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I am trying to write a code using SCHEME that takes two arguments, for example '(2 1 3) & '(a b c) and gives a list '(b a c). My code is not working either recursive or iterative. Any help!!

(define project 
(lambda (list1 list2 list3 n b index)
(define n (length(list1)))
   (let ((i n))
     (for-each (i)
        (cond 
            ((null? list1) (display "empty"))
            (else
                (define n (car list1))
                (define index (- n 1)) 
                (define b (list-ref list2 index)) 
                (define list3 (cons list3 b)) 
                (define list1 (cdr list1)) 
                list3 ))))))
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It would improve the readability of the code that you posted if it was correctly indented. All major Scheme development environments have a functionality that does it automatically. –  Paulo Tomé Jun 26 '13 at 12:22
    
i have copied the indented code a few times but keeps getting worse. PS unable to upload a snapshot. :/ –  farey Jun 26 '13 at 12:32
    
Gah there are tabs in spaces in here too D: D: –  jozefg Jun 26 '13 at 12:32
    
Thanks @jozefg ! –  farey Jun 26 '13 at 12:35
1  
Thanks @GoZoner :) –  farey Jun 26 '13 at 15:13

4 Answers 4

up vote 1 down vote accepted
(define (rearrange order l)
  (cond ((number? order) (rearrange (list order) l))
        ((list?   order) (map (lambda (num) (list-ref l (- num 1))) order))
        (else 'bad-order)))

If you need order to be 'complex' (like '(1 (2 3) 4)) then use this:

(define (listify thing)
  (cond ((null? thing) '())
        ((pair? thing) (apply append (map listify thing)))
        (else (list thing))))

> (listify 10)
(10)
> (listify '(1 (2 3) 4))
(1 2 3 4)
> 

and then

(define (rearrange order l)
  (map (lambda (num) (list-ref l (- num 1)))
       (listify order)))
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any idea on how to resolve for : order = '(2 (1 3) 4) & list= '(a b c d) - thanks –  farey Jun 26 '13 at 14:19

Here's a version that handles arbitrarily-nested lists: first, a nested-map that is like map but handles nested lists:

(define (nested-map func tree)
  (if (list? tree)
      (map (lambda (x)
             (nested-map func x))
           tree)
      (func tree)))

Then, we create a mapper to use with it (using list-ref if the list is shorter than 16 elements, otherwise copying to a vector first for better scalability):

(define (rearrange indices lst)
  (define mapper (if (< (length lst) 16)
                     (lambda (i)
                       (list-ref lst (- i 1)))
                     (let ((vec (list->vector lst)))
                       (lambda (i)
                         (vector-ref vec (- i 1))))))
  (nested-map mapper indices))

Notice how, after the mapper is defined, the function is simply a single call to nested-map. Easy! :-D

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It's don't work for OP example '(2 1 3) & '(a b c). –  D.Dt.Operator Jun 26 '13 at 12:59
    
Now it's ok ... –  D.Dt.Operator Jun 26 '13 at 13:02
    
Thanks so much. you ppl are amazing. whats the good way of doing error handling in scheme. i have looked up display & ~r for messages, bt didnt work. –  farey Jun 26 '13 at 13:10
    
@farey Most Scheme implementations provide an error function for that. –  Chris Jester-Young Jun 26 '13 at 13:36
    
what if the input list has a sublist like (2 1 (2 3) 3)..how to pick the index to arrange output. –  farey Jun 26 '13 at 14:12

First that came to mind:

(define (rearrange order symbols)
  (define (element i list)
    (if (= i 1) 
      (car list)
      (element (- i 1) (cdr list))))
  (define (iter order output)
    (if (null? order) 
      output
      (iter (cdr order) 
            (append output (list (element (car order) symbols))))))
  (iter order '()))

Better solution:

(define (rearrange order symbols)
  (define (nth-element i list)
    (if (= i 1)
      (car list)
      (nth-element (- i 1) (cdr list))))
  (map (lambda (x) (nth-element x symbols)) order))
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OmG it works. :D eh. im just a beginner. :/ thanks a ton. –  farey Jun 26 '13 at 12:43
    
@user2523987 First function is too much heavy, second should be better. –  D.Dt.Operator Jun 26 '13 at 12:47
    
You realise that nth-element is a built-in function called list-ref, right? –  Chris Jester-Young Jun 26 '13 at 12:51
    
better indeed but what is happening there. :O is there a way i pass a number as first argument and it picks that element from the list (using same function). like (rearrange 2 '(a b)) ---> 'b (its like a list-ref but i don know how to give an argument that function accepts as num or list) –  farey Jun 26 '13 at 12:51
    
@Chris Jester-Young Yep, there is a moment here - list-ref starts elements numeration from 0, but OP requested numeration from 1. Probably there is a way of using list-ref for this purpose. I will think about this. –  D.Dt.Operator Jun 26 '13 at 12:57

Here's a simple version for un-nested lists:

(define (arrange idx lst)
  (map (lambda (i) (list-ref lst i)) idx))

(arrange '(1 0 2) '(a b c))
=> '(b a c)

If you need to use nested lists, flatten comes in handy:

(define (arrange idx lst)
  (map (lambda (i) (list-ref lst i)) (flatten idx)))

(arrange '(1 (0 2)) '(a b c))
=> '(b a c)

Note that I use 0-based indexes, as is the custom in Scheme.

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