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I have a little problem with my procedure. This procedure take a list of lists and while his length is bigger then 1 apply a procedure minus that take 2 lists and do difference.its my result to a problem with subsets of sets. Example what I need:

args=('(1)'(1)'(3))

length != 1 -> procedure (if(null? (minus '(1) '(1))))

-> recursion (sub (cdr args))

args=('(1) '(3))

length !=1 -> procedure (if(null? (minus '(1) '(3)))) -

#f end.

but my program do I dont know what and then return #t...

(define sub
  (lambda args
    (if(= (length args) 1) #t
       (if(null? ( minus (list-ref args 0) (list-ref args 1)))
          (sub (cdr args))
          #f))))

Fixed :)

(define subsethood
  (lambda args

    (sub args)
    ))

(define (sub args)

    (if(= (length args) 1) #t
       (if(null? ( minus (list-ref args 0) (list-ref args 1)))
          (sub (cdr args))
          #f)))
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What's minus? –  larsmans Dec 10 '11 at 22:36
    
procedure that set difference, take 2 arguments -lists, example: (a b) (a b c) = () (a b) (a e) = (b) –  OndrPem Dec 10 '11 at 22:42
    
Please post some sample input and output. It's unclear what this program is trying to do. –  larsmans Dec 10 '11 at 22:46
    
(sub '(1) '(1) '(2)) #t (sub '(1) '(1)) #t (sub '(2) '(1)) #f It is working with 2 arguments, but if I use recursion because i want use it for any number of arguments it doesnt work. The idea principal is a program returning #t when 1st argument is subset of 2nd, 2nd is subset of 3rd etc. procedure minus helping me, because if return () that mean 1st list of lists if subset of 2 list of lists and I can continue with recursion that reduced list of lists and minus can be apply to others 2 arguments, if minus's return is not a null list,i do not want continue and I can say #f –  OndrPem Dec 10 '11 at 22:59
    
I tried trace it > (require (lib "trace.ss")) > (trace sub) > (sub '(1) '(1) '(9999) '(345) '(23132)) >(sub '(1) '(1) '(9999) '(345) '(23132)) >(sub '((1) (9999) (345) (23132))) <#t #t and I dont know why is stopped during first recrusion, because length of '((1) (9999) (345) (23132))) is 4, no 1. –  OndrPem Dec 11 '11 at 6:17
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1 Answer 1

From @OndrPem edit, just to be on right place.

(define subsethood
  (lambda args

    (sub args)
    ))

(define (sub args)

    (if(= (length args) 1) #t
       (if(null? ( minus (list-ref args 0) (list-ref args 1)))
          (sub (cdr args))
          #f)))
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