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A function that returns how many times it has been called in Scheme would look like

(define count
  (let ((P 0))
    (lambda () 
      (set! P (+ 1 P))
      P)))

(list (count) (count) (count) (count)) ==> (list 1 2 3 4)

But suppose that we have an expression that looks like this

(map ______ lst)

and we want that to evaluate to

(list 1 2 3 ... n)
where n = (length list)

The problem requires we use a lambda statement in the blank, and we cannot use any auxiliary definitions like (count) in the blank, so

(lambda (x) (count))

is not allowed. Simply replacing (count) with the previous definition like this:

(map
 (lambda (x)
   ((let ((P 0))
      (lambda () 
        (set! P (+ 1 P))
        P))))
 L)

doesn't work either.

Any suggestions?

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2 Answers 2

up vote 1 down vote accepted

You're very, very close to a correct solution! in the code in the question just do this:

  1. The outermost lambda is erroneous, delete that line and the corresponding closing parenthesis
  2. The innermost lambda is the one that will eventually get passed to the map procedure, so it needs to receive a parameter (even though it's not actually used)
  3. Delete the outermost parenthesis surrounding the let form

It all boils down to this: the lambda that gets passed to map receives a parameter, but also encloses the P variable. The let form defines P only once in the context of the passed lambda, and from that point on the lambda "remembers" the value of P, because for each of the elements in the list the same P is used.

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1  
Thanks! That worked! –  user1968574 Jan 11 '13 at 2:45
    
@user1968574 you're welcome! please don't forget to accept the answer that was most helpful for you by clicking on the check mark to its left –  Óscar López Jan 11 '13 at 2:50

You're 90% of the way there. Use the right-hand-side of your count definition in the blank, and add an (ignored) argument to the function.

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If this is what you mean: (map (lambda (x) ((let ((P 0)) (lambda () (set! P (+ 1 P)) P)))) L) I've tried that, and it doesn't work. –  user1968574 Jan 11 '13 at 2:16
    
@user1968574: nope –  newacct Jan 11 '13 at 2:33
    
Then I'm not sure what is meant by "add an ignored argument to the function. Could you clarify a little more please? –  user1968574 Jan 11 '13 at 2:41
    
I mean that the (lambda () ...) in your original code should become (lambda (dontcare) ...). –  John Clements Jan 11 '13 at 18:25
    
Got it. Thanks a lot! –  user1968574 Jan 11 '13 at 23:53

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