349

Seems so simple, but, how do I initialize Kotlin's MutableList to empty MutableList?

I could hack it this way, but I'm sure there is something easier available:

var pusta: List<Kolory> = emptyList()
var cos: MutableList<Kolory> = pusta.toArrayList()

5 Answers 5

602

You can simply write:

val mutableList = mutableListOf<Kolory>()

This is the most idiomatic way.

Alternative ways are

val mutableList : MutableList<Kolory> = arrayListOf()

or

val mutableList : MutableList<Kolory> = ArrayList()

This is exploiting the fact that java types like ArrayList are implicitly implementing the type MutableList via a compiler trick.

14
  • Do you need to import anything? When I write this in my current project I get unresolved reference arrayListOf and same if I try mutableListOf Mar 14, 2017 at 19:42
  • Do you have the stdlib in your classpath? Mar 15, 2017 at 8:57
  • I just had to switch my kotlin_version flag in my build.gradle back to 1.1.0 instead of 1.1.1 Mar 16, 2017 at 14:35
  • 2
    @androiddeveloper that's because kotlin.collections.Listis not java.utils.List. Kotlin has a mechanism for mapping some built-in java types. Please refer to kotlinlang.org/docs/reference/java-interop.html#mapped-types and similar SO questions. The comment section is not appropriate for discussing this in detail. Apr 23, 2018 at 11:01
  • 2
    @Mohanakrrishna yes, the functions support passing arguments. Apr 8, 2019 at 10:02
22

Various forms depending on type of List, for Array List:

val myList = mutableListOf<Kolory>() 
// or more specifically use the helper for a specific list type
val myList = arrayListOf<Kolory>()

For LinkedList:

val myList = linkedListOf<Kolory>()
// same as
val myList: MutableList<Kolory> = linkedListOf()

For other list types, will be assumed Mutable if you construct them directly:

val myList = ArrayList<Kolory>()
// or
val myList = LinkedList<Kolory>()

This holds true for anything implementing the List interface (i.e. other collections libraries).

No need to repeat the type on the left side if the list is already Mutable. Or only if you want to treat them as read-only, for example:

val myList: List<Kolory> = ArrayList()
4
  • What if I know the size of the new MutableList ? For ArrayList, I can do : ArrayList(24), for example, if I think that 24 is a good start for it, that it will probably won't need more than it. Apr 23, 2018 at 7:32
  • @androiddeveloper View the docs for the list constructors or Java API for the underlying lists and you will see options for what you want. Apr 23, 2018 at 14:14
  • you forgot about mutableListOf. The correct would be: val myList = arrayListOf<Kolory>() // same as // val myList = mutableListOf<Kolory>()
    – user924
    Jan 14, 2019 at 11:30
  • linkedListOf was for earlier versions of Kotlin also I believe that Kotlin no longer has LinkedList
    – Mr.Q
    May 15, 2021 at 14:03
10

I do like below to :

var book: MutableList<Books> = mutableListOf()

/** Returns a new [MutableList] with the given elements. */

public fun <T> mutableListOf(vararg elements: T): MutableList<T>
    = if (elements.size == 0) ArrayList() else ArrayList(ArrayAsCollection(elements, isVarargs = true))
6

Create Mutable list of nullable String in kotlin

val systemUsers: MutableList<String?> = mutableListOf()
1

It is absolutely valid to use the MutableList() function of the Kotlin collections that intentionally looks like a constructor. This function is in general very useful to know because it can also consume an initialization function that pre-fills all values of a (non-empty) list.

val emptyListOfTypeUnit = MutableList(0) {}

val emptyListOfTypeInt = MutableList(0) { 0 }
val verboseEmptyListOfTypeInt = MutableList<Int>(0) { 0 }

val emptyListOfTypeString = MutableList(0) { "" }
val verboseEmptyListOfTypeString = MutableList<String>(0) { "" }

val emptyListOfTypeKolory = MutableList(0) { Kolory() }
val verboseEmptyListOfTypeKolory = MutableList<Kolory>(0) { Kolory() }

Disclaimer: I was introduced to this in the Jetbrains Academy course for Kotlin developers, which is unfortunately not public. Therefore, I cannot link a reference here. Sorry.

1
  • Thanks. I would have never guesses that creating an empty list is so complicated. Not to mention that having to pass an empty lambda is quite imperformant considering that ever lambda is a complete class underneath.
    – Martin
    Jan 18 at 8:44

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