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I'm having a bit of trouble implementing this program in Scheme, although I think I'm 90% of the way there. Unfortunately I need to be a little vague about it since this is a homework assignment.

I need to take one list as input, generate all possible subsequences of the list, and return ONE that matches a certain criteria. I have finished the code to generate all subsequences of the list and also to tell if a certain subset is a solution. I am however having trouble having Scheme return that solution. My code basically looks like this right now

(define (function rest_of_list subsequence)
    (if (subsequence is a solution) subsequence)
    (if (> (length rest_of_list) 0) (function (cdr rest_of_list) (append subsequence (car rest_of_list))))
    (if (> (length rest_of_list) 0) (function (cdr rest_of_list) subsequence)))

What this code should do is for each element in the list, it branches recursively in two directions. In one direction it adds (car rest_of_list) to subsequence and continues down the list. In the other direction it ignores (car rest_of_list) and continues down the list. As soon as it finds a subsequence that is acceptable, it returns it and that is the result of the function called function. Right now I just get blank output. And I sort of understand why I guess, but not well enough to fix this.

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1 Answer 1

up vote 1 down vote accepted

It's a bit tricky without looking at the exact details of your implementation, but I'd do something along these lines:

(define (function rest_of_list subsequence)
  (cond ((null? rest_of_list)
         '())
        ((subsequence is a solution)
         subsequence)
        (else
         (combine (function (cdr rest_of_list) (append subsequence (car rest_of_list)))
                  (function (cdr rest_of_list) subsequence)))))

The interesting part is how you combine both branches, it could be as simple as a cons. Also notice that a base case is probably missing: what happens if the rest of the list is null?

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1  
This definitely helped me see what I was doing wrong. Looks like I got it fixed now. Needed to explicitly define at each step of recursion which recursive branch leads to a valid answer (or if both, just pick one) rather than expecting Scheme to return as soon as something returns true as procedural languages do. –  Aurast Nov 9 '12 at 16:18

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