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I'm trying to write a function in Common Lisp to convert a base 10 number into a base 8 number, represented as a list, recursively.

Here's what I have so far:

(defun base8(n)
(cond
    ((zerop (truncate n 8)) (cons n nil))
    ((t) (cons (mod n 8) (base8 (truncate n 8))))))

This function works fine when I input numbers < 8 and > -8, but the recursive case is giving me a lot of trouble. When I try 8 as an argument (which should return (1 0)), I get an error Undefined operator T in form (T).

Thanks in advance.

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2 Answers 2

up vote 1 down vote accepted

It seems you have forgotten to (defun t ...) or perhaps it's not the function t you meant to have in the cond? Perhaps it's t the truth value?

The dual namespace nature of Common Lisp makes it possible for t to both be a function and the truth value. the difference is which context you use it and you clearly are trying to apply t as a function/macro.

Here is the code edited for the truth value instead of the t function:

(defun base8(n)
  (cond
    ((zerop (truncate n 8)) (cons n nil))
    (t (cons (mod n 8) (base8 (truncate n 8))))))

(base8 8) ; ==> (0 1)
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Thanks! I did mean t to be the truth value. That fixed it so it works as I expect it to. Now I want to have the reverse list that I am returning. Is it possible to do this only in one function, or would I have to have a helper function? –  user2177693 Nov 4 '13 at 17:57
    
Nevermind, I figured it out: (defun base8(n) (cond ((zerop (truncate n 8)) (cons n nil)) (t (append (base8 (truncate n 8)) (cons (mod n 8)) nil))))) –  user2177693 Nov 4 '13 at 18:17

Just for fun, here's a solution without recursion, using built-in functionality:

(defun base8 (n)
  (reverse (coerce (format nil "~8R" n) 'list)))
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Thanks, but specifically for the exercise, I don't think this is the most helpful. –  user2177693 Nov 7 '13 at 17:14
    
Right. It was soley for merriment. –  Lars Brinkhoff Nov 7 '13 at 17:56

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