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I want to create a function : OP from i=n to p = f(i) OP is a binary operator

Here is my function

(defun sigmaOP (f o n p)
(loop for i from n to p do
(let (val (o (val (funcall f i))))
)
val
)

f is a function o is the operator n is the begining and p the end

And to call I use

(sigmaOP (lambda (x) (* 2 x)) '+ 1 3)

But it doesn't work The o argument isn't consider as operator. This function work if I remove o and instead there is + or *,...

Thanks

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1 Answer 1

An operator is a function to call, too, so you need to precede o with funcall, or use it as a parameter in a call e.g. to reduce. Are you thinking of something like this?

(defun sigmaOP (f o n p)
  (reduce o
    (loop for i from n to p
          collect (funcall f i))))

Call:

(sigmaOP (lambda (x) (* 2 x)) #'+ 1 3)
share|improve this answer
    
I try your code but it doesn't work. Maybe my function call is bad. How you call this function to pass the operator as argument simply + or '+ ? –  guillaume Sep 27 '12 at 10:22
    
@guillaume: see my edits. Since o is a local variable, we don't need to function-quote it. –  Rainer Joswig Sep 27 '12 at 10:32
    
I've an error : The function o is undefined –  guillaume Sep 27 '12 at 10:37
    
Argh. Always had a problem with Lisp-2... I'm more of a Scheme guy. Thanks for the edit! –  lbruder Sep 27 '12 at 10:38

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