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I'm studying the Clojure Koans:

https://github.com/functional-koans/clojure-koans/blob/master/src/koans/10_lazy_sequences.clj

I am stuck on this one:

"Iteration can be used for repetition"
  (= (repeat 100 :foo)
     (take 100 (iterate ___ :foo)))

I don't know the exact builtin function to fