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I'm trying to use recursion in the list and I need to go through all elements. Here is my code:

(define compare
  (lambda (ls pred?)
    (if (null? list)
        #f
        (pred? (list-ref ls (- (length ls) 2)) (list-ref ls (- (length ls) 1))))))

But it works only with last two elements. Result should be like this:

(compare '(1 2 3 4 5) <) -> #t
(compare '(1 2 8 4 5) <) -> #f

Do you have any idea what I should do?

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1 Answer

up vote 3 down vote accepted

You're not using recursion anywhere in the code. In fact, it has errors and I don't think you tested it thoroughly. For example:

  • The if condition should be (null? ls)
  • Using list-ref is not the way to go when traversing a list in Scheme, for that in general you want to use recursion, car, cdr, etc.
  • Again, where is the recursive call? compare should be called at some point!

I believe this is what you intended, it's not recursive but it's the simplest way to implement the procedure:

(define (compare ls pred?)
  (apply pred? ls))

Because this looks like homework I can only give you some hints for solving the problem from scratch, without using apply. Fill-in the blanks:

(define (compare ls pred?)
  (if <???>                    ; special case: if the list is empty
      <???>                    ; then return true
      (let loop ((prev <???>)  ; general case, take 1st element
                 (ls   <???>)) ; and take the rest of the list
        (cond (<???>           ; again: if the list is empty
               <???>)          ; then return true
              (<???>           ; if pred? is false for `prev` and current element
               <???>)          ; then return false
              (else            ; otherwise advance the recursion
               (loop <???> <???>)))))) ; pass the new `prev` and the rest of the list

Notice that I used a named let for implementing the recursion, so loop is the recursive procedure here: you can see that loop is being called inside loop. Alternatively you could've defined a helper procedure. I had to do this for taking into account the special case where the list is initially empty.

The recursion works like this for the general case: two parameters are required, prev stores the previous element in the list and ls the rest of the list. at each point in the traversal we check to see if the predicates is false for the previous and the current element - if that is the case, then we return false. If not, we continue the recursion with a new prev (the current element) and the rest of the list. We keep going like this until the list is empty and only then we return true.

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I know about apply but I can't use it. It is the problem. :( –  Ats Nov 24 '12 at 12:47
    
@Ats OK, I updated my answer with some hints ;) –  Óscar López Nov 24 '12 at 13:11
    
I'm a little bit silly. What should be here: (<???> ; if pred? is false for prev and current element. And here: (loop <???> <???>)))))) ; pass the new prev and the rest of the list. In ??-> (loop (car list) (cdr list))) or something else –  Ats Nov 24 '12 at 15:23
    
@Ats: the second part is correct. For the first part: this is the core of the procedure, think about it: what would make the whole procedure return false? how about this: that the previous element and the current element, when compared with pred?, evaluate to false. –  Óscar López Nov 24 '12 at 15:52
    
I have tried it all the day, but nothing is working. I tried: (pre? (car lis) prev), (pre? prev (car lis)). I don't know what I should write there. –  Ats Nov 25 '12 at 19:21
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