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Is it possible to add elements to a collection while iterating over it?

More specifically, I would like to iterate over a collection, and if an element satisfies a certain condition I want to add some other elements to the collection, and make sure that these added elements are iterated over as well. (I realise that this could lead to an unterminating loop, but I'm pretty sure it won't in my case.)

The Java Tutorial from Sun suggests this is not possible: "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."

So if I can't do what I want to do using iterators, what do you suggest I do?

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13 Answers 13

up vote 29 down vote accepted

How about building a Queue with the elements you want to iterate over; when you want to add elements, enqueue them at the end of the queue, and keep removing elements until the queue is empty. This is how a breadth-first search usually works.

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If anyone wants to elaborate on this idea, feel free... –  Avi Jun 14 '09 at 15:51
1  
This is a good way to do things if it fits the model the OP is coding for. This way you don't use an iterator -- just a while loop. while there are elements in the queue, process the first element. You could do this with a List as well, however. –  Eddie Jun 14 '09 at 16:13

There are two issues here:

The first issue is, adding to an Collection after an Iterator is returned. As mentioned, there is no defined behavior when the underlying Collection is modified, as noted in the documentation for Iterator.remove:

... The behavior of an iterator is unspecified if the underlying collection is modified while the iteration is in progress in any way other than by calling this method.

The second issue is, even if an Iterator could be obtained, and then return to the same element the Iterator was at, there is no guarantee about the order of the iteratation, as noted in the Collection.iterator method documentation:

... There are no guarantees concerning the order in which the elements are returned (unless this collection is an instance of some class that provides a guarantee).

For example, let's say we have the list [1, 2, 3, 4].

Let's say 5 was added when the Iterator was at 3, and somehow, we get an Iterator that can resume the iteration from 4. However, there is no guarentee that 5 will come after 4. The iteration order may be [5, 1, 2, 3, 4] -- then the iterator will still miss the element 5.

As there is no guarantee to the behavior, one cannot assume that things will happen in a certain way.

One alternative could be to have a separate Collection to which the newly created elements can be added to, and then iterating over those elements:

Collection<String> list = Arrays.asList(new String[]{"Hello", "World!"});
Collection<String> additionalList = new ArrayList<String>();

for (String s : list) {
    // Found a need to add a new element to iterate over,
    // so add it to another list that will be iterated later:
    additionalList.add(s);
}

for (String s : additionalList) {
    // Iterate over the elements that needs to be iterated over:
    System.out.println(s);
}

Edit

Elaborating on Avi's answer, it is possible to queue up the elements that we want to iterate over into a queue, and remove the elements while the queue has elements. This will allow the "iteration" over the new elements in addition to the original elements.

Let's look at how it would work.

Conceptually, if we have the following elements in the queue:

[1, 2, 3, 4]

And, when we remove 1, we decide to add 42, the queue will be as the following:

[2, 3, 4, 42]

As the queue is a FIFO (first-in, first-out) data structure, this ordering is typical. (As noted in the documentation for the Queue interface, this is not a necessity of a Queue. Take the case of PriorityQueue which orders the elements by their natural ordering, so that's not FIFO.)

The following is an example using a LinkedList (which is a Queue) in order to go through all the elements along with additional elements added during the dequeing. Similar to the example above, the element 42 is added when the element 2 is removed:

Queue<Integer> queue = new LinkedList<Integer>();
queue.add(1);
queue.add(2);
queue.add(3);
queue.add(4);

while (!queue.isEmpty()) {
    Integer i = queue.remove();
    if (i == 2)
        queue.add(42);

    System.out.println(i);
}

The result is the following:

1
2
3
4
42

As hoped, the element 42 which was added when we hit 2 appeared.

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I think that Avi's point was that if you have a queue you don't need to iterate over it. You just dequeue elements from the front while it's not empty and enqueue new elements onto the back. –  Nat Jun 14 '09 at 16:45
    
@Nat: You're right, thank you for pointing that out. I've edited my answer to reflect that. –  coobird Jun 14 '09 at 16:54
1  
@coobird For some reason your answer is truncated. [...] in order to go through all the elements along with additional el— and that's all I can see, however if I try and edit the answer everything is there. Any idea on what's going on? –  Kohányi Róbert Jan 30 '12 at 7:35

You may also want to look at some of the more specialised types, like ListIterator, NavigableSet and (if you're interested in maps) NavigableMap.

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Actually it is rather easy. Just think for the optimal way. I beleive the optimal way is:

for (int i=0; i<list.size(); i++) {
   Level obj = list.get(i);

   //Here execute yr code that may add / or may not add new element(s)
   //...

   i=list.indexOf(obj);
}

The following example works perfectly in the most logical case - when you dont need to iterate the added new elements before the iteration element. About the added elements after the iteration element - there you might want not to iterate them either. In this case you should simply add/or extend yr object with a flag that will mark them not to iterate them.

