635

I'm trying to work out how to cast an Int into a String in Swift.

I figure out a workaround, using NSNumber but I'd love to figure out how to do it all in Swift.

let x : Int = 45
let xNSNumber = x as NSNumber
let xString : String = xNSNumber.stringValue

23 Answers 23

1082

Converting Int to String:

let x : Int = 42
var myString = String(x)

And the other way around - converting String to Int:

let myString : String = "42"
let x: Int? = myString.toInt()

if (x != nil) {
    // Successfully converted String to Int
}

Or if you're using Swift 2 or 3:

let x: Int? = Int(myString)
5
  • 2
    While this works, use the toString function, shown in an answer below.
    – ybakos
    Jan 28, 2015 at 22:20
  • 2
    Int doesn't appear to have a toString() method at least not in Xcode 6.2 edit: I see that there is a global toString method (not Int.toString()), anyone know the advantage over using the String() constructor?
    – Nilloc
    Apr 13, 2015 at 1:58
  • Note that String(Int?) writes "Optional(Int)", at least in Swift 2, that could not be what you meant. Use instead Int?.description
    – Teejay
    Nov 16, 2015 at 22:57
  • Wonderful, but doesn't work for me. I have an optional Int, and String(myInt) wont compile - it claims "Int? cannot be converted to String". There are no toString() or toInt() methods available for me either, or stringValue and intValue not there. Even a String(myInt!) will tell me that the initializer has been renamed to something like String(describing: myInt!). Mar 9, 2017 at 0:47
  • 9
    For Swift 4, see Hamed Gh's answer below. The correct usage is String(describing: x)
    – David Gay
    Feb 20, 2018 at 17:23
97

Check the Below Answer:

let x : Int = 45
var stringValue = "\(x)"
print(stringValue)
7
  • 48
    meh, this is an ugly and unnecessary workaround when String already has a constructor accepting Int Jun 11, 2014 at 11:12
  • 3
    what wrong you find this? why you put down vote? @GabrielePetronella
    – PREMKUMAR
    Jun 11, 2014 at 11:15
  • I don't think this is particularly ugly, except that some parsing tools may not handle string interpolation nicely. Otherwise, who knows -- it might faster. Using ""+x in Javascript is generally faster than using a String constructor, for example. This example is only a couple of characters shorter, but I would certainly prefer string interpolation in cases where you were constructing a sentence from several variables.
    – Desty
    Jun 12, 2014 at 9:22
  • 1
    I wouldn't downvote this answer just because its ugly but as @GabrielePetronella said, there's no need to use string interpolation when String has a constructor that accepts an Int. Its much more clear and concise.
    – Isuru
    Sep 15, 2014 at 6:30
  • 1
    How is this uglier than array literals?
    – Jehan
    Mar 2, 2015 at 8:06
64

Here are 4 methods:

var x = 34
var s = String(x)
var ss = "\(x)"
var sss = toString(x)
var ssss = x.description

I can imagine that some people will have an issue with ss. But if you were looking to build a string containing other content then why not.

5
  • 5
    I just watch some of the Stanford U new course on Swift and iOS 8. Your var ss = "\(x)" example is exactly how they advised converting a double to a string. Which I thought was easy and great.
    – markhunte
    Jan 29, 2015 at 0:00
  • And thinking more about sass - that's really bad. Jan 29, 2015 at 11:38
  • 2
    toString has been renamed to String Mar 4, 2016 at 13:26
  • 1
    s is now (Swift 3.1) String(describing: x) the older syntax yields compiler error. Mar 9, 2017 at 0:55
  • 5
    @MottiShneor No, this is wrong. String(describing:) should never be used for anything else than debugging. It is not the normal String initializer.
    – Eric Aya
    Apr 3, 2018 at 9:15
54

In Swift 3.0:

var value: Int = 10
var string = String(describing: value)
2
  • 14
    This is wrong. String(describing:) should never be used for anything else than debugging. It is not the normal String initializer.
    – Eric Aya
    Mar 31, 2018 at 9:34
  • Is this still wrong in Swift 5? @ayaio, cause basing from documentation it doesn't seem wrong Jul 24, 2019 at 2:26
31

Swift 4:

let x:Int = 45
let str:String = String(describing: x)

Developer.Apple.com > String > init(describing:)

The String(describing:) initializer is the preferred way to convert an instance of any type to a string.

