132

I have a List<SomeBean> that is populated from a Web Service. I want to copy/clone the contents of that list into an empty list of the same type. A Google search for copying a list suggested me to use Collections.copy() method. In all the examples I saw, the destination list was supposed to contain the exact number of items for the copying to take place.

As the list I am using is populated through a web service and it contains hundreds of objects, I cannot use the above technique. Or I am using it wrong??!! Anyways, to make it work, I tried to do something like this, but I still got an IndexOutOfBoundsException.

List<SomeBean> wsList = app.allInOne(template);

List<SomeBean> wsListCopy=new ArrayList<SomeBean>(wsList.size());   
Collections.copy(wsListCopy,wsList);
System.out.println(wsListCopy.size());

I tried to use the wsListCopy=wsList.subList(0, wsList.size()) but I got a ConcurrentAccessException later in the code. Hit and trial. :)

Anyways, my question is simple, how can I copy the entire content of my list into another List? Not through iteration, of course.

  • 11
    Any copy will use iteration of course. You can hide it away but it will still be there. – Peter Lawrey Jan 14 '13 at 13:55
  • 1
    First of all: are you sure you need to copy that list? What is your motivation in doing that? – ppeterka Jan 14 '13 at 13:56
  • 2
    Yup, iteration is just hidden under that layers. But the comment was added to to prevent any iteration answers. :) – Mono Jamoon Jan 14 '13 at 13:56
  • @ppeterka I am performing operations on the list, like removeAll(). This causes the list to loss its original data. And "that data" is also required afterwards. – Mono Jamoon Jan 14 '13 at 13:59
  • What is the actual type of a list, which is returning by app.allInOne(template)? ArrayList? – Andremoniy Jan 14 '13 at 14:10

13 Answers 13

228

Just use this:

List<SomeBean> newList = new ArrayList<SomeBean>(otherList);

Note: still not thread safe, if you modify otherList from another thread, then you may want to make that otherList (and even newList) a CopyOnWriteArrayList, for instance -- or use a lock primitive, such as ReentrantReadWriteLock to serialize read/write access to whatever lists are concurrently accessed.

  • 1
    Now, I just feel really stupid :) I hope that constructing it like this would not throw any ConcurrentAccessException. – Mono Jamoon Jan 14 '13 at 13:55
  • 1
  • 5
    +1 if he is getting ConcurrentModifcationException, he has a concurrency issue he needs to fix first. – Peter Lawrey Jan 14 '13 at 13:55
  • 4
    Why is this answer getting so many points if the question mentioned "copy/clone"? This, as long as some other answers have nothing to do with cloning. The same references will be kept for the objects inside the collections whatever collection/stream specific utility-methods you use. – yuranos87 Oct 9 '16 at 21:05
  • 3
    The answer is wrong. The content is not copied. Only It's references. – The incredible Jan Apr 27 '18 at 11:03
31

This is a really nice Java 8 way to do it:

List<String> list2 = list1.stream().collect(Collectors.toList());

Of course the advantage here is that you can filter and skip to only copy of part of the list.

e.g.

//don't copy the first element 
List<String> list2 = list1.stream().skip(1).collect(Collectors.toList());
  • 4
    is the resulting list a deep-copy or shallow copy of the original list? – Ad Infinitum Aug 16 '16 at 12:24
  • 7
    A shallow copy. – kap Nov 29 '16 at 8:57
  • 3
    This, sadly, also is not thread safe. Assuming list is changed while the collector is running, a ConcurrentModificationException is thrown. – C-Otto Mar 13 '17 at 18:39
  • @Dan, How to skip copying the last element? – chandresh May 31 '17 at 6:46
  • @chandresh to skip copying the last element, you would just use .limit(list1.size() - 1) – Matthew Carpenter Jun 26 '18 at 15:04
11
originalArrayList.addAll(copyArrayofList);

Please keep on mind whenever using the addAll() method for copy, the contents of both the array lists (originalArrayList and copyArrayofList) references to the same objects will be added to the list so if you modify any one of them then copyArrayofList also will also reflect the same change.

If you don't want side effect then you need to copy each of element from the originalArrayList to the copyArrayofList, like using a for or while loop.

7

I tried to do something like this, but I still got an IndexOutOfBoundsException.

I got a ConcurrentAccessException

This means you are modifying the list while you are trying to copy it, most likely in another thread. To fix this you have to either

  • use a collection which is designed for concurrent access.

  • lock the collection appropriately so you can iterate over it (or allow you to call a method which does this for you)

  • find a away to avoid needing to copy the original list.

3

There is another method with Java 8 in a null-safe way.

List<SomeBean> wsListCopy = Optional.ofNullable(wsList)
                                    .map(List::stream)
                                    .orElseGet(Stream::empty)
                                    .collect(Collectors.toList());

If you want to skip one element.

List<SomeBean> wsListCopy = Optional.ofNullable(wsList)
                                    .map(List::stream)
                                    .orElseGet(Stream::empty)
                                    .skip(1)
                                    .collect(Collectors.toList());
3

Starting from Java 10:

List<E> oldList = List.of();
List<E> newList = List.copyOf(oldList);

List.copyOf() returns an unmodifiable List containing the elements of the given Collection.

The given Collection must not be null, and it must not contain any null elements.

Also, if you want to create a deep copy of a List, you can find many good answers here.

1

I was having the same problem ConcurrentAccessException and mysolution was to:

List<SomeBean> tempList = new ArrayList<>();

for (CartItem item : prodList) {
  tempList.add(item);
}
prodList.clear();
prodList = new ArrayList<>(tempList);

So it works only one operation at the time and avoids the Exeption...

1

I tried something similar and was able to reproduce the problem (IndexOutOfBoundsException). Below are my findings:

1) The implementation of the Collections.copy(destList, sourceList) first checks the size of the destination list by calling the size() method. Since the call to the size() method will always return the number of elements in the list (0 in this case), the constructor ArrayList(capacity) ensures only the initial capacity of the backing array and this does not have any relation to the size of the list. Hence we always get IndexOutOfBoundsException.

2) A relatively simple way is to use the constructor that takes a collection as its argument:

List<SomeBean> wsListCopy=new ArrayList<SomeBean>(wsList);  
0

re: indexOutOfBoundsException, your sublist args are the problem; you need to end the sublist at size-1. Being zero-based, the last element of a list is always size-1, there is no element in the size position, hence the error.

0

You can use addAll().

eg : wsListCopy.addAll(wsList);

0

I can't see any correct answer. If you want a deep copy you have to iterate and copy object manually (you could use a copy constructor).

-2

If you do not want changes in one list to effect another list try this.It worked for me
Hope this helps.

  public class MainClass {
  public static void main(String[] a) {

    List list = new ArrayList();
    list.add("A");

    List list2 = ((List) ((ArrayList) list).clone());

    System.out.println(list);
    System.out.println(list2);

    list.clear();

    System.out.println(list);
    System.out.println(list2);
  }
}

> Output:   
[A]  
[A]  
[]  
[A]
-3

subList function is a trick, the returned object is still in the original list. so if you do any operation in subList, it will cause the concurrent exception in your code, no matter it is single thread or multi thread.

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