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I've only recently started learning Clojure, so apologies if this is a little elementary:

Can somebody please explain to me the difference between:

=> (def a (lazy-cat
            [0]
            (map inc a)
   ))

=> (take 5 a)
(0 1 2 3 4)

and

=> (def b (lazy-cat
            [0]
            (map #(inc (nth b %)) (range))
   ))

=> (take 5 b)

IndexOutOfBoundsException   clojure.lang.RT.nthFrom (RT.java:773)

I expected the second example to function in the same way, using the first element of b to calculate the second, then the second to calculate the third. My understanding was that clojure wouldn't even attempt to calculate the third element of b until it had already assigned a value to the second element and printed it on the screen.

I'd appreciate an explanation somebody could give about what's actually going on behind the scenes here.

Thanks :)

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2 Answers

The reason for this behavior is map function implementation for simplest (map f colls) case. See the difference:

user=> (def b (lazy-cat [0] (map (fn [i _] (inc (nth b i))) (range) (range))))
#'user/b
user=> (take 5 b)
(0 1 2 3 4)

It's little bit confusing, but let me explain what's going on. So, why second argument to map changes behavior:

https://github.com/clojure/clojure/blob/master/src/clj/clojure/core.clj#L2469

(defn map
  ...
  ([f coll]
   (lazy-seq
    (when-let [s (seq coll)]
      (if (chunked-seq? s)
        (let [c (chunk-first s)
              size (int (count c))
              b (chunk-buffer size)]
          (dotimes [i size]
              (chunk-append b (f (.nth c i))))
              (chunk-cons (chunk b) (map f (chunk-rest s))))
        (cons (f (first s)) (map f (rest s)))))))
  ([f c1 c2]
   (lazy-seq
    (let [s1 (seq c1) s2 (seq c2)]
      (when (and s1 s2)
        (cons (f (first s1) (first s2))
              (map f (rest s1) (rest s2)))))))
...

Answer: cause of optimization for chunked-seq.

user=> (chunked-seq? (seq (range)))
true

So, values will be "precalculated":

user=> (def b (lazy-cat [0] (map print (range))))
#'user/b
user=> (take 5 b)
(0123456789101112131415161718192021222324252627282930310 nil nil nil nil)

And off course, in your case this "precalculation" fails with IndexOutOfBoundsException.

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1  
Just realised I forgot to ever thank you. This was a great help :) –  Luke Hewitt Mar 9 '13 at 13:11
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Look at the source of take:

(defn take
  "Returns a lazy sequence of the first n items in coll, or all items if
  there are fewer than n."
  {:added "1.0"
   :static true}
  [n coll]
  (lazy-seq
   (when (pos? n) 
     (when-let [s (seq coll)]
      (cons (first s) (take (dec n) (rest s)))))))

Now run through that for the first case. There's no chance to address an array out of bounds.

For your second example, you are calling nth on a sequence that hasn't been expanded to n elements yet. b will try to concatenate 0 with a sequence that depends on an element that doesn't exist.

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