1101

We all know you can't do this:

for (Object i : l) {
    if (condition(i)) {
        l.remove(i);
    }
}

ConcurrentModificationException etc... this apparently works sometimes, but not always. Here's some specific code:

public static void main(String[] args) {
    Collection<Integer> l = new ArrayList<>();

    for (int i = 0; i < 10; ++i) {
        l.add(4);
        l.add(5);
        l.add(6);
    }

    for (int i : l) {
        if (i == 5) {
            l.remove(i);
        }
    }

    System.out.println(l);
}

This, of course, results in:

Exception in thread "main" java.util.ConcurrentModificationException

... even though multiple threads aren't doing it... Anyway.

What's the best solution to this problem? How can I remove an item from the collection in a loop without throwing this exception?

I'm also using an arbitrary Collection here, not necessarily an ArrayList, so you can't rely on get.

23 Answers 23

1527

Iterator.remove() is safe, you can use it like this:

List<String> list = new ArrayList<>();

// This is a clever way to create the iterator and call iterator.hasNext() like
// you would do in a while-loop. It would be the same as doing:
//     Iterator<String> iterator = list.iterator();
//     while (iterator.hasNext()) {
for (Iterator<String> iterator = list.iterator(); iterator.hasNext();) {
    String string = iterator.next();
    if (string.isEmpty()) {
        // Remove the current element from the iterator and the list.
        iterator.remove();
    }
}

Note that Iterator.remove() is the only safe way to modify a collection during iteration; the behavior is unspecified if the underlying collection is modified in any other way while the iteration is in progress.

Source: docs.oracle > The Collection Interface


And similarly, if you have a ListIterator and want to add items, you can use ListIterator#add, for the same reason you can use Iterator#remove — it's designed to allow it.


In your case you tried to remove from a list, but the same restriction applies if trying to put into a Map while iterating its content.

  • 12
    What if you want to remove an element other than the element returned in the current iteration? – Eugen Apr 22 '13 at 9:51
  • You have to use the .remove in the iterator and that is only able to remove the current element, so no :) – Bill K Apr 22 '13 at 18:00
  • 1
    Be aware that this is slower compared to using ConcurrentLinkedDeque or CopyOnWriteArrayList (at least in my case) – Dan Oct 24 '14 at 1:43
  • i used to iterate backwards over an array and remove.. – morksinaanab Nov 27 '14 at 15:38
  • 1
    Is it not possible to put the iterator.next() call in the for-loop? If not, can someone explain why? – Blake Apr 12 '16 at 13:22
330

This works:

Iterator<Integer> iter = l.iterator();
while (iter.hasNext()) {
    if (iter.next() == 5) {
        iter.remove();
    }
}

I assumed that since a foreach loop is syntactic sugar for iterating, using an iterator wouldn't help... but it gives you this .remove() functionality.

  • 38
    foreach loop is syntactic sugar for iterating. However as you pointed out, you need to call remove on the iterator - which foreach doesn't give you access to. Hence the reason why you can't remove in a foreach loop (even though you are actually using an iterator under the hood) – madlep Oct 21 '08 at 23:30
  • 35
    +1 for example code to use iter.remove() in context, which Bill K's answer does not [directly] have. – Eddified Oct 3 '12 at 17:01
180

With Java 8 you can use the new removeIf method. Applied to your example:

Collection<Integer> coll = new ArrayList<>();
//populate

coll.removeIf(i -> i == 5);
  • 2
    Ooooo! I was hoping something in Java 8 or 9 might help. This still seems rather verbose to me, but I still like it. – James T Snell Sep 23 '15 at 18:25
  • Is implementing equals() recommended in this case too? – Anmol Gupta Dec 11 '15 at 8:57
  • by the way removeIf uses Iterator and while loop. You can see it at java 8 java.util.Collection.java – omerhakanbilici Oct 31 '16 at 14:10
  • 3
    @omerhakanbilici Some implementations like ArrayList override it for performance reasons. The one you are referring to is only the default implementation. – Didier L Mar 31 '17 at 8:33
  • @AnmolGupta: No, equals is not used at all here, so it doesn't have to be implemented. (But of course, if you use equals in your test then it has to be implemented the way you want it.) – Lii Jan 3 at 10:31
40

Since the question has been already answered i.e. the best way is to use the remove method of the iterator object, I would go into the specifics of the place where the error "java.util.ConcurrentModificationException" is thrown.

