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This is what I did until now it tells me that it is not of type list.

(defun number_list(n)
  (setf x 
        (if (zerop (truncate n 10)) 
          (list n)
          (append (number_list (truncate n 10)) (list (mod n 10)))))
  (length x))

When I remove the (length x) I can see that the result is a list however.

Would appreciate any help.

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One problem with you code is that with (length x), the result is not a list anymore. For a solution: see uselpa's answer. –  Terje D. Nov 16 '13 at 9:39
    
You may be also interested in this question: stackoverflow.com/questions/19892507 that aside, it is possible to greatly speed-up the algorithm by using integer-length which returns number of bits in the integer. But if you are only interested in fixnum, then a table would do best (there are all in all 19 digits in max-positive-fixnum). –  user797257 Nov 16 '13 at 11:06
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2 Answers

up vote 2 down vote accepted

Your solution uses a global variable x, which is generally a bad idea, especially in recursive functions. Then, you create a list in order to count the number of digits. This is not really necessary.

Using a list

If you want to work with a list, I suggest you split the problem in 2 parts:

1. convert a number to a list

Your function works well for this if you remove setf x:

(defun number_list(n)
  (if (zerop (truncate n 10)) 
    (list n)
    (append (number_list (truncate n 10)) (list (mod n 10)))))

2. count the number of digits

(defun numdigits (n)
  (length (number_list n))).

Alternative

But I would suggest a simple recursive definition such as:

(defun numdigits (n)
  (if (< -10 n 10)
    1
    (1+ (numdigits (truncate n 10)))))
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using append in a recursive function to add an element to the end of a list should be avoided –  Rainer Joswig Nov 16 '13 at 12:39
    
oh, thank you. I just could not figure out how to use length with my function. So this is how you get the data from the first function. –  user2976636 Nov 16 '13 at 14:15
    
@user2976636 One problem with your function is that sometimes it returns a list, and sometimes a number. If you separate the two then the solution is easy. –  uselpa Nov 16 '13 at 14:18
    
This works and fulfills the specific question asked, although I would probably go for (defun num-digits (n &optional (base 10)) (ceiling (log (1+ n) base))) as long as I can guarantee that n is 1 or higher (one could, I guess, special-case 0). –  Vatine Nov 16 '13 at 14:19
    
@Vatine My personal favorite would be (defun numdigits (n) (length (write-to-string (abs n)))) but that doesn't answer the OP's question either. –  uselpa Nov 16 '13 at 14:25
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If you want to get the decimal digits and then count the length, assuming that numbers are 0 or greater integers.

(defun number-list (n) 
  (if (< n 10) 
      (list n)
    (cons (mod n 10)
          (number-list (truncate n 10)))))

CL-USER 44 > (length (number-list 123456789))
9

But it is preferable to directly count the digits. See the other answers.

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