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Trying to make a list that has n elements with each of those lists having r elements. i.e. (function 2 3) would be (list (list 0 0 0)(list 0 1 2)). And those elements are made by multiplying the nth element by the rth element starting at 0. This is my code:

(define (nr nc)     
  (build-list nr (lambda (x) 
                   (build-list nc (lambda (x) (* x 1))))))

so I have (function 2 3) coming out to (list (list 0 1 2)(list 0 1 2)) and I can't figure out how to multiply the first list by 0, the second by 1, third by 2, and so on.

share|improve this question
    
what would (function 3 3) be? ((0 0 0) (0 1 2) (0 2 4))? –  Bwmat Jan 19 '13 at 7:37
    
That would be (list (list 0 0 0)(list 0 1 2)(list 0 2 4)) so yes youre right –  user1992460 Jan 19 '13 at 7:43

2 Answers 2

You were close:

(define (build nr nc)     
  (build-list nr (lambda (r) 
                   (build-list nc (lambda (c) (* r c))))))

> (build 2 3)
'((0 0 0) (0 1 2))

> (build 3 3)
'((0 0 0) (0 1 2) (0 2 4))

An alternative:

(define (build2 nr nc)
  (for/list ([r nr])
    (for/list ([c nc])
      (* r c))))
share|improve this answer
(define (range n)
  (define (range-iter i accum)
    (if (= i 0) (cons 0 accum)
        (range-iter (- i 1) (cons i accum))))
  (range-iter (- n 1) `()))

(define (nested-list n r)
  (map 
   (lambda (multiplier) 
     (map 
      (lambda (cell) (* cell multiplier)) 
      (range r))) 
   (range n)))
share|improve this answer
    
unfortunately I have to use build-list –  user1992460 Jan 19 '13 at 8:20
    
Looking at the docs, build-list is basically map on range. It's almost trivial to convert from my answer to build-list. Looking at your attempt in the question, the way to make it work is to put the multiplication in the 'outer' build-list and make the 'inner' build-list just make homogenous ranges. –  Bwmat Jan 19 '13 at 8:30
    
So putting it in the outer build-list, how do I multiply the first list by 0 and so on –  user1992460 Jan 19 '13 at 8:32
    
the inner build-list will create the list ((0 ... n-1) (0 ... n-1) ... (0 ... n-1)). You want to multiply every element in the first sublist by 0, every element in the second sublist by 1, etc. To apply a function to every element in a list, you use map. I hope you can figure it out from here. –  Bwmat Jan 19 '13 at 8:37
    
Bah, actually, disregard what I said. You did have the right approach to the problem originally. Your problem is that x in the innermost lambda is shadowing x in the outer lambda. If you change the name for one of them, it should work. –  Bwmat Jan 19 '13 at 8:40

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