Every collection class has a private class which implements the Iterator interface and provides methods like next(), remove() and hasNext().

The code for next looks something like this...

public E next() {
    checkForComodification();
    try {
        E next = get(cursor);
        lastRet = cursor++;
        return next;
    } catch(IndexOutOfBoundsException e) {
        checkForComodification();
        throw new NoSuchElementException();
    }
}

Here the method checkForComodification is implemented as

final void checkForComodification() {
    if (modCount != expectedModCount)
        throw new ConcurrentModificationException();
}

So, as you can see, if you explicitly try to remove an element from the collection. It results in modCount getting different from expectedModCount, resulting in the exception ConcurrentModificationException.

  • Very interesting. Thank you! I often don't call remove() myself, I instead favour clearing the collection after iterating through it. Not to say that's a good pattern, just what I've been doing lately. – James T Snell Sep 23 '15 at 18:27
24

You can either use the iterator directly like you mentioned, or else keep a second collection and add each item you want to remove to the new collection, then removeAll at the end. This allows you to keep using the type-safety of the for-each loop at the cost of increased memory use and cpu time (shouldn't be a huge problem unless you have really, really big lists or a really old computer)

public static void main(String[] args)
{
    Collection<Integer> l = new ArrayList<Integer>();
    Collection<Integer> itemsToRemove = new ArrayList<Integer>();
    for (int i=0; i < 10; ++i) {
    l.add(new Integer(4));
    l.add(new Integer(5));
    l.add(new Integer(6));
    }
    for (Integer i : l)
    {
        if (i.intValue() == 5)
            itemsToRemove.add(i);
    }

    l.removeAll(itemsToRemove);
    System.out.println(l);
}
  • 7
    this is what i normally do, but the explicit iterator is a more elgant solution i feel. – Claudiu Oct 21 '08 at 23:51
  • 1
    Fair enough, as long as you aren't doing anything else with the iterator - having it exposed makes it easier to do things like call .next() twice per loop etc. Not a huge problem, but can cause issues if you are doing anything more complicated than just running through a list to delete entries. – RodeoClown Oct 21 '08 at 23:58
  • @RodeoClown: in the original question, Claudiu is removing from the Collection, not the iterator. – matt b Oct 22 '08 at 14:29
  • 1
    Removing from the iterator removes from the underlying collection... but what I was saying in the last comment is that if you are doing anything more complicated than just looking for deletes in the loop (like processing correct data) using the iterator can make some errors easier to make. – RodeoClown Oct 22 '08 at 18:35
  • If it is a simple delete values that aren't needed and the loop is only doing that one thing, using the iterator directly and calling .remove() is absolutely fine. – RodeoClown Oct 22 '08 at 18:36
17

In such cases a common trick is (was?) to go backwards:

for(int i = l.size() - 1; i >= 0; i --) {
  if (l.get(i) == 5) {
    l.remove(i);
  }
}

That said, I'm more than happy that you have better ways in Java 8, e.g. removeIf or filter on streams.

  • 2
    This is a good trick. But it wouldn't work on non-indexed collections like sets, and it'd be really slow on say linked lists. – Claudiu Aug 29 '14 at 16:12
  • @Claudiu Yes, this is definitely just for ArrayLists or similar collections. – Landei Aug 30 '14 at 15:47
  • I'm using an ArrayList, this worked perfectly, thanks. – StarSweeper Feb 21 '18 at 6:30
  • 1
    indexes are great. If it's so common why don't you use for(int i = l.size(); i-->0;) {? – John Apr 27 '18 at 20:20
16

