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I have an array I'd like to turn into a List, in order to modify the contents of the array.

stackoverflow has plenty of questions/answers that address Arrays.asList() and how it only provides a List view of the underlying array, and how attempting to manipulate the resulting List will generally throw an UnsupportedOperationException as methods used to manipulate the list (e.g. add(), remove(), etc) are not implemented by the List implementation provided by Arrays.asList().

But I can't find an example of how to turn an array into a mutable List. I suppose I can loop through the array and put() each value into a new List, but I'm wondering if there's an interface that exists to do this for me.

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4 Answers 4

up vote 25 down vote accepted

One simple way:

Foo[] array = ...;
List<Foo> list = new ArrayList<Foo>(Arrays.asList(array));

That will create a mutable list - but it will be a copy of the original array. Changing the list will not change the array. You can copy it back later, of course, using toArray.

If you want to create a mutable view onto an array, I believe you'll have to implement that yourself.

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This is completely acceptable for my needs. I'm fine with discarding the original array. –  ericsoco Jul 25 '12 at 23:53
    
Arrays.asList returns a view onto an array, with those mutating methods supported that don't affect the size of the list –  Timo Westkämper Dec 11 '12 at 8:03
    
@TimoWestkämper: Yes, but I'm then creating a new ArrayList from that view. –  Jon Skeet Dec 11 '12 at 8:49
    
@jon-skeet I know, I was just stating that Arrays.asList gives you an array backed list with limited mutability, if you need add/remove/insert then the ArrayList wrapping is a better approach. –  Timo Westkämper Dec 11 '12 at 9:10

If you're using GS Collections, you can use FastList.newListWith(...) or FastList.wrapCopy(...).

Both methods take varargs, so you can create the array inline or pass in an existing array.

MutableList<Integer> list1 = FastList.newListWith(1, 2, 3, 4);

Integer[] array2 = {1, 2, 3, 4};
MutableList<Integer> list2 = FastList.newListWith(array2);

The difference between the two methods is whether or not the array gets copied. newListWith() doesn't copy the array and thus takes constant time. You should avoid using it if you know the array could be mutated elsewhere.

Integer[] array2 = {1, 2, 3, 4};
MutableList<Integer> list2 = FastList.newListWith(array2);
array2[1] = 5;
Assert.assertEquals(FastList.newListWith(1, 5, 3, 4), list2);

Integer[] array3 = {1, 2, 3, 4};
MutableList<Integer> list3 = FastList.wrapCopy(array3);
array3[1] = 5;
Assert.assertEquals(FastList.newListWith(1, 2, 3, 4), list3);

Note: I am a developer on GS collections.

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That's a nice collections API you've got there. The first one I've seen that might tempt me away from my own implementations... only thing it seems to be missing that I find generally useful is a sorted set implementation backed by an array (which I find is much more efficient than a tree-based implementation for either data which is rarely modified or for sets that may be modified frequently but typically hold less than 10 or so elements). –  Jules Mar 13 at 7:12
myNewArrayList = new ArrayList(
    Arrays.asList(
      (Object[])myArray)));
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2  
Except preferably without using raw types... –  Jon Skeet Jul 25 '12 at 21:53

And if you are using google collection API's

Lists.newArrayList(myArray)
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