Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to solve a polynomial evaluation problem on SML, here is the current code I have:

fun eval (nil, b:real) = 0.0
|       eval(x::xs, a:real) = 
let val y:real = 0.0
fun inc z:real = z+1.0;
in
   (x*Math.pow(a,(inc y))) + eval(xs,a)
end;

The problem with this is that it only increments y once, is there a way to have y start at 0 and keep increasing by 1 with every recursion?

share|improve this question

3 Answers 3

up vote 0 down vote accepted

You can do that by using the concept of local function (or helper functions). Here's the code :

local 
 fun helper(nil,b:real,_)=0.0
       |helper(x::xt,b:real,y)=(x*(Math.pow(b,(y)))) + helper(xt,b:real,y+1.0)
 in
 fun eval(x,a:real)= helper(x,a,0.0)
end

I Hope this can solve your problem :)

share|improve this answer
    
Thanks a ton :) that's exactly what I was looking for, to keep the same arguments passed –  Tarek Merachli Mar 12 '12 at 22:06
    
@TarekMerachli My Pleasure :) –  atuljangra Mar 12 '12 at 22:11

y is set to be 0 in the let expression inside your function, so every time you call that function it has the value 0. If you want to have a different value for y for different calls to the eval function then you should make it a parameter of that function.

share|improve this answer

If the xs are supposed to be coefficients in increasing order:

fun eval'( nil,  a, n) = 0.0
  | eval'(x::xs, a, n) = x*Math.pow(a, n) + eval'(xs, a, n + 1.0)

fun eval(xs, a) = eval'(xs, a, 0.0)

Or, since a is actually constant across the recursion:

fun eval(xs, a) =
    let
        fun eval'( nil,  n) = 0.0
          | eval'(x::xs, n) = x*Math.pow(a, n) + eval'(xs, n + 1.0)
    in
        eval'(xs, 0.0)
    end

Or if you don't want to write the recursion youself:

fun eval(xs, a) = foldl (fn(x, (s, n)) => (x*Math.pow(a, n) + s, n + 1.0)) (0.0, 0.0) xs
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.