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i have a this function below which to make it print the list you enter (iota 1 10) so prints numbers 1-10 in a list like so (1 2 3 4 5 6 7 8 9 10). How would i change this to only take one number and still print from 1-(the chosen number) in a list. i just cant get my head around how i should go about this. thanks.

(define iota
(lambda(x y)
      (cond((> x y)
            '())
           (else
            (cons x
                  (iota (+ 1 x)y))))))
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1 Answer 1

up vote 1 down vote accepted

If you want to use the same approach, you could count down (instead of up) and use append:

(define iota2
  (lambda (y)
    (if (< y 1)
        '()
        (append (iota2 (- y 1)) (list y)))))

but that's not very effcient.

Why not keep iota as is, and use

(define iota2
  (lambda (y)
    (iota 1 y)))

or use a simple loop (named let):

(define iota2
  (lambda (y)
    (let loop ((n 1))
      (if (<= n y)
          (cons n (loop (+ n 1)))
          '()))))
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Why is the counting down not so efficient? –  doctorlove Nov 27 '13 at 13:11
    
thank-you for that, the first way is the way i need to do it. i cant use the second way as my exercise is to try and write a function called iota. thanks for the help. –  Adam Wilson Nov 27 '13 at 13:11
    
Using append is inefficient, as opposed to using cons. –  uselpa Nov 27 '13 at 13:12
    
@AdamWilson you could still use the 2nd approach by calling iota2 iota, and the other iota_impl or something like that. –  doctorlove Nov 27 '13 at 13:33

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