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The indexOf is not required for add and could be confusing if you have duplicates. –  Peter Lawrey Jan 16 '10 at 22:18
    
Yes, indeed, duplicates are a problem. Thanx for adding that. –  PatlaDJ Jan 16 '10 at 22:36
    
It should be added that, depending on the actual list implementation, list.get(i) can be much more expensive than using an iterator. There might be a considerable performance penalty at least for larger linked lists, e.g.) –  Stefan Winkler Oct 30 '13 at 13:45

Using iterators...no, I don't think so. You'll have to hack together something like this:

	Collection< String > collection = new ArrayList< String >( Arrays.asList( "foo", "bar", "baz" ) );
	int i = 0;
	while ( i < collection.size() ) {

		String curItem = collection.toArray( new String[ collection.size() ] )[ i ];
		if ( curItem.equals( "foo" ) ) {
			collection.add( "added-item-1" );
		}
		if ( curItem.equals( "added-item-1" ) ) {
			collection.add( "added-item-2" );
		}

		i++;
	}

	System.out.println( collection );

Which yeilds:
[foo, bar, baz, added-item-1, added-item-2]

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public static void main(String[] args)
{
    // This array list simulates source of your candidates for processing
    ArrayList<String> source = new ArrayList<String>();
    // This is the list where you actually keep all unprocessed candidates
    LinkedList<String> list = new LinkedList<String>();

    // Here we add few elements into our simulated source of candidates
    // just to have something to work with
    source.add("first element");
    source.add("second element");
    source.add("third element");
    source.add("fourth element");
    source.add("The Fifth Element"); // aka Milla Jovovich

    // Add first candidate for processing into our main list
    list.addLast(source.get(0));

    // This is just here so we don't have to have helper index variable
    // to go through source elements
    source.remove(0);

    // We will do this until there are no more candidates for processing
    while(!list.isEmpty())
    {
        // This is how we get next element for processing from our list
        // of candidates. Here our candidate is String, in your case it
        // will be whatever you work with.
        String element = list.pollFirst();
        // This is where we process the element, just print it out in this case
        System.out.println(element);

        // This is simulation of process of adding new candidates for processing
        // into our list during this iteration.
        if(source.size() > 0) // When simulated source of candidates dries out, we stop
        {
            // Here you will somehow get your new candidate for processing
            // In this case we just get it from our simulation source of candidates.
            String newCandidate = source.get(0);
            // This is the way to add new elements to your list of candidates for processing
            list.addLast(newCandidate);
            // In this example we add one candidate per while loop iteration and 
            // zero candidates when source list dries out. In real life you may happen
            // to add more than one candidate here:
            // list.addLast(newCandidate2);
            // list.addLast(newCandidate3);
            // etc.

            // This is here so we don't have to use helper index variable for iteration
            // through source.
            source.remove(0);
        }
    }
}
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I prefer to process collections functionally rather than mutate them in place. That avoids this kind of problem altogether, as well as aliasing issues and other tricky sources of bugs.

So, I would implement it like:

List<Thing> expand(List<Thing> inputs) {
    List<Thing> expanded = new ArrayList<Thing>();

    for (Thing thing : inputs) {
        expanded.add(thing);
        if (needsSomeMoreThings(thing)) {
            addMoreThingsTo(expanded);
        }
    }

    return expanded;
}
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IMHO the safer way would be to create a new collection, to iterate over your given collection, adding each element in the new collection, and adding extra elements as needed in the new collection as well, finally returning the new collection.

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Besides the solution of using an additional list and calling addAll to insert the new items after the iteration (as e.g. the solution by user Nat), you can also use concurrent collections like the CopyOnWriteArrayList.

The "snapshot" style iterator method uses a reference to the state of the array at the point that the iterator was created. This array never changes during the lifetime of the iterator, so interference is impossible and the iterator is guaranteed not to throw ConcurrentModificationException.

With this special collection (usually used for concurrent access) it is possible to manipulate the underlying list while iterating over it. However, the iterator will not reflect the changes.

Is this better than the other solution? Probably not, I don't know the overhead introduced by the Copy-On-Write approach.

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Given a list List<Object> which you want to iterate over, the easy-peasy way is:

while (!list.isEmpty()){
   Object obj = list.get(0);

   // do whatever you need to
   // possibly list.add(new Object obj1);

   list.remove(0);
}

So, you iterate through a list, always taking the first element and then removing it. This way you can append new elements to the list while iterating.

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Forget about iterators, they don't work for adding, only for removing. My answer applies to lists only, so don't punish me for not solving the problem for collections. Stick to the basics:

    List<ZeObj> myList = new ArrayList<ZeObj>();
    // populate the list with whatever
            ........
    int noItems = myList.size();
    for (int i = 0; i < noItems; i++) {
        ZeObj currItem = myList.get(i);
        // when you want to add, simply add the new item at last and
        // increment the stop condition
        if (currItem.asksForMore()) {
            myList.add(new ZeObj());
            noItems++;
        }
    }
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The 4th line should read "int noItems = myList.size()". –  Stefan Winkler Oct 30 '13 at 13:41
    
Thanks Stefan. Fixed it. –  Victor Ionescu Oct 31 '13 at 7:46

I tired ListIterator but it didn't help my case, where you have to use the list while adding to it. Here's what works for me:

Use LinkedList.

LinkedList<String> l = new LinkedList<String>();
l.addLast("A");

while(!l.isEmpty()){
    String str = l.removeFirst();
    if(/* Condition for adding new element*/)
        l.addLast("<New Element>");
    else
        System.out.println(str);
}

This could give an exception or run into infinite loops. However, as you have mentioned

I'm pretty sure it won't in my case

checking corner cases in such code is your responsibility.

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In general, it's not safe, though for some collections it may be. The obvious alternative is to use some kind of for loop. But you didn't say what collection you're using, so that may or may not be possible.

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