426

I know how to programmatically do it, but I'm sure there's a built-in way...

Every language I've used has some sort of default textual representation for a collection of objects that it will spit out when you try to concatenate the Array with a string, or pass it to a print() function, etc. Does Apple's Swift language have a built-in way of easily turning an Array into a String, or do we always have to be explicit when stringifying an array?

1
  • 6
    Swift 4: array.description or if you want a custom separator array.joined(separator: ",") Jan 18, 2018 at 23:41

25 Answers 25

807

If the array contains strings, you can use the String's join method:

var array = ["1", "2", "3"]

let stringRepresentation = "-".join(array) // "1-2-3"

In Swift 2:

var array = ["1", "2", "3"]

let stringRepresentation = array.joinWithSeparator("-") // "1-2-3"

This can be useful if you want to use a specific separator (hypen, blank, comma, etc).

Otherwise you can simply use the description property, which returns a string representation of the array:

let stringRepresentation = [1, 2, 3].description // "[1, 2, 3]"

Hint: any object implementing the Printable protocol has a description property. If you adopt that protocol in your own classes/structs, you make them print friendly as well

In Swift 3

  • join becomes joined, example [nil, "1", "2"].flatMap({$0}).joined()
  • joinWithSeparator becomes joined(separator:) (only available to Array of Strings)

In Swift 4

var array = ["1", "2", "3"]
array.joined(separator:"-")
15
  • 2
    @Andrej: It works on both 1.2 and 2.0. Are you using an array of strings?
    – Antonio
    Jul 3, 2015 at 18:00
  • 1
    Antonio, sorry, my bad. I had an issue with my array. Now I can confirm your solution works. :)
    – Andrej
    Jul 5, 2015 at 20:40
  • 13
    "-".join(array) is no longer available in Swift 2, Xcode 7 Beta 6, try using array.joinWithSeparator("-")
    – Harry Ng
    Aug 27, 2015 at 7:18
  • 101
    joinWithSeparator is only available for array of strings. If you have array of other objects, then use map first. For example, [1, 2, 3].map({"\($0)"}).joinWithSeparator(",")
    – Dmitry
    Oct 28, 2015 at 16:20
  • 4
    @Dmitry Don't use string interpolation soley for conversion to string. It's much nicer to use an initializer on String
    – Alexander
    Jul 27, 2016 at 4:38
170

With Swift 5, according to your needs, you may choose one of the following Playground sample codes in order to solve your problem.


Turning an array of Characters into a String with no separator:

let characterArray: [Character] = ["J", "o", "h", "n"]
let string = String(characterArray)

print(string)
// prints "John"

Turning an array of Strings into a String with no separator:

let stringArray = ["Bob", "Dan", "Bryan"]
let string = stringArray.joined(separator: "")

print(string) // prints: "BobDanBryan"

Turning an array of Strings into a String with a separator between words:

let stringArray = ["Bob", "Dan", "Bryan"]
let string = stringArray.joined(separator: " ")

print(string) // prints: "Bob Dan Bryan"

Turning an array of Strings into a String with a separator between characters:

let stringArray = ["car", "bike", "boat"]
let characterArray = stringArray.flatMap { $0 }
let stringArray2 = characterArray.map { String($0) }
let string = stringArray2.joined(separator: ", ")

print(string) // prints: "c, a, r, b, i, k, e, b, o, a, t"

Turning an array of Floats into a String with a separator between numbers:

let floatArray = [12, 14.6, 35]
let stringArray = floatArray.map { String($0) }
let string = stringArray.joined(separator: "-")

print(string)
// prints "12.0-14.6-35.0"
2
  • I have a string which looks like: "[1,2,3]". Is there any way to easily convert this to an array [Int]? easily i.e. the reverse of what .description does? Jan 26, 2017 at 15:02
  • 1
    @user2363025 uni can use JSON decoder. try JSONDecoder().decode([Int].self, from: Data(string.utf8))
    – Leo Dabus
    Apr 27, 2020 at 21:11
49

Swift 2.0 Xcode 7.0 beta 6 onwards uses joinWithSeparator() instead of join():

var array = ["1", "2", "3"]
let stringRepresentation = array.joinWithSeparator("-") // "1-2-3"

joinWithSeparator is defined as an extension on SequenceType

extension SequenceType where Generator.Element == String {
    /// Interpose the `separator` between elements of `self`, then concatenate
    /// the result.  For example:
    ///
    ///     ["foo", "bar", "baz"].joinWithSeparator("-|-") // "foo-|-bar-|-baz"
    @warn_unused_result
    public func joinWithSeparator(separator: String) -> String
}
23

