescribable {}

print(UITabBarController().typeName)
print(UINavigationController.typeName)
print([Int]().typeName)
  • 10
    Any idea why i get MyAppName.MyClassName out of that? I'm only interest in MyClassName – Andrew Nov 27 '16 at 21:00
  • @Andrew could you give more specific in your case? I'm using this extension in many projects and all of them response as intended. – nahung89 Nov 28 '16 at 8:09
  • 1
    Well if i call it from the class itself it return MyClassName, but if I wrap that in a method that returns the class name string and call it from another class it returns MyAppName.MyClassName. While searching around i saw that all classes are implicitly namespaced, so if you're to call it outside of your class you get MyAppName.MyClassName instead of MyClassName. Then you have to rely on string manipulation to get the class name. – Andrew Nov 28 '16 at 13:59
  • 1
    very useful extension – Hattori Hanzō Nov 8 '18 at 7:24
  • @Andrew, not sure of current working, but I remember, String(describing: type(of: self)) used to return ModuleName.ClassName at one point. I had split based on . character and fetched the last object. – BangOperator Jun 21 at 5:42
30

Swift 3.0

String(describing: MyViewController.self)

  • 2
    Actually type(of: ) is an overkill there, String(describing: MyViewController.self) will suffice – Alexander Vasenin Sep 24 '16 at 8:26
  • 2
    This creates a string such as <App_Name.ClassName: 0x79e14450> for me, which is not ideal – Doug Amos Oct 3 '16 at 10:23
  • Isn't it String.init(describing: MyViewController.self)? – Iulian Onofrei Nov 5 '16 at 23:27
  • 1
    @IulianOnofrei, You can do that, but the init is unnecessary. – shim Dec 12 '16 at 17:46
  • Totally get rid of the AppName prefix! Thanks – yuchen Aug 10 '17 at 6:53
27

I suggest such an approach (very Swifty):

// Swift 3
func typeName(_ some: Any) -> String {
    return (some is Any.Type) ? "\(some)" : "\(type(of: some))"
}

// Swift 2
func typeName(some: Any) -> String {
    return (some is Any.Type) ? "\(some)" : "\(some.dynamicType)"
}

It doesn't use neither introspection nor manual demangling (no magic!).


Here is a demo:

// Swift 3

import class Foundation.NSObject

func typeName(_ some: Any) -> String {
    return (some is Any.Type) ? "\(some)" : "\(type(of: some))"
}

class GenericClass<T> {
    var x: T? = nil
}

protocol Proto1 {
    func f(x: Int) -> Int
}


@objc(ObjCClass1)
class Class1: NSObject, Proto1 {
    func f(x: Int) -> Int {
        return x
    }
}

struct Struct1 {
    var x: Int
}

enum Enum1 {
    case X
}

print(typeName(GenericClass<Int>.self)) // GenericClass<Int>
print(typeName(GenericClass<Int>()))  // GenericClass<Int>

print(typeName(Proto1.self)) // Proto1

print(typeName(Class1.self))   // Class1
print(typeName(Class1())) // Class1
print(typeName(Class1().f)) // (Int) -> Int

print(typeName(Struct1.self)) // Struct1
print(typeName(Struct1(x: 1))) // Struct1
print(typeName(Enum1.self)) // Enum1
print(typeName(Enum1.X)) // Enum1
  • They changed it in Swift 3.0. Now you can get string from type(of: self) – Asad Ali Mar 10 '17 at 12:43
  • Updated to Swift 3. – werediver Mar 11 '17 at 9:19
  • I think this is the best way to get type name: any instance of class, based on NSObject, enum, typealiase, functions, var properties, and any types, even constants. For types, you have to use .self. For example, typeName(Int.self), typeName(true.self). Nor you need to worry about project name as part(such as AppProj.[typename]) Great! – David.Chu.ca Oct 16 '18 at 17:53
22

If you have type Foo, the following code will give you "Foo" in Swift 3 and Swift 4:

let className = String(describing: Foo.self) // Gives you "Foo"

The problem with most of the answers on here are that they give you "Foo.Type" as the resulting string when you don't have any instance of the type, when what you really want is just "Foo". The following gives you "Foo.Type", as mentioned in a bunch of the other answers.

let className = String(describing: type(of: Foo.self)) // Gives you "Foo.Type"

The type(of:) part is unnecessary if you just want "Foo".

