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    private int checkLevel(String bigWord, Collection<String> dict, MinMax minMax)
    /*value initialised to losing*/
    int value = 0; 
    if (minMax == MinMax.MIN) value = 1; 
    else value = -1; 

    boolean go = true;

    Iterator<String> iter = dict.iterator();

        String str =; 
        Collection<Integer> inds = naiveStringSearch(bigWord, str);


        for (Integer i : inds)
            MinMax passin = minMax.MIN;
            if (minMax == MinMax.MIN) passin = minMax.MAX;

            int value2 = checkLevel(removeWord(bigWord, str, i), dict, passin); 
            if (value2 == -1 && minMax == minMax.MIN)
                value = -1; 
                go = false;
            if (value2 == 1 && minMax == minMax.MAX)
                value = 1; 
                go = false; 


        if (go == false) break; 

    return value;


Exception in thread "main" java.util.ConcurrentModificationException
at java.util.HashMap$HashIterator.nextEntry(
at java.util.HashMap$
at aStringGame.Main.checkLevel(
at aStringGame.Main.test(
at aStringGame.Main.main(

What's the problem here?

share|improve this question
What you are doing in checkLevel? – Nambari Dec 3 '12 at 22:12
@Nambari - I've updated the code to show the entire method. It's a recursive method. – dwjohnston Dec 3 '12 at 22:14

4 Answers 4

up vote 3 down vote accepted

Something somewhere is modifying dict. I suspect it might be happening inside this call:

int value2 = checkLevel(removeWord(bigWord, str, i), dict, passin);

edit Basically, what happens is that the recursive call to checkLevel() modifies dict through another iterator. This makes the outer iterator's fail-fast behaviour to kick in.

share|improve this answer
^I've updated the question to show that it's a recursive method. What would the best solution be? Cloning the dictionary I'm passing in? – dwjohnston Dec 3 '12 at 22:16
Use a ListIterator. See my answer... – jahroy Dec 3 '12 at 22:16
@jahroy - but the collection is a hashset. (The reason for it being a hashset is that I'm concerned about performance, I'm not sure that a hashset will be anyfast for simple iterating, and removing elements but). – dwjohnston Dec 3 '12 at 22:21
If you are iterating, all collections are equal in terms of performance. BTW if you use a Concurrent Set you won't have this isssue. – Peter Lawrey Dec 3 '12 at 22:22
A Set would improve performance by ensuring there are no duplicates. If you create a List from a HashSet, the List will also have no duplicates. – jahroy Dec 3 '12 at 22:25

You can't modify a Collection while you're iterating over it with an Iterator.

Your attempt to call iter.remove() breaks this rule (your removeWord method might, too).

You CAN modify a List while iterating IF you use a ListIterator to iterate.

You can convert your Set to a List and use a List iterator:

List<String> tempList = new ArrayList<String>(dict);
ListIterator li = tempList.listIterator();

Another option is to keep track of the elements you want to remove while iterating.

You could place them in a Set, for example.

You could then call dict.removeAll() after your loop.


Set<String> removeSet = new HashSet<String>();
for (String s : dict) {
    if (shouldRemove(s)) {
share|improve this answer

This is a common occurance in all Collections classes. For instance the entry in TreeSet uses failfast method.

The iterators returned by this class's iterator method are fail-fast: if the set is modified at any time after the iterator is created, in any way except through the iterator's own remove method, the iterator will throw a ConcurrentModificationException. Thus, in the face of concurrent modification, the iterator fails quickly and cleanly, rather than risking arbitrary, non-deterministic behavior at an undetermined time in the future.

share|improve this answer

When using a for each loop you are not allowed to modify the Collection you are iterating inside the loop. If you need to modify it, use a classic for loop

share|improve this answer
It's true that a traditional for loop will avoid a ConcurrentModificationException. However, you can't access elements in a Set by their index. – jahroy Dec 3 '12 at 22:26

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