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WeakReference doesn’t returns null, though there are no strong references to the actual reference object

I am trying to understand the concept of weak reference. I have a naive question.

In the following example, I expect an empty string as output. But the output is "hello". if I understand correctly, an object that is only reachable by a weak reference will be garbage collected. So I think the following program should output an empty string rather than "hello", because the 'a = null' instruction will make the associated string unreachable by any strong references. Where am I wrong?


public static void main(String[] args) {

    String a = "hello";
    WeakReference<String> weakString = new WeakReference<String>(a);
    a = null;

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marked as duplicate by Thilo, Don Roby, Bhavik Ambani, Gagravarr, Ram kiran Dec 27 '12 at 3:59

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

A WeakReference may be garbage collected by JVM if needed be. It depends on factors such as available memory. – Manish Dec 26 '12 at 10:39

3 Answers 3

up vote 5 down vote accepted

Garbage collection does not happen instantly (or predictably). Your weak reference will dissolve eventually, but not immediately.

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When will the garbage collection happens? Is that deterministic? – zell Dec 26 '12 at 10:40
Deterministic as in "not randomized": Yes. Deterministic as in easy for you to predict or trigger: No. And it is spec'd that way. You should not have your program depend in any way on the garbage collector working in a particular way. If you need resources to be cleaned up immediately and reliably, do this in your own code, for example in finally blocks. – Thilo Dec 26 '12 at 10:41
@zell There is a performance hit for running the GC so you want it to happen as little as possible. – Peter Lawrey Dec 26 '12 at 10:42
@Thilo In this case, it's a String literal so it won't disappear no matter how often the GC is run. ;) – Peter Lawrey Dec 26 '12 at 10:45

An object without strong references can be cleaned up, but might not be immediately because;

  • there is no reason to slow down the system by running the GC now.
  • there is a SoftReference to an object which means the GC may or may not clean it up.
  • the object overrides finalize() and it has been finalized by the finalizer thread.
  • In your case, you have a String literal which will not be unloaded until the class loader for the class is unloaded (and not used anywhere else) For simple programs, this never happens.

For a similar situation, see the "Auto-boxed objects don't always get garbage collected" section of Surprising Results of Auto-boxing

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+1 for "in your case" and the unexpected predictability that goes with it. – Thilo Dec 26 '12 at 10:45

Try this

String s = new String("hello");
WeakReference<String> weakString = new WeakReference<String>(s);
s = null;

should print null, if it doesn't insert a 1 ms delay after System.gc(), GC might need some time to do the job

This is because

1) "hello" is a string literal it's referenced from string constant pool, so it never gets garbage collected

2) for nulled 's' to be GCed you need to run GC.

Following the same pattern you can further experiment with ReferenceQueue, SoftReference and PhantomReference, their behaviour is also reproducable

Note that API does not guarantee that System.gc() will actually start GC, but in my JVM (Oracle's HotSpot) it always works. In any case we can easily make it work as

byte[] a = new byte[150_000_000];
a = null;
a = new [150_000_000];

assuming you have max mem = 256M GC has no choice but run and collect old array and most importantly our 's'

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Even if you call System.gc(), it doesn't guarantee that GC will be performed. Its a mere "hint" and may be ignored by VM. – Manish Dec 26 '12 at 10:51
It doesn't, but on my JVM (HotSpot) it always works. You can also provoke GC by creating a huge array and nulling it afterwards – Evgeniy Dorofeev Dec 26 '12 at 10:53

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