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I am currently trying to define a function of type ('a -> 'a) -> 'a -> 'a which takes a function of type 'a -> 'a and an argument of type 'a and calls the function twice on the argument. I'm relatively new to OCaml but I do know how to define a function, but I had no luck with trial and error or Google trying to get a function to take a function as an argument and then apply that function twice.

Any tips or pointers would be greatly appreciated, thanks in advance.

edit: Thanks to Jeffrey below, my problem is now solved.

let f4 g a = g (g a );;

val f4 : ('a -> 'a) -> 'a -> 'a =

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OCaml infers types, so if you use an argument as a function, it infers that it's a function. Here's an example:

# let f g = g 8 + g 10;;
val f : (int -> int) -> int = <fun>
# (~-);;
- : int -> int = <fun>
# f (~-);;
- : int = -18

To understand the example, note that (~-) is the ordinary integer negation operator.

Update: A hint for your more complicated problem. You need to test the value of n. Maybe an if statement would work? Second hint: if you use recursion, you don't need to use a loop. If you want to use a loop, don't use recursion. (Personally I'd suggest using recursion, it's like playing scales while learning piano.)

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  • This is very close to what I need, but I need it to literally take 'a for everything. It should come out with ('a -> 'a) -> 'a -> 'a when trying # let f4 g a = g a * g a ;; I get val f4 : ('a -> int) -> 'a -> int = <fun> which is close, but not quite ('a -> 'a) -> 'a -> 'a any suggestions?
    – Bizzle
    Mar 8, 2013 at 0:18
  • Right, I don't want to just give you the answer! The problem with this latest attempt is that the * operator works only on ints. Try doing an operation that's not tied to a particular type (like, say making a list or a tuple). Mar 8, 2013 at 0:20
  • # let f4 g a = g a :: g a ::[];; val f4 : ('a -> 'b) -> 'a -> 'b list = <fun> again I'm close. How would I get everything to be 'a? (The way I've learned the language is spotty, I'm not impressed with the teaching style so my knowledge is very gappy)
    – Bizzle
    Mar 8, 2013 at 0:23
  • Actually, never mind, I think. As long as I'm not missing anything # let f4 g a = g (g a );; val f4 : ('a -> 'a) -> 'a -> 'a = <fun> appears to work?
    – Bizzle
    Mar 8, 2013 at 0:24
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    You want to solve recursively. For recursion, you need to know what to do when you're done (the trivial case for applying the function 0 times) and you need to know how to take the answer for a smaller problem (n - 1 times) and get the answer you want. I hope this helps. Your previous answer was 20 characters or so, and this new one will be around 60. I.e., it's not that hard. Mar 8, 2013 at 0:34

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