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  (defun my_remove(e list1 list2)
  (if (null list1)
   nil
  ((setf x car(list1))
    (if (!= x e)
    ((my_append  e list2 )
    (setf y cdr(list1))
    (my_remove(e y list2)))

    ((setf y cdr(list1))
    (my_remove(e y list2))
     )))))

I am trying to write a function to remove an element from a list but i am getting an error that "It should be lambada function" and I don't know that my code is correct or wrong.

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1  
proper formatting will help a lot (this isn't a snarky comment; it's hard to tell the syntax from parens alone—indentation matters!) –  Joshua Taylor Apr 14 at 13:33
    
I m beginner here, I don't know proper indentation, I tried whatever i have written above –  user39495 Apr 14 at 13:37
    
It will help you greatly if you can use an editor that's Lisp-aware, such as Emacs or one built into an IDE (e.g., Lispworks' editor). –  Joshua Taylor Apr 14 at 13:38
    
vim is also aware of Lisp syntax. Are you learning from a class or a textbook? There are some very fundamental syntax problems with the code. A few Lisp example functions would make that clear. I think you should sort through some of that off-line, and then make another attempt. –  lurker Apr 14 at 13:48
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1 Answer 1

up vote 1 down vote accepted

Problems with your code

There are a few problems with your code. First, let's look at it with standard indentation

(defun my_remove(e list1 list2)
  (if (null list1)
      nil
      ((setf x car(list1))                   ; (i)
       (if (!= x e)
           ((my_append  e list2 )            ; (ii)
            (setf y cdr(list1))              ; (iii)
            (my_remove(e y list2)))          ; (iv)
           ((setf y cdr(list1))              ; (v)
            (my_remove(e y list2)))))))      ; (vi)

Each of the marked lines has a problem. The syntax for a function call in Lisp is

(function argument…)

That means that in your line (i), you're trying to call a function named (setf x car(list1)) with an argument (if (!= x e) …). Of course, that's not the name of a function, and I suspect that even if it was, you didn't want to call it with the argument (if (!= x e) …). Similarly

(setf x car (list1))

Is trying to to set x to the value of the value of a variable car (and there isn't one), and then assign a new value to the place (list1). Since the syntax for a function call is (function argument…), you want instead:

(setf x (car list1))

If you're trying to sequence forms, you might consider using cond, in which you can provide multiple forms, or progn (see In Common Lisp, why do multi-expression bodies of (if) statements require (progn)?).

For instance, instead of

           ((my_append  e list2 )            ; (ii)
            (setf y cdr(list1))              ; (iii)
            (my_remove(e y list2)))          ; (iv)

you probably want

           (progn
            (my_append  e list2 )            ; (ii)
            (setf y cdr(list1))              ; (iii)
            (my_remove(e y list2)))          ; (iv)

You'll have some problems with that, too, though. In (iii) and (iv), you'll need to use (cdr list1) and (my_remove e y list2), as discussed above, but you also have the problem that you're evaluating (ii) and (iii), but you're discarding the value.

A simplified approach

I think it might be to your benefit if you think about a simple definition of my-remove. In general, a list is either the empty list () or a cons cell whose car is the first element of the list and whose cdr is the rest of the list. You can use a definition like this, then:

  • remove(x,list)
    • if list is empty, then return list (it's empty, so it certainly doesn't contain x)
    • if list is not empty, then
      • if the first element of the list is x, then return remove(x,rest(list))
      • else, the first element of the list is not x, so return a new list whose first element is the first element of list, and whose rest is remove(x,rest(list)).

In code, that looks like:

(defun my-remove (element list)
  (if (endp list)
      list
      (if (eql element (first list))
          (my-remove element (rest list))
          (list* (first list)
                 (my-remove element (rest list))))))
CL-USER> (my-remove 1 '(1 2 3 1 2 3))
(2 3 2 3)

Those nested ifs look a bit ugly, and you might want to use cond here, even though you don't need the multiple expression bodies that it permits:

(defun my-remove (element list)
  (cond
    ((endp list)
     list)
    ((eql element (first list))
     (my-remove element (rest list)))
    (t
     (list* (first list) (my-remove element (rest list))))))

Since a cond clause with no body whose test form evaluates to true returns the value of the test form, you can even make that last clause a bit simpler:

(defun my-remove (element list)
  (cond
    ((endp list) list)
    ((eql element (first list)) (my-remove element (rest list)))
    ((list* (first list) (my-remove element (rest list))))))
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sorry, actually i was trying to set the first element of 'list1' in 'x' –  user39495 Apr 14 at 13:48
    
What is list* and what is endp ? –  user39495 Apr 14 at 14:20
    
@user39495 In this it can be replaced by cons, but list* is like list except the last argument is the tail of the resulting list. eg (list* 1 2 '(3 4 5)) ; ==> (1 2 3 4 5). endp is a synonym for null. –  Sylwester Apr 14 at 14:22
1  
@user39495 Sylwester's answer is correct. I like to use endp/first/rest/list* to emphasize that we're working with lists here, rather than trees of cons cells. These questions, though, are easily answered with a quick Google search, or even more specifically, a search on lispdoc.com, e.g., for endp. list* is a bit harder to search for, but it's on the same page as list. –  Joshua Taylor Apr 14 at 14:28
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