Custom String Convertible

enter image description here

9
  • 3
    result Optional(1) Mar 31, 2018 at 5:59
  • 18
    This is wrong. String(describing:) should never be used for anything else than debugging. It is not the normal String initializer.
    – Eric Aya
    Mar 31, 2018 at 9:33
  • 3
    Hamed Gh, Morithz already provide right answer in same question check my answer Just use the normal String() initializer. But don't give it an optional, unwrap first. Or, like in your example, use ??. Like this: let str = String(x ?? 0) Apr 29, 2018 at 4:54
  • 2
    @HamedGh Look at the examples in the link you give yourself. The describing method is here to... describe its content. It gives a description. Sometimes it's the same as the conversion, sometimes not. Give an optional to describing and you'll see the result... It will not be a conversion. There's a simple, dedicated way to convert: using the normal String initializer, as explained in other answers. Read the complete page that you link to: see that this method searches for descriptions using different ways, some of which would give wrong results if you expect accurate conversion..
    – Eric Aya
    Aug 29, 2018 at 13:42
  • 2
    You really should remove the describing part of this answer. Conversion should be done without using any parameter name in the String constructor.
    – TimTwoToes
    Feb 18, 2019 at 22:48
27

Just for completeness, you can also use:

let x = 10.description

or any other value that supports a description.

1
  • 6
    This worked for me when trying to show the value in a label. With the other approaches it was always Optional(0) instead of 0. Thank you Jan 25, 2017 at 19:09
11

Swift 4:

Trying to show the value in label without Optional() word.

here x is a Int value using.

let str:String = String(x ?? 0)
5
  • 4
    No. String(describing:) should never be used for anything else than debugging. It is not the normal String initializer.
    – Eric Aya
    Mar 31, 2018 at 9:33
  • Hello @Moritz so what can i do for remove optional word ? i have a Int value and than i want to print in label Mar 31, 2018 at 9:54
  • Just use the normal String() initializer. But don't give it an optional, unwrap first. Or, like in your example, use ??. Like this: let str = String(x ?? 0)
    – Eric Aya
    Mar 31, 2018 at 10:07
  • developer.apple.com/documentation/swift/string/2427941-init i understand your point what is the use of describing Mar 31, 2018 at 11:03
  • It's mostly for debugging purposes. You can describe the name of classes, get the description of instances, etc. But it should never be used for strings that are used in the app itself.
    – Eric Aya
    Mar 31, 2018 at 11:05
9

To save yourself time and hassle in the future you can make an Int extension. Typically I create a shared code file where I put extensions, enums, and other fun stuff. Here is what the extension code looks like:

extension Int
{
    func toString() -> String
    {
        var myString = String(self)
        return myString
    }
}

Then later when you want to convert an int to a string you can just do something like:

var myNumber = 0
var myNumberAsString = myNumber.toString()
2
  • Potentially stupid question, but should this be a function, or a computed variable? I can't recall which one Swift normally uses in these cases - is it toInt or toInt(). Feb 10, 2016 at 17:16
  • 1
    To save yourself some time and hassle just use myNumber.description. No need for any extensions.
    – nyg
    Aug 16, 2017 at 9:44
9

in swift 3.0 this is how we can convert Int to String and String to Int

//convert Integer to String in Swift 3.0

let theIntegerValue :Int = 123  // this can be var also
let theStringValue :String = String(theIntegerValue)


