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I can use keyword parameters in LISP

(member 'a '(a b c) :test #'eq)

However, when I tried to use apply to invoke member method

(apply #'member 'a '(a b c) :test #'eq)

I have error message as follows:

MEMBER: keyword arguments in (:TEST) should occur pairwise
 [Condition of type SYSTEM::SIMPLE-PROGRAM-ERROR]

The solution was

(apply #'member 'a '(a b c) '(:test eq))

Whereas without the keyword arguments

(apply #'member 'a '((a b c)))

What's the logic behind this? Why '(:test #'eq) raises an error?

ADDED

This is the reason why I asked this question. I have code from ANSI Common Lispbook page 103.

(defun our-adjoin (obj lst &rest args)
       (if (apply #'member obj lst args)
           lst
           (cons obj lst)))

When I tried (our-adjoin 'a '(a b c)) it returns the result (A B C), but the our-adjoin can't be translated as (apply #'member 'a '(a b c)), because it will raise an error (as is asked in Apply and keyword arguments in lisp).

What I can think about is that the value from &rest args is given to make something like (apply #member 'a '(a b c) '()) not to raise an error.

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Using funcall is probably clearer than contortions with apply. –  michaelb958 Apr 29 '13 at 1:45
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2 Answers

up vote 3 down vote accepted

apply expects its final argument to be a list. That is,

(apply #'foo (list 1 2 3)) == (foo 1 2 3)
(apply #'member 'a '(a b c) :test #'eq) == ??? ; is an error - #'eq isn't a list

I don't know what apply is making of #'eq (a function) where a list is expected, but that's the problem.

You might be looking for funcall instead of apply:

(funcall #'foo 1 2 3) == (foo 1 2 3)
(funcall #'member 'a '(a b c) :test #'eq) == (member 'a '(a b c) :test #'eq)

Edit: (apply #'member 'a '(a b c))

This is the same as

(member 'a 'a 'b 'c)

which of course is nonsense. Think of apply as "expanding" its last argument.

Edit 2: The our-adjoin code

(our-adjoin 'a '(a b c) :test #'eq)
;; is equivalent to
(if (apply #'member 'a '(a b c) (list :test #'eq))
    lst
  (cons obj lst))
;; is equivalent to
(if (member 'a '(a b c) :test #'eq) ...)

(our-adjoin 'a '(a b c))
;; is equivalent to
(if (apply #'member 'a '(a b c) (list)) ...) ; (list) == nil
;; is equivalent to
(if (member 'a '(a b c)) ...)

So your hypothesis (that the equivalent was (apply #'member 'a '(a b c) '())) is correct. (FYI, there is no difference between nil, 'nil, (), '(), and (list).)

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APPLY is provided so that we can call functions with a computed argument list.

APPLY has the following syntax:

apply function &rest args+ => result*
  • the first parameter is a function

  • then several arguments, at least one, where the last argument needs to be a list

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