18

In Swift 4.1 and now Swift 4.2 :

import Foundation

class SomeClass {
    class InnerClass {
        let foo: Int

        init(foo: Int) {
            self.foo = foo
        }
    }

    let foo: Int

    init(foo: Int) {
        self.foo = foo
    }
}

class AnotherClass : NSObject {
    let foo: Int

    init(foo: Int) {
        self.foo = foo
        super.init()
    }
}

struct SomeStruct {
    let bar: Int

    init(bar: Int) {
        self.bar = bar
    }
}

let c = SomeClass(foo: 42)
let s = SomeStruct(bar: 1337)
let i = SomeClass.InnerClass(foo: 2018)
let a = AnotherClass(foo: 1<<8)

If you don't have an instance around:

String(describing: SomeClass.self) // Result: SomeClass
String(describing: SomeStruct.self) // Result: SomeStruct
String(describing: SomeClass.InnerClass.self) // Result: InnerClass
String(describing: AnotherClass.self) // Result: AnotherClass

If you do have an instance around:

String(describing: type(of: c)) // Result: SomeClass
String(describing: type(of: s)) // Result: SomeStruct
String(describing: type(of: i)) // Result: InnerClass
String(describing: type(of: a)) // Result: AnotherClass
12

You can use the Swift standard library function called _stdlib_getDemangledTypeName like this:

let name = _stdlib_getDemangledTypeName(myViewController)
  • @NeilJaff what do you mean by "just an optional string"? It returns a string and it's not optional. – Jernej Strasner Mar 20 '15 at 14:50
  • 3
    This approach doesn't return the names of classes in private APIs FYI. It will return the name of the first public base class name. – Tylerc230 Sep 15 '15 at 19:11
  • I get the message: Use of unresolved identifier '_stdlib_getDemangledTypeName' – Adobels Sep 5 at 18:03
11

To get the type name as a string in Swift 4 (I haven't checked the earlier versions), just use string interpolation:

"\(type(of: myViewController))"

You can use .self on a type itself, and the type(of:_) function on an instance:

// Both constants will have "UIViewController" as their value
let stringFromType = "\(UIViewController.self)"
let stringFromInstance = "\(type(of: UIViewController()))"
11

You can try this way:

self.classForCoder.description()
  • This works great as it includes the full "namespace" (the appropriate target membership prefix) as well. – BonanzaDriver Feb 4 '16 at 21:54
  • BTW, I also found using "String(self)" where self is an instance of MyViewController works too ... it provides the same information ... Xcode 7.1. – BonanzaDriver Feb 5 '16 at 14:42
7

One can also use mirrors:

let vc = UIViewController()

String(Mirror(reflecting: vc).subjectType)

NB: This method can also be used for Structs and Enums. There is a displayStyle that gives an indication of what type of the structure:

Mirror(reflecting: vc).displayStyle

The return is an enum so you can:

Mirror(reflecting: vc).displayStyle == .Class
  • Thanks. That's what worked for me. The only thing (at least on iOS 9) is that the subjectType was ending in ".Type", so I had to remove that part from the string. – Nikolay Suvandzhiev Jun 6 '16 at 8:11
6

Swift 3.0: You can create an extension like this one.. It gives back the class name without the project name

extension NSObject {
    var className: String {
        return NSStringFromClass(self as! AnyClass).components(separatedBy: ".").last ?? ""
    }

    public class var className: String {
        return NSStringFromClass(self).components(separatedBy: ".").last ?? ""
    }
}
  • When I attempt to use this I get the error: Could not cast value of type 'ProjectName.MyViewController' (0x1020409e8) to 'Swift.AnyObject.Type' (0x7fb96fc0dec0). – tylerSF Dec 2 '17 at 21:06
6

To get name of a Swift class from an object, e.g. for var object: SomeClass(), use

String(describing: type(of: object))

To get name of a Swift class from a class type, e.g. SomeClass, use:

String(describing: SomeClass.self)

Output:

"SomeClass"

4

I've been looking for this answer off and on for a while. I use GKStateMachine and like to observe state changes and wanted an easy way to see just the class name. I'm not sure if it's just iOS 10 or Swift 2.3, but in that environment, the following does exactly what I want:

let state:GKState?
print("Class Name: \(String(state.classForCoder)")

// Output:    
// Class Name: GKState
3

You can extend NSObjectProtocol in Swift 4 like this :

import Foundation

extension NSObjectProtocol {

    var className: String {
        return String(describing: Self.self)
    }
}

This will make calculated variable className available to ALL classes. Using this inside a print() in CalendarViewController will print "CalendarViewController" in console.

