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I am used to member variables of an object keeping their value unless they are changed. So the following behviour in F# came as a bit of a surprise: (I have a class with 2 members, the second is supposedly initialized in the constructor by calling a gensym function)

let mutable gen_base = 0
let gensym prefix = 
  gen_base <- gen_base+1;
  prefix + gen_base.ToString()

type C(m:int, s:string) =
  member this.mm = m;
  member this.x = gensym s
  override this.ToString() = (this.mm.ToString()) + ", " + (this.x.ToString())

let testC = 
  let c = new C(1,"a")
  printfn "c= %A" (c.ToString())
  printfn "c again = %A" (c.ToString())

which prints the following:

c= "1, a1"
c again = "1, a2"

Why is the initializer for the member x called again simply because I inspect its value? What's the best way to keep it from doing that? Use an accessor function?

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possible duplicate of Bitmap.SetPixel acts slower in f# than in c# –  Daniel Aug 28 '13 at 21:29

1 Answer 1

up vote 4 down vote accepted

From the MSDN page on properties:

Note that the expression that initializes an automatically implemented property is only evaluated upon initialization, and not every time the property is accessed. This behavior is in contrast to the behavior of an explicitly implemented property.

this.x is explicitly initialized which means it will be evaluated every time you access it. To turn it into an automatically initialized property, you will have to change it to this:

member val x = gensym s
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When using val you can't specify a self identifier. I assume this is because the object has not been fully created yet. member val x = gensym s –  gradbot Aug 29 '13 at 2:24
    
Oops, fixed it . –  Panagiotis Kanavos Aug 29 '13 at 14:03
    
@gradbot probably not recommended, but it's possible to access the self-identifier for member val initializers by extending the type definition to "type C(m:int, s:string) as this". –  Armin Sep 1 '13 at 7:39

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