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 saw that a similar question was asked before, but I don't understand another issue here.

Here are two functions:

(define x 2)
(define a 2)

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

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

What is the return value of (foo (foo 0))? What will print out to the screen?

As I understand it, when I run (foo 0) in the beginning, 2 will print out (we will enter the function goo), and the return value will be 0. Then, we will enter the function foo again with (foo (foo 0)) => (foo 0). We again enter the function goo and 2 will print out. But when I run it, 2 is printed just once. I think I'm missing a critical issue about let and its connection to lambda.

share|improve this question

1 Answer 1

up vote 2 down vote accepted

The let inside the definition of foo, and therefore the application of goo to a, is evaluated when foo is defined, not when foo is evaluated.

Look at it this way: what is the value of foo? It is the lambda expression. The binding of f is closed over by foo, it is not "redone" every time foo is evaluated.

Edit: here's an example without lambdas

> (let ((x (sqrt 2))) (* x 3))
4.24264068711929
> (define bar (let ((x (sqrt 2))) (* x 3)))
> bar
4.24264068711929
>        

When you evaluate bar you are not calling sqrt again. bar is defined as the body of the let, in this case a number that is the result if an expression.

In your example the body of the let is a lambda expression. But just like my example, the let binding is not re-executed.

share|improve this answer
    
Tank u. But the body of the "let" is: (lambda (x) (if (= x 0) x (f x))) meaning - I have to enter the let every time I evaluated "foo". Because that, I have also enter the function "goo" (re-defind). What Im missing? –  Tom Apr 23 '11 at 15:38
    
You evaluate f again when x is non-zero; but f is the result of evaluating (goo a) when foo is defined; f is already bound, it is not rebound every time you execute foo. –  Doug Currie Apr 23 '11 at 15:52
    
See my edit above with an example that might help you. –  Doug Currie Apr 23 '11 at 16:03

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.