46

Is there any built-in way to create an ordered map in Swift 2? Arrays [T] are sorted by the order that objects are appended to it, but dictionaries [K : V] aren't ordered.

For example

var myArray: [String] = []
myArray.append("val1")
myArray.append("val2")
myArray.append("val3")

//will always print "val1, val2, val3"
print(myArray)


var myDictionary: [String : String] = [:]
myDictionary["key1"] = "val1"
myDictionary["key2"] = "val2"
myDictionary["key3"] = "val3"

//Will print "[key1: val1, key3: val3, key2: val2]"
//instead of "[key1: val1, key2: val2, key3: val3]"
print(myDictionary)

Are there any built-in ways to create an ordered key : value map that is ordered in the same way that an array is, or will I have to create my own class?

I would like to avoid creating my own class if at all possible, because whatever is included by Swift would most likely be more efficient.

11 Answers 11

29

You can order them by having keys with type Int.

var myDictionary: [Int: [String: String]]?

or

var myDictionary: [Int: (String, String)]?

I recommend the first one since it is a more common format (JSON for example).

  • 1
    I'm going to end up making a custom class, but it's pretty much going to be doing the same thing as your first example (it'll just be simpler to implement). Thank you! – Jojodmo Jun 26 '15 at 2:46
  • So, it's basically a sparse array? :-) – Nicolas Miari Dec 1 '17 at 3:44
  • 2
    FWIW, Dictionary ordering behavior is officially undefined. I doubt they would change it such that Int keys wouldn't be sorted they way you'd expect, nevertheless, although it might work now, there's no guarantee it will work in the future or on other systems. – PeejWeej Jun 27 '18 at 17:19
  • 1
    This is not meant to be accessed iteratively where it relies on how the dictionary internally orders its values. Instead, this solution relies on using the Int values to access its values in a known sort order, i.e. let dictionary: [Int: String] = [0: "a", 3: "d", 1: "b", 2: "c"], (0 ..< dictionary.count).map { print(dictionary[$0] } will still print "a" "b" "c" "d". However Dictionary internally orders its values, accessing the values by iterating Int values from 0 to items count will always result in the same order – chrisamanse Jun 27 '18 at 20:52
  • 1
    FYI if you're going with the tuples approach, there's no need to add the verbose Int:, as arrays are already indexed by integers. You could, instead, do what Mundi did, and add labels for each parameter :) – Raimondo Previdi Nov 1 '18 at 0:49
32

Just use an array of tuples instead. Sort by whatever you like. All "built-in".

var array = [(name: String, value: String)]()
// add elements
array.sort() { $0.name < $1.name }
// or
array.sort() { $0.0 < $1.0 }
  • short & simple +1 – rjb101 Oct 6 '15 at 7:15
  • 38
    This is not even kind of close to an ordered map. A map provides both key uniqueness and O(1) lookup time. This provides neither. – par Apr 29 '16 at 20:21
  • @par Actually I believe it does provide O(1) lookup time, since both arrays and tuples have O(1) lookup time on their own. – Lahav May 21 '16 at 5:33
  • 7
    @Lahav Lookup time is the time to find an arbitrary element. I believe you're thinking of access time. In the case of an array the time to find an element in the worst case is O(n) assuming an unsorted array with a linear search. With a sorted array you can get better performance but still nothing close to a dictionary/map which finds any element in O(1). – par May 21 '16 at 6:22
  • 9
    @Lahav That is what I mean. In this implementation to find/search/lookup a value by key you have to iterate through each element of the array and compare the string at that index to the key you're looking for until you find it (so you have O(n) array performance). You can also have duplicate keys which is definitely not what you want. A proper dictionary/map implementation uses a hash function on the key so both search and access are O(1) and you're guaranteed to have only one value per key. In terms of implementing an ordered map, this answer is just completely wrong. – par May 21 '16 at 6:43
22

"If you need an ordered collection of key-value pairs and don’t need the fast key lookup that Dictionary provides, see the DictionaryLiteral type for an alternative." - https://developer.apple.com/reference/swift/dictionary

  • 3
    This is the answer for those who want to create JSON and they are pulling their hairs because Swift dictionary doesn't preserve the order. Needs more upvotes.... – Suhaib Apr 1 '17 at 3:31
  • 2
    @Suhaib Well, it's a literal though, so its use is limited to a small predefined set of values. It's not like you can add key-values to it after creation. – Adrian Apr 6 '17 at 0:10
  • 2
    @Suhaib, how can you use this in JSONSerialization.data(withJSONObject: )? – Efren Sep 7 '17 at 2:04
  • It gives this error: "'NSInvalidArgumentException', reason: '*** +[NSJSONSerialization dataWithJSONObject:options:error:]: Invalid top-level type in JSON write'" – Efren Sep 7 '17 at 2:07
7

As Matt says, dictionaries (and sets) are unordered collections in Swift (and in Objective-C). This is by design.

