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Does someone know why the following produces the expected result - (2 4 6)

(defmacro mult2 (lst)
  (define (itter x)
    (list '* 2 x))
  `(list ,@(map itter lst))) 

(mult2 (1 2 3))

while I expected that this one would (with the list identifier)

(defmacro mult2 (lst)
  (define (itter x)
    (list '* 2 x))
  `(list ,@(map itter lst)))

(mult2 '(1 2 3))
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2 Answers 2

up vote 3 down vote accepted

That's because the '(1 2 3) is expanded by the reader into (quote (1 2 3)). Since you only destructure one list in your macro, it won't work as expected.

Some general advice: if you're working in Racket you probably want to avoid using defmacro. That is definitely not the idiomatic way to write macros. Take a look at syntax-rules and, if you want to define more complicated macros, syntax-parse. Eli also wrote an article explaining syntax-case for people used to defmacro.

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1  
Thanks alot!! You definitely saved me a few hours. –  user1240792 Feb 29 '12 at 18:06

Macro "arguments" are not evaluated. So, when you pass in '(1 2 3), i.e., (quote (1 2 3)), that is exactly what the macro sees.

P.S. You are much better off using hygienic macros in Scheme. Here's an example using syntax-case:

(define-syntax mult2
  (lambda (stx)
    (define (double x)
      #`(* 2 #,x))
    (syntax-case stx ()
      ((_ lst)
       #`(list #,@(map double (syntax-e #'lst)))))))

(That's still not how such a macro is idiomatically written, but I tried to mirror your version as closely as possible.)

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