295

I was doing:

for (Object key : map.keySet())
    if (something)
        map.remove(key);

which threw a ConcurrentModificationException, so i changed it to:

for (Object key : new ArrayList<Object>(map.keySet()))
    if (something)
        map.remove(key);

this, and any other procedures that modify the map are in synchronized blocks.

is there a better solution?

2
  • 1
    If this method and the other method that modify the map are in synchronized blocks, I don't see why you have to do anything? Maybe I'm not understanding your question completely? Can ou please post the rest of the code? Dec 10, 2009 at 23:42
  • @Raedwald, this question and it's accepted answer are more succinct than the other IMO.
    – pstanton
    Nov 17, 2017 at 0:46

12 Answers 12

404

Here is a code sample to use the iterator in a for loop to remove the entry.

Map<String, String> map = new HashMap<String, String>() {
  {
    put("test", "test123");
    put("test2", "test456");
  }
};

for(Iterator<Map.Entry<String, String>> it = map.entrySet().iterator(); it.hasNext(); ) {
    Map.Entry<String, String> entry = it.next();
    if(entry.getKey().equals("test")) {
        it.remove();
    }
}
7
  • 23
    So, you do: it.remove() and never collection.remove(key) inside a loop. It's great!
    – daVe
    Aug 25, 2014 at 14:32
  • 12
    This answer is good for code before Java 8, but elron's answer is preferable if you are using Java 8. stackoverflow.com/a/29187813/2077574
    – KPD
    Jul 8, 2015 at 18:42
  • 1
    This works great in Android too.
    – Apostrofix
    Jan 13, 2016 at 13:01
  • 1
    If an item were added to this Map while it was being recursed to remove items wouldn't it still throw a ConcurrentModificationException?
    – Bill Mote
    Feb 16, 2016 at 18:18
  • 1
    @KPD This is still better if we have some other logic as well inside the for loop, which was my case. Sep 24, 2019 at 5:14
335

As of Java 8 you could do this as follows:

map.entrySet().removeIf(e -> <boolean expression>);

Oracle Docs: entrySet()

The set is backed by the map, so changes to the map are reflected in the set, and vice-versa

3
  • 11
    Note that map.values() and map.keySet() also support removeIf().
    – JJ Brown
    Dec 2, 2019 at 22:33
  • 4
    What is the behaviour of removeIf on map.values()? it removes all the key->val elements pointing to such value? May 19, 2020 at 2:54
  • In removeIf() we are giving condition, it will remove all the matched records Aug 12, 2021 at 11:09
108

Use a real iterator.

Iterator<Object> it = map.keySet().iterator();

while (it.hasNext())
{
  it.next();
  if (something)
    it.remove();
 }

Actually, you might need to iterate over the entrySet() instead of the keySet() to make that work.

10
  • 3
    This does seem a bit more elegant than my solution of iterating over the entry set. Its not very obvious though that removing from the key set removes things from the map (i.e. the key set can be a copy)
    – Gennadiy
    Dec 10, 2009 at 23:43
  • 11
    Sorry to double comment. I have confirmed that removing from the key set indeed removes from the map, although not as obvious as removing from the entry set.
    – Gennadiy
    Dec 10, 2009 at 23:44
  • 1
    Iterating over the key set is the way to do it. Dec 11, 2009 at 1:17
  • 8
    Iterator.next() or in this case it.next() must be invoked before the call to remove otherwise there will be an IllegalStateException.
    – H2ONaCl
    Oct 2, 2012 at 5:14
  • 7
    For the record, this also works for the map values: Iterator it = map.values().iterator(), then it.remove() will remove it entry.
    – olafure
    Jun 30, 2015 at 13:56
49

is there a better solution?

Well, there is, definitely, a better way to do so in a single statement, but that depends on the condition based on which elements are removed.

