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I just started learning LISP today just for the heck of it, so I am completely new to it. I do have experience in other languages though. I tried to write a function that returns a list exactly as is, except without the last element.

While I intend to rewrite this function anyway since I'm sure there's a simpler way of doing it, my version produced some very unusual output. For the record, I'm using the CLISP environment.

(defun my-butlast (L)
    (if (null (rest L))
      nil
      (if (eq nil (my-butlast (rest L)))
         (first L)
         (cons (first L) (my-butlast (rest L)))
      )
    )
)

(my-butlast '(1 2 3 4 5))

This produced the output (1 2 3 . 4)

And so my question is, where did the point come from?

Also, if I try to run (length (my-butlast '(1 2 3 4))) I get a mystifying error: A proper list must not end with 4. What does that mean?

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You don't need the second if. Change the alternative to the second if alternative since (list x) is the same as (cons x '()) –  Sylwester Aug 15 '13 at 7:37
1  
Please spend a few minutes learning how to format Lisp code. –  danlei Aug 18 '13 at 10:37

2 Answers 2

up vote 6 down vote accepted

. is used in the representation of a cons whose cdr is not NIL. E.g.

(cons 1 2)

is displayed as

(1 . 2)

Consider what happens in your function if you do

(my-butlast '(1 2))

The test (eq nil (my-butlast (rest L)) will be true, so it returns (first L). Notice that this is just the number 1, not a list containing 1. You need to change to:

(if (eq nil (my-butlast (rest L)))
    (list (first L))
    (cons (first L) (my-butlast (rest L)))
)

Incidentally, it's more idiomatic to write (null (my-butlast (rest L))).

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There's a bit more detail about printed representation of lists and proper versus improper lists in my answer to a distinct, but related question. –  Joshua Taylor Aug 15 '13 at 11:40

Try doing I believe for your base case (it's been a while since I wrote lisp):

(list (first L))

(first L) will not return a list and cons of one element to another will create the structure you are looking at. Essentially your linked list is ending in [3|4] instead of [3|->] [4|0] with my lame ascii box diagrams.

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