Same answer as Claudius with a for loop:

for (Iterator<Object> it = objects.iterator(); it.hasNext();) {
    Object object = it.next();
    if (test) {
        it.remove();
    }
}
11

With Eclipse Collections (formerly GS Collections), the method removeIf defined on MutableCollection will work:

MutableList<Integer> list = Lists.mutable.of(1, 2, 3, 4, 5);
list.removeIf(Predicates.lessThan(3));
Assert.assertEquals(Lists.mutable.of(3, 4, 5), list);

With Java 8 Lambda syntax this can be written as follows:

MutableList<Integer> list = Lists.mutable.of(1, 2, 3, 4, 5);
list.removeIf(Predicates.cast(integer -> integer < 3));
Assert.assertEquals(Lists.mutable.of(3, 4, 5), list);

The call to Predicates.cast() is necessary here because a default removeIf method was added on the java.util.Collection interface in Java 8.

Note: I am a committer for Eclipse Collections.

8

Make a copy of existing list and iterate over new copy.

for (String str : new ArrayList<String>(listOfStr))     
{
    listOfStr.remove(/* object reference or index */);
}
  • 17
    Making a copy sounds like a waste of resources. – Antzi Aug 21 '13 at 12:35
  • 3
    @Antzi That depends on the size of the list and the density of the objects within. Still a valuable and valid solution. – mre May 4 '16 at 14:14
  • I have been using this method. It takes a bit more resource, but much more flexible and clear. – Tao Zhang Feb 7 at 23:34
7

With a traditional for loop

ArrayList<String> myArray = new ArrayList<>();

   for (int i = 0; i < myArray.size(); ) {
        String text = myArray.get(i);
        if (someCondition(text))
             myArray.remove(i);
        else 
             i++;
      }
  • Ah, so its really just the enhanced-for-loop that throws the Exception. – cellepo Dec 20 '18 at 0:11
  • FWIW - same code would still work after modified to increment i++ in the loop guard rather than within loop body. – cellepo Dec 20 '18 at 0:11
  • Correction ^: That is if the i++ incrementing were not conditional - I see now that's why you do it in the body :) – cellepo Dec 20 '18 at 0:23
7

People are asserting one can't remove from a Collection being iterated by a foreach loop. I just wanted to point out that is technically incorrect and describe exactly (I know the OP's question is so advanced as to obviate knowing this) the code behind that assumption:

    for (TouchableObj obj : untouchedSet) {  // <--- This is where ConcurrentModificationException strikes
        if (obj.isTouched()) {
            untouchedSet.remove(obj);
            touchedSt.add(obj);
            break;  // this is key to avoiding returning to the foreach
        }
    }

It isn't that you can't remove from the iterated Colletion rather that you can't then continue iteration once you do. Hence the break in the code above.

Apologies if this answer is a somewhat specialist use-case and more suited to the original thread I arrived here from, that one is marked as a duplicate (despite this thread appearing more nuanced) of this and locked.

2

A ListIterator allows you to add or remove items in the list. Suppose you have a list of Car objects:

List<Car> cars = ArrayList<>();
// add cars here...

for (ListIterator<Car> carIterator = cars.listIterator();  carIterator.hasNext(); )
{
   if (<some-condition>)
   { 
      carIterator().remove()
   }
   else if (<some-other-condition>)
   { 
      carIterator().add(aNewCar);
   }
}
  • The additional methods in the ListIterator interface (extension of Iterator) are interesting - particularly its previous method. – cellepo Dec 19 '18 at 23:58
1

I have a suggestion for the problem above. No need of secondary list or any extra time. Please find an example which would do the same stuff but in a different way.

//"list" is ArrayList<Object>
//"state" is some boolean variable, which when set to true, Object will be removed from the list
int index = 0;
while(index < list.size()) {
    Object r = list.get(index);
    if( state ) {
        list.remove(index);
        index = 0;
        continue;
    }
    index += 1;
}

This would avoid the Concurrency Exception.

