32

I know this is possible:

Map<Integer, Object> map = new HashMap<Integer, Object>();
...
List<Object> arrayList = new ArrayList<Object>(map.values());

But according to android SparseArray<Object> is more efficient, hence, I am wondering if it is possible to convert a SparseArray to Arraylist.

Much appreciate any input.

3 Answers 3

43

This will get just the values, ignoring gaps between indices (as your existing Map solution does):

public static <C> List<C> asList(SparseArray<C> sparseArray) {
    if (sparseArray == null) return null;
    List<C> arrayList = new ArrayList<C>(sparseArray.size());
    for (int i = 0; i < sparseArray.size(); i++)
        arrayList.add(sparseArray.valueAt(i));
    return arrayList;
}
7
  • Thanks, but this seems like a tedious way of doing it? do you know of another way? like the the List<Object> arrayList = new ArrayList<Object>(map.values()); for Map, for example?
    – LuckyMe
    Jun 10, 2013 at 9:34
  • 2
    This is the only way to do it. Write it in a method once, then forget about how tedious it is!
    – Nick
    Jun 10, 2013 at 10:37
  • 4
    How much overhead is the HashMap? Seems like it might be better to use HashMap in a case where you need easy access to the arraylist of values even when using Integers as the key, rather than creating a loop that iterates to generate that arraylist. Am I overthinking it? Need to go test both I guess.
    – LocalPCGuy
    Oct 7, 2013 at 21:42
  • 1
    I was wondering if the HashMap takes up so much extra space in memory that it is more than the SparseArray + the new ArrayList to iterate over the values.
    – LocalPCGuy
    Dec 3, 2013 at 17:00
  • 1
    @Kensei, yes, the first line of the answer says as much. The OP just wants the values and this does that. It never claims to maintain key/index positions.
    – Nick
    Jan 30, 2015 at 9:24
2

ArrayMap looks like a better choice, which is available since API 19.

1
  • How? If I have to make a List out of an SparseArray I don't see any advantage in using another class in between. Sep 28, 2023 at 14:24
0

Kotlin version:

   fun <T> SparseArray<T>.values(): List<T> {
        val list = ArrayList<T>()
        forEach { _, value ->
            list.add(value)
        }
    return  list.toList()
2
  • This will not work for android.util.SparseArray, there is no forEach method. Jun 1, 2021 at 13:23
  • What is the purpose of toList() here? Sep 28, 2023 at 14:28

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