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I wish to implement a stack with value restriction.

What I want is that the pop and push are always talking about exactly the same type all the time.


Here is my sig.

module type MyStackSig = 
sig

  type 'a stack

  exception EmptyStack

  val create : unit -> 'a stack
  val push : 'a stack -> 'a -> unit
  val pop : 'a stack -> 'a
  val is_empty : 'a stack -> bool
  val size : 'a stack -> int

end;;

Is this sig enough for the value restriction?

I mean will push and pop be talking about the same type all the time?

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1 Answer 1

up vote 3 down vote accepted

Your signature looks correct. The types tell that push and pop handle the same content type when they take the same stack. The type parameter 'a of stack ensures it.

let st = create () in
push st 1;
print_string (pop st)

is ill typed, since the st cannot have a polymorphic type due to value restriction, however, it is used for more than one type: int stack and string stack: "they do not talk about the same type" for one stack st, whose parameter type is value-restricted.

On the other hand, the following is well-typed:

let st1 = create () in
let st2 = create () in
push st1 1;
print_string (pop st2) (* it should raise EmptyStack, but do not care it here *)

Here, push and pop talk about different types, but of different stacks. So, no problem.

(Relaxed) value restriction is not something you can force. You are forced to live with it. It is a limitation of the type system for typing of side effects in OCaml.

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1  
you should really put emphasis on the last line, otherwise excellent answer! –  didierc Feb 21 '13 at 10:13
    
What's the scope of 'a? I mean the 'a inside val create : unit -> 'a stack is the same as the one inside val push : 'a stack -> 'a -> unit? –  Jackson Tale Feb 21 '13 at 12:13
    
The scope is local. This, however, is sufficient to force values pushed and pulled from a given stack to have all the same type. The reason is that the stack is created of type '_a stack where _a is some unknown type; but once you push a value of known type, or pull a value and use it in a context imposing its type, then _a gets assigned a definite value. Note the difference between 'a ("any type 'a", with implicit universal quantification at the beginning of the declaration) and '_a ("some fixed type _a that we do not know yet"). –  monniaux Mar 27 '13 at 17:24

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