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I'm trying to convert an ArrayList containing Integer objects to primitive int[] with the following piece of code, but it is throwing compile time error. Is it possible to convert in Java?

List<Integer> x =  new ArrayList<Integer>();
int[] n = (int[])x.toArray(int[x.size()]);
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9  
Not an EXACT duplicate of that question (although not very far either) – Jonik Apr 5 '09 at 13:12
1  
Yes, this is an ArrayList, "duplicate" is about a normal array. – smackfu Oct 16 '12 at 14:27
2  
If you don't need primitive ints, you can use: List<Integer> x = new ArrayList<Integer>(); Integer[] n = x.toArray(new Integer[0]); – Evorlor Jun 10 '15 at 20:07

12 Answers 12

up vote 133 down vote accepted

You can convert, but I don't think there's anything built in to do it automatically:

public static int[] convertIntegers(List<Integer> integers)
{
    int[] ret = new int[integers.size()];
    for (int i=0; i < ret.length; i++)
    {
        ret[i] = integers.get(i).intValue();
    }
    return ret;
}

(Note that this will throw a NullPointerException if either integers or any element within it is null.)

EDIT: As per comments, you may want to use the list iterator to avoid nasty costs with lists such as LinkedList:

public static int[] convertIntegers(List<Integer> integers)
{
    int[] ret = new int[integers.size()];
    Iterator<Integer> iterator = integers.iterator();
    for (int i = 0; i < ret.length; i++)
    {
        ret[i] = iterator.next().intValue();
    }
    return ret;
}
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3  
Now I have my own primitive conversion utility! yay Jon! – masher Apr 7 '09 at 23:39
11  
It might be better to iterate using the List's iterator (with for each) so as to avoid performance hits on lists whose access is not O(1). – Matthew Willis Apr 2 '11 at 20:52
    
@Matthew: Yes, possibly - will edit to give that as an alternative. – Jon Skeet Apr 3 '11 at 7:58
1  
You can also utilize the fact the ArrayList implements Iterable (via Collection inheritance) and do: for(int n : integer) { ret[counter++] = n; } ... and initialize int counter = 0; – gardarh Feb 14 '14 at 15:04
1  
much easier now in Java8: integers.stream().mapToInt(Integer::valueOf).toArray – user2393012 Oct 23 '15 at 21:18

If you are using there's also another way to do this.

int[] arr = list.stream().mapToInt(i -> i).toArray();

What it does is:

  • getting a Stream<Integer> from the list
  • obtaining an IntStream by mapping each element to itself (identity function), unboxing the int value hold by each Integer object (done automatically since Java 5)
  • getting the array of int by calling toArray

You could also explicitly call intValue via a method reference, i.e:

int[] arr = list.stream().mapToInt(Integer::intValue).toArray();

It's also worth mentioning that you could get a NullPointerException if you have any null reference in the list. This could be easily avoided by adding a filtering condition to the stream pipeline like this:

                       //.filter(Objects::nonNull) also works
int[] arr = list.stream().filter(i -> i != null).mapToInt(i -> i).toArray();

Example:

List<Integer> list = Arrays.asList(1, 2, 3, 4);
int[] arr = list.stream().mapToInt(i -> i).toArray(); //[1, 2, 3, 4]

list.set(1, null); //[1, null, 3, 4]
arr = list.stream().filter(i -> i != null).mapToInt(i -> i).toArray(); //[1, 3, 4]
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3  
Great answer. Hopefully it will be chosen as the correct answer one of these days. – Julien Chastang Nov 17 '14 at 5:25
    
Thank goodness for Java 8. Thanks exactly what I was looking for. – JRSofty Oct 16 '15 at 5:31
1  
Fantastic answer! – Pimp Trizkit Dec 4 '15 at 13:27
    
Sure wish Android would take the leap to Java 8 one of these days. Streams would be smooth. And lambdas... – Victor Zamanian Feb 10 at 11:29

Apache Commons has a ArrayUtils class, which has a method toPrimitive() that does exactly this.

import org.apache.commons.lang.ArrayUtils;
...
    List<Integer> list = new ArrayList<Integer>();
    list.add(new Integer(1));
    list.add(new Integer(2));
    int[] intArray = ArrayUtils.toPrimitive(list.toArray(new Integer[0]));

However, as Jon showed, it is pretty easy to do this by yourself instead of using external libraries.

share|improve this answer
2  
Note that this approach will make two complete copies of the sequence: one Integer[] created by toArray, and one int[] created inside toPrimitive. The other answer from Jon only creates and fills one array. Something to consider if you have large lists, and performance is important. – paraquat Oct 18 '10 at 18:48
    
I measured performance using ArrayUtils vs pure java and on small lists (<25 elements) pure java is more than 100 times faster. For 3k elements pure java is still almost 2 times faster... (ArrayList<Integer> --> int[]) – Oskar Lund Apr 4 '13 at 16:26
    
