166

I want to sort a dictionary in Swift. I have a dictionary like:

"A" => Array[]
"Z" => Array[]
"D" => Array[]

etc. I want it to be like

"A" => Array[]
"D" => Array[]
"Z" => Array[]

etc.

I have tried many solutions on SO but no one worked for me. I am using XCode6 Beta 5 and on it some are giving compiler error and some solutions are giving exceptions. So anyone who can post the working copy of dictionary sorting.

2

16 Answers 16

203
let dictionary = [
    "A" : [1, 2],
    "Z" : [3, 4],
    "D" : [5, 6]
]

let sortedKeys = Array(dictionary.keys).sorted(<) // ["A", "D", "Z"]

EDIT:

The sorted array from the above code contains keys only, while values have to be retrieved from the original dictionary. However, 'Dictionary' is also a 'CollectionType' of (key, value) pairs and we can use the global 'sorted' function to get a sorted array containg both keys and values, like this:

let sortedKeysAndValues = sorted(dictionary) { $0.0 < $1.0 }
print(sortedKeysAndValues) // [(A, [1, 2]), (D, [5, 6]), (Z, [3, 4])]

EDIT2: The monthly changing Swift syntax currently prefers

let sortedKeys = Array(dictionary.keys).sort(<) // ["A", "D", "Z"]

The global sorted is deprecated.

3
141

To be clear, you cannot sort Dictionaries. But you can out put an array, which is sortable.

Swift 2.0

Updated version of Ivica M's answer:

let wordDict = [
     "A" : [1, 2],
     "Z" : [3, 4],
     "D" : [5, 6]
]

let sortedDict = wordDict.sort { $0.0 < $1.0 }
print("\(sortedDict)") // 

Swift 3

wordDict.sorted(by: { $0.0 < $1.0 })
3
  • 41
    this actually returns an array of [(String, [Int])] not a Dictionary
    – scord
    Feb 12, 2016 at 16:27
  • 4
    realized Dictionaries are unsorted, so it doesnt make much sense to recreate the data type anyway. I ended up just saving an array of sorted keys.
    – scord
    Feb 12, 2016 at 16:59
  • I get Binary operator > can not be compared to two Any` operands. Downcasting doesn't work either
    – Sean
    Aug 2, 2017 at 3:23
39

In Swift 5, in order to sort Dictionary by KEYS

let sortedYourArray = YOURDICTIONARY.sorted( by: { $0.0 < $1.0 })

In order to sort Dictionary by VALUES

let sortedYourArray = YOURDICTIONARY.sorted( by: { $0.1 < $1.1 })
1
  • 6
    Note that this return a sorted array of dictionary elements. You can loop on it like it was a dictionary for (key, value) in sortedDictArray { }
    – vomi
    Feb 25, 2021 at 8:30
36

If you want to iterate over both the keys and the values in a key sorted order, this form is quite succinct

let d = [
    "A" : [1, 2],
    "Z" : [3, 4],
    "D" : [5, 6]
]

Swift 1,2:

for (k,v) in Array(d).sorted({$0.0 < $1.0}) {
    print("\(k):\(v)")
}

Swift 3+:

for (k,v) in Array(d).sorted(by: {$0.0 < $1.0}) {
    print("\(k):\(v)")
}
2
  • sorted is Custom method or What ? it is showing error while implementing
    – rikky
    Mar 10, 2016 at 5:43
  • @rikkyG Swift 1: sort and sorted. Swift 2: sort has become sortInPlace and sorted has become sort.
    – Eric Aya
    Mar 16, 2016 at 18:08
30

I tried all of the above, in a nutshell all you need is

let sorted = dictionary.sorted { $0.key < $1.key }
let keysArraySorted = Array(sorted.map({ $0.key }))
let valuesArraySorted = Array(sorted.map({ $0.value }))
0
16

In swift 4 you can write it smarter:

let d = [ 1 : "hello", 2 : "bye", -1 : "foo" ]
d = [Int : String](uniqueKeysWithValues: d.sorted{ $0.key < $1.key })
2
  • 3
    Thanks for the effort but first of all, the "let" doesn't make the code build, so first it needs to be "var". Then after compile succeed this code doesn't work it doesn't sort the dictionary I get the same result before and after running this code. Maybe I am missing something but please elaborate more or change the code. ======= var d = [ 1 : "hello", 2 : "bye", -1 : "foo" ] print(d) ->>> prints [2: "bye", -1: "foo", 1: "hello"] d = [Int : String](uniqueKeysWithValues: d.sorted{ $0.key < $1.key }) print(d) ->>> prints [2: "bye", -1: "foo", 1: "hello"]
    – KarimIhab
    Jul 26, 2018 at 14:45
  • It is not possible as when you convert it back to dictionary it will change to the unordered collection as dictionaries in swift are unordered collection developer.apple.com/documentation/swift/dictionary
    – Jaimin
    Jul 12, 2019 at 10:49
12

