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Hello here is my Question.

I want to create 2 sub lists from the original list as follows

OriginalL '( (item1)(item2)(item3)(node1)(node2)(item4) ) ;its a list of lists  

Lists i want to create

itemL '((item1)(item2)(item3)(item4))    ;only contains item type  
nodeL '((node1)(node2))   ;only contains node type

Here is my function that is not working correctly

(define itemL null)   

(define nodeL null)  

(define (separate OriginalL)  
   (map (lambda (i)  
          (if (item? i)
              (cons itemL i)
              (cons nodeL i))
        OrignalL))

But for some reason i cant get the list as i want. what is the problem. item? just returns #t or #f based on item type in original list.
Thanks

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Please consider reformatting your code to make it more readable by using the editing tools. –  Eren Tantekin Apr 2 '12 at 20:57

4 Answers 4

up vote 0 down vote accepted

Here's a simple way to solve your problem:

(define itemL (filter item? OriginalL))
(define nodeL (filter (compose not item?) OriginalL))
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It looks like you want separate to have the side effect of populating both of your global lists. In this case, you can use append! to add data to them as the original list is processed:

(define itemL '())   
(define nodeL '())  
(define (separate OriginalL)  
   (map (lambda (i)  
     (if (item? i)
         (append! itemL i)
         (append! nodeL i))
    OrignalL)) 


If the Scheme that you are using does not support append! you can write it yourself. For example, see: Append! in Scheme?

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Dont you mean append! in that case? –  leppie Apr 2 '12 at 21:26
    
yes that is what i want to do. But it still gives empty list for itemL and nodeL. After separate. have you tested this code? –  user1233092 Apr 2 '12 at 21:28
    
@user1233092: Your scheme might support append!. Try it, else write it :) It is a trivial proc. –  leppie Apr 2 '12 at 21:30
    
@leppie - Good catch, thanks! –  Justin Ethier Apr 2 '12 at 21:31
    
I should mention i am using racket, #lang racket . From the link about implementing our on append, i cant use set-cdr! kinda stuck –  user1233092 Apr 2 '12 at 21:52

If you are using R6RS, you can just do the following:

(let-values (((a b) (partition item? OriginalL))
  (set! itemL a)
  (set! nodeL b))

Many other scheme's will support the same. Perhaps look into SRFI1 support.

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Sorry for posting a separate answer, but I never use this account, so I don't have the rep to comment on Justin Ethiers one.

There are a few edits I made (though it will need to wait for moderation).

Firstly, if you are going to use append!, then you should note that it is not guaranteed to mutate the list. Therefore you should always set! the variable with the result of append!. In particular, if the first list is empty, it will not, and cannot be mutated.

Secondly, the second argument to append! should be a list.

Thirdly, if you don't need to collect the result list, a for-each is clearer than a map.

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I would also suggest not repeatedly appending, but efficiency is a whole other issue :) –  Ian Price Apr 2 '12 at 22:58

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