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Consider the following code:

let mutable a = 0.
let b = ref 0.

a <- // works
  printfn "%A" a
  4. + 8.

b := // does not work
  printfn "%A" a
  4. + 8.

b := ( // works
  printfn "%A" a
  4. + 8. )

Why does the ref assignment operator (:=) have a different behaviour than the mutable assignment operator (<-)?

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up vote 1 down vote accepted

Building on the other answers...

More elaborate expressions are allowed within assignments, so long as the final expression is one of several allowed forms. See section 6.4.9 of the spec. This allows complex assignments such as:

let x =
  let rec gcd a = function
    | 0 -> a
    | b -> gcd b (a % b)
  gcd 10 25

The compiler moves gcd to a private member, but nesting it within the assignment allows for tighter scoping. Function arguments, on the other hand, are more restricted. They don't create a new scope (that I'm aware of) and you can't define functions, for example, as part of the expression.

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Could you please be more elaborate on this one: "They don't create a new scope (that I'm aware of) and you can't define functions, for example, as part of the expression."? An example would be the best as I am not sure that I understand. – Oldrich Svec Oct 19 '11 at 6:02
    
I just mean you can't pass everything after let x = in my example above as a function argument. Function arguments require simpler expressions. This explains why :=, which is a function, and =/<-, which are assignment operators, behave differently. – Daniel Oct 19 '11 at 14:12

I can only give a partial answer.

:= is defined in terms of <- in FSharp.Core\prim-types.fs:

let (:=) x y = x.contents <- y

In your example

b := // does not work
  printfn "%A" a
  4. + 8.

printfn "%A" a seems to be interpreted as y, which cannot be assigned to the int ref cell (wrong type). By grouping the whole expression with ( ... ), y now also contains 4. + 8.. Maybe the two operators behave differently, because <- seems to be an intrinsic operator (i.e. part of the language, not the library).

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But I would definitely expect the "<-" operator to work in an exactly same manner as ":=", no matter what the operators actually are. So they should either both fail or both succeed. Don't you think? – Oldrich Svec Oct 18 '11 at 11:46
    
Yes, it is a bit surprising. – Frank Oct 18 '11 at 12:56

:= is a function (try (:=);; in FSI) which has a type : 'a ref -> 'a -> unit

So

b := // does not work
  printfn "%A" a
  4. + 8.

is being parsed as because of the infix call parsing rule:

(:=) b (printfn "%A" a)
4. + 8.

Which is invalid as par the (:=) function type. Other example:

let c = 10 + 
            11 
            12

c would be 12 here

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But this doesn't explain, why the "infix call parsing rule", as you call it, does not apply to <- (and = for that matter), does it? I still believe the different behavior is due to the (sensible) distinction between built-in and custom-defined operators. – Frank Oct 18 '11 at 11:31
    
Yes, I agree, the inbuilt operators like <- seems to have different parsing rule. In this case <- seems to take the result of complete block where as functions rules are same for all functions. I prefer to call := as function – Ankur Oct 18 '11 at 12:04

Looks like a discrepancy in the indentation-sensitive parser rather than anything specifically to do with those operators.

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