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I want to input two lists of equal length and assign the values of one list to variables of another. I want it to realize first list automatically as list of variables and second as values. e.g. I want to assign [1,2,3,4,5,6] values to the elements in the list of variables [9,10,11,12,13,14], i.e. 1 as value of 9, 2 as value of 10 in the list.

exception error

fun assign([],_) = raise error
  | assign(_,[]) = raise error
  | assign(l::ls,b::ls) = (val l=b ; assign(ls,bs));

I know there are few a problems. First, functions should return value right? Any suggestion as to how I can handle that? By That I mean create a meaningful function that assigns values as desired.

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1 Answer 1

up vote 1 down vote accepted

Assigning values do not make sense on immutable types. I assume you would like to do this:

There is a list of int [1,2,3,4,5,6] and a list of int references which are initialized with default values [ref 0, ref 0, ref 0, ref 0, ref 0, ref 0]. You would like to update references to [ref 1, ref 2, ref 3, ref 4, ref 5, ref 6].

You just need a small modification on your function:

fun assign([], []) = ()
  | assign(_, []) = raise error
  | assign(_, []) = raise error
  | assign(l::ls, r::rs)= (r := l ; assign(ls, rs))

The function returns unit and after calling assign, the list of reference holds new values.

However, for these scenarios with destructive updates, it is much better to use array of values.

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Thank you with the ref. I will go through it. and, Sorry, I just realized that I cannot assign in this way: val 3=2; I had thought, here 3 is automatically converted to variable, which apparently is not the case. Ok, now, I have a list[a,b,c,d,e,f]. and another list [1,2,3,4,5,6]. I want to assign a=1,b=2,c=3,... Which as far as I know is not same as ref right? or is it? –  700resu Nov 12 '12 at 11:29
    
You should use array; then you can write update arr 2 2 (it means the 3rd element of arr is assigned to value 2). –  pad Nov 12 '12 at 11:35

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