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I wrote a procedure that gets every value from a list and returns a list where every value is -1(for example)

(define (Set-list a val)
  (if ( null? a) (list)
    (append (list val) (Set-list (cdr a) val))
))

(Set-list '(2 3 4) -1) //returns '(-1 -1 -1)
(Set-list '(A(2 3) B(2 3) C(2 3)) -1) // returns '(-1 -1 -1 -1 -1 -1)

how do i make it return -1 -1 -1? I don't want to get the inner members of the list?

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1  
Just to make sure you understand your example: do you think that A(2 3) is a single "outer" element with some elements inside? (It's really two outer elements, the symbol A and the list (2 3). Do you want to skip elements that are lists themselves?) –  Anton Kovalenko Jan 13 '13 at 16:01
    
yes, that's what i want –  ГошУ Jan 13 '13 at 16:12

4 Answers 4

Since Anton mentioned about an idiomatic solution, here is my idiomatic solution in Racket (I believe the use of higher-order functions, like map, filter-not, and arguably const is more idiomatic than manually looping and filtering). :-)

(define (set-list lst val)
  (map (const val) (filter-not list? lst)))

(Racket does provide filter-map but it applies the filter and map in the opposite order from what we want to do.)

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Maybe you're confusing how lists work in Scheme. This list: '(A(2 3) B(2 3) C(2 3)) is exactly the same as this list: '(A (2 3) B (2 3) C (2 3)). That is, it's a six-element list. If you want to treat the combination of symbol-and-numbers as a single element, pack them together in a single list: '((A 2 3) (B 2 3) (C 2 3))

As a side note, the way the set-list procedure is written is not idiomatic, in particular using append is not the best way to put elements at the head when building a list, use cons for that. This is a better way to write the procedure:

(define (set-list a val)
  (if (null? a)
      '()
      (cons val
            (set-list (cdr a) val))))

Now, following my advice above, here's how it would work:

(set-list '((A 2 3) (B 2 3) (C 2 3)) -1)
=> '(-1 -1 -1)

UPDATE:

Now, if there really isn't a misunderstanding with the way lists work and you just want to replace all sublists in a list with a given value, this will work:

(define (set-list a val)
  (build-list (length (filter (negate list?) a))
              (lambda (x) val)))
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OP doesn't seem to be confused, see comments. He just wants to skip sublists entirely. (I can try writing it, but it won't be idiomatic scheme, maybe you will?) –  Anton Kovalenko Jan 13 '13 at 16:22

Here's my attempt (probably not idiomatic scheme, and please note that doing it with append is wrong anyway). I assume that you want to skips sublists entirely, as you explained in comments.

(define (Set-list a val)
  (if (null? a)
      (list)     
      (append (if (list? (car a))
                  (list)
                  (list val))
              (Set-list (cdr a) val))))
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You are close. If you based your approach on cons instead of append, your solution would be pretty idiomatic, at least out of the set of solutions that don't use higher-order functions. (See my post for a higher-order-function-based solution.) –  Chris Jester-Young Jan 13 '13 at 17:46

If you want to make a value's list which length is the same with given lists length,

(define (set-list list value)
    (build-list (length list) (lambda (x) value)))

so,

(set-list '(2 3 4) -1) //returns '(-1 -1 -1)
(set-list '(A (2 3) B (2 3) C (2 3)) -1) // returns '(-1 -1 -1 -1 -1 -1)
(set-list '(2 3 4) -2) //returns '(-2 -2 -2)
(set-list '(A (2 3) B (2 3) C (2 3)) -2) // returns '(-2 -2 -2 -2 -2 -2)
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