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I'm having trouble using my member? function. I need to recurse on my set? function until the last element in my list 'lst' is reached. I believe I have the navigation down correctly, but maybe my inputs syntax is wrong. I know there are three cases:

1) What happens if the list is empty? that means that there aren't any duplicates in it 2) What happens if the current element of the list exists somewhere in the rest of the list? then it means that there's a duplicate in the list (hint: the member procedure might be useful) 3) If none of the above are true, continue with the next element.

Here is my code.

(define (member? e lst)
(if (null? lst) #f 
(if (equal? e (car lst)) #t
(member? e (cdr lst)))))

(define (set? lst)      
(if (null? lst) #t                 ;Case1
(if (member? (car lst) lst) #f     ;Case2
(set? (cdr lst)))))                ;Case3

;Example tests for the set? function
(set? '(x y z))
(set? '(a 1 b 2 c 3))
(set? '())
(set? '(6 2 2))
(set? '(x y z x))
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1 Answer 1

There's a small mistake with your code, look how it gets fixed:

(define (set? lst)      
  (if (null? lst)
      #t
      (if (member? (car lst) (cdr lst)) ; in here
          #f
          (set? (cdr lst)))))

In particular, notice what this line is doing:

(member? (car lst) lst)

That won't work: the test is checking whether the first element in lst is a member of lst - and that'll always be true. The solution is simple, just check to see if the current element is in the rest of the list, if it's there, then we know that we've found a duplicate:

(member? (car lst) (cdr lst))

And by the way, the above code would look much nicer using cond, which is great when you have nested ifs:

(define (set? lst)      
  (cond ((null? lst) #t)
        ((member? (car lst) (cdr lst)) #f)
        (else (set? (cdr lst)))))
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1  
Now could also be the ideal time to explain to the OP why cond is so much better than nested ifs. :-P –  Chris Jester-Young Apr 7 at 5:18
1  
@ChrisJester-Young you got it :) –  Óscar López Apr 7 at 5:27

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