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I need to do something basically like this:

(define test
  (λ (ls1 ls2)
    (cond
      ((empty? ls2) null)
      (else
       (append ls1 (car ls2)) (test ls1 (cdr ls2))) (displayln ls1))))

The issue is the else-clause and the function that follows it. I need both clauses of the else-clause to execute and then I need the last function to execute but I can't get the syntax right.

I need (test '(1 2 3) '(4 5 6)) to result in displaying '(1 2 3 4 5 6) and it has to use the recursive call.

Any advice is appreciated.

Thanks.

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I'm having trouble understanding what this procedure should be doing. Are you sure it's supposed to be printing something, or is it just supposed to return ls1 and ls2 appended to each other? –  acfoltzer Mar 11 '11 at 17:06

2 Answers 2

up vote 1 down vote accepted

If you desperately want to solve this recursively, and you don't care about the return value, use

(define (test l1 l2)
  (if (null? l2)
    (displayln l1)
    (test (append l1 (list (car l2))) (cdr l2))))

(This is very inefficient btw: O(n × m) memory allocations.)

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Many thanks. Efficiency isn't an issue at the moment. –  Schemer Mar 9 '11 at 2:50

There is several problem there. First you make an append on a list and an atom (not a list)... at least if (car l2) is not a list. Second you probably think that (append l1 (list (car l2)) modifies l1. But this is not the case. The result is a new list.

To sequence your operation you can do as larsmans have said. But you can also write the following

(define (test l1 l2)
  (if (null? l2)
      (displayln l1)
      (let ((l1-follow-by-car-l2 (append l1 (list (car l2)))))
        (test l1-follow-by-car-l2 (cdr l2)) ))  

This has exactly the same behavior.

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