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I've been trying to solve this problem for hours. function expand that takes a list of elements and frequencies and expands them into a simple list. For example, the result of (expand '(a (3 b) (3 a) b (2 c) (3 a)) should be (a b b b a a a b c c a a a)

Here is my solution:


helper function:

(define (expandHelper n value)
  (if (= 0 n) 
      '()
      (cons (append (cons value '()))(expandHelper (- n 1) value)))) 

the expand function

(define (expand lst) 
  (cond ((null? lst) '())
    (else (expandHelper (car lst) (cadr lst)))))

But, it doesn't do what I expected it to do. It looks for an integer when the list only has one element which is the value. For example, (expand '(a (2 b)). Since there is only one copy of a, it doesn't have (1 a) in the expression. I am new to Scheme. I would really appreciate it if you could help me.

Thanks

Here is an updated version: But's it's still not right. I would really appreciate it if someone would help me modify my code to get the right results.

;; helper function
(define (expandHelper value)
  (if (= 0 value) 
      '()
      (cons (append (cons (car sublist) '()))(expandHelper (- (car sublist) 1) (car sublist)))))  

;; the expand function
(define (expand lst) 
  (cond ((null? lst) '())
        (else (list? (car lst)) (expandHelper (car lst)) (expand (cadr lst)))))
share|improve this question
    
maybe im just being difficult, but what are a b and c? Are they identifiers? just stand-ins for integer literals in your dicussion? do you intend them to be quoted and serve as characters? obviously the function can not be called exactly as you describe –  jon_darkstar Apr 9 '11 at 2:35
    
@jon_darkstar: They're symbols. –  Mehrdad Apr 9 '11 at 2:37
1  
@jon_darkstar: They're symbols, and there's nothing wrong with the way they're being used. Did you miss the quote? –  dfan Apr 9 '11 at 2:58
    
@dfan: yep =P his function call was fine obviously, ive used it verbatim in my answer below. sorry about that –  jon_darkstar Apr 9 '11 at 3:02
    
prgammer, have you read The Little Schemer? It's hard to give a concise-but-understandable description of recursion, and this book does a really good job. –  Denise Apr 9 '11 at 22:28

5 Answers 5

This would be my solution, without any helper function, and recursing on sublist (i.e. (3 a) becomes (cons a (expand '(2 a))):

#lang racket

(define (expand lst)
  (cond
    ((null? lst) '())
    ((list? (car lst))
     (let ((cnt (caar lst)) (chr (cadar lst)))
       (if (= cnt 0)
           (expand (cdr lst))
           (cons chr (expand (cons (list (- cnt 1) chr) (cdr lst)))))))
    (else (cons (car lst) (expand (cdr lst))))))
share|improve this answer
(define (term-expander n val partial)
  (if (zero? n)
    partial
    (term-expander (- n 1) val (cons val partial))))

(define (append-expand a b)
  (if (pair? b)
    (append a (term-expander (car b) (cadr b) '()))
    (append a (list b))))

(define (expand l) (foldl append-expand l '() ))

> (expand '(a (3 b) (3 a) b (2 c) (3 a)))
(a b b b a a a b c c a a a)

So... term-expander takes (5 a) -> '(a a a a a)'. append-expand will append the newest term (expanded iff it is a pair) to our answer in progress. just need to fold this over the list.

I'd hope you have a foldl already, but heres mine just in case.

(define (foldl op seq init)
  (define (iter acc rest)
    (if (null? rest)
      acc
      (iter (op acc (car rest)) (cdr rest))))
  (iter init seq))

EDIT

Realized afterwards this is can be done a LITTLE bit more naturally with foldr rather than foldl (will need append-expand written differently). Why don't you see if you can find it? Same idea mostly, but it will operate on the list from back to front and lends itself more naturally to cons structures


Here's me doing it without fold, but it works the same way and i dont really care for it

(define (term-expander p partial)
  (if (zero? (car p))
    partial
    (term-expander (cons (- (car p) 1) (cdr p)) (cons (cadr p) partial))))

(define (expand l)
  (define (expand-rec l partial)
    (if (null? l)
      partial
      (let ((t 
        (if (pair? (car l))
             (term-expander (car l) '())
             (list (car l)))))
      (expand-rec (cdr l) (append partial t)))))
  (expand-rec l '()))

> (expand '(a (3 b) (3 a) b (2 c) (3 a)))
(a b bb a a a b c c a a a)

If you would prefer, the (if (pair?... section could go in to term-expander instead, and then you'd just call it across the board. I slightly prefer this way but its all the same

share|improve this answer
    
Is there a way to do this without using higher order functions? –  prgrammer Apr 9 '11 at 3:12
    
sure, but you'll really just be doing the equivalent of it. if you choose to do it that way it will probably come more naturally if you put that (if (pair?... stuff into term-expander –  jon_darkstar Apr 9 '11 at 3:14
    
actually scratch that. i would only call it on pairs to begin with –  jon_darkstar Apr 9 '11 at 3:19
    
Thanks for the help. Is there a way to modify expandHelper to get the same result? a couple of functions maybe? maybe I'm just confused. I was trying to have a helper function that expands each list. –  prgrammer Apr 9 '11 at 3:25
    
isnt that term-expander? i posted a new one without using fold, but i dont particularly care for it and i dont see any way to significantly change it (only superficial choices like let vs if and stuff like that) and of course the directional (forward/back AKA iter/rec), which is equivalent to choosing between foldr and foldl –  jon_darkstar Apr 9 '11 at 3:30

There are two things you should think about here. The first is the one you mentioned-- that you could have either a or (1 a), both meaning the same thing. You probably want to move that into expandHelper, so it looks more like (expandHelper value), and then you should switch on whether it's a list or a symbol.

The second is in how you're calling expandHelper. If you feed in a list like '(a (3 b) (3 a) b (2 c) (3 a)) to expand, it'll currently call (expandHelper a (3 b)), which is probably not what you had in mind. Instead, you want to make sure you call expandHelper on every element of the list, and cons together the results. You can do that by calling expandHelper on the first element of the list, and then recursively calling expand on the remainder of the list.

I haven't checked to see that this compiles, it's just the general idea:

(define (expandHelper value)
    (if (list? value) ;; means value is something like (2 a)

        (if (= 0 (car value)) ;; then (car value) is 2
            '() ;; if it's zero, we complete the list and return!
            (cons (cadr value) ;;otherwise, we append (cadr value) = a to...
                  (expandHelper (cons (- (car value) 1) (cadr value))))))
                  ;; the result of expand helper on (- (car value) 1) = 1 
                  ;; and (cadr value) = a

         (cons value '()))) ;; if it's not a list, we should just return the value.
share|improve this answer
    
This is what I was thinking too, but, I'm not sure how to implement it. Im new to Scheme and a bit confused too. Im not sure how to change expandHelper. –  prgrammer Apr 9 '11 at 3:09
 (define (expand l)
   (cond ((null? l) '())
         ((not (pair? (car l))) (cons (car a) (expand (cdr l)))
         ((< (caar l) 1) (expand (cdr l)))
         (else (cons (cadar l)) (expand (cons (cons (- (caar l) 1) (cdar l))
                                                (cdr l))))))
share|improve this answer

You can express it as a right-fold, and avoid developing a custom recursive function. If the next element is a list like (3 a), expand and prepend it. If a symbol, just cons it.

(define (expand xs)
  (fold-right
   (lambda (x result)
     (if (list? x)
     (append (apply make-list x) result)
         (cons x result)))
   '()
   xs))
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