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I'm trying to reverse a list, here's my code:

(define (reverse list)
  (if (null? list) 
     list
      (list (reverse (cdr list)) (car list))))

so if i enter (reverse '(1 2 3 4)), I want it to come out as (4 3 2 1), but right now it's not giving me that. What am I doing wrong and how can I fix it?

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Do you expect your code to work with either or both of circular lists and improper lists? –  GoZoner Feb 25 '13 at 0:27

6 Answers 6

Tail recursive approach using a named let:

(define (reverse lst)
  (let loop ([lst lst] [lst-reversed '()])
    (if (empty? lst)
        lst-reversed
        (loop (rest lst) (cons (first lst) lst-reversed)))))

This is basically the same approach as having a helper function with an accumulator argument as in Oscar's answer, where the loop binding after let makes the let into an inner function you can call.

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There's actually no need for appending or filling the body with a bunch of lambdas.

(define (reverse items)
  (if (null? items)
      '()
      (cons (reverse (cdr items)) (car items))))
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I think you meant append instead of cons. Running (reverse '(1 2 3)) yields '(((() . 3) . 2) . 1) –  Jack Oct 17 at 4:07

This one works but it is not a tail recursive procedure:

(define (rev lst)
 (if (null? lst)
     '()
      (append (rev (cdr lst)) (car lst))))
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(define reverse?
  (lambda (l)
    (define reverse-aux?
      (lambda (l col)
        (cond 
          ((null? l) (col ))
          (else 
            (reverse-aux? (cdr l) 
                          (lambda () 
                            (cons (car l) (col))))))))
    (reverse-aux? l (lambda () (quote ())))))
(reverse? '(1 2 3 4) )

One more answer similar to Oscar's. I have just started learning scheme, so excuse me in case you find issues :).

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Here's a solution using build-list procedure:

(define reverse
  (lambda (l)
    (let ((len (length l)))
      (build-list len
                  (lambda (i)
                    (list-ref l (- len i 1)))))))
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The natural way to recur over a list is not the best way to solve this problem. Using append, as suggested in the accepted answer pointed by @lancery, is not a good idea either - and anyway if you're learning your way in Scheme it's best if you try to implement the solution yourself, I'll show you what to do, but first a tip - don't use list as a parameter name, that's a built-in procedure and you'd be overwriting it. Use other name, say, lst.

It's simpler to reverse a list by means of a helper procedure that accumulates the result of consing each element at the head of the result, this will have the effect of reversing the list - incidentally, the helper procedure is tail-recursive. Here's the general idea, fill-in the blanks:

(define (reverse lst)
  (<???> lst '()))                       ; call the helper procedure

(define (reverse-aux lst acc)
  (if <???>                              ; if the list is empty
      <???>                              ; return the accumulator
      (reverse-aux <???>                 ; advance the recursion over the list
                   (cons <???> <???>)))) ; cons current element with accumulator

Of course, in real-life you wouldn't implement reverse from scratch, there's a built-in procedure for that.

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I wouldn't advise against using 'list' as a parameter name - the lexical scoping of Scheme is part of its beauty. I would recommend not to conflate a parameter with a 'global' function; one of the errors in the posers code. –  GoZoner Feb 25 '13 at 0:30

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