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I am aware that you can initialize an array during instantiation as follows:

String[] names = new String[] {"Ryan", "Julie", "Bob"};

Is there a way to do the same thing with an ArrayList? Or must I add the contents individually with array.add()?

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7 Answers 7

up vote 163 down vote accepted

Arrays.asList can help here:

new ArrayList<Integer>(Arrays.asList(1,2,3,5,8,13,21));
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It's worth mentioning that unless you strictly need an ArrayList it's probably better to just use the List that's returned by Arrays#asList. –  maerics May 3 '10 at 20:51
@maerics, it's also worth mentioning that Arrays.asList() return an unmodifiable collection. :) –  kocko Oct 9 '13 at 9:46
It will throw compilation error "The method asList(Object[]) in the type Arrays is not applicable for the arguments (int, int, int, int, int, int, int)".. –  R K Jan 20 '14 at 12:30
Actual implementation should be "new ArrayList<Integer>(Arrays.asList(new Object[]{1,2,3,5,8,13,21}));" –  R K Jan 20 '14 at 12:30
The list returned by Arrays.asList() is NOT unmodifiable, @kocko. It has a fixed size, but you can change the references to point to entirely different objects like Arrays.asList(...).set(0,new String("new string")) This code will work and set the first element of the list to the String object with value "new string". And in fact, it writes through to the native array! Definitely not unmodifiable. –  Jason Apr 19 '14 at 15:22


new ArrayList<String>(){{

What this is actually doing is creating a class derived from ArrayList<String> (the outer set of braces do this) and then declare a static initialiser (the inner set of braces). This is actually an inner class of the containing class, and so it'll have an implicit this pointer. Not a problem unless you want to serialise it, or you're expecting the outer class to be garbage collected.

I understand that Java 7 will provide additional language constructs to do precisely what you want.

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Downvoted why ? –  Brian Agnew May 3 '10 at 21:01
Not my downvote, but I consider this a pretty nasty abuse of anonymous classes. At least you're not trying to pass it off as a special feature... –  Michael Borgwardt May 3 '10 at 21:34
I don't believe that creating an anonymous class is bad in itself. You should be aware of it though. –  Brian Agnew May 8 '10 at 8:39
Downvoted why (again) ? –  Brian Agnew Oct 4 '11 at 11:17
I'm guessing that it keeps getting downvoted because it does just what the OP wanted to avoid: using add() for each element. –  WXB13 Jan 14 '14 at 9:04

Here is the closest you can get:

ArrayList<String> list = new ArrayList(Arrays.asList("Ryan", "Julie", "Bob"));

You can go even simpler with:

List<String> list = Arrays.asList("Ryan", "Julie", "Bob")

Looking at the source for Arrays.asList, it constructs an ArrayList, but by default is cast to List. So you could do this (but not reliably for new JDKs):

ArrayList<String> list = (ArrayList<String>)Arrays.asList("Ryan", "Julie", "Bob")
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The ArrayList constructed by asList is not a java.util.ArrayList, only shares the same. In fact, it cannot be, as the return value of asList is specified to be a fixed size list, but an ArrayList must be of variable size. –  meriton May 3 '10 at 20:38
I stand corrected. I did not read far enough into the source. –  Fred Haslam May 4 '10 at 3:28

Arrays.asList("Ryan", "Julie", "Bob");

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Well, in Java there's no literal syntax for lists, so you have to do .add().

If you have a lot of elements, it's a bit verbose, but you could either:

  1. use Groovy or something like that
  2. use Arrays.asList(array)

2 would look something like:

String[] elements = new String[] {"Ryan", "Julie", "Bob"};
List list = new ArrayList(Arrays.asList(elements));

This results in some unnecessary object creation though.

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This is how it is done using the fluent interface of the op4j Java library (1.1. was released Dec '10) :-

List<String> names = Op.onListFor("Ryan", "Julie", "Bob").get();

It's a very cool library that saves you a tonne of time.

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How about this one.

ArrayList<String> names = new ArrayList<String>();
Collections.addAll(names, "Ryan", "Julie", "Bob");
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