Home/ Questions/Q 3424880
In Process

The Archive Base Latest Questions

Editorial Team
  • 0
Asked: 2026-05-18T06:31:38+00:00

Is it possible to write the Y Combinator in Haskell? It seems like it

  • 0

Is it possible to write the Y Combinator in Haskell?

It seems like it would have an infinitely recursive type.

 Y :: f -> b -> c
 where f :: (f -> b -> c)

or something. Even a simple slightly factored factorial

factMaker _ 0 = 1
factMaker fn n = n * ((fn fn) (n -1)

{- to be called as
(factMaker factMaker) 5
-}

fails with "Occurs check: cannot construct the infinite type: t = t -> t2 -> t1"

(The Y combinator looks like this

(define Y
    (lambda (X)
      ((lambda (procedure)
         (X (lambda (arg) ((procedure procedure) arg))))
       (lambda (procedure)
         (X (lambda (arg) ((procedure procedure) arg)))))))

in scheme)
Or, more succinctly as

(λ (f) ((λ (x) (f (λ (a) ((x x) a))))
        (λ (x) (f (λ (a) ((x x) a))))))

For the applicative order
And

(λ (f) ((λ (x) (f (x x)))
        (λ (x) (f (x x)))))

Which is just a eta contraction away for the lazy version.

If you prefer short variable names.

Share

Leave an answer

You must login to add an answer.

Need An Account,

1 Answer

  1. Editorial Team

    Oh

    this wiki page and
    This Stack Overflow answer seem to answer my question.
    I will write up more of an explanation later.

    Now, I’ve found something interesting about that Mu type. Consider S = Mu Bool.

    data S = S (S -> Bool)

    If one treats S as a set and that equals sign as isomorphism, then the equation becomes

    S ⇋ S -> Bool ⇋ Powerset(S)

    So S is the set of sets that are isomorphic to their powerset!
    But we know from Cantor’s diagonal argument that the cardinality of Powerset(S) is always strictly greater than the cardinality of S, so they are never isomorphic.
    I think this is why you can now define a fixed point operator, even though you can’t without one.

    • 0