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I have this OCaml function:

fun f [x; y; z] -> (f x y), (f z);;

and the teacher wants me to answer: what is the type of this function. But i do not understand what does [x; y; z] means? Is it a list ? i don't think so because the solution is

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

and it means that z is of different type and I cannot undestand how do I get it. Is it a vector? a sequence of three inputs? don't think so neither because otherwise it would be

fun f x y z -> (f x y), (f z);;

Can someone help me?

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It's a list, therefore x, y and z must have the same type. –  camlspotter Jun 11 at 8:17

2 Answers 2

up vote 2 down vote accepted

Okay, let's evaluate type of fun f [x; y; z] -> (f x y), (f z) this.

  • Our function takes to arguments and returns a tuple. So it's type will be _ -> _ -> _ * _ where underscores are not evaluated yet parts. We will evaluate them below
  • Our 2nd argument is a list , so types of x , y and z are the same. _ -> 'a list -> _ * _
  • when we look at 1st expression in result tuple (f x y) we see that f is applied to x and y, so we can rewrite result as: ('a -> 'a -> 'b) -> 'a list -> 'b * _
  • in second expression in function result expression we see f z. But we already know that f is 'a -> 'a -> 'b already, so it seems that f z has type 'a -> 'b. ('a -> 'a -> 'b) -> 'a list -> 'b * ('a -> 'b)
  • Et voilà!
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Thank you. I have 2 more questions: 1: in step 3 did you mean "we see that f is applied to x and y" instead of "we see that f is applied to x and z"? 2: f z has type 'a->'b because it still miss an arguments and i know it mess an argument because of f x y (where i see f needs 2 parameters: x and y)? –  bogALT Jun 11 at 8:34
    
1st was a spelling error. –  Kakadu Jun 11 at 9:00
    
2nd: I think you get it right. It's hard to formulate it right because these functions are in curried form and technically all functions there have only 1 argument. –  Kakadu Jun 11 at 9:02
    
I think I got it. thank you –  bogALT Jun 11 at 9:04

This is a list for sure. It cannot be anything else.

Your function accepts two arguments. The first one is a function, and the second is a list, that is deconstructed into three values. The function accepts two arguments. Since all functions in OCaml is currified it can also accept one argument and "return" a function that will accept the other argument and yield a result.

So, at the end you have a pair of a result of an application of function f to the first two elements of a list, and a partial application of the same function to the third element of a list.

Hope, this answers your questions.

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