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Consider the following example F# code:

type mytype() =
   member this.v = new OtherClass()

If OtherClass implements IDisposable, does the member binding act like a let binding or a use binding? Is there any way to get it to act as a use binding? I have some code very similar to this and I want to insure that the Dispose is called when the parent object goes out of scope.

A quick scan through Expert F# failed to turn up anything definite but perhaps I am looking for the wrong terms in the book.

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1 Answer 1

up vote 6 down vote accepted

In your snippet, the body of the member v will be evaluated each time the member is called (meaning that it will create a new instance of OtherClass each time someone uses it). The member simply returns the newly created object and you could use it like this:

let m = new MyType()
use v = m.V // 'use' binding

I'm not sure if this is what you were asking though. If you want to create only a single instance, you'll need to write something like this:

type MyType() =
  let v = new OtherClass() 
  member this.V = v

This behaves as usual let binding and the v value won't be disposed automatically when the current instance of MyType is disposed. To have v automatically disposed, you'll need to implement IDisposable in MyType explicitly:

type MyType() =
  let v = new OtherClass() 
  member this.V = v
  interface IDisposable with 
    member x.Dispose() = (v :> IDisposable).Dispose()

Unfortunately, there is no syntactic sugar that would make it nicer (I once suggested allowing use and implicitly implementing IDisposable for type members to the F# team, but they didn't implement it
(yet:-))).

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Thanks Tomas. That's exactly what I was looking for. Thanks again for a well-informed and informative answer for an F# question. –  Onorio Catenacci Dec 22 '10 at 18:22

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