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I wrote a quick-sort in scheme (racket)

#lang racket

(define (quick-sort xs)
  (let* ([p (list-ref xs 0)]
         [tail (list-tail xs 1)]
         [less (filter (lambda (x) (< x p)) tail)]
         [greater (filter (lambda (x) (>= x p)) tail)])
    (append (quick-sort less) (list p) (quick-sort greater))))

But when I tried it I got this error:

> (quick-sort (list 99 2 9922))
list-ref: index 0 too large for list: '()

I'm new to scheme so I don't quite understand why list-ref can't get the correct input '(99 2 9922)

Edit:

Thanks. I made it work.

#lang racket

(define (quick-sort xs)
  (let* ([p (first xs)]
         [tail (rest xs)]
         [less (filter (lambda (x) (< x p)) tail)]
         [greater (filter (lambda (x) (>= x p)) tail)])
    (if (equal? (length xs) 1) 
      xs
      (append (quick-sort less) (list p) (quick-sort greater)))))
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1  
In your new code, (equal? (length xs) 1) is tested on every input, and it always computes the entire length of xs (a linear operation). Since you don't care what the length is, except if it's 1, you can use a constant-time test like (and (not (null? xs)) (null? (cdr xs))). (The snippet I suggest asserts that the list isn't empty, and that the part after the first element is empty. The latter obviously implies a length of 1, but will cause an error unless the list is non-empty, hence the first condition.) –  Carlo Jul 29 '11 at 6:56

3 Answers 3

up vote 3 down vote accepted

When designing a recursive algorithm, two things are crucial: your terminating condition and your recursive step, and you don't have a terminating condition. Trace what your code is doing: During your first execution of quick-sort, you'll call:

(append (quick-sort (list 2)) (list 99) (quick-sort (list 9922)))

And the first quick-sort call will in turn invoke (quick-sort '()). Your code doesn't handle the empty list very gracefully, as it will always try to reference the first element of the array as the first thing it does.

Add logic to gracefully handle the empty list.

Also, using first and rest to get the first and remaining elements of a list is considered to be much more pragmatic.

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Your code is missing the base case, when the input list is empty. When that happens, list-ref fails with that error.

BTW, note that a better name for (list-ref l 0) is (first l), and similarly (list-tail l 1) is better written as (rest l).

(There's also car and cdr, but if you're a newbie you can ignore them for now.)

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You probably already know this, but Racket comes with a built-in sort function too.

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