Swift 4 & 5

For string keys sorting:

dictionary.keys.sorted(by: {$0.localizedStandardCompare($1) == .orderedAscending})

Example:

var dict : [String : Any] = ["10" : Any, "2" : Any, "20" : Any, "1" : Any]

dictionary.keys.sorted() 

["1" : Any, "10" : Any, "2" : Any, "20" : Any]

dictionary.keys.sorted(by: {$0.localizedStandardCompare($1) == .orderedAscending})

["1" : Any, "2" : Any, "10" : Any, "20" : Any]

7

For Swift 4 the following has worked for me:

let dicNumArray = ["q":[1,2,3,4,5],"a":[2,3,4,5,5],"s":[123,123,132,43,4],"t":[00,88,66,542,321]]

let sortedDic = dicNumArray.sorted { (aDic, bDic) -> Bool in
    return aDic.key < bDic.key
}
2
  • 10
    This doesn't return a Dictionary, this will return an array of tuples Apr 23, 2018 at 21:19
  • @DanielArantesLoverde Dictionaries are unsortable by definition. An array of tuples is the best you can do. May 1, 2018 at 19:30
7

This is an elegant alternative to sorting the dictionary itself:

As of Swift 4 & 5

let sortedKeys = myDict.keys.sorted()

for key in sortedKeys {
   // Ordered iteration over the dictionary
   let val = myDict[key]
}
0
7

Swift 5

Input your dictionary that you want to sort alphabetically by keys.

// Sort inputted dictionary with keys alphabetically.
func sortWithKeys(_ dict: [String: Any]) -> [String: Any] {
    let sorted = dict.sorted(by: { $0.key < $1.key })
    var newDict: [String: Any] = [:]
    for sortedDict in sorted {
        newDict[sortedDict.key] = sortedDict.value
    }
    return newDict
}

dict.sorted(by: { $0.key < $1.key }) by it self returns a tuple (value, value) instead of a dictionary [value: value]. Thus, the for loop parses the tuple to return as a dictionary. That way, you put in a dictionary & get a dictionary back.

4
  • 1
    Dictionary could not be sorted, because it contain hashable mappings
    – mazy
    Nov 25, 2020 at 15:26
  • for me not. try: var dict = ["Alise": [1,3,2], "Jane": [2,5], "Dany": [1]] let sorted = sortWithKeys(dict) it returns ["Dany": [1], "Alise": [1, 3, 2], "Jane": [2, 5]], because Dictionary has nothing with sorting But sortedBy returns "[(key: "Alise", value: [1, 3, 2]), (key: "Dany", value: [1]), (key: "Jane", value: [2, 5])]\n"
    – mazy
    Nov 26, 2020 at 16:31
  • 2
    When you create a new dictionary what is the guarantee that it will be sorted?
    – hariszaman
    Feb 17, 2022 at 14:45
  • When creating a new dictionary you are simply setting keys and values so the order is not going to be respected. Sep 9, 2022 at 16:00
3

"sorted" in iOS 9 & xcode 7.3, swift 2.2 is impossible, change "sorted" to "sort", like this:

let dictionary = ["main course": 10.99, "dessert": 2.99, "salad": 5.99]
let sortedKeysAndValues = Array(dictionary).sort({ $0.0 < $1.0 })
print(sortedKeysAndValues)

//sortedKeysAndValues = ["desert": 2.99, "main course": 10.99, "salad": 5.99]
2
  • 3
    The result of sortedKeysAndValues is not a dictionary, it's an Array!
    – Channel
    Nov 30, 2016 at 11:02
  • 2
    The result is an Array of Tuples, not a Dictionary
    – user4886069
    Jun 26, 2018 at 9:47
2

For Swift 3, the following sort returnes sorted dictionary by keys:

let unsortedDictionary = ["4": "four", "2": "two", "1": "one", "3": "three"]

let sortedDictionary = unsortedDictionary.sorted(by: { $0.0.key < $0.1.key })

print(sortedDictionary)
// ["1": "one", "2": "two", "3": "three", "4": "four"]
2
  • 16
    This wont return a dictionary, this will return an array of Tuples
    – anoop4real
    Nov 2, 2017 at 5:51
  • 2
    Don't you even read the question before putting your answer. You are wasting time of many people here. This question is specifically about sorting a dictionary and getting a sorted dictionary not array. I don't know why everyone is putting in wrong answers. Sep 14, 2018 at 14:33
1

For Swift 3 the following has worked for me and the Swift 2 syntax has not worked:

