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I got this program:

(define a 2)

(define (goo x)
  (display x) (newline)
  (lambda (y) (/ x y)))

(define (foo x)
  (let ((f (goo a)))
    (if (= x 0)
        x
        (f x))))

and I asked to compare the evaluation results between the applicative and normal order on the expression (foo (foo 0)).

As I know, in applicative order, (display x) in function goo will print x and after it the program will collapse because y isn't defined. But when I run it in Scheme nothing happens. What is the reason?

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"But when I run it in Scheme nothing happens." What Scheme? In Chicken Scheme (foo (foo 0)) prints 2 2 and returns 0 . Why do you think it is a problem with application order vs. normal order? –  knivil Mar 20 '11 at 14:21

1 Answer 1

(foo 0) evaluates to this code:

(define (goo 2)
  (display 2) (newline)
  (lambda (y) (/ 2 y)))

(define (foo x)
  (let ((f (goo 2)))
    (if (= 0 0)
        0
        ((lambda (y) (/ 2 y)) 0))))

and prints 2, returning 0. While (foo 4) evaluates to:

(define (goo 2)
  (display 2) (newline)
  (lambda (y) (/ 2 y)))

(define (foo 4)
  (let ((f (goo 2)))
    (if (= 4 0)
        4
        ((lambda (y) (/ 2 y)) 4))))

and prints 2, returning 0.5.

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Thanks, but what the difference between applicative order and Normal order? because when I run it in scheme - nothing happen. –  Eyal Mar 20 '11 at 12:14
3  
@Eyal: See Applicative order and Normal order on Wikipedia, and appropriate sections in SICP: Evaluating Combinations and The Substitution Model for Procedure Application. Scheme and most programming languages use applicative order of evaluation. –  Yasir Arsanukaev Mar 20 '11 at 12:29
    
applicative order: left-most innermost in scheme . check web.mit.edu/6.827/www/old/lectures/L04-LambdaLetPrint.pdf –  Timeless Sep 9 '12 at 14:47

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