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
  • @LocalPCGuy HashMap will take unnecessary space in memory to do the same thing. So, considering we are talking about a mobile application, it's always important to take care of memory and give preference do SparseArrays. Nov 27, 2013 at 18:09
  • 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
2

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

0

Kotlin version:

   fun <T> SparseArray<T>.values(): List<T> {
        val list = ArrayList<T>()
        forEach { _, value ->
            list.add(value)
        }
    return  list.toList()
1
  • This will not work for android.util.SparseArray, there is no forEach method. Jun 1, 2021 at 13:23

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.