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I would like to transform the following sequence:

(def boollist [true false false false true false true])

Into the following:

[[true] [false false false true] [false true]]

My code leads to a Stackoverflow:

(defn sep [boollst]
  (loop [lst boollst
         separated [[]]
         [left right] (take 2 lst)]
    (if (nil? left) separated)
    (recur (next lst) 
           (if (false? left)
             (conj (last separated) left)
             (conj separated [left]))
           (take 2 (next lst)))))

Is there an elegant way of transforming this?

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4 Answers 4

up vote 4 down vote accepted

A short, "clever" solution would be:

(defn sep [lst]
  (let [x (partition-by identity lst)]
    (filter last (map concat (cons [] x) x))))

The "stack overflow" issue is due to the philosophy of Clojure regarding recursion and is easily avoided if approached correctly. You should always implement these types of functions* in a lazy way: If you can't find a trick for solving the problem using library functions, as I did above, you should use "lazy-seq" for the general solution (like pmjordan did) as explained here: http://clojure.org/lazy

* Functions that eat up a list and return a list as the result. (If something other than a list is returned, the idiomatic solution is to use "recur" and an accumulator, as shown by dfan's example, which I would not consider idiomatic in this case.)

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There's probably a much more elegant way, but this is what I came up with:

(defn f 
  ([xs] (f xs [] []))
  ([[x & xs :as all] acc a]  
     (if (seq all)
       (if x
         (recur xs [] (conj a (conj acc x)))
         (recur xs (conj acc x) a))
       a)))

It just traverses the sequence keeping track of the current vector of falses, and a big accumulator of everything so far.

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Thanks very much for your answer; I really like it and it works like a charm, but I'm going to change the accepted answer to another very elegant solution. Thanks again (and +1). –  aeter Mar 27 '11 at 20:59

Here's a version that uses lazy evaluation and is maybe a little more readable:

(defn f [bools]
  (when-not (empty? bools)
    (let
      [[l & r] bools
       [lr rr] (split-with false? r)]
      (lazy-seq (cons
        (cons l lr)
        (f rr))))))

It doesn't return vectors though, so if that's a requirement you need to manually pass the result of concat and of the function itself to vec, thus negating the advantage of using lazy evaluation.

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The stack overflow error is because your recur is outside of the if. You evaluate the if form for side effects, then unconditionally recur. (feel free to edit for format, I'm not at a real keyboard).

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