//convert String to Integere in Swift 3.0


let stringValue : String = "123"
let integerValue : Int = Int(stringValue)!
3
  • 1
    In the last line of the code, why do we need an exclamation mark at the end?
    – Omar Tariq
    Mar 3, 2017 at 18:44
  • @OmarTariq, because we explicitly tells the compiler that the integerValue's type is Int. then cannot have a nil value for it. so compiler tells you to unwrap it. if you want to avoid this , use it like let integerValue = Int(stringValue). then you won't get a problem. sorry for the late reply. May 22, 2017 at 9:10
  • 1
    @OmarTariq Unwrapping in this case can be really bad. If the string isn't a number this will crash your application. You should really check to ensure that is valid and not force unwrap it. Jan 8, 2018 at 3:11
7

for whatever reason the accepted answer did not work for me. I went with this approach:

var myInt:Int = 10
var myString:String = toString(myInt)
0
5

Multiple ways to do this :

var str1:String="\(23)"
var str2:String=String(format:"%d",234)
0
4

Swift 2:

var num1 = 4
var numString = "56"
var sum2 = String(num1) + numString
var sum3 = Int(numString)
3
let intAsString = 45.description     // "45"
let stringAsInt = Int("45")          // 45
3

Swift String performance

A little bit about performance UI Testing Bundle on iPhone 7(real device) with iOS 14

let i = 0
lt result1 = String(i) //0.56s 5890kB
lt result2 = "\(i)" //0.624s 5900kB
lt result3 = i.description //0.758s 5890kB
import XCTest

class ConvertIntToStringTests: XCTestCase {
    let count = 1_000_000
    
    func measureFunction(_ block: () -> Void) {
        let metrics: [XCTMetric] = [
            XCTClockMetric(),
            XCTMemoryMetric()
        ]
        let measureOptions = XCTMeasureOptions.default
        measureOptions.iterationCount = 5
        
        measure(metrics: metrics, options: measureOptions) {
            block()
        }
    }

    func testIntToStringConstructor() {
        var result = ""
        measureFunction {
            for i in 0...count {
                result += String(i)
            }
        }
    }
    
    func testIntToStringInterpolation() {
        var result = ""
        measureFunction {
            for i in 0...count {
                result += "\(i)"
            }
        }
    }
    
    func testIntToStringDescription() {
        var result = ""
        measureFunction {
            for i in 0...count {
                result += i.description
            }
        }
    }
}
2

iam using this simple approach

String to Int:

 var a = Int()
var string1 = String("1")
a = string1.toInt()

and from Int to String:

var a = Int()
a = 1
var string1 = String()
 string1= "\(a)"
2

Convert Unicode Int to String

For those who want to convert an Int to a Unicode string, you can do the following:

let myInteger: Int = 97

// convert Int to a valid UnicodeScalar
guard let myUnicodeScalar = UnicodeScalar(myInteger) else {
    return ""
}

// convert UnicodeScalar to String
let myString = String(myUnicodeScalar)

// results
print(myString) // a

Or alternatively:

let myInteger: Int = 97
if let myUnicodeScalar = UnicodeScalar(myInteger) {
    let myString = String(myUnicodeScalar)
}
1
  • @jvarela, This does still work. I just retested it in Xcode 8.2 (Swift 3.0.2). The String initializer can take a UnicodeScalar.
    – Suragch
    Jan 2, 2017 at 5:17
2

I prefer using String Interpolation

let x = 45
let string = "\(x)"

Each object has some string representation. This makes things simpler. For example if you need to create some String with multiple values. You can also do any math in it or use some conditions

let text = "\(count) \(count > 1 ? "items" : "item") in the cart. Sum: $\(sum + shippingPrice)"
1

exampleLabel.text = String(yourInt)

0

To convert String into Int

var numberA = Int("10")

Print(numberA) // It will print 10

To covert Int into String

var numberA = 10

1st way)

print("numberA is \(numberA)") // It will print 10

2nd way)

var strSomeNumber = String(numberA)

or

var strSomeNumber = "\(numberA)"
0
0
let a =123456888
var str = String(a)

OR

var str = a as! String
0
0

In swift 3.0, you may change integer to string as given below

let a:String = String(stringInterpolationSegment: 15)

Another way is

let number: Int = 15
let _numberInStringFormate: String = String(number)

//or any integer number in place of 15

1
  • 1
    From API reference "Do not call this initializer directly. It is used by the compiler when interpreting string interpolations." May be you want to double check if you are using it somewhere. Jun 1, 2017 at 17:37
0

If you like swift extension, you can add following code

extension Int
{
    var string:String {
        get {
            return String(self)
        }
    }
}

then, you can get string by the method you just added

var x = 1234
var s = x.string
-1
let Str = "12"
let num: Int = 0
num = Int (str)

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