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Here is the type expression which I need to convert to a ML expression:

int -> (int*int -> 'a list) -> 'a list

Now I know this is a currying style expression which takes 2 arguments: 1st argument = Type int and 2nd argument = Function which takes the previous int value twice and return a list of any type

I am having a hard time figuring such a function that would take an int and return 'a list.

I am new to ML and hence this might be trivial to others, but obviously not me.

Any help is greatly appreciated.

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I have to add that deriving an SML expression from a type signature doesn't make a whole lot of sense. A type signature only tells you part of the story. Essentially for a given type, there may be infinitely many expressions that inhabit that type. It only makes sense to specify a type for something when you know what you want it to do. You use that combined intention and the type to write the implementation. For example, the signature 'a list -> 'a list could be a sort function, or a reverse function, or any number of other things. It doesn't tell you enough to write the function. –  Gian Jul 21 '10 at 16:49

1 Answer 1

up vote 1 down vote accepted

You get an int and a function int*int -> 'a list. You're supposed to return an 'a list. So all you need to do is call the function you get with (x,x) (where x is the int you get) and return the result of that. So

fun foo x f = f (x,x)

Note that this is not the only possible function with type int -> (int*int -> 'a list) -> 'a list. For example the functions fun foo x f = f (x, 42) and fun foo x f = f (23, x) would also have that type.


To make the type match exactly add a type annotation to restrict the return type of f:

fun foo x (f : int*int -> 'a list) = f (x,x)

Note however that there is no real reason to do that. This version behaves exactly as the one before, except that it only accepts functions that return a list.

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The definition you have sent has the type; val foo = fn : 'a -> ('a * int -> 'b) -> 'b . My query is how can a function which does not take a list, return a list, which does not happen in the definition you have given above –  name_masked Jul 15 '10 at 18:50
@darkie15: Have you seen the edit? The new version matches your type exactly. –  sepp2k Jul 15 '10 at 19:50
Okie just saw the edit. It's working as per the type expression I needed. Can you please let me know how to derive such ML expression based on the type expression given? I want to be able to solve any such derivations given . –  name_masked Jul 15 '10 at 20:04

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