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I create a timer in a constructor and want to make the timer a member of the constructed class. Since the timer isn't referenced by any other class member, it's compiled into a variable that is local to the constructor and hence garbage collected and killed.

One way of preventing this from happening is to make a dummy reference, like

type MyClass() as o =
    let timer = new Timer((fun _ -> o.Tick()), null, 0, 1000)

    member private o.DummyRef = timer
    member o.Tick() = printfn "Tick!"

Is there a neater way of forcing timer into becoming a member?

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2 Answers 2

up vote 5 down vote accepted

If you want it to be a member then let is the wrong tool for the job, since, according to the spec, the compiled form (local variable or field) is determined by the compiler. You probably want a private property:

type MyClass() as o =
    member val private Timer = new Timer((fun _ -> o.Tick()), null, 0, 1000)
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Thx! member is the magical word I was looking for. I was considering the val timer : Timer syntax but then I'd have to use [<DefaultValue>], make it mutable and assign it in a ctor do block. –  John Reynolds Sep 30 '13 at 16:19

Because you don't use timer anywhere, it is being optimized to a constructor local. If you were to use it somewhere else in your type definition then it would be compiled as a field of the class. e.g.

type MyClass() as o =
    let timer = new Timer((fun _ -> o.Tick()), null, 0, 1000)

    member o.Tick() = printfn "Tick"

    interface IDisposable with
        member x.Dispose() = timer.Dispose()
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I know. I already wrote all that in the question. BTW, the code in the question does use timer elsewhere. –  John Reynolds Sep 30 '13 at 16:26
    
Yes, but you were using it only to force the compiler to do what you want. I was just suggesting that in a more complete type definition you probably wouldn't have to worry about it. –  Leaf Garland Oct 1 '13 at 8:28

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