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In the following code, the output shows CONTAINS for each object, whereas commenting out the anonymous object's equals() method results in MISSING, which leads me to believe the second equality pass (hashCode() -> equals()) actually calls the equality method of the supplied object instead of the object within the collection being tested.

List<String> strings = Arrays.asList("Hello", "there", "Qix");
HashSet<String> set = new HashSet<>(strings);

for(final String s : strings)
    boolean contains = set.contains(new Object(){
        public int hashCode() {
            return s.hashCode();

        public boolean equals(Object obj) {
            return true;

    System.out.format("%s: %s\n",
            contains ? "CONTAINS" : "MISSING");

Why is this? Is it because the equals() method, by principle, should be symmetric between the two objects?

share|improve this question
As the documentation states: "returns true if and only if this set contains an element e such that (o==null ? e==null : o.equals(e))" – Oliver Charlesworth Jun 11 '13 at 9:05
So it's not entirely clear what you're asking; the HashSet either has to do o.equals(e) or e.equals(o). And as they should be written to be commutative, it shouldn't matter. – Oliver Charlesworth Jun 11 '13 at 9:07
That's exactly what I'm asking; the reasoning behind using o.equals(e) as opposed to the inverse. Is there any performance increase or oversight? – Qix Jun 11 '13 at 9:07
Neither - it should be completely arbitrary which one it is, so they probably just chose one at random. It's only noticeable because you're breaking the equals invariants. – Sebastian Redl Jun 11 '13 at 9:13
It should also be noted that hashCode() is called as a preliminary check in this default implementation of HashSet. – Qix Jun 11 '13 at 9:21

3 Answers 3

up vote 4 down vote accepted

The HashSet either has to do a.equals(b) or b.equals(a). And as they should be written to be symmetric*, it shouldn't matter which it chooses.

But for reference, the documentation states:

returns true if and only if this set contains an element e such that (o==null ? e==null : o.equals(e))

* See

share|improve this answer
Makes sense. To me, personally, I find it strange they did o.equals(e) (passed.equals(stored)) since each stored object could have a different method of seeing if the given object is equal, whereas the passed object might not account for each type. However, if it matters at that point, you're using equals() for something it wasn't intended to do, and should be using something like a TreeSet, am I right? – Qix Jun 11 '13 at 9:14
@Qix It's not strange, the symmetry of equals means that o.equals(e) == e.equals(o) so you're free to choose. That's also why most equals implementations check this.getClass() == o.getClass() to make sure they only consider an object of the exact same type as equal. Things get complicated if you consider subclasses: can an object of a subclass equal an object of a superclass? The superclass may consider it equal, but the subclass may not. – Mattias Buelens Jun 11 '13 at 9:23
Very true, I didn't think about that. – Qix Jun 11 '13 at 9:25

It's an implementation detail which we shouldnt worry about since it's never said in public API how it uses equals. Like you said it's supposed to be symmetric anyway. If we go into src we'll see that it is really passedObject.equals(storedObject)

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Becaue AFAIK the default Object.equals implementation uses reference comparison so it checks if the two references refer to the same object.

Here you are comparing instances of Strings with another custom classe, they can't be equal, whatever the way this is done.

share|improve this answer
Not at all. This example shows they are "equal". – Qix Jun 11 '13 at 9:12
@Qix: Oops did I miss something :( sorry – Pragmateek Jun 11 '13 at 9:13
You pass hashCode() because you "cheat" returning your custom implementation that you construct to be the same as the other object hash-code. – Pragmateek Jun 11 '13 at 9:15
Correct. /tooshort – Qix Jun 11 '13 at 9:18
OK :) I'd like to know why somebody -1 it so :( – Pragmateek Jun 11 '13 at 9:23

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