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I need to remove an element from a list which contain inner lists inside. The predefined element should be removed from every inner list too.

I have started working with the following code:

(SETQ L2 '(a b ( a 2 b) c 1 2 (D b (a s 4 2) c 1 2 a) a )) ; defined my list 

; Created a function for element removing
(defun elimina (x l &optional l0)
(cond (( null l)(reverse l0))
((eq x (car l))(elimina x (cdr l) l0))
(T (elimina x (cdr l) (cons (car l) l0))))

(ELIMINA 'a L2) 

But unfortunately it removes only elements outside the nested lists.

I have tried to create an additional function which will remove the element from the inner lists.

(defun elimina-all (x l)
(cond ((LISTP (CAR L))(reverse l)(elimina x (car l)))
(T (elimina-all  x (CDR L)))

but still unsuccessfully.

Can you please help me to work it out?

Thank you in advance.

share|improve this question
Is this homework? If yes please add the tag homework. – Rainer Joswig Apr 30 '12 at 10:52
you should also indent your code correctly. As it is now it is difficult to read. – Rainer Joswig Apr 30 '12 at 10:53

3 Answers 3

up vote 0 down vote accepted

Maybe like this:

(defun elimina (x l &optional l0)
  (cond ((null l) (reverse l0))
        ((eq x (car l)) (elimina x (cdr l) l0))
        (T (elimina x (cdr l) (cons (if (not (atom (car l))) 
                                        (elimina x (car l)) 
                                        (car l))
share|improve this answer
This is a good solution, thank you, but it doesn't work on removing a set of elements from list for example: (ELIMINA (a 2 b) L2) – e20 Apr 30 '12 at 11:34
In that case you'd need to replace (eq x (car l)) with (if (atom x) (eq x (car l)) (member (car l) x)). – Dan D. Apr 30 '12 at 11:41
Using a (member (car l) x) will remove only the first member of a list from the whole list. But actually the point is to remove (A 2 B) from (A (A (A 2 B))) list (L2). – e20 Apr 30 '12 at 11:50
I see so instead replace (eq x (car l)) with (equals x (car l)); deep comparison rather than reference equality. – Dan D. Apr 30 '12 at 12:02
Thank you very much Dan. I got it. – e20 Apr 30 '12 at 12:07

First of all, I'd suggest you read this book, at least, this page, it explains (and also gives very good examples!) of how to traverse a tree, but most importantly, of how to combine functions to leverage more complex tasks from more simple tasks.

;; Note that this function is very similar to the built-in
;; `remove-if' function. Normally, you won't write this yourself
(defun remove-if-tree (tree predicate)
    ((null tree) nil)
    ((funcall predicate (car tree))
     (remove-if-tree (cdr tree) predicate))
    ((listp (car tree))
     (cons (remove-if-tree (car tree) predicate)
           (remove-if-tree (cdr tree) predicate)))
    (t (cons (car tree)
             (remove-if-tree (cdr tree) predicate)))))

;; Note that the case of the symbol names doesn't matter
;; with the default settings of the reader table. I.e. `D' and `d'
;; are the same symbol, both uppercase.
;; Either use \ (backslash) or || (pipes
;; around the symbol name to preserve the case. Eg. \d is the
;; lowercase `d'. Similarly, |d| is a lowercase `d'.
(format t "result: ~s~&"
         '(a b (a 2 b) c 1 2 (D b (a s 4 2) c 1 2 a) a)
         #'(lambda (x) (or (equal 1 x) (equal x 'a)))))

Here's a short example of one way to approaching the problem. Read the comments.

share|improve this answer

I was looking for the same answer as you and, unfortunately, I couldn't completely understand the answers above so I just worked on it and finally I got a really simple function in Lisp that does exactly what you want.

(defun remove (a l)
    ((null l) ())
        ((listp (car l))(cons (remove a (car l))(remove a (cdr l))))
        ((eq (car l) a) (remove a (cdr l)))
        (t (cons (car l) (remove a (cdr l))))

The function begins with two simple cases, which are: 'list is null' and 'first element is a list'. Following this you will "magically" get the car of the list and the cdr of the list without the given element. To fixed that up to be the answer for the whole list you just have to put them together using cons.

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