Swift 3

["I Love","Swift"].joined(separator:" ") // previously joinWithSeparator(" ")
1
  • 1
    I would say that it is ["I Love","Swift"].joined(separator: " ")
    – Loebre
    Sep 27, 2016 at 20:43
19

Since no one has mentioned reduce, here it is:

[0, 1, 1, 0].map {"\($0)"}.reduce("") { $0 + $1 } // "0110"

In the spirit of functional programming 🤖

2
  • 5
    Nice way of doing things, thanks... adding a shorter end of command line : [0,1,1,0].map{"\($0)"}.reduce("",+). 😉
    – XLE_22
    Aug 9, 2017 at 21:19
  • 1
    @XLE_22 [0,1,1,0].map(String.init).joined()
    – Leo Dabus
    Apr 27, 2020 at 21:17
15

In Swift 4

let array:[String] = ["Apple", "Pear ","Orange"]

array.joined(separator: " ")
9

To change an array of Optional/Non-Optional Strings

//Array of optional Strings
let array : [String?] = ["1",nil,"2","3","4"]

//Separator String
let separator = ","

//flatMap skips the nil values and then joined combines the non nil elements with the separator
let joinedString = array.flatMap{ $0 }.joined(separator: separator)


//Use Compact map in case of **Swift 4**
    let joinedString = array.compactMap{ $0 }.joined(separator: separator

print(joinedString)

Here flatMap, compactMap skips the nil values in the array and appends the other values to give a joined string.

3
  • 4
    @YashBedi In Swift 4 we use compactMap instead of flatMap Apr 10, 2018 at 7:17
  • what meaning of "$" ?
    – Augusto
    May 27, 2018 at 23:46
  • 2
    @Augusto Swift automatically provides shorthand argument names to inline closures, which can be used to refer to the values of the closure's arguments by the names $0, $1, $2. Here, $0 refer to the closure's first String arguments. May 28, 2018 at 8:47
7

Nowadays, in iOS 13+ and macOS 10.15+, we might use ListFormatter:

let formatter = ListFormatter()

let names = ["Moe", "Larry", "Curly"]
if let string = formatter.string(from: names) {
    print(string)
}

That will produce a nice, natural language string representation of the list. A US user will see:

Moe, Larry, and Curly

It will support any languages for which (a) your app has been localized; and (b) the user’s device is configured. For example, a German user with an app supporting German localization, would see:

Moe, Larry und Curly

4

Mine works on NSMutableArray with componentsJoinedByString

var array = ["1", "2", "3"]
let stringRepresentation = array.componentsJoinedByString("-") // "1-2-3"
4

In Swift 2.2 you may have to cast your array to NSArray to use componentsJoinedByString(",")

let stringWithCommas = (yourArray as NSArray).componentsJoinedByString(",")
1
  • By the way this is just a translation of objective-c in swift. Aug 2, 2016 at 9:46
3
let arrayTemp :[String] = ["Mani","Singh","iOS Developer"]
    let stringAfterCombining = arrayTemp.componentsJoinedByString(" ")
   print("Result will be >>>  \(stringAfterCombining)")

Result will be >>> Mani Singh iOS Developer

3

If you want to ditch empty strings in the array.

["Jet", "Fire"].filter { !$0.isEmpty }.joined(separator: "-")

If you want to filter nil values as well:

["Jet", nil, "", "Fire"].flatMap { $0 }.filter { !$0.isEmpty }.joined(separator: "-")
0
3

if you want convert custom object array to string or comma separated string (csv) you can use

 var stringIds = (self.mylist.map{$0.id ?? 0}).map{String($0)}.joined(separator: ",")

credit to : urvish modi post: Convert an array of Ints to a comma separated string

1

The Swift equivalent to what you're describing is string interpolation. If you're thinking about things like JavaScript doing "x" + array, the equivalent in Swift is "x\(array)".

As a general note, there is an important difference between string interpolation vs the Printable protocol. Only certain classes conform to Printable. Every class can be string interpolated somehow. That's helpful when writing generic functions. You don't have to limit yourself to Printable classes.

1

You can print any object using the print function

or use \(name) to convert any object to a string.

