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How can I remove nested parentheses recursively in Common LISP Such as

  (unnest '(a b c (d e) ((f) g))) => (a b c d e f g)
  (unnest '(a b))                 => (a b)
  (unnest '(() ((((a)))) ()))     => (a)

Thanks

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15  
You do not remove parentheses. Parentheses are just an aspect of a printed representation for lists. What you are doing is flattening lists. –  Svante Apr 21 '10 at 21:14

7 Answers 7

(defun flatten (l)
  (cond ((null l) nil)
        ((atom l) (list l))
        (t (loop for a in l appending (flatten a)))))
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Here's what I'd do:

(ql:quickload "alexandria")
(alexandria:flatten list)

That works mainly because I have Quicklisp installed already.

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2  
So modest! That works mainly because you created Quicklisp already. –  Joe Taylor Jul 31 '12 at 0:01

You could define it like this for example:

(defun unnest (x)
  (labels ((rec (x acc)
    (cond ((null x) acc)
      ((atom x) (cons x acc))
      (t (rec (car x) (rec (cdr x) acc))))))
    (rec x nil)))
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Thanks a buch... –  bubdada Apr 21 '10 at 7:17

I realize this is an old thread, but it is one of the first that comes up when I google lisp flatten. The solution I discovered is similar to those discussed above, but the formatting is slightly different. I will explain it as if you are new to lisp, as I was when I first googled this question, so it's likely that others will be too.

(defun flatten (L)
"Converts a list to single level."
    (if (null L)
        nil
        (if (atom (first L))
            (cons (first L) (flatten (rest L)))
            (append (flatten (first L)) (flatten (rest L))))))

For those new to lisp, this is a brief summary.

The following line declares a function called flatten with argument L.

(defun flatten (L)

The line below checks for an empty list.

    (if (null L)

The next line returns nil because cons ATOM nil declares a list with one entry (ATOM). This is the base case of the recursion and lets the function know when to stop. The line after this checks to see if the first item in the list is an atom instead of another list.

        (if (atom (first L))

Then, if it is, it uses recursion to create a flattened list of this atom combined with the rest of the flattened list that the function will generate. cons combines an atom with another list.

            (cons (first L) (flatten (rest L)))

If it's not an atom, then we have to flatten on it, because it is another list that may have further lists inside of it.

            (append (flatten (first L)) (flatten (rest L))))))

The append function will append the first list to the start of the second list. Also note that every time you use a function in lisp, you have to surround it with parenthesis. This confused me at first.

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(defun flatten (l)
  (cond ((null l) nil)
        ((atom (car l)) (cons (car l) (flatten (cdr l))))
        (t (append (flatten (car l)) (flatten (cdr l))))))
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Lisp has the function remove to remove things. Here I use a version REMOVE-IF that removes every item for which a predicate is true. I test if the thing is a parenthesis and remove it if true.

If you want to remove parentheses, see this function:

(defun unnest (thing)
  (read-from-string
   (concatenate
    'string
    "("
    (remove-if (lambda (c)
                 (member c '(#\( #\))))
               (princ-to-string thing))
    ")")))

Note, though, as Svante mentions, one does not usually 'remove' parentheses.

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(defun unnest (somewhat)
  (cond
   ((null somewhat) nil)
   ((atom somewhat) (list somewhat))
   (t
    (append (unnest (car somewhat)) (unnest (cdr somewhat))))))
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