// menu is a dictionary in this example

var menu = ["main course": 10.99, "dessert": 2.99, "salad": 5.99]

let sortedDict = menu.sorted(by: <)

// without "by:" it does not work in Swift 3
3
  • This answer is pretty incomplete. What is sortedDict? What is menu? This code does not appear to be valid, either. Aug 12, 2016 at 16:22
  • Something more serious now: a dictionary has no order. What you get with your code is an array of tuples, not a sorted dictionary - as already said in some answers and comments.
    – Eric Aya
    Aug 15, 2016 at 14:21
  • "This answer is pretty incomplete. What is sortedDict? What is menu? This code does not appear to be valid, either. – cale_b" The answer was edited, the only thing missing was a declaration for a dictionaty - menu. I thought it was clear, this is only about a syntax change in Swift 3 as indicated. The code does work in Swift 3.
    – Joeri
    Aug 16, 2016 at 5:02
1

Swift 3 is sorted(by:<)

let dictionary = [
    "A" : [1, 2],
    "Z" : [3, 4],
    "D" : [5, 6]
]

let sortedKeys = Array(dictionary.keys).sorted(by:<) // ["A", "D", "Z"]
0

Swift Sort Dictionary by keys

Since Dictionary[About] is based on hash function it is not possible to use a sort function as we are used to(like Array). As an alternative you are able to implement a kind of Java TreeMap/TreeSet

Easiest way is to use .sorted(by:) function. It returns an sorted Array of key/value tupples which is easy to handle

Example:

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

struct Section {
    let header: String
    let rows: [Int]
}

let persons = [
    Person(name: "A", age: 1),
    Person(name: "B", age: 1),
    Person(name: "C", age: 1),
    Person(name: "A", age: 2),
    Person(name: "B", age: 2),
    Person(name: "C", age: 2),
    Person(name: "A", age: 3),
    Person(name: "B", age: 3),
    Person(name: "C", age: 3),
]

//grouped
let personsGroupedByName: [String : [Person]] = Dictionary(grouping: persons, by: { $0.name })
/**
 personsGroupedByName
 [0] = {
   key = "B"
   value = 3 values {
     [0] = (name = "B", age = 1)
     [1] = (name = "B", age = 2)
     [2] = (name = "B", age = 3)
   }
 }
 [1] = {
   key = "A"
   value = 3 values {
     [0] = (name = "A", age = 1)
     [1] = (name = "A", age = 2)
     [2] = (name = "A", age = 3)
   }
 }
 [2] = {
   key = "C"
   value = 3 values {
     [0] = (name = "C", age = 1)
     [1] = (name = "C", age = 2)
     [2] = (name = "C", age = 3)
   }
 }
 */

//sort by key
let sortedPersonsGroupedByName: [Dictionary<String, [Person]>.Element] = personsGroupedByName.sorted(by: { $0.0 < $1.0 })
/**
 sortedPersonsGroupedByName
 [0] = {
     key = "A"
     value = 3 values {
       [0] = (name = "A", age = 1)
       [1] = (name = "A", age = 2)
       [2] = (name = "A", age = 3)
     }
   }
   [1] = {
     key = "B"
     value = 3 values {
       [0] = (name = "B", age = 1)
       [1] = (name = "B", age = 2)
       [2] = (name = "B", age = 3)
     }
   }
   [2] = {
     key = "C"
     value = 3 values {
       [0] = (name = "C", age = 1)
       [1] = (name = "C", age = 2)
       [2] = (name = "C", age = 3)
     }
   }
 */

//handle
let sections: [Section] = sortedPersonsGroupedByName.compactMap { (key: String, value: [Person]) -> Section in
    let rows = value.map { person -> Int in
        return person.age
    }
    return Section(header: key, rows: rows)
}
/**
 sections
 [0] = {
     header = "A"
     rows = 3 values {
       [0] = 1
       [1] = 2
       [2] = 3
     }
   }
   [1] = {
     header = "B"
     rows = 3 values {
       [0] = 1
       [1] = 2
       [2] = 3
     }
   }
   [2] = {
     header = "C"
     rows = 3 values {
       [0] = 1
       [1] = 2
       [2] = 3
     }
   }
 */
-1

my two cents, as all answers seem to miss we have a Dict and we do want a Dict:

var menu = ["main course": 10.99, "dessert": 2.99, "salad": 5.99]

let sortedMenu = menu.sorted(by: <) // is an ARRAY
print(type(of: sortedMenu))


let sortedDict = Dictionary( uniqueKeysWithValues: menu.sorted(by: <) )
print(type(of: sortedDict))

Above I sorted by value, by Key:

let sorted1 = menu.sorted { (kv1, kv2) in return kv1.key < kv2.key } and/or apply conversion to Dict using constructor.

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