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I'm a Scheme newbie and trying to make sense of my homework. I've a function I made earlier called duplicate, and it looks like this:

( DEFINE ( duplicate lis )
          (IF (NULL? lis) '())
          ((CONS (CAR lis) (CONS (CAR lis) (duplicate (CDR lis))))
         ))

A typical i/o from this would be i: (duplicate '(1 2 3 4)) o: (1 1 2 2 3 3 4 4), so basicly it duplicates everything in the list. Moving on: Now I'm supposed to make a function that's called comp. It's supposed to be built like this:

(DEFINE (comp f g) (lambda (x) (f (g (x))))

Where I could input '(1 2 3 4) and it would return (1 1 4 4 9 9 16 16)

so f = duplicate and g = lambda. I know lambda should probably look like this:

(lambda (x) (* x x))

But here's where the problem starts, I've already spent several hours on this, and as you can see not made much progress.

Any help would be appreciated. Best regards.

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1  
1. In comp() you can't have (x); xis not a function: it should be (g x) instead of (g(x)) 2. To use comp with lambda , your (lambda(x..)) needs to work on a list to be compatible with double; as it is, this lambda only works on a single number. That is hard to do without loop. –  frayser Nov 15 '10 at 14:04
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2 Answers 2

Use map:

> (map (lambda (x) (* x x)) (duplicate '(1 2 3 4)))
=> (1 1 4 4 9 9 16 16)

or, modify duplicate to take a procedure as its second argument and apply it to each element of the list:

(define (duplicate lst p)
  (if (null? lst) ()
      (append (list (p (car lst)) (p (car lst))) (duplicate (cdr lst) p))))

> (duplicate '(1 2 3 4) (lambda (x) (* x x)))
=> (1 1 4 4 9 9 16 16)
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Thanks for the help, I appreciate it :) –  CyberBuffalo Nov 15 '10 at 18:59
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One way to do is as follows:

(define (comp f g) (lambda (x) (f (g x))))
(define (square x) (* x x))
(define (dup x) (list x x))
(define (duplicate-square lst)
  (foldr append '() (map (comp dup square) lst)))

Now at the repl, do:

> (duplicate-square '(1 2 3 4))
'(1 1 4 4 9 9 16 16)
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Thanks for the help, I appreciate it :) –  CyberBuffalo Nov 15 '10 at 18:59
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