If you want you can create an array of your dictionary's keys and sort that into any order you want, and then use it to fetch items from your dictionary.

NSDictionary has a method allKeys that gives you all the keys of your dictionary in an array. I seem to remember something similar for Swift Dictionary objects, but I'm not sure. I'm still learning the nuances of Swift.

EDIT:

For Swift Dictionaries it's someDictionary.keys

3

Swift does not include any built-in ordered dictionary capability, and as far as I know, Swift 2 doesn't either

Then you shall create your own. You can check out these tutorials for help:

3

if your keys confirm to Comparable, you can create a sorted dictionary from your unsorted dictionary as follows

let sortedDictionary = unsortedDictionary.sorted() { $0.key > $1.key }
  • 5
    This does not return a sorted dictionary. It returns a sorted array of tuples of (key, value). – Hans Terje Bakke May 5 '18 at 20:20
  • @HansTerjeBakke If it does the job well, what's the problem with that? – Ben Leggiero Feb 28 at 20:00
1

I know i am l8 to the party but did you look into NSMutableOrderedSet ?

https://developer.apple.com/reference/foundation/nsorderedset

You can use ordered sets as an alternative to arrays when the order of elements is important and performance in testing whether an object is contained in the set is a consideration—testing for membership of an array is slower than testing for membership of a set.

  • What if the elements are not distinct? – Bhavuk Jain Dec 6 '16 at 19:17
  • Yes if you want to insert 2 objects which hash & equal fonctions return the same value, you are out of luck with a set. – AkademiksQc Dec 6 '16 at 19:28
1
    var orderedDictionary = [(key:String, value:String)]()
0

As others have said, there's no built in support for this type of structure. It's possible they will add an implementation to the standard library at some point, but given it's relatively rare for it to be the best solution in most applications, so I wouldn't hold your breath.

One alternative is the OrderedDictionary project. Since it adheres to BidirectionalCollection you get most of the same APIs you're probably used to using with other Collection Types, and it appears to be (currently) reasonably well maintained.

-2

Here's what I did, pretty straightforward:

let array = [
    ["foo": "bar"],
    ["foo": "bar"],
    ["foo": "bar"],
    ["foo": "bar"],
    ["foo": "bar"],
    ["foo": "bar"]
]

// usage
for item in array {
    let key = item.keys.first!
    let value = item.values.first!

    print(key, value)
}

Keys aren't unique as this isn't a Dictionary but an Array but you can use the array keys.

  • 1
    Why not a series of tuples? Like typealias Pair = (key: String, value: String); let array: [Pair] = [("foo", "bar"), ("foo", "bar"), ("foo", "bar")]. Then you don't have to force-unwrap anything or instantiate a complicated dictionary. – Ben Leggiero Feb 26 at 21:40
  • @BenLeggiero Yep why not! – Skoua Feb 27 at 14:30
-7

use Dictionary.enumerated()

example:

let dict = [
    "foo": 1,
    "bar": 2,
    "baz": 3,
    "hoge": 4,
    "qux": 5
]


for (offset: offset, element: (key: key, value: value)) in dict.enumerated() {
    print("\(offset): '\(key)':\(value)")
}
// Prints "0: 'bar':2"
// Prints "1: 'hoge':4"
// Prints "2: 'qux':5"
// Prints "3: 'baz':3"
// Prints "4: 'foo':1"
  • 1
    That's not a Dictionary method, that's a Sequence method: enumerated() – ColGraff Mar 25 '18 at 22:40
  • Unfortunately, @sweetswift, your solution doesn't work for the original question since it does not guarantee order. I've edited it to include an example using a Dictionary, and its output demonstrates that – Ben Leggiero Feb 26 at 21:52

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