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Attempting to understand the differences between Clojure and Haskell. I have the following code which calculates the moving average of a time-series list of numbers:

movavg n []     = []
movavg n (x:xs) = map (/ n') sums
    where
        sums = scanl (+) (n' * x) $ zipWith (-) xs (replicate n x ++ xs)
        n'   = fromIntegral n

What would be the idiomatic version of this in Clojure?

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1  
is this one equivalent? stackoverflow.com/a/1320425/24946 –  Jonas Oct 8 '13 at 6:30
1  
No, not in terms of efficiency. The difference is in the way that redundant computations are eliminated. –  Ana Oct 8 '13 at 6:57
    
I can't get the haskell code to work, can you provide a simple example where you are invoking movavg? –  Jonas Oct 8 '13 at 7:34
    
movavg 3 [1..10] ? –  me2 Oct 8 '13 at 21:34
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1 Answer

up vote 4 down vote accepted

I don't see why a very literal translation of this shouldn't be idiomatic, i.e.:

(defn movavg [n coll]
  (when-let [[x & xs] (seq coll)]
    (map #(/ % n)
         (reductions + (* n x)
                     (map - xs (concat (repeat n x) xs))))))

Particularly code with a lot of sequence functions has always the potential to be very close to Haskell since they're lazy.

Edit: Shortened code according to Justin Kramer's suggestion.

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(if (empty? coll) nil (let [[x & xs] coll] ...)) can be shortened to (when-let [[x & xs] (seq coll)] ...) –  Justin Kramer Oct 8 '13 at 11:46
    
@JustinKramer: Thanks, changed my answer accordingly. –  Rörd Oct 8 '13 at 12:07
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