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I was wondering about : How GC sees the Lazy object

i.e. :

 Lazy<Foo> f = new Lazy<Foo>( );

“Lazy Instantiation” defers creation of an object till the time it is actually accessed

Does f here is a root for the object ? ( meaning he wont be GC'ed ) ?

( the object is not created by this time... some other code put a value in it later on)

or

GC sees it as un-referenced / un-initialized object - and GCe'd it.

Is it something which I need to take care of ? ( / fear of ?)

 public class Foo
    {
        public int ID { get; set; } 
        public Foo()
        {
           ID = 1;
        }
    }
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4  
I don't think Lazy<T> is special in any way regarding the GC. –  CodesInChaos Mar 29 '12 at 13:27

1 Answer 1

up vote 4 down vote accepted

f is indeed a reference to the Lazy<Foo> instance. The encapsulated Foo instance is separate but is made (kept) reachable indirectly.

As long as f exists, ie it is a root or it is reachable, the instance won't be (can't be) collected.

There is really nothing special regarding GC here. Don't confuse Lazy with WeakReference.

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“Lazy Instantiation” defers creation of an object till the time it is actually accessed –  Royi Namir Mar 29 '12 at 13:29
    
@RoyiNamir - and that absolutely doesn't matter. Note that I said "Lazy<Foo> instance", not "Foo instance" –  Henk Holterman Mar 29 '12 at 13:31
    
@RoyiNamir: Yes but "the object" it refers to is the instance of T that the Lazy<T> instance will create, not the Lazy<T> instance its self. –  George Duckett Mar 29 '12 at 13:31
1  
@RoyiNamir: The thing to be aware of is that Lazy<T> isn't special, it's just another generic type so normal GC rules apply. –  George Duckett Mar 29 '12 at 13:32
    
oh... i see.... –  Royi Namir Mar 29 '12 at 13:33

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