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Could someone please explain the concept of currying to me. I am primarily learning it because we are learning ML in my 'modern programming language' class for a functional language introduction.

In particular you can use this example:

    -fun g a = fn b => a+b;
      val g = fn: int -> int -> int
    -g 2 3;
      val it = 5 : int

I'm confused how these parameters are passed or how to even think about it in the first place.

Thank you for any help.

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1 Answer 1

up vote 3 down vote accepted

In this case, you make the currying explicit, so it should be easier to understand.

If we read the function definition, it says (paraphrased): "Create a function g, which when given an a returns fn b => a+b."

That is, if we call g 2, we get back the function fn b => 2+b. As such, when we call g 2 3, we actually call (g 2) 3; that is we first get the function stated above back, and then use this function on the value 3, yielding 5.

Currying is simply the concept of making a function in several "stages", each taking an input and producing a new function. SML has syntactic sugar for this, making g equivalent to the following:

fun g a b = a + b;
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The fully spelled-out version would look like this: val g = fn a => fn b => a + b. I find this useful because it shows that functions are values, and there is no special magic to the fun keyword. –  waldrumpus Oct 16 '12 at 7:30
    
@waldrumpus: Actually, fun is syntactic sugar for a val rec, not a val, though that isn't important in this case. :) –  Sebastian Paaske Tørholm Oct 16 '12 at 18:17
    
How does the 'environment' (I'm using SML/NJ) know what a is in fn b=> a+b know what a is in this case? Isn't that an unbound variable at that point. Maybe the confusion is the way I am reading it; should I be reading left to right or right to left? –  Nick Oct 16 '12 at 20:52
    
@nickbonnet: It creates what is called a closure, which remembers the value of the a, in effect substituting it into the function, where a occurred. –  Sebastian Paaske Tørholm Oct 17 '12 at 9:10

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