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I'm playing with the difference between '-' as a urary operator and a binary operator in caml-light.

let a b = 
print_int b;
  print_newline();
;;


let c d e  = 
print_int d;
  print_newline();
print_int e;
  print_newline();
;;

a (3 - 4 ) ;
c (9 - 4 )
;;

I expect the code to either throw an error (because it gets confused about how many arguments a or c have) or to print

-1
5

However, it compiles with no problems (compiler version below) and prints -1

Can anyone tell me what happens with the last call?

Cobrakai$camlc -v
The Caml Light system, version 0.80
  (standard library from /usr/local/lib/caml-light)
The Caml Light runtime system, version 0.80
The Caml Light compiler, version 0.80
The Caml Light linker, version 0.80
Cobrakai$
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1 Answer 1

up vote 4 down vote accepted

In ML, all functions take exactly one argument. A seemingly multi-parameter function is actually a function that takes one argument, and returns another function which takes the remaining arguments.

So let c d e = ... is actually syntactic sugar for let c = function d -> function e -> ...

And the type of c is int -> int -> unit, and -> is right-associative, so it is int -> (int -> unit). So you can see clearly that is a function which takes int and returns a function.

When you apply it to multiple arguments like c 1 2, function application is left-associative so it is actually (c 1) 2, so you can see that c 1 evaluates to a function which then is applied to 2.

So, when you give a function "too few arguments", the result is a function. This is a useful and common technique in ML called "partial application", which allows you a convenient way to "fix" the first few arguments of a function.

I am not sure how the Caml Light interpreter handles it when the expression you type evaluates to a function. But from what you're saying, it seems to not print anything.

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An interesting variation witch with you might wanna play with : let c = function d -> function e -> print_int d; print_newline(); print_int e; print_newline(); ;; Followed by : let c = function d -> print_int d; print_newline(); function e -> print_int e; print_newline(); ;; –  double_squeeze Mar 18 '13 at 14:33

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