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I've a question, how to return a list without the nth element of a given list? E.g., given list: (1 2 3 2 4 6), and given n = 4, in this case the return list should be (1 2 3 4 6).

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If this is homework, please add the "homework" tag. –  dasblinkenlight Feb 25 '12 at 14:36
1  
@dasblinkenlight Lisp homework? I think not –  Seth Carnegie Feb 25 '12 at 21:10
1  
@SethCarnegie, it's rare, but it happens. –  Samuel Edwin Ward Feb 26 '12 at 2:59

7 Answers 7

up vote 5 down vote accepted

A simple recursive solution:

(defun remove-nth (n list)
  (declare
    (type (integer 0) n)
    (type list list))
  (if (or (zerop n) (null list))
    (cdr list)
    (cons (car list) (remove-nth (1- n) (cdr list)))))

This will share the common tail, except in the case where the list has n or more elements, in which case it returns a new list with the same elements as the provided one.

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+1: I wrote procedural DO based version manually building the result and it was (on SBCL) 4 times faster and half consing compared to the remove-if approach, but this is much cleaner and with the same performance... –  6502 Feb 25 '12 at 20:58
2  
@6502, the original question doesn't say if modifying the input list is forbidden or if the output list should share structure. I generally prefer my functions to be nondestructive and share structure, but I don't see anything in the question prohibiting modifying the input. C and Java programmers would likely find that to be a natural thing to do. And in some situations, the shared tail might be a liability instead of an asset. –  Samuel Edwin Ward Feb 26 '12 at 3:05
1  
By the way: While I prefer having non-destructive functions by default, destructive versions are, in a way, the more general solution. You could turn any destructive operation into a non-destructive one by copying its argument – Making a non-destructive function destructive, however, usually takes a rewrite. (This is just meant to be a side note, not an argument for having destructive operations as an default in general.) –  danlei Feb 26 '12 at 5:34
1  
I agree that "internally destructive, externally pure" approach of writing functions (like my do/(setf (cdr x) y)) doesn't scale by composition. I'm no Common Lisp expert, but as the problem is stated however ("return a list without the nth element of a given list") I'd assume that a destructive operation would be surprising... but may be it's me (and I've been for example bitten in the past by sort being destructive and not being named nsort). –  6502 Feb 26 '12 at 7:17
1  
@SamuelEdwinWard quote: " E.g., given list: (1 2 3 2 4 6), and given n = 4, in this case the return list should be (1 2 3 4 6)." With 0-based indexing, the result would have to be (1 2 3 2 6) which is what your code produces, too. The last sentence should speak of "less than n elements". Small stuff, off-by-1 &the like. :) –  Will Ness Feb 27 '12 at 8:32

Using remove-if:

(defun foo (n list)
  (remove-if (constantly t) list :start (1- n) :count 1))

butlast/nthcdr solution (corrected):

(defun foo (n list)
  (append (butlast list (1+ (- (length list) n))) (nthcdr n list)))

Or, maybe more readable:

(defun foo (n list)
  (append (subseq list 0 (1- n)) (nthcdr n list)))

Using loop:

(defun foo (n list)
  (loop for elt in list
        for i from 1
        unless (= i n) collect elt))
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Btw: Interesting, how I got two upvotes for a wrong solution. Having worked almost exclusively with Haskell for a few months, I initially used butlast like take in the butlast/nthcdr solution. (Thinking along the lines of take n xs ++ drop (n+1) xs) –  danlei Feb 25 '12 at 18:00
    
I upvoted you for the reason that I've been writing in Haskell lately, and mentally did the same thing...oops –  jcc333 Feb 25 '12 at 18:18
    
@jcc333 Great minds err alike? ;) Anyway, it's corrected now – no harm done. –  danlei Feb 25 '12 at 18:43
    
or with nconc: (defun nfoo (n ls) (nconc (butlast ...) ...)). But the check for n > (length ls) case is missing. Only the loop version is working then. –  Will Ness Feb 26 '12 at 18:02
    
@WillNess Yes, if this was to be used in a library, or in situations where proper inputs are not guaranteed, one should maybe add an (assert (<= 1 n (length list))), or make the implementations just return the original list. (BTW, on CCL the remove-if and loop versions both do the latter.) –  danlei Feb 26 '12 at 20:34

A slightly more general function:

(defun remove-by-position (pred lst)
  (labels ((walk-list (pred lst idx)
             (if (null lst)
                 lst
                 (if (funcall pred idx)
                     (walk-list pred (cdr lst) (1+ idx))
                     (cons (car lst) (walk-list pred (cdr lst) (1+ idx)))))))
    (walk-list pred lst 1)))

Which we use to implement desired remove-nth:

(defun remove-nth (n list)
  (remove-by-position (lambda (i) (= i n)) list))

And the invocation:

(remove-nth 4 '(1 2 3 2 4 6))

Edit: Applied remarks from Samuel's comment.

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Interesting, and something I think I've wanted before. I'd suggest renaming your remove-nth to... something else... remove-by-position? And defining remove-nth (defun remove-nth (n list) (remove-by-position (lambda (i) (= i n)) list). –  Samuel Edwin Ward Feb 26 '12 at 3:10

Make another function inside your function that has a counter that you can use to tell when you've found the nth element, and use that, like:

(defun without-nth (mylist)
  (letfn 
    (without-nth (mylist count)

(-- implement your search and remove stuff here --)))

  (without-nth mylist 0)))
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Isn't letfn a Clojure thing? I thought it's called labels in CL. (Say I, the Schemer---where we usually use named let for this sort of thing.) –  Chris Jester-Young Feb 25 '12 at 15:18
    
@Chris: yes, labels sounds right. my CL is pretty rusty, been going back and forth between scheme and clojure lately. –  Nathan Hughes Feb 25 '12 at 16:04

My horrible elisp solution:

(defun without-nth (list n)
  (defun accum-if (list accum n)
    (if (not list)
        accum
          (accum-if (cdr list) (if (eq n 0) accum (cons (car list) accum)) 
            (- n 1))))
  (reverse (accum-if list '() n)))

(without-nth '(1 2 3) 1)

Should be easily portable to Common Lisp.

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3  
In Common Lisp local functions are introduced with FLET and LABELS. –  Rainer Joswig Feb 25 '12 at 19:41

Here's an interesting approach. It replaces the nth element of a list with a new symbol and then removes that symbol from the list. I haven't considered how (in)efficient it is though!

(defun remove-nth (n list)
    (remove (setf (nth n list) (gensym)) list))
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A much simpler solution will be as follows.

(defun remove-nth (n lst)
    (append (subseq lst 0 (- n 1)) (subseq lst n (length lst)))
)
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