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let x = 132;;
let f x = 
    let x = 15 in (fun x -> print_int x) 150;;
f 2;;

The output is 150.

My question is: why "print_int" does not perform yet? is that because fun x-> print_int x just defines a function, but not required to perform yet? Does the inside function just simply print 15?

I wanted to respond to my guess, and when I modify the code to this:

# let x = 132;;
val x : int = 132
# let f x = 
  let x = 15 in (let g x = print_int x) 150;;
Error: Syntax error

an error is prompted. Why? (I was just trying to name the function "g", but syntax error?)

Anyone can help? thx

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1 Answer 1

To solve the syntax error you'd have to write it like this (you were missing the in keyword and the function's name):

let f x =
let x = 15 in let g x = print_int x in g 150;;

To understand why look at the type of your first example in the toplevel:

# (fun x -> print_int x);; (* define a function *)
- : int -> unit = <fun>
# (fun x -> print_int x) 150;; (* define a function and call it with 150 *)
150- : unit = ()
# (let g x = print_int x);; (* define a value named 'g' that is a function , 'g' has the type below *)
val g : int -> unit = <fun>
# (let g x = print_int x) 150;; (* you can't do this, the code in the paranthesis is not a value: it is a let-binding or a definition of a value *)
Error: Syntax error

The x in f x and let x = 15 have nothing to do with the x inside your function, the x in the innermost scope takes precedence (this is called shadowing).

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Thx, great help! –  user2170674 May 30 '13 at 11:31

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