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Is a finalizable object with GC.SuppressFinalize the same as a normal unfinalizable object? The code below seems to prove they're treated differently, both on .NET 2 and 4:

class Class1 {

    public Class1()
    {
        GC.SuppressFinalize(this);
    }

    //~Class1() { }
}

class Program
{
    static void Main(string[] args)
    {
        Stopwatch sw = new Stopwatch();
        sw.Start();

        for (int i=0; i<100000000; i++)
        {
            new Class1();
        }

        sw.Stop();
        Console.WriteLine(sw.ElapsedMilliseconds);
    }
}

Adding the finalizer, but not changing anything else, causes the code to take far far longer (12601 ms compared to 889 ms).

I thought SuppressFinalize set a bit in the object header making the GC treat the object the same as a non-finalizable object, but this does not seem to be the case. So what's going on? What is different between a non-finalizable object and a finalizable object with GC.SuppressFinalize called on it?

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2  
repro'd this on .net 4.5 beta too –  Robert Levy Mar 28 '12 at 17:58

1 Answer 1

As I understand it the CLR has a queue of objects for which finalization has been registered. Implementing a finalizer will put objects of the type on the queue. So in the case where the constructor calls SuppressFinalize, I imagine that the object is actually put on the queue only to be removed immediately, which could explain the overhead.

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1  
Your imagination is accurate :) –  Hans Passant Mar 28 '12 at 23:29
    
That seems very inefficient. A non-finalizable object should behave exactly the same as a suppressed finalizable object. It is quite suprising that it's different –  thecoop Mar 29 '12 at 8:01
    
@thecoop: Perhaps, but any type which implements a finalizer will need to be treated differently at construction time. I guess you could make an optimization to check if finalization is suppressed during the constructor, but I don't believe that it is worth the effort. In the common case suppression happens some time after construction of the object. –  Brian Rasmussen Mar 29 '12 at 14:58
    
@Brian Rasmussen why do finalizable types need to be treated differently when they're constructed? Finalization only affects how it gets GCd... –  thecoop Mar 30 '12 at 9:39
1  
@thecoop "A non-finalizable object should behave exactly the same as a suppressed finalizable object." - No. Try to find a ref for it, you won't. It is explicitly stated that having a dtor adds (some) overhead when instancing. –  Henk Holterman Mar 30 '12 at 10:27

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