  • 1
    The question explicitly states, that the OP is not necessary using ArrayList and thus cannot rely on get(). Otherwise probably a good approach, though. – kaskelotti Apr 13 '14 at 11:09
  • (Clarification ^) OP is using an arbitraryCollection - Collection interface does not include get. (Although FWIW List interface does include 'get'). – cellepo Dec 19 '18 at 22:31
  • I just added a separate, more detailed Answer here also for while-looping a List. But +1 for this Answer because it came first. – cellepo Dec 19 '18 at 23:44
1

ConcurrentHashMap or ConcurrentLinkedQueue or ConcurrentSkipListMap may be another option, because they will never throw any ConcurrentModificationException, even if you remove or add item.

  • Yep, and note that those are all in java.util.concurrent package. Some other similar/common-use-case classes from that package are CopyOnWriteArrayList & CopyOnWriteArraySet [but not limited to those]. – cellepo Nov 19 '18 at 3:52
  • Actually, I just learned that although those data structure Objects avoid ConcurrentModificationException, using them in an enhanced-for-loop can still cause indexing problems (i.e: still skipping elements, or IndexOutOfBoundsException...) – cellepo Dec 20 '18 at 1:13
1

The Best way(Recommended) is use of java.util.Concurrent package . By using this package you can easily avoid this Exception . refer Modified Code

public static void main(String[] args) {
        Collection<Integer> l = new CopyOnWriteArrayList<Integer>();

        for (int i=0; i < 10; ++i) {
            l.add(new Integer(4));
            l.add(new Integer(5));
            l.add(new Integer(6));
        }

        for (Integer i : l) {
            if (i.intValue() == 5) {
                l.remove(i);
            }
        }

        System.out.println(l);
    }
0

In case ArrayList:remove(int index)- if(index is last element's position) it avoids without System.arraycopy() and takes not time for this.

arraycopy time increases if(index decreases), by the way elements of list also decreases!

the best effective remove way is- removing its elements in descending order: while(list.size()>0)list.remove(list.size()-1);//takes O(1) while(list.size()>0)list.remove(0);//takes O(factorial(n))

//region prepare data
ArrayList<Integer> ints = new ArrayList<Integer>();
ArrayList<Integer> toRemove = new ArrayList<Integer>();
Random rdm = new Random();
long millis;
for (int i = 0; i < 100000; i++) {
    Integer integer = rdm.nextInt();
    ints.add(integer);
}
ArrayList<Integer> intsForIndex = new ArrayList<Integer>(ints);
ArrayList<Integer> intsDescIndex = new ArrayList<Integer>(ints);
ArrayList<Integer> intsIterator = new ArrayList<Integer>(ints);
//endregion

// region for index
millis = System.currentTimeMillis();
for (int i = 0; i < intsForIndex.size(); i++) 
   if (intsForIndex.get(i) % 2 == 0) intsForIndex.remove(i--);
System.out.println(System.currentTimeMillis() - millis);
// endregion

// region for index desc
millis = System.currentTimeMillis();
for (int i = intsDescIndex.size() - 1; i >= 0; i--) 
   if (intsDescIndex.get(i) % 2 == 0) intsDescIndex.remove(i);
System.out.println(System.currentTimeMillis() - millis);
//endregion

// region iterator
millis = System.currentTimeMillis();
for (Iterator<Integer> iterator = intsIterator.iterator(); iterator.hasNext(); )
    if (iterator.next() % 2 == 0) iterator.remove();
System.out.println(System.currentTimeMillis() - millis);
//endregion
  • for index loop: 1090 msec
  • for desc index: 519 msec---the best
  • for iterator: 1043 msec
0
for (Integer i : l)
{
    if (i.intValue() == 5){
            itemsToRemove.add(i);
            break;
    }
}

The catch is the after removing the element from the list if you skip the internal iterator.next() call. it still works! Though I dont propose to write code like this it helps to understand the concept behind it :-)

Cheers!

