3

I'd like to turn integers into lists. For example, 2245 => (2 2 4 5).

I dislike (coerce (write-to-string 2245) 'list) because it yields (#\2 #\2 #\4 #\5).

Help please?

Improve this question
2
  • Surely someone can post an implementation using (loop ...) ??
    – clstrfsck
    Apr 5, 2011 at 23:42
  • 2
    someone downvoted all the 'math' answers that use division and mod. care to explain why you dont like them?
    – jon_darkstar
    Apr 6, 2011 at 19:27

5 Answers 5

Reset to default
7 
(map 'list #'digit-char-p (prin1-to-string n))

works well.

Improve this answer
2
  • No it doesn't: (map 'list #'digit-char-p (prin1-to-string -2455)) gives (NIL 2 4 5 5)
    – Mark Cox
    Apr 6, 2011 at 21:43
  • 2
    Amended: (map 'list (lambda (c)(or (digit-char-p c) '-)) (prin1-to-string n))
    – Terje Norderhaug
    Apr 7, 2011 at 4:40
6 
(defun number-to-list (n)    
  (loop for c across (write-to-string n) collect (digit-char-p c)))

An alternative loop based solution.

Improve this answer
2

Same as jon_darkstar but in common lisp. This fails for negative numbers, but trivial to amend.

(defun number-to-list (number)
  (assert (and (integerp number)
               (>= number 0)))
  (labels ((number-to-list/recursive (number) (print number)
             (cond
               ((zerop number)
                nil)
               (t
                (cons (mod number 10) 
                      (number-to-list/recursive (truncate (/ number 10))))))))
    (nreverse (number-to-list/recursive number))))
Improve this answer
2
  • hadnt thought of negatives. what would even be desired behavior? every list element negative? just the first?
    – jon_darkstar
    Apr 5, 2011 at 23:26
  • I guess it depends on your interpretation of what the list represents. e.g. '(1 1) is 11 = 1*10^1 + 1. '(-1 1) would be -1*10^1 + 1 = -9.
    – Mark Cox
    Apr 6, 2011 at 4:07
2

Common Lisp implementation for non-negative integers:

(defun number-to-list (n &optional tail)
  (if (zerop n)
    (or tail '(0))
    (multiple-value-bind (val rem)
                         (floor n 10)
      (number-to-list val (cons rem tail)))))
Improve this answer
1

I don't really use common lisp, but I'd do it like this in Scheme. hopefully that can help?

(define (number-to-list x)
  (define (mod-cons x l)
     (if (zero? x)
         l
         (mod-cons (quotient x 10) (cons (remainder x 10) l))))
  (mod-cons x '()))

 (number-to-list 1234)
Improve this answer
3
  • I think this has a syntax error. Also it doesn't seem to work when I port it to clisp lingo.
    – rhombidodecahedron
    Apr 5, 2011 at 22:58
  • also just changed regular division to quotient (integer division). just tested in the interpreter, it works
    – jon_darkstar
    Apr 5, 2011 at 23:10
  • im not familiar with clisp, but i dont use anything besides function definition, integer division, mod, and cons. id have to image clisp has all of those. maybe use (= x 0) instead of (zero? x) ??
    – jon_darkstar
    Apr 5, 2011 at 23:13

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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