78

How to copy list in Kotlin?

I'm using

val selectedSeries = mutableListOf<String>()
selectedSeries.addAll(series)

Is there a easier way?

  • 1
    I think your solution is already the easiest way, in case you don't need deep cloning. – Serdar Samancıoğlu Apr 18 '19 at 12:24

10 Answers 10

111

This works fine.

val selectedSeries = series.toMutableList()
  • 4
    val selectedSeries = series.toList() also works because it calls toMutableList() in its implementation. – Flávio Faria Feb 1 '18 at 20:19
  • 4
    @FlávioFaria just tested it with === and have to say toList() doesn't copy the collection, but toMutableList() does – Peppermint Paddy Apr 2 '18 at 11:27
  • 3
    @PeppermintPaddy It does copy, except in the case of empty lists. If the source is empty, Iterable.toList() returnsemptyList(), which always returns the same (immutable) object. So if you test with emptyList() you'll get the same object back. – Laurence Gonsalves Apr 26 '18 at 22:06
  • 37
    I personally don't like this idea... Nothing in the docs grant that toMutableList() should return a new instance of a list if the instance calling the method is already a mutable list. – BrunoJCM Jun 2 '18 at 7:32
  • 2
    this is not a good answer, and definitely not the right one, there is no guarantee that future implementations might change, unless its specifically documented that this method call will always return a new copy. – Bhargav Jun 12 '18 at 9:37
11

I can come up with two alternative ways:

1. val selectedSeries = mutableListOf<String>().apply { addAll(series) }

2. val selectedSeries = mutableListOf(*series.toTypedArray())

Update: with the new Type Inference engine(opt-in in Kotlin 1.3), We can omit the generic type parameter in 1st example and have this:

1. val selectedSeries = mutableListOf().apply { addAll(series) }

FYI.The way to opt-in new Inference is kotlinc -Xnew-inference ./SourceCode.kt for command line, or kotlin { experimental { newInference 'enable'} for Gradle. For more info about the new Type Inference, check this video: KotlinConf 2018 - New Type Inference and Related Language Features by Svetlana Isakova, especially 'inference for builders' at 30'

  • should be splitted into 2 answers imho, since I think the first one is correct, but the latter lacks some beauty. – Holger Brandl Aug 29 '18 at 8:37
  • @Jacob Wu: I was surprised to see that the * symbol in the second solution did not produce an error. What does it do? I did a search with "unary multiplication" but didn't find anything. – Lensflare Oct 24 '18 at 16:08
  • 1
    @Lensflare * means to destruct an array into separate items, e.g. mutableListOf( * [1, 2, 3] ) means mutableListOf(1, 2, 3), it's like the opposite operation to vararg – Jacob Wu Oct 25 '18 at 4:28
  • 1
    @Jacob Wu: Thank you. With your answer, I was able to find out that the operator is called "spread operator". I see how it helps by combining some parameters with an array into a varargs list. But what benefit does it have in your example? Is it faster or something? Or is it the key to ensure that the collection is copied? – Lensflare Oct 25 '18 at 8:26
  • @Lensflare I think the benefit is just the syntax - the code is short, and no explicit generic type is required(like in my 1st example). Behind the scene, I believe the code is compiled to array operations, so performance should be the same. – Jacob Wu Oct 25 '18 at 23:08
8

You can use

List -> toList()

Array -> toArray()

ArrayList -> toArray()

MutableList -> toMutableList()


Example:

val array = arrayListOf("1", "2", "3", "4")

val arrayCopy = array.toArray() // copy array to other array

Log.i("---> array " ,  array?.count().toString())
Log.i("---> arrayCopy " ,  arrayCopy?.count().toString())

array.removeAt(0) // remove first item in array 

Log.i("---> array after remove" ,  array?.count().toString())
Log.i("---> arrayCopy after remove" ,  arrayCopy?.count().toString())

print log:

array: 4
arrayCopy: 4
array after remove: 3
arrayCopy after remove: 4
6

If your list is holding kotlin data class, you can do this

selectedSeries = ArrayList(series.map { it.copy() })
5

For a shallow copy, I suggest

.map{it}

That will work for many collection types.

  • Note that it doesn't work for Maps. It compiles, but since the it is a Map.Entry, and the copy is shallow, you have the same entries. – noamtm Aug 29 '19 at 11:18
  • 1
    @noamtm yes, that is what I mean with shallow copy. This method will never copy the entries. It will only make a copy of the collection with the same entries. Map is nothing special here. – Lensflare Sep 10 '19 at 8:57
  • 1
    My point is, that even though it's tempting to use it on maps too, and it compiles and seems to work - it doesn't really work. – noamtm Sep 10 '19 at 11:32
3

Just like in Java:

List:

    val list = mutableListOf("a", "b", "c")
    val list2 = ArrayList(list)

Map:

    val map = mutableMapOf("a" to 1, "b" to 2, "c" to 3)
    val map2 = HashMap(map)

Assuming you're targeting the JVM (or Android); I'm not sure it works for other targets, as it relies on the copy constructors of ArrayList and HashMap.

2

I would use the toCollection() extension method:

val original = listOf("A", "B", "C")
val copy = original.toCollection(mutableListOf())

This will create a new MutableList and then add each element of the original to the newly-created list.

The inferred type here will be MutableList<String>. If you don't want to expose the mutability of this new list, you can declare the type explicitly as an immutable list:

val copy: List<String> = original.toCollection(mutableListOf())
2

You can use the provided extension Iterable.toMutableList() which will provide you with a new list. Unfortunately, as its signature and documentation suggest, it's meant to ensure that an Iterable is a List (just like toString and many other to<type> methods). Nothing guarantees you that it's going to be a new list. For instance, adding the following line at the beginning of the extension: if (this is List) return this is a legitimate performance improvement (if it indeed improves the performance).

Also, because of its name, the resulting code isn't very clear.

I prefer to add my own extension to be sure of the result and create a much more clear code (just like we have for arrays):

fun <T> MutableList<T>.copyOf(): MutableList<T> {
    return mutableListOf<T>().apply { addAll(this) }
}

Note that addAll is the fastest way to copy because it uses the native System.arraycopy in the implementation of ArrayList.

Also, beware that this will only give you a shallow copy.

0

For simple lists has many right solutions above.

However, it's just for shallows lists.

The below function works for any 2 dimensional ArrayList. ArrayList is, in practice, equivalent to MutableList. Interestingly it doesn't work when using explicit MutableList type. If one needs more dimensions, it's necessary make more functions.

fun <T>cloneMatrix(v:ArrayList<ArrayList<T>>):ArrayList<ArrayList<T>>{
  var MatrResult = ArrayList<ArrayList<T>>()
  for (i in v.indices) MatrResult.add(v[i].clone() as ArrayList<T>)
  return MatrResult
}

Demo for integer Matrix:

var mat = arrayListOf(arrayListOf<Int>(1,2),arrayListOf<Int>(3,12))
var mat2 = ArrayList<ArrayList<Int>>()
mat2 = cloneMatrix<Int>(mat)
mat2[1][1]=5
println(mat[1][1])

it shows 12

-1

Try below code for copying list in Kotlin

arrayList2.addAll(arrayList1.filterNotNull())

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