3

I'm looking into aether library and noticed this

 type Lens<'a,'b> =
    ('a -> 'b) * ('b -> 'a -> 'a)

 static member (^=) (Set, (_, s): Lens<'a,'b>) =
            fun (b: 'b) ->
                s b : 'a -> 'a

In the ^= function, b parameter if of type 'b in the lambda. However, in the lamda body, why is b type of 'a now?

  • why do you think so? – Foggy Finder Jul 14 '17 at 19:21
  • @FoggyFinder i'm not sure. that's why i'm asking. – user3587180 Jul 14 '17 at 19:22
  • I mean why do you think that b has type 'a? btw, can we continue in the F# chat? – Foggy Finder Jul 14 '17 at 19:23
4

However, in the lamda body, why is b type of 'a now?

It is not.

b is an input which is typed 'b, as shown in fun (b: 'b) ->.

We can rewrite that member without the matches, and using a locally defined function, like so:

static member (^=) (Set, lens: Lens<'a,'b>) =
    // Pattern match to extract out the 2nd portion of the lens, which is a function: 'b -> 'a -> 'a
    let (_,s) = lens

    // Define a function that takes a 'b and returns a new function of type: 'a -> 'a
    let fn (b: 'b) : 'a -> 'a =
        s b // this just partially applies s with the input "b"
    fn // Return the function

Basically, the (Set, (_,s)) in the argument list binds "s" to the 2nd portion of a Lens<'a,'b>, or a function typed ('b -> 'a -> 'a). Above, I've broken that out to be more explicit, and done this extraction in its own binding.

The member then returns a locally defined function (as a lambda). Above, I rewrote that using a let bound function, as it's often more clear.

  • That makes sense now. Forgot about currying/partial application. Do you know why they would be using a partial app in this case? – user3587180 Jul 15 '17 at 3:28
  • Also what is the need for the Set parameter? – user3587180 Jul 15 '17 at 3:45
4

I think you're just misreading the syntax. The code s b : 'a -> 'a doesn't mean that b is of type 'a.

The right way to read it is to break it in two parts: the part before the colon is the expression, and the part after the colon is the type of that expression.

So the code s b : 'a -> 'a actually means that s b is of type 'a -> 'a. It doesn't say anything about types of s or b individually.

  • Thanks for the answer. So s b returns a lamda that returns a type a? – user3587180 Jul 15 '17 at 3:30
  • Yes. .......... – Fyodor Soikin Jul 15 '17 at 3:31
  • Thanks! Loookjng back it now I'm not sure how I missed such a basic thing lol – user3587180 Jul 15 '17 at 3:41

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.