Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

AFAIK, there are two approaches:

  1. Iterate over a copy of the collection
  2. Use the iterator of the actual collection

For instance,

List<Foo> fooListCopy = new ArrayList<Foo>(fooList);
for(Foo foo : fooListCopy){
    // modify actual fooList
}

and

Iterator<Foo> itr = fooList.iterator();
while(itr.hasNext()){
    // modify actual fooList using itr.remove()
}

Are there any reasons to prefer one approach over the other (e.g. preferring the first approach for the simple reason of readability)?

share|improve this question
    
Just curious, why do you create a copy of foolist rather than just looping through foolist in the first example? –  Haz May 3 '12 at 13:07
    
@Haz, So I only have to loop once. –  user1329572 May 3 '12 at 13:08
3  
Note: prefer 'for' over 'while' also with iterators to limit the scope of the variable: for(Iterator<Foo> itr = fooList.iterator(); itr.hasNext();){} –  Puce May 3 '12 at 13:18
    
@Puce, Great point! –  user1329572 May 3 '12 at 13:20

6 Answers 6

up vote 26 down vote accepted

Your alternatives to avoid a ConcurrentModificationException are:

List<Book> books = new ArrayList<Book>();
books.add(new Book(new ISBN("0-201-63361-2")));
books.add(new Book(new ISBN("0-201-63361-3")));
books.add(new Book(new ISBN("0-201-63361-4")));

Collect all the records that you want to delete within an enhanced for loop, and after you finish iterating, you remove all found records.

ISBN isbn = new ISBN("0-201-63361-2");
List<Book> found = new ArrayList<Book>();
for(Book book : books){
    if(book.getIsbn().equals(isbn)){
        found.add(book);
    }
}
books.removeAll(found);

This, supposing that the operation you want to do is "delete".

If you want to "add" this approach would also work, but I would assume you would iterate over a different collection to determine what elements you want to add to a second collection and then issue an addAll method at the end.

Or you may use a ListIterator which has support for a remove/add method during the iteration itself.

ListIterator<Book> iter = books.listIterator();
while(iter.hasNext()){
    if(iter.next().getIsbn().equals(isbn)){
        iter.remove();
    }
}

Again, I used the "remove" method which is what your question seem to imply, but you may also use its add method to add new elements during iteration.

Or you may use a third-party library like LambdaJ and it makes all the work for you behind the scenes>

List<Book> filtered = select(books, 
                having(on(Book.class).getIsbn(), 
                        is(new ISBN("0-201-63361-2"))));

Or using JDK 8 streams, lambdas/closures:

ISBN other = new ISBN("0-201-63361-2");
List<Book> filtered = books.stream()
                           .filter(b -> b.getIsbn().equals(other))
                           .collect(Collectors.toList());

In these two last cases to filter elements out of a collection and reassign the original reference to the filtered collection (i.e. books = filtered) or used the filtered collection to removeAll the found elements from the original collection (i.e. books.removeAll(filtered)).

Considerations:

What method you use might depend on what you are intending to do

  • The first method works with any Collection (Collection, List, Set, etc).
  • The second works only with Lists, provided that their given ListIterator offers support for add and remove operations.
  • The second approach would work on any collection if you only intend to use the iterator's remove method.
  • In the second approach the obvious advantage is not having to copy anything.
  • The third does not actually remove anything, but looks for the desired elements, then you can replace the original reference for the new one, and let the old one be garbage collected.
  • In the first approach the disadvantage is that we have to iterate twice. We iterate in the foor-loop looking for an element, and once we find it, we ask to remove it from the original list, which would imply a second iteration work to look for this given item.
  • I think it is worth mentioning the the remove method of the Iterator interface is marked as optional in Javadocs, which means that there could be Iterator implementations that may throw UnsupportedOperationException. As such, I'd say this approach is less safe than the first one.

Other Alternatives

There are other alternatives as well. If the list is sorted, and you want to remove consecutive elements you can create a sublist and then clear it:

books.subList(0,5).clear();

Since the sublist is backed by the original list this would be an efficient way of removing this subcollection of elements.

