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So here i have a couple of defined list that i would like to use:

(DEFINE list0 (LIST 'j 'k 'l 'm 'n 'o 'j) )
(DEFINE list1 (LIST 'a 'b 'c 'd 'e 'f 'g) )
(DEFINE list2 (LIST 's 't 'u 'v 'w 'x 'y 'z) )
(DEFINE list3 (LIST 'j 'k 'l 'm 'l 'k 'j) )
(DEFINE list4 (LIST 'n 'o 'p 'q 'q 'p 'o 'n) )
(DEFINE list5 '( (a b) c (d e d) c (a b) ) )
(DEFINE list6 '( (h i) (j k) l (m n) ) )
(DEFINE list7 (f (a b) c (d e d) (b a) f) )

what i would like to do is create a recursive function for a 'endsmatch' function that would do as such:

ENDSMATCH: (endsmatch 1st) which should return #t if the first element in the list is the same as the last element in the list, and return #f otherwise. That is,

(endsmatch '(s t u v w x y z) ) would/should return: #f

(endsmatch (LIST 'j 'k 'l 'm 'n 'o 'j)

would/should return: #t

and

Both (endsmatch '()) and (endsmatch '(a)) should return #t, etc.

Also is the function can read complex lists such as: (endsmatch '((a b) c (d e d) c (a b)) ) which would then return: #t and:

(endsmatch '((a b) c (d e d) c (b a)) )

(endsmatch '((y z) y) )

should both return #f

How might this function be coded because i am new to scheme and would see what it may look like, Thank You in advance.

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closed as not a real question by Rainer Joswig, finnw, gnat, Rimian, Jaguar Nov 15 '12 at 11:21

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2 Answers 2

up vote 2 down vote accepted

Try this, it's as simple as it gets:

(define (endsmatch lst)
  (if (null? lst)
      #t
      (equal? (first lst) (last lst))))

If your Scheme interpreter doesn't include the procedures first and last, they're very simple to implement:

(define (first lst)
  (car lst))

(define (last lst)
  (cond ((null? lst) #f)
        ((null? (cdr lst)) (car lst))
        (else (last (cdr lst)))))
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Thank you i am going to try this out. –  user1786512 Nov 14 '12 at 22:21
    
Doesn't work on the empty list –  finnw Nov 14 '12 at 22:38
    
@finnw you're right. I updated my answer, thanks. –  Óscar López Nov 14 '12 at 22:43
    
would it be the same if one were to replace the lst with lis instead –  user1786512 Nov 15 '12 at 5:33
    
@user1786512 it doesn't matter what name you use, as long as it's not a name already in use. For example, it'd be a bad idea to call it list, because that's a built-in procedure. –  Óscar López Nov 15 '12 at 13:21

I've come up with this solution, but it fails for the 2 last tests you describe:

(define (endsmatch lst)
  (let loop ((lst lst) (first '()) (last '()))
    (cond
      ((null? lst)         (eq? first last))
      ((pair? (car lst))   (loop (car lst) first last)
                           (loop (cdr lst) first last))
      ((null? first)       (loop (cdr lst) (car lst) (car lst)))
      (else                (loop (cdr lst) first (car lst))))))


; racket test code
(require rackunit)
(check-eq? (endsmatch '(s t u v w x y z)) #f)
(check-eq? (endsmatch (list 'j 'k 'l 'm 'n 'o 'j)) #t)
(check-eq? (endsmatch '()) #t)
(check-eq? (endsmatch '(a)) #t)
(check-eq? (endsmatch '((a b) c (d e d) c (b a))) #t)
; these fail
(check-eq? (endsmatch '((a b) c (d e d) c (b a))) #f)
(check-eq? (endsmatch '((y z) y)) #f)

and indeed you say both

"(endsmatch '((a b) c (d e d) c (b a)) ) which would then return: #t"

and

"(endsmatch '((a b) c (d e d) c (b a)) ) should return #f"

which is contradictory.

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Sorry i accidentally created a typo, I corrected it if you want to recheck it and see what i actually mean. –  user1786512 Nov 14 '12 at 22:24

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