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I'm working on a function that will let you measure the run-time of a passed function run-n-time. It's not close to finished, because while writing the code, I came across a strange error. Note that I'm quite new to common lisp.

Inputting this into my sbcl-repl (version: SBCL 1.3.1.debian)

(defun run-n-time (fn times argn)
  (loop for n from 0 to times
    do (apply fn (argn n))))

Gives me this output (unimportant stuff removed)

; caught STYLE-WARNING:
;   The variable ARGN is defined but never used.

; in: DEFUN RUN-N-MEASURE
;     (ARGN N)
; 
; caught STYLE-WARNING:
;   undefined function: ARGN

It states that argn is unused and undefined.

I have no idea what's going on here, it's such a simple piece of code :(

3

Common Lisp has separate function and value namespaces.

The form (argn n) uses the argn operator, not the variable. You need to use funcall here: (funcall argn n).

  • Do I understand it correctly? The (argn n) in the function body is seen by common lisp as argn the operator, while the (fn times argn) in the function-definition is seen as ARGN the symbol . So what you need to do is retrieve the function argn from the function namespace by using funcall on the symbol ARGN? – Azeirah Aug 26 '17 at 23:19
  • Oh and no, argn is meant to be a function passed to run-n-time that takes the iteration variable n to determine what arguments the arbitrary function fn takes, for flexibility reasons. – Azeirah Aug 26 '17 at 23:30
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    Imagine the form (list list). list in the operator position evaluates to the standard function list while list in the operands position is just a variable. They are both variables but normal variables can evaluates to symbols. You can do (list (funciton list)) and now the operand fetces the vartiable from the function namespace instead. #'list is syntactic shortcut. (apply #'+ '(1 2 3)) ; ==> 6. You need to do (funcall argn n) to call a function bound in the variable namespace. You can also use (apply argn (list n)) – Sylwester Aug 26 '17 at 23:30
  • @Sylwester, thanks, I wasn't aware of the interactions with the function namespace. If you remove the last paragraph of your answer, I'll accept it. – Azeirah Aug 26 '17 at 23:33
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    @Azeirah I'll leave Svante to do it :-) – Sylwester Aug 26 '17 at 23:35

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