Something similar could be achieved with sorted sets using NavigableSet.subSet method, or any of the slicing methods offered there.

share|improve this answer

Are there any reasons to prefer one approach over the other

The first approach will work, but has the obvious overhead of copying the list.

The second approach will not work because many containers don't permit modification during iteration. This includes ArrayList.

If the only modification is to remove the current element, you can make the second approach work by using itr.remove() (that is, use the iterator's remove() method, not the container's). This would be my preferred method for iterators that support remove().

share|improve this answer
    
Oops, sorry...it is implied that I would use the iterator's remove method, not the container's. And how much overhead does copying the list create? It can't be much and since it's scoped to a method, it should be garbage collected rather quickly. See edit.. –  user1329572 May 3 '12 at 13:20
1  
@aix I think it is worth mentioning the the remove method of the Iterator interface is marked as optional in Javadocs, which means that there could be Iterator implementations that may throw UnsupportedOperationException. As such, I'd say this approach is less safe than the first one. Depending on the implementations intended to be used, the first approach could be more suitable. –  Edwin Dalorzo May 3 '12 at 13:53

Only second approach will work. You can modify collection during iteration using iterator.remove() only. All other attempts will cause ConcurrentModificationException.

share|improve this answer
    
The first approach works as well. –  user1329572 May 3 '12 at 13:09
    
The first attempt iterates on a copy, meaning he can modify the original. –  Colin D May 3 '12 at 13:10
    
First approach will work, as you are iterating over a copy. –  Jon May 3 '12 at 13:13

I would choose the second as you don't have to do a copy of the memory and the Iterator works faster. So you save memory and time.

share|improve this answer
    
"Iterator works faster". Anything to support this claim? Also, the memory footprint of making a copy of a list is very trivial, especially since it'll be scoped within a method and will garbage collected almost immediately. –  user1329572 May 3 '12 at 13:17
    
no way, memory copy and garbage collecting is huge overhead –  Betlista May 3 '12 at 14:57
    
In the first approach the disadvantage is that we have to iterate twice. We iterate in the foor-loop looking for an element, and once we find it, we ask to remove it from the original list, which would imply a second iteration work to look for this given item. This would support the claim that, at least in this case, iterator approach should be faster. We have to consider that only the structural space of the collection is the one being created, the objects inside the collections are not being copied. Both collections would keep references to the same objects. When GC happens we cannot tell!!! –  Edwin Dalorzo May 3 '12 at 15:14

why not this?

for( int i = 0; i < Foo.size(); i++ )
{
   if( Foo.get(i).equals( some test ) )
   {
      Foo.remove(i);
   }
}

And if it's a map, not a list, you can use keyset()

share|improve this answer
1  
This approach has many major disadvantages. First, every time you remove an element, the indexes are reorganized. Therefore, if you remove element 0, then the element 1 becomes the new element 0. If you are going to to this, at least do it backwards to avoid this problem. Second, not all List implementations offer direct access to the elements (as ArrayList does). In a LinkedList this would be tremendously inefficient because every time you issue an get(i) you have to visit all nodes until you reach i. –  Edwin Dalorzo May 3 '12 at 14:59
    
Never considered this as I typically just used it to remove a single item I was looking for. Good to know. –  Drake Clarris May 3 '12 at 15:02
    
I'm late to the party, but surely in the if block code after Foo.remove(i); you should do i--;? –  Bertie Wheen Mar 19 '13 at 21:38

You can't do the second, because even if you use the remove() method on Iterator, you'll get an Exception thrown.

Personally, I would prefer the first for all Collection instances, despite the additional overheard of creating the new Collection, I find it less prone to error during edit by other developers. On some Collection implementations, the Iterator remove() is supported, on other it isn't. You can read more in the docs for Iterator.

The third alternative, is to create a new Collection, iterate over the original, and add all the members of the first Collection to the second Collection that are not up for deletion. Depending on the size of the Collection and the number of deletes, this could significantly save on memory, when compared to the first approach.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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