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In chapter 6 of Learn You a Haskell, the following function is introduced:

zipWith' :: (a -> b -> c) -> [a] -> [b] -> [c]
zipWith' _ [] _ = []
zipWith' _ _ [] = []
zipWith' f (x:xs) (y:ys) = f x y : zipWith' f xs ys

The author gives a couple examples of its use which I found easy enough to follow. Then this one:

ghci> zipWith' (zipWith' (*)) [[1,2,3],[3,5,6],[2,3,4]] [[3,2,2],[3,4,5],[5,4,3]]

Which outputs [[3,4,6],[9,20,30],[10,12,12]]

Is this an example of lazy evaluation? I tried to translate zipWith' into Scheme (see below). I got it working with the "easy" examples, but not the last one, which makes me think that Haskell's laziness might be making the difference.

(define zipWith
  (lambda (f listA listB)
    (cond
      ((null? listA) (quote ()))
      ((null? listB) (quote ()))
      (else (cons (f (car listA) (car listB)) (zipWith f (cdr listA) (cdr listB)))))))
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No, it's not laziness. It uses partial application, that might be a little nontrivial in Scheme (or not, I don't know much Scheme). –  Daniel Fischer Jun 26 '12 at 18:44
1  
I think Daniel Fischer is right. Currying can apparently be emulated with a macro phyast.pitt.edu/~micheles/scheme/scheme14.html –  jberryman Jun 26 '12 at 18:49
    
@jberryman: I think that link is just what I needed. If you'll post this as an answer, I'll be glad to give you credit! –  planarian Jun 26 '12 at 19:03
2  
@Planarian: you don't need any macros. it's not that hard to do partial application manually (lambda (x y) (zipWith * x y)) –  newacct Jun 26 '12 at 19:39
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3 Answers

No, although this example will be evaluated lazily (like any other function in Haskell), the behaviour doesn't depend on that. On finite lists it would behave the same way with eager evaluation. On infinite lists, of course, it would never terminate with eager evaluation, but lazy evaluation allows you to evaluate only as many list elements as you need.

If you post the code you're using to call the Scheme zipWith for the last example, maybe we can help see why that's behaving differently.

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zipWith' (*) [1,2,3] [1..] would (have use of) evaluate lazily

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up vote 2 down vote accepted

jberryman's link in a comment to my original post provides the most comprehensive answer. Thanks to all who replied.

(edit-in: as @newacct mentions in the comments, partial application is trivially achieved with explicit lambda construction, (lambda (x y) (zipWith * x y)). Lambdas are very basic in Scheme, we don't need macros for that.)

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Not sure what the down vote was for. I didn't have the option of picking jberryman's response; should I have arbitrarily chosen one of the others? Left the question "unsolved"? –  planarian Aug 10 '12 at 23:32
    
I think newacct's answer directly answers your question, without unnecessary complications. We don't have to use macros for this! :) You get to accepts any answer you feel was most helpful to you; I get to downvote an answer that I feel is not quite right. :) If you'll edit in the solution without macros as an addition to this answer I think it will be an improvement. –  Will Ness Aug 11 '12 at 18:12
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