Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm having trouble with the output of my code, I think it's when I'm checking conditions for the null of my lists.

The question I am trying to complete is: Write a function vecmul that will take as inputs two simple lists of numbers. vecmul should multiply these lists coordinate-wise as one would multiply vectors. Assume the two lists are the same length. [For example, (vecmul '(2 3 4 5) '(1 4 5 2)) returns (2*1 3*4 4*5 5*2) or (2 12 20 10). You are not allowed to use mapcar for this function]

So far I have

(defun vecmul (list list2)
  (cond ((null list) 0)
     (t (cons (* (car list) (car list2))
                 (vecmul (cdr list) (cdr list2))))))

[170]> (setq l '(2 4 6))
(2 4 6)
[171]> (setq r '(1 3 5))
(1 3 5)
[172]> (vecmul l r)
(2 12 30 . 0)

I'm getting the correct numbers, it's just that the list is adding the "." and the "0" at the end of the list. I'm pretty sure it's because i'm not stopping the recursion right or not working the cond right. I'm just not entirely sure how to correct it.

share|improve this question

2 Answers 2

up vote 4 down vote accepted

You've got it almost right. However, you're terminating your list with 0, when the correct termination is nil. This code works:

(defun vecmul (list list2)
  (cond ((null list) nil)
     (t (cons (* (car list) (car list2)) (vecmul (cdr list) (cdr list2))))))

When you call (cons 1 2), the cons cell you get is written (1 . 2). the notation (1 2 3 4 5) is just shorthand for (1 . (2 . (3 . (4 . (5 . nil))))). If the cdr of the last cons cell is 6, not nil, then you get (1 . (2 . (3 . (4 . (5 . 6))))), which shortens to (1 2 3 4 5 . 6).

share|improve this answer

Neil Forrester answered your question.

Some more remarks. Use modern names in Lisp: first and rest.

(defun vecmul (list1 list2)
  (cond ((null list1) nil)
        (t (cons (* (first list1) (first list2))
                 (vecmul (rest list1) (rest list2))))))

If you have a simple true and false decision, IF might be better. Since list operations are involved, I would write it as the following and not use WHEN.

(defun vecmul (list1 list2)
  (if (null list1)
      nil
    (cons (* (first list1) (first list2))
          (vecmul (rest list1) (rest list2)))))

Best use a loop construct or mapping in real code. Recursion, as above, has a stack depth limit. A loop does not have that restriction.

(defun vecmul (list1 list2)
  (loop for e1 in list1 and e2 in list2
        collect (* e1 e2)))

or

(defun vecmul (list1 list2)
  (mapcar #'* list1 list2))
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.