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I am writing a very simple lisp code for the recursive factorial function. When called using a number, it works fine. However, when I try to call it using something that is not a number (ex. a) I get the following error:

Error: Attempt to take the value of the unbound variable `A'. [condition type: UNBOUND-VARIABLE]

However, this is supposed to be caught in my code. Here is my code:

(defun FactorialRec (num)
   (cond                                                  
      ((not(numberp num))
         (princ "Argument must be a number.")
         (terpri)
         ())
      ((equal num 1) ;base case                                                       
         1)
      ((<= 1 num) (* num(FactorialRec (- num 1))))
   )
)

I do not know why the numberp is not catching this. Any ideas? Thanks.

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3 Answers

up vote 0 down vote accepted
Break 2 [6]> (FactorialRec "A")
Argument must be a number.

It works on my machine. So I think you were passing A but not "A"?

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Thank you, I am still getting used to writing and running lisp that careless things like this happen. So, A can never be evaluated in lisp? –  iltp21 Sep 23 '12 at 3:23
    
@amaliat21, I think Barmar had already introduced it very well :) –  Marcus Sep 23 '12 at 4:03
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Don't mix parameter type checking into your main logic. Use the check-type macro on entry into the function, or as early in the function as is convenient:

(defun factorial (num)
  (check-type num (and integer (satisfies plusp)))
  (if (= num 1)
     1
     (* (factorial (1- num)) num))) 

The form (and integer (satisfies plusp)) is a type expression. Lisp types can be joined with operators like and, and the satisfies type operator can be used to create a type out of any predicate function. So we can specify a type whose domain values are objects which are integers, and which are positive. check-type will happily validate our variable to see whether it belongs to this type.

Also I used the built-in 1- function which subtracts one from its argument instead of (- num 1). This 1- is a symbol, not special syntax.

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The error is occurring before your function is ever being called. When you type a function call expression in the Lisp interpreter, it first evaluates all the arguments and the calls the function. If you use a variable that isn't bound, the argument evaluation fails.

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Thank you! I have found my problem. –  iltp21 Sep 23 '12 at 3:23
    
If this answered your question you should accept it by clicking the green check-mark. –  Barmar Sep 27 '12 at 2:00
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