For eg: remove all those elements where value is test, then use below:

map.values().removeAll(Collections.singleton("test"));

UPDATE It can be done in a single line using Lambda expression in Java 8.

map.entrySet().removeIf(e-> <boolean expression> );

I know this question is way too old, but there isn't any harm in updating the better way to do the things :)

5
  • 1
    It may be an old question but that really helped me. I'd never heard of Collections.singleton() and I had no idea you could remove elements from a map by calling removeAll() on values()! Thank you. Sep 1, 2014 at 1:32
  • 2
    To remove the element which key is test: map.keySet().removeAll(Collections.singleton("test")); Aug 31, 2016 at 15:11
  • 1
    @MarouaneLakhal To remove the element which key is test, wouldn't you just do map.remove("test"); ?
    – dzeikei
    Feb 23, 2017 at 23:53
  • 1
    @dzeikei as stated in the question, map.remove(key) threw a ConcurrentModificationException when he was looping over the map.keySet(). Feb 24, 2017 at 11:25
  • 1
    @MarouaneLakhal If you already know the key of an element of the map you want to remove already, why are you looping in the first place? There can only be one entry in the map with the same key.
    – dzeikei
    Feb 28, 2017 at 10:43
25

ConcurrentHashMap

You can use java.util.concurrent.ConcurrentHashMap.

It implements ConcurrentMap (which extends the Map interface).

E.g.:

Map<Object, Content> map = new ConcurrentHashMap<Object, Content>();

for (Object key : map.keySet()) {
    if (something) {
        map.remove(key);
    }
}

This approach leaves your code untouched. Only the map type differs.

1
  • 9
    The problem with this approach is that a ConcurrentHashMap does not allow "null" as value (or key), so if by any chance you are dealing with a map containing a null, you could not use this approach.
    – fiacobelli
    Feb 2, 2015 at 18:21
9

Java 8 support a more declarative approach to iteration, in that we specify the result we want rather than how to compute it. Benefits of the new approach are that it can be more readable, less error prone.

public static void mapRemove() {

    Map<Integer, String> map = new HashMap<Integer, String>() {
        {
            put(1, "one");
            put(2, "two");
            put(3, "three");
        }
    };

    map.forEach( (key, value) -> { 
        System.out.println( "Key: " + key + "\t" + " Value: " + value );  
    }); 

    map.keySet().removeIf(e->(e>2)); // <-- remove here

    System.out.println("After removing element");

    map.forEach( (key, value) -> { 
        System.out.println( "Key: " + key + "\t" + " Value: " + value ); 
    });
}

And result is as follows:

Key: 1   Value: one
Key: 2   Value: two
Key: 3   Value: three
After removing element
Key: 1   Value: one
Key: 2   Value: two
5

You have to use Iterator to safely remove element while traversing a map.

4

I agree with Paul Tomblin. I usually use the keyset's iterator, and then base my condition off the value for that key:

Iterator<Integer> it = map.keySet().iterator();
while(it.hasNext()) {
    Integer key = it.next();
    Object val = map.get(key);
    if (val.shouldBeRemoved()) {
        it.remove();
    }
}
1
  • 10
    You should use the entrySet instead of using the keySet and doing a get every time. FindBugs even has a detector for this: findbugs.sourceforge.net/…
    – Tim Büthe
    Apr 27, 2012 at 11:46
2

An alternative, more verbose way

List<SomeObject> toRemove = new ArrayList<SomeObject>();
for (SomeObject key: map.keySet()) {
    if (something) {
        toRemove.add(key);
    }
}

for (SomeObject key: toRemove) {
    map.remove(key);
}
2

And this should work as well..

ConcurrentMap<Integer, String> running = ... create and populate map

Set<Entry<Integer, String>> set = running.entrySet();    

for (Entry<Integer, String> entry : set)
{ 
  if (entry.getKey()>600000)
  {
    set.remove(entry.getKey());    
  }
}
1
  • Shouldn't it be: running.remove(entry.getKey());
    – Yetti99
    Mar 16 at 18:14
1

Maybe you can iterate over the map looking for the keys to remove and storing them in a separate collection. Then remove the collection of keys from the map. Modifying the map while iterating is usually frowned upon. This idea may be suspect if the map is very large.

1
  • If you can use a for-each it's definitely the more elegant solution
    – John
    Sep 29, 2015 at 18:42
-1
Set s=map.entrySet();
Iterator iter = s.iterator();

while (iter.hasNext()) {
    Map.Entry entry =(Map.Entry)iter.next();

    if("value you need to remove".equals(entry.getKey())) {
         map.remove();
    }
}
2
  • 2
    There should be some explanation as well. Jul 13, 2018 at 6:25
  • 1
    i think map.remove will thow concurrentModificationExceptiom Jul 18, 2018 at 5:04

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