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Exercise 22.5.11 Develop a function multiply-all that takes in a list of numbers and returns the result of multiplying them all together. For example, (check-expect (multiply-all (cons 3 (cons 5 (cons 4 empty)))) 60) Hint: What is the “right answer” for the empty list? It may not be what you think at first!

Solution: The data definition is similar to that for list-of-strings:

; A list-of-numbers is either
; empty or
; a nelon (non-empty list of numbers).
#|
(define (function-on-lon L)
; L a list of numbers
(cond [ (empty? L) ...]
[ (cons? L) (function-on-nelon L)]
))
|#
; A nelon looks like
; (cons number lon )
#|
(define (function-on-nelon L)
; L a cons
; (first L) a number
; (rest L) a lon
; (function-on-lon (rest L)) whatever this returns
...)
|#

any suggestions?

share|improve this question
    
What did you try? –  Le Petit Prince Mar 18 '14 at 12:53
    
It's really only a small step from count-numbers in 22.5 to here (ref: picturingprograms.com/download/chap22.pdf) –  Le Petit Prince Mar 18 '14 at 13:02
    
i wrote it in other lenguege , i'm trying to learn it , so this is a basic question , from the link picturingprograms.com/download/chap22.pdf –  user3433101 Mar 18 '14 at 14:27
    
but there are no answers there –  user3433101 Mar 18 '14 at 14:27
    
i'm guessing it will be similar to : Worked Exercise 22.5.2 Develop a function add-up that takes in a list of numbers and returns the result of adding them all together. For example, –  user3433101 Mar 18 '14 at 14:38

1 Answer 1

up vote 0 down vote accepted

For the simplest solution, use apply for this:

(define (multiply-all lst)
  (apply * lst))

If you need to build the procedure from scratch, just remember that the base case (an empty list) should return 1, and the recursive step should multiply the current value using the standard solution template, like this:

(define (multiply-all lst)
  (if (empty? lst)
      1
      (* (first lst)
         (multiply-all (rest lst)))))

For a nicer answer, you can try using tail recursion:

(define (multiply-all lst)
  (let loop ([lst lst] [acc 1])
    (if (empty? lst)
        acc
        (loop (rest lst) (* (first lst) acc)))))

Anyway the procedures work as expected:

(multiply-all '())
=> 1
(multiply-all '(3 5 4))
=> 60
share|improve this answer
    
thanks , base on which code ? the one i placed in the question ? –  user3433101 Mar 18 '14 at 14:55
    
@user3433101 what do you mean? I updated my answer –  Óscar López Mar 18 '14 at 14:56
    
in case that i would like to do a square of each number in the list and sum it all together , i've tried to change like this : (let loop([1st 1st] [acc 0]) , and also : (loop (rest 1st)(*(first 1st) acc))))) , but it didn't return me any number - just true –  user3433101 Mar 20 '14 at 17:29
    
@user3433101 answering your question: if you want to square each value, then do so at the point where we access the current element. That is, instead of writing (first lst) write (* (first lst) (first lst)) –  Óscar López Mar 20 '14 at 17:37
    
like this : (loop (rest 1st)(* (first 1st) (first 1st) acc))))) ? –  user3433101 Mar 20 '14 at 17:48

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