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This problem takes many forms. For example, given the input '(1 2 3 4 5 6), we might want to swap the values between even and odd pairs. The output would be '(2 1 4 3 6 5).

In Haskell, this is rather easy:

helper [] = []
helper [x] = [x]
helper (x : y : ys) = y : x : helper ys

I wrote some Clojure code to accomplish the same task, but I feel that there is probably a cleaner way. Any suggestions on how to improve this?

(defn helper [[x y & ys]]
  (cond
   (nil? x) (list)
   (nil? y) (list x)
   :else (lazy-seq (cons y (cons x (helper ys))))))

Ideally the list would be consumed and produced lazily. Thanks.

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3 Answers 3

up vote 4 down vote accepted
(for [[a b] (partition 2 '(1 2 3 4 5 6))
      i [b a]]
  i)

OR something resembling the haskell version:

(defn helper
  ([] (list))
  ([x] (list x))
  ([x y & r] (concat [y x] (apply helper r))))

(apply helper '(1 2 3 4 5 6))
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Your second method is conceptually what I was after. I tried using only a single argument and then destructuring the list, but this fails since each overload has the same arity. Your way is more lispy too! –  fysx Jul 11 '13 at 5:16
2  
I especially like the first version. You'll want to use partition-all though. –  Michał Marczyk Jul 11 '13 at 5:22
    
In the second version, you could also use list*, which is similar to the Haskell colon prepend operator: (list* y x (apply helper r)) –  A. Webb Jul 11 '13 at 13:46

Avoiding intermediate object creation (vectors / seqs to be concatenated) and in direct correspondence to the Haskell original while handling nil items in the input (which the approach from the question text doesn't):

(defn helper [[x & [y & zs :as ys] :as xs]]
  (if xs
    (lazy-seq
      (if ys
        (cons y (cons x (helper zs)))
      (list x)))))

Normally I'd use something like tom's answer though, only with mapcat rather than flatten:

(defn helper [xs]
  (mapcat reverse (partition-all 2 xs)))

You need to use partition-all rather than partition to avoid dropping the final element from lists of odd length.

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It's good to know about partition-all since I don't think Haskell has such a function on lists. Your second method is probably what I would aim for too, unless speed was a concern. –  fysx Jul 11 '13 at 5:29
1  
Actually splitEvery in Data.List.Split works like this. –  Michał Marczyk Jul 11 '13 at 5:47
    
Ahh... but Data.List.Split doesn't come with the default GHC7. Looks like it's part of the split package from hackage? (hackage.haskell.org/package/split) –  fysx Jul 12 '13 at 5:07
    
Right. It's part of the Haskell Platform though. –  Michał Marczyk Jul 12 '13 at 5:53

This is one lazy way to do it:

user=> (mapcat reverse (partition 2 '(1 2 3 4 5 6)))
(2 1 4 3 6 5)
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3  
You'll need to switch to partition-all to avoid dropping the final element if the input's length is odd. Also, mapcat is much preferable to flatten. –  Michał Marczyk Jul 11 '13 at 5:44
    
Good call on mapcat. The choice partition and partition-all depends on how OP is interpreting the list in question, so I'll leave it as before. –  tom Jul 11 '13 at 18:31

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