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The exercise 3.8 in the SICP is described as blow:

When we defined the evaluation model in section 1.1.3, we said that the first step in evaluating an expression is to evaluate its subexpressions. But we never specified the order in which the subexpressions should be evaluated (e.g., left to right or right to left). When we introduce assignment, the order in which the arguments to a procedure are evaluated can make a difference to the result. Define a simple procedure f such that evaluating (+ (f 0) (f 1)) will return 0 if the arguments to + are evaluated from left to right but will return 1 if the arguments are evaluated from right to left.

And I wrote the procedure f so that if I call (f x) first, it will always return x whenever I call f again. But I do not know exactly why it works. The procedure I wrote is:

(define f
  (let ((s -1))
    (lambda (x)
      (if (= s -1)
          (begin (set! s x)
                 s)
           s))))
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2 Answers

up vote 2 down vote accepted

Think of s as a special variable tied just to your procedure, keeping its value between its invocations. Since you're going through SICP it should be clear that it's part of the environment that the procedure attached to f lives in.

First time it's called with some X, it sets s to x and returns it. Next time, since s is no longer -1, it will just always return s, which is the value of x saved in the first call.

> (f 42)  ; s is -1, so 42 is saved into it and returned
42
> (f 10)  ; is is 42, so the 'else' branch of the 'if' is taken
          ; and s is returned without looking at x
42
> (f 20)
42
> 
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Doesn't it create a new environment so that s is set to -1 when I call (f 10)? –  Bin Wang Nov 28 '11 at 3:41
    
@Bingo: no, when f is called, no new environment is created. But the body of f is evaluated in the environment f is attached to, which contains s from previous invocations. –  Eli Bendersky Nov 28 '11 at 3:42
    
I think I see. Is that the body of f is the lambda part, so the value of s is part of the environment f is lived in. –  Bin Wang Nov 28 '11 at 3:54
    
@Bingo: f is just a name, a reference to an object. That object is a function (a lambda), which was created in some environment that s is part of. –  Eli Bendersky Nov 28 '11 at 4:30
    
Thanks, I know what it exactly means now. There is another way to write my code which may be more clearly: (define f ((lambda (s) (lambda (x) (if (= s -1) (begin (set! s x) s) s))) -1)) So lambda(s)(...) is an object which has no name. Like "make-withdraw" in the bank example of the book. And f is like W in (define W (make-withdraw -1)) –  Bin Wang Nov 28 '11 at 6:27
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There is one important thing, when you use (define f .......) without brackets around f, you're defining a value, which "body" is evaluated only once. Therefore, mutable value is initialized only once. And it's also captured by the resulting lambda function, that can do anything with it, but not visible from anywhere else, because it's inside the scope of our definition.

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