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I'm just started learning scheme and can't quite understand why this function does not work:

;(define (sort l)
  (define (sorted? l)
    (if (= (length l) 2)            
        ; if simple list:
        (if (< (head l) (tail l)) 
            #t  
            #f) 
        ; if complex list:
        (if (and (< (head l) (head (tail l))) 
                 (sorted? (tail l)))
            #t  
            #f)))

Output:

(sorted? (1 0)) . . procedure application: expected procedure, given: 1; arguments were: 0 (sorted? '(1 0)) . . <: expects type as 2nd argument, given: (0); other arguments were: 1

Racket, R5RS

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What Scheme are you using? –  leppie Jan 25 '11 at 16:23

2 Answers 2

up vote 1 down vote accepted

This is because you compare an integer and a list, cadr or if (< (head l) (head (tail l))) instead of if (< (head l) (tail l)) after a line ; if simple list would have more chances to work for you.

The following definition works for me:

(define (sorted? xs)
  (cond
    ((<= (length xs) 1)
     #t)
    ((< (car xs) (cadr xs))
     (sorted? (cdr xs)))
    (else #f)))
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you're right! However, how do I "unlist" a list? like (2) -> 2 –  Halst Jan 25 '11 at 16:43
    
@Halst: As long as (2) is equivalent to (cons 2 (list)), you can get your value from a singleton with just car: (car (cons 2 (list))) will return 2, a head ("cons") of the list. –  Yasir Arsanukaev Jan 25 '11 at 16:47
    
ok, makes sense –  Halst Jan 25 '11 at 16:47

What scheme do you use? In R5RS (scheme standard), use car and cdr to get head and tail.

And cdr will give you PAIR, not atom. That's working.

(define (sorted? l) (if (= (length l) 2)
; if simple list: (if (< (car l) (cadr l)) #t
#f) ; if complex list: (if (and (< (head l) (head (tail l))) (sorted? (tail l))) #t
#f)))

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