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I'm trying to write a procedure that takes 2 streams and that puts together their pairs and then interleaves them. Right now it's not producing the correct output. Here's the code I have:

(define (interleave-pairs s t)
  (cons-stream (cons (stream-car s) (stream-car t))
               (cons-stream
               (stream-map (lambda (x) (cons (stream-car s) x))
                           (stream-cdr t))
               (interleave-pairs t (stream-cdr s)))))

To obtain the values I wrote a procedure:

(define (take n s)  
  (if (= n 0)
      '()
      (cons (stream-car s) (take (- n 1) (stream-cdr s)))))

And this is for the stream of integers:

(define integers (cons-stream 1 (add-streams ones integers)))

So when I call

(take 6 (pairs integers integers))

I'm getting:

((1 . 1)
((1 . 2) . #<promise>)
(1 . 2)
((1 . 3) . #<promise>)
(2 . 2)
((2 . 3) . #<promise>))

Whereas I want (1 1) (1 1) (1 2) (1 3) (2 2) (2 3)

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1 Answer 1

The base case in your procedure is missing (what happens if one of the streams ends before the other?). The procedure is rather simple, just take one pair of elements (one from each stream) and then interleave them, no need to use stream-map here:

(define (pairs s1 s2)
  (if (stream-null? s1)
      s2
      (stream-cons (list (stream-car s1) (stream-car s2))
                   (pairs s2 (stream-cdr s1)))))
share|improve this answer
    
I'm trying to write a procedure that has the pairs though –  user2036340 Mar 31 '13 at 5:15
    
@user2036340 replace (cons (stream-car s1) (stream-car s2)) with (list (stream-car s1) (stream-car s2)). –  Will Ness Mar 31 '13 at 15:21
    
sorry, but this is not an answer to the question: it will never produce (1 3) which the OP requested. –  Will Ness Mar 31 '13 at 19:08

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