2

Try reflect().summary on Class self or instance dynamicType. Unwrap optionals before getting dynamicType otherwise the dynamicType is the Optional wrapper.

class SampleClass { class InnerClass{} }
let sampleClassName = reflect(SampleClass.self).summary;
let instance = SampleClass();
let instanceClassName = reflect(instance.dynamicType).summary;
let innerInstance = SampleClass.InnerClass();
let InnerInstanceClassName = reflect(innerInstance.dynamicType).summary.pathExtension;
let tupleArray = [(Int,[String:Int])]();
let tupleArrayTypeName = reflect(tupleArray.dynamicType).summary;

The summary is a class path with generic types described. To get a simple class name from the summary try this method.

func simpleClassName( complexClassName:String ) -> String {
    var result = complexClassName;
    var range = result.rangeOfString( "<" );
    if ( nil != range ) { result = result.substringToIndex( range!.startIndex ); }
    range = result.rangeOfString( "." );
    if ( nil != range ) { result = result.pathExtension; }
    return result;
}
2

The above solutions didn't work for me. The produced mostly the issues mention in several comments:

MyAppName.ClassName

or

MyFrameWorkName.ClassName

This solutions worked on XCode 9, Swift 3.0:

I named it classNameCleaned so it is easier to access and doesn't conflict with future className() changes:

extension NSObject {

static var classNameCleaned : String {

    let className = self.className()
    if className.contains(".") {
        let namesArray = className.components(separatedBy: ".")
        return namesArray.last ?? className
    } else {
        return self.className()
    }

}

}

Usage:

NSViewController.classNameCleaned
MyCustomClass.classNameCleaned
1

To get class name as String declare your class as following

@objc(YourClassName) class YourClassName{}

And get class name using following syntax

NSStringFromClass(YourClassName)
1

Swift 3.0 (macOS 10.10 and later), you can get it from className

self.className.components(separatedBy: ".").last!
  • 1
    As far as I can tell there is no built-in className property in Swift classes. Did you subclass from something? – shim Dec 12 '16 at 17:45
  • @shim className is declared in Foundation but It seems that it's only available on macOS 10.10 and later. I just edited my answer. – Thanh Vũ Trần Dec 13 '16 at 10:14
  • 1
    Hm, that's weird. Why would they not include it in iOS? Also note it's an instance method on NSObject developer.apple.com/reference/objectivec/nsobject/… – shim Dec 13 '16 at 15:53
1

I tried type(of:...) in Playground with Swift 3. This is my result. This is the code format version.

print(String(describing: type(of: UIButton.self)))
print(String(describing: type(of: UIButton())))
UIButton.Type
UIButton
  • It's wasteful to instantiate an instance just to determine the class name. – sethfri May 8 '17 at 7:43
  • @sethfri I use this to determine the dynamic type. – Lumialxk May 11 '17 at 14:47
  • I still don't understand why you need to create an instance just to get the class's type information – sethfri May 15 '17 at 23:41
1

You can get the name of the class doing something like:

class Person {}
String(describing: Person.self)
1

Swift 5

 NSStringFromClass(CustomClass.self)
0

If you don't like the mangled name, you can dictate your own name:

@objc(CalendarViewController) class CalendarViewController : UIViewController {
    // ...
}

However, it would be better in the long run to learn to parse the mangled name. The format is standard and meaningful and won't change.

  • 1
    And see also my answer here, please: stackoverflow.com/a/24196632/341994 – matt Jun 30 '14 at 16:38
  • No it's not, for my class it returns (ExistentialMetatype) - relying on undocumented runtime behavior is always dangerous, especially for swift since it's still in a relatively early stage. – superarts.org Sep 23 '14 at 3:33
0

I use it in Swift 2.2

guard let currentController = UIApplication.topViewController() else { return }
currentController.classForCoder.description().componentsSeparatedByString(".").last!
0

Sometimes the other solutions will give a non useful name depending on what object you are trying to look at. In that case you can get the class name as a string using the following.

String(cString: object_getClassName(Any!))

⌘ click the function in xcode to see some related methods that are fairly useful. or check here https://developer.apple.com/reference/objectivec/objective_c_functions

0

This kind of example for class var. Don't include the name of bundle.

extension NSObject {
    class var className: String {
        return "\(self)"
    }
}
-1

In my case String(describing: self) returned something like:

< My_project.ExampleViewController: 0x10b2bb2b0>

But I'd like to have something like getSimpleName on Android.

So I've created a little extension:

extension UIViewController {

    func getSimpleClassName() -> String {
        let describing = String(describing: self)
        if let dotIndex = describing.index(of: "."), let commaIndex = describing.index(of: ":") {
            let afterDotIndex = describing.index(after: dotIndex)
            if(afterDotIndex < commaIndex) {
                return String(describing[afterDotIndex ..< commaIndex])
            }
        }
        return describing
    }

}

And now it returns:

ExampleViewController

Extending NSObject instead of UIViewController should also work. Function above is also fail-safe :)

  • Thats because your passing an instance of the class name instead of a class so in the above example you should pass ExampleViewController.self – Luke Feb 3 at 7:41

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