@paraquat & Oskar Lund that is not actually correct. Yes, the code provided will create two arrays, but this approach does not. The problem in this code here is the use of a zero length array as the argument. The ArrayList.toArray source code shows that if the contents will fit, the original array will be used. I think in a fair comparison you'll find this method to be as efficient (if not more) and, of course, less code to maintain. – Sean Connolly Apr 23 '13 at 12:10
    
PS: a nice related post – Sean Connolly Apr 23 '13 at 12:20
    
Waht is the purpose of new Integer[0]? – Adam Hughes Jan 12 at 15:13

I believe iterating using the List's iterator is a better idea, as list.get(i) can have poor performance depending on the List implementation:

private int[] buildIntArray(List<Integer> integers) {
    int[] ints = new int[integers.size()];
    int i = 0;
    for (Integer n : integers) {
        ints[i++] = n;
    }
    return ints;
}
share|improve this answer
    
This is actually better solution. – Arefe Jan 19 at 6:34

Google Guava

Google Guava provides a neat way to do this by calling Ints.toArray.

List<Integer> list = ...;
int[] values = Ints.toArray(list);
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1  
I think this'll be the answer for me - I'll take a library over a copy-paste function any day.. especially a library that a decent sized project likely already uses. I hope this answer gets more up-votes and visibility in the future. – Sean Connolly Apr 23 '13 at 12:15
    
Much better than the accepted answer. – George Karpenkov Oct 6 '14 at 9:17

using Dollar should be quite simple:

List<Integer> list = $(5).toList(); // the list 0, 1, 2, 3, 4  
int[] array = $($(list).toArray()).toIntArray();

I'm planning to improve the DSL in order to remove the intermediate toArray() call

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Hey, just wanted to say I hadn't seen Dollar before, but I'm definitely giving it a try on my next project. That's a nifty little api you have going there, keep up the good work :) – Bart Vandendriessche Sep 15 '11 at 9:22

It bewilders me that we encourage one-off custom methods whenever a perfectly good, well used library like Apache Commons has solved the problem already. Though the solution is trivial if not absurd, it is irresponsible to encourage such a behavior due to long term maintenance and accessibility.

Just go with Apache Commons

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5  
I do agree with the previous commenter. Not only do you drag in Apache Commons, but it easily translates into a large set of transitive dependencies that also need to be dragged in. Recently I could remove an amazing # of dependencies by replacing one line of code :-( Dependencies are costly and writing basic code like this is good practice – Peter Kriens Oct 29 '10 at 14:45

If you're using GS Collections, you can use the collectInt() method to switch from an object container to a primitive int container.

List<Integer> integers = new ArrayList<Integer>(Arrays.asList(1, 2, 3, 4, 5));
MutableIntList intList =
  ListAdapter.adapt(integers).collectInt(PrimitiveFunctions.unboxIntegerToInt());
Assert.assertArrayEquals(new int[]{1, 2, 3, 4, 5}, intList.toArray());

If you can convert your ArrayList to a FastList, you can get rid of the adapter.

Assert.assertArrayEquals(
  new int[]{1, 2, 3, 4, 5},
  FastList.newListWith(1, 2, 3, 4, 5)
    .collectInt(PrimitiveFunctions.unboxIntegerToInt()).toArray());

Note: I am a developer on GS collections.

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This code segment is working for me, try this

Integer[] arr = x.toArray(new Integer[x.size()]);

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You can simply copy it to an array:

int[] arr = new int[list.size()];
for(int i = 0; i < list.size(); i++) {
    arr[i] = list.get(i);
}

Not too fancy; but, hey, it works...

share|improve this answer
   List<Integer> list = new ArrayList<Integer>();

    list.add(1);
    list.add(2);

    int[] result = null;
    StringBuffer strBuffer = new StringBuffer();
    for (Object o : list) {
        strBuffer.append(o);
        result = new int[] { Integer.parseInt(strBuffer.toString()) };
        for (Integer i : result) {
            System.out.println(i);
        }
        strBuffer.delete(0, strBuffer.length());
    }
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1  
This answer does not work, it returns an array with a single element instead of multiple elements. – Mysticial May 3 '13 at 8:15
    
Why use a StringBuffer? Why convert the Integer to a String and then to an Integer and then to an int and then to an Integer again? Why use an array with a single element in it, and why loop over that single-element array when it contains just one element? Why cast the Integers to Objects in the outer loop? There are so many questions here. Is @CodeMadness just a troll account? – Victor Zamanian Feb 10 at 11:57
Integer[] arr = (Integer[]) x.toArray(new Integer[x.size()]);

access arr like normal int[].

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5  
this does not answer the question, the question was about converting to primitive type (int) – Asaf Oct 27 '12 at 23:21

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