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I am trying to implement an interpreter in scheme. For now i implemented some part of it, but i am having problems with "if" statement. Here is the grammar:

<s6> -> <expr>
        | <define>

<define> -> ( define IDENT <expr> )

<expr> -> NUMBER
          | IDENT
          | <if>

<if> -> ( if <expr> <expr> <expr> )

Here is the code i have written so far:

(define get-operator (lambda (op-symbol)
(cond
    ((equal? op-symbol '+) +)
    ((equal? op-symbol '-) -)
    ((equal? op-symbol '*) *)
    ((equal? op-symbol '/) /)
    (else (error "s6-interpret: operator not implemented -->" op-symbol)))))


(define if-stmt? (lambda (e)
(and (list? e) (equal? (car e) 'if) (= (length e) 4))))

(define define-stmt? (lambda (e)
(and (list? e) (equal? (car e) 'define) (symbol? (cadr e)) (= (length e) 3))))


(define get-value (lambda (var env)
(cond
    ((null? env) (error "s6-interpret: unbound variable -->" var))
    ((equal? (caar env) var) (cdar env))
    (else (get-value var (cdr env))))))


(define extend-env (lambda (var val old-env)
(cons (cons var val) old-env)))


(define repl (lambda (env)
(let* (
    (dummy1 (display "cs305> "))
    (expr (read))
    (new-env (if (define-stmt? expr)
                (extend-env (cadr expr) (s6-interpret (caddr expr) env) env)env))
    (val (if (define-stmt? expr)
                (cadr expr)
                (s6-interpret expr env)))
    (dummy2 (display "cs305: "))
    (dummy3 (display val))
    (dummy4 (newline))
    (dummy4 (newline)))
(repl new-env))))


(define s6-interpret (lambda (e env)
(cond
    ((number? e) e)
    ((symbol? e) (get-value e env))
    ((not (list? e)) (error "s6-interpret: cannot evaluate -->" e))
    (if-stmt? e) (if (eq? (cadr e) 0) (map s6-interpret (cadddr e)) (map s6-interpret(caddr e))))
    (else
        (let ((operands (map s6-interpret (cdr e) (make-list (length (cdr e)) env)))
                (operator (get-operator (car e))))
            (apply operator operands))))))


(define cs305-interpreter (lambda () (repl '())))

The define statement works well. My code also includes implementation of some basic math operators, you can ignore them. My problem is, the "if" statement i implemented does not work as i expect. When i write "(if 1 (+ 2 5) 9)" it prints out (+ 2 5) but actually i want it to print out 7, which is 2+5. I think there is a problem about my recursion. Can anyone help me with this?

Thank you

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1 Answer 1

up vote 3 down vote accepted

The code you have written for if statements never triggers, because if statements are lists of length 4, not 3:

(define if-stmt? (lambda (e)
  (and (list? e)
       (equal? (car e) 'if)
       (= (length e) 3))))


> (length '(if condition then-clause else-clause))
4
> (if-stmt? '(if condition then-clause else-clause))
#f

It would probably make more sense to accept any list that starts with the symbol "if" as an if statement. If it doesn't have a legal length, that just means it's a broken if statement, not that it's something else entirely (unless the language you're writing an interpreter for is unusual for a Lisp in this respect).

There is indeed also something wrong with your recursion, in that you're not using it in this case. When if-stmt? triggers, you are not calling s6-interpret again. The following would be closer to correct:

((if-stmt? e)
 (s6-interpret
  (if (eq? (cadr e) 0)
     (cadddr e)
     (caddr e))
  env))

Note that there are also other irregularities with your implementation, including the if statement. For instance, it is not conventional that "0" evaluates as false, and certainly very unconventional that #f evaluates as true.

Check what the Scheme implementation actually does to see what is considered conventional/correct. You can also refer to R5RS, which is comparatively short and readable for a language specification.

A few hints about code legibility:

You should use conventional indentation. This will make your code easier to read. If you're using a Scheme-aware editor, the editor can likely help you with this. For instance, in DrRacket, just press "tab" when at the start of a line and this line will be fixed for you. You'll need to insert newlines as appropriate.

Scheme has a syntax especially for defining functions. Use it. You have likely been taught that you could implement everything by binding lambdas to symbol names -- functions are not special. That's an important theoretical point, but it's not a good idea to do this in practice. The following are essentially equivalent, but the latter is shorter and easier to read.

(define f (lambda (a b) (+ a b)))
(define (f a b) (+ a b))
share|improve this answer
    
Oh, you are right thanks but now i am editing the question that was not really what i wanted to ask. But thanks for warning about this –  bigO May 23 '13 at 18:23
    
Well i solved it but i will consider your advises as well. Thanks –  bigO May 23 '13 at 18:28

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