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Just trying to get back into the swing of scheme again, because everyone loves recursion.. (mhhmnmm.)

anyways trying to return #t or #f to determine whether all elements in a list are unique.

Comparing 1st element and 2nd element no problem. It's recursively continuing..

(define (unique ls)
  (if (null? ls) #t
     (equal? (car ls)(car(cdr ls)))))
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3 Answers 3

up vote 1 down vote accepted

I'll write a different, simpler function that demonstrates looping. Hopefully between that and what you have, you'll get there. :-)

(define (member x lst)
  (cond ((null? lst) #f)
        ((equal? x (car lst)) lst)
        (else (member x (cdr lst)))))

Another example:

(define (assoc x alist)
  (cond ((null? alist) #f)
        ((equal? x (caar alist)) (car alist))
        (else (assoc x (cdr alist)))))
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Well your (equal?) invocation is incomplete. If the head and head-of-the-tail are equal, then the value of "unique" is false. If they're not equal, then you'd return the value of unique as applied to the tail (cdr) of the list.

(It's implicit in your proto-implementation that you're checking a pre-sorted list. If not, then that's another step to take.)

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(use srfi-1)

(define (unique? ls) (eq? (length ls) (length (delete-duplicates ls))))
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