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Under certain situations, I need to evict the oldest element in a Java Set. The set is implemented using a LinkedHashSet, which makes this simple: just get rid of the first element returned by the set's iterator:

Set<Foo> mySet = new LinkedHashSet<Foo>();
// do stuff...
if (mySet.size() >= MAX_SET_SIZE)
{
    Iterator<Foo> iter = mySet.iterator();
    iter.next();
    iter.remove();
}

This is ugly: 3 lines to do something I could do with 1 line if I was using a SortedSet (for other reasons, a SortedSet is not an option here):

if (/*stuff*/)
{
    mySet.remove(mySet.first());
}

So is there a cleaner way of doing this, without:

  • changing the Set implementation, or
  • writing a static utility method?

Any solutions leveraging Guava are fine.


I am fully aware that sets do not have inherent ordering. I'm asking about removing the first entry as defined by iteration order.

share|improve this question
    
Can you comment on why SortedSet isn't an option? It's possible that, with more information, someone may be able to provide a better solution. –  RHSeeger Apr 26 '11 at 15:33
    
Why should the first element returned by the iterator be the oldest? –  Andrew Apr 26 '11 at 15:36
1  
@RHSeeger, Sorted set is not an options because it Compares objects and sorts the by their natural order. Objects don't track their insertion order into other Collection objects, so it is not possible to override or alter the natural ordering to mimic insertion order. –  Edwin Buck Apr 26 '11 at 15:38
1  
@RHSeeger: because I can add 1000 elements with the same timestamp (at the millisecond). –  Olivier Grégoire Apr 26 '11 at 15:51
1  
Do you have a good reason for not implementing your own version of Set/OrderedSet, even if the code involved is small? Yes ... it's been done already ;) –  Thomas Apr 26 '11 at 17:09

6 Answers 6

up vote 17 down vote accepted

LinkedHashSet is a wrapper for LinkedHashMap which supports a simple "remove oldest" policy. To use it as a Set you can do

Set<String> set = Collections.newSetFromMap(new LinkedHashMap<String, Boolean>(){
    protected boolean removeEldestEntry(Map.Entry<String, Boolean> eldest) {
        return size() > MAX_ENTRIES;
    }
});
share|improve this answer
    
+1 for a way that doesn't even require the explicit check and remove operation when adding objects –  Thomas Apr 26 '11 at 15:51
    
@Thomas, You also don't to worry about whether addAll() calls add() or not as this is take care of for you. –  Peter Lawrey Apr 26 '11 at 16:10
    
You learn something new everyday... this is a great technique! +1 well deserved! –  Java Drinker Apr 26 '11 at 16:32
    
Hm, I did not know about the removeEldestEntry. This seems like a nice way to do what I want. The only hangup is that the Set<Foo> comes out of a Guava SetMultimap. I'm not actually newing the set; it comes from SetMultimap<String, Foo> cache = LinkedHashMultimap.create() and later calling cache.get("baz") which returns the set I'm working with. –  Matt Ball Apr 26 '11 at 16:51
1  
@Matt Ball: You could create a Supplier<Set> that uses this technique to make sets and use that with Multimaps.newMultimap. –  ColinD Apr 26 '11 at 17:40
if (!mySet.isEmpty())
  mySet.remove(mySet.iterator.next());

seems to be less than 3 lines.

You have to synchronize around it of course if your set is shared by multiple threads.

share|improve this answer
    
+1 For being the shortest possible way to do it with JDK-only libraries. –  Edwin Dalorzo Apr 26 '11 at 15:44
5  
Slower than using the iterator.remove() method. –  Laurent Pireyn Apr 26 '11 at 15:57
    
@LaurentPireyn, Good point. I'm leaving this answer as-is though and upvoted your answer. –  Mike Samuel Mar 27 '14 at 20:58

With guava:

if (!set.isEmpty() && set.size() >= MAX_SET_SIZE) {
    set.remove(Iterables.get(set, 0));
}

I will also suggest an alternative approach. Yes, it it changing the implementation, but not drastically: extend LinkedHashSet and have that condition in the add method:

public LimitedLinkedHashSet<E> extends LinkedHashSet<E> {
    public void add(E element) {
         super.add(element);
         // your 5-line logic from above or my solution with guava
    }
}

It's still 5 line, but it is invisible to the code that's using it. And since this is actually a specific behaviour of the set, it is logical to have it within the set.

share|improve this answer

I think the way you're doing it is fine. Is this something you do often enough to be worth finding a shorter way? You could do basically the same thing with Guava like this:

Iterables.removeIf(Iterables.limit(mySet, 1), Predicates.alwaysTrue());

That adds the small overhead of wrapping the set and its iterator for limiting and then calling the alwaysTrue() predicate once... doesn't seem especially worth it to me though.

Edit: To put what I said in a comment in an answer, you could create a SetMultimap that automatically restricts the number of values it can have per key like this:

SetMultimap<K, V> multimap = Multimaps.newSetMultimap(map,
    new Supplier<Set<V>>() {
      public Set<V> get() {
        return Sets.newSetFromMap(new LinkedHashMap<V, Boolean>() {
          @Override protected boolean removeEldestEntry(Entry<K, V> eldestEntry) {
            return size() > MAX_SIZE;
          }
        });
      }
    });
share|improve this answer

If you really need to do this at several places in your code, just write a static method.

The other solutions proposed are often slower since they imply calling the Set.remove(Object) method instead of the Iterator.remove() method.

@Nullable
public static <T> T removeFirst(Collection<? extends T> c) {
  Iterator<? extends T> it = c.iterator();
  if (!it.hasNext()) { return null; }
  T removed = it.next();
  it.remove();
  return removed;
}
share|improve this answer

Quick and dirty one-line solution: mySet.remove(mySet.toArray(new Foo[mySet.size()])[0]) ;)

However, I'd still go for the iterator solution, since this would be more readable and should also be faster.

Edit: I'd go for Mike Samuel's solution. :)

share|improve this answer
    
Ugh. Creating the array is such a waste. If you want a quick and dirty one-line solution, just put the OP's code in one line mySet.iterator().next().remove() –  wolfcastle Apr 26 '11 at 15:36
1  
@wolfcastle That wouldn't compile since mySet.iterator().next() would return a Foo object. As stated, this is quite ugly and inperformant and I favor Mike's solution (which I didn't think of ;) ): mySet.remove(mySet.iterator().next()). –  Thomas Apr 26 '11 at 15:42

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