Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I try to understand by playing around with some code I found in MIT-Scheme documentation. one piece of code about sc-macro-transformer:

(define-syntax let1
        (sc-macro-transformer
         (lambda (form env)
           (let ((id (cadr form))
                 (init (caddr form))
                 (exp (cadddr form)))
             `((lambda (,id)
                 ,(make-syntactic-closure env (list id) exp))
               ,(make-syntactic-closure env '() init))))))

  ;(let1 a 1 (+ a 1))
  ;Value: 2

but I wonder if can I take the part of "make-syntactic-closure" from `lambda ... to the body of "let.." and the program becomes :

(define-syntax let1-error
    (sc-macro-transformer        
      (lambda (form env)
         (let ((id  (cadr form))
              (init (make-syntactic-closure env '() (caddr form)))
              (exp (make-syntactic-closure env '(id) (cadddr form))))
  ;; (pp `(id:,id))
  ;; (pp `(init:, init))
  ;; (pp `(exp:, exp))
   `((lambda (,id)
    ,exp) 
 ,init)))))
;(let1-error a 1 (+ a 1))
;Unbound variable: a

Can someone told me why that these two program is different?

share|improve this question
1  
This is just a guess without running MIT-scheme, but in lifting the code you translated (list id) to '(id), which is not the same thing. (list id) creates a new list with the symbol bound by the identifier id, i.e. (cadr form), every time the macro is expanded. However, '(id) is a literal list of the symbol "id". Thus let1 expands (list id) to '(a) while let1-error expands it to '(id). You should be able to check this with a macro expansion procedure, though I don't know what that is for MIT-scheme specifically. –  Josh Segall Jun 8 '11 at 2:40
add comment

1 Answer

Your problem is likely with:

(make-syntactic-closure env '(id) (cadddr form)))

Compare that to the previous version.

You probably want that to be (list id) instead.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.