0

Example of thread safe collection modification:

public class Example {
    private final List<String> queue = Collections.synchronizedList(new ArrayList<String>());

    public void removeFromQueue() {
        synchronized (queue) {
            Iterator<String> iterator = queue.iterator();
            String string = iterator.next();
            if (string.isEmpty()) {
                iterator.remove();
            }
        }
    }
}
0

I know this question is too old to be about Java 8, but for those using Java 8 you can easily use removeIf():

Collection<Integer> l = new ArrayList<Integer>();

for (int i=0; i < 10; ++i) {
    l.add(new Integer(4));
    l.add(new Integer(5));
    l.add(new Integer(6));
}

l.removeIf(i -> i.intValue() == 5);
0

I know this question assumes just a Collection, and not more specifically any List. But for those reading this question who are indeed working with a List reference, you can avoid ConcurrentModificationException with a while-loop (while modifying within it) instead if you want to avoid Iterator (either if you want to avoid it in general, or avoid it specifically to achieve a looping order different from start-to-end stopping at each element [which I believe is the only order Iterator itself can do]):

*Update: See comments below that clarify the analogous is also achievable with the traditional-for-loop.

final List<Integer> list = new ArrayList<>();
for(int i = 0; i < 10; ++i){
    list.add(i);
}

int i = 1;
while(i < list.size()){
    if(list.get(i) % 2 == 0){
        list.remove(i++);

    } else {
        i += 2;
    }
}

No ConcurrentModificationException from that code.

There we see looping not start at the beginning, and not stop at every element (which I believe Iterator itself can't do).

FWIW we also see get being called on list, which could not be done if its reference was just Collection (instead of the more specific List-type of Collection) - List interface includes get, but Collection interface does not. If not for that difference, then the list reference could instead be a Collection [and therefore technically this Answer would then be a direct Answer, instead of a tangential Answer].

FWIWW same code still works after modified to start at beginning at stop at every element (just like Iterator order):

final List<Integer> list = new ArrayList<>();
for(int i = 0; i < 10; ++i){
    list.add(i);
}

int i = 0;
while(i < list.size()){
    if(list.get(i) % 2 == 0){
        list.remove(i);

    } else {
        ++i;
    }
}
  • This still requires very careful calculation of indicies to remove, however. – cricket_007 Dec 19 '18 at 23:56
  • Also, this is just a more detailed explanation of this answer stackoverflow.com/a/43441822/2308683 – cricket_007 Dec 19 '18 at 23:57
  • Good to know - thanks! That other Answer helped me understand that it's the enhanced-for-loop that would throw ConcurrentModificationException, but not the traditional-for-loop (which the other Answer uses) - not realizing that before is why I was motivated to write this Answer (I erroneously thought then that it was all for-loops that would throw the Exception). – cellepo Dec 20 '18 at 0:29
0

Another way is to create a copy of your arrayList:

List<Object> l = ...

List<Object> iterationList = ImmutableList.copyOf(l);

for (Object i : iterationList) {
    if (condition(i)) {
        l.remove(i);
    }

}

-2

this might not be the best way, but for most of the small cases this should acceptable:

"create a second empty-array and add only the ones you want to keep"

I don't remeber where I read this from... for justiness I will make this wiki in hope someone finds it or just to don't earn rep I don't deserve.

-3
Collection<Integer> l = new ArrayList<Integer>();//Do the collection thing...

l.removeIf(i -> i == 5);      //iterates through the collection and removes every occurence of 5

Lambda expressions and Collection methods in Jdk 8 comes in Handy and adds some syntactic sugar 😊.

The method removeIf loops through the collection and filters with Predicate. A Predicate is function of an argument which return a boolean... Just like boolean _bool = (str) -> str.equals("text");

  • While this code snippet may be the solution, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. – Narendra Jadhav Jul 19 '18 at 6:15
  • 2
    This duplicates the exact same Answer here from 4 years ago by @ assylias (looks like you even copied their predicate logic). Please don't add duplicating clutter like this (get rep in other ways that are legitimate - oh and look at a that: you have lost rep from this Answer going negative in votes..). – cellepo Nov 19 '18 at 4:18

protected by Makoto Sep 22 '15 at 14:40

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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