Example:

let array = [1,2,3,4]

print(array) // prints "[1,2,3,4]"

let string = "\(array)" // string == "[1,2,3,4]"
print(string) // prints "[1,2,3,4]"
1

Create extension for an Array:

extension Array {

    var string: String? {

        do {

            let data = try JSONSerialization.data(withJSONObject: self, options: [.prettyPrinted])

            return String(data: data, encoding: .utf8)

        } catch {

            return nil
        }
    }
}
1

A separator can be a bad idea for some languages like Hebrew or Japanese. Try this:

// Array of Strings
let array: [String] = ["red", "green", "blue"]
let arrayAsString: String = array.description
let stringAsData = arrayAsString.data(using: String.Encoding.utf16)
let arrayBack: [String] = try! JSONDecoder().decode([String].self, from: stringAsData!)

For other data types respectively:

// Set of Doubles
let set: Set<Double> = [1, 2.0, 3]
let setAsString: String = set.description
let setStringAsData = setAsString.data(using: String.Encoding.utf16)
let setBack: Set<Double> = try! JSONDecoder().decode(Set<Double>.self, from: setStringAsData!)
1

you can use joined() to get a single String when you have array of struct also.

struct Person{
    let name:String
    let contact:String
}

You can easily produce string using map() & joined()

PersonList.map({"\($0.name) - \($0.contact)"}).joined(separator: " | ")

output:

Jhon - 123 | Mark - 456 | Ben - 789  
0

if you have string array list , then convert to Int

let arrayList = list.map { Int($0)!} 
     arrayList.description

it will give you string value

0

for any Element type

extension Array {

    func joined(glue:()->Element)->[Element]{
        var result:[Element] = [];
        result.reserveCapacity(count * 2);
        let last = count - 1;
        for (ix,item) in enumerated() {
            result.append(item);
            guard ix < last else{ continue }
            result.append(glue());
        }
        return result;
    }
}
0

Try This:

let categories = dictData?.value(forKeyPath: "listing_subcategories_id") as! NSMutableArray
                        let tempArray = NSMutableArray()
                        for dc in categories
                        {
                            let dictD = dc as? NSMutableDictionary
                            tempArray.add(dictD?.object(forKey: "subcategories_name") as! String)
                        }
                        let joinedString = tempArray.componentsJoined(by: ",")
0

use this when you want to convert list of struct type into string

struct MyStruct {
  var name : String
  var content : String
}

let myStructList = [MyStruct(name: "name1" , content: "content1") , MyStruct(name: "name2" , content: "content2")]

and covert your array like this way

let myString = myStructList.map({$0.name}).joined(separator: ",")

will produce ===> "name1,name2"

-1

FOR SWIFT 3:

func textField(textField: UITextField, shouldChangeCharactersInRange range: NSRange, replacementString string: String) -> Bool {
    if textField == phoneField
    {
        let newString = NSString(string: textField.text!).replacingCharacters(in: range, with: string)
        let components = newString.components(separatedBy: NSCharacterSet.decimalDigits.inverted)

        let decimalString = NSString(string: components.joined(separator: ""))
        let length = decimalString.length
        let hasLeadingOne = length > 0 && decimalString.character(at: 0) == (1 as unichar)

        if length == 0 || (length > 10 && !hasLeadingOne) || length > 11
        {
            let newLength = NSString(string: textField.text!).length + (string as NSString).length - range.length as Int

            return (newLength > 10) ? false : true
        }
        var index = 0 as Int
        let formattedString = NSMutableString()

        if hasLeadingOne
        {
            formattedString.append("1 ")
            index += 1
        }
        if (length - index) > 3
        {
            let areaCode = decimalString.substring(with: NSMakeRange(index, 3))
            formattedString.appendFormat("(%@)", areaCode)
            index += 3
        }
        if length - index > 3
        {
            let prefix = decimalString.substring(with: NSMakeRange(index, 3))
            formattedString.appendFormat("%@-", prefix)
            index += 3
        }

        let remainder = decimalString.substring(from: index)
        formattedString.append(remainder)
        textField.text = formattedString as String
        return false
    }
    else
    {
        return true
    }
}
0
-1

If you question is something like this: tobeFormattedString = ["a", "b", "c"] Output = "abc"

String(tobeFormattedString)

1
  • No, this doesn't work. String has no initializer capable of doing that. Either you're using a custom extension or third-party library, or you're simply plainly mistaken.
    – Eric Aya
    Feb 13, 2018 at 10:07
-1

You can either use loops for getting this done. Or by using map.

By mapping:

let array = ["one" , "two" , "three"]
    
array.map({$0}).joined(seperator : ",")

so in separator you can modify the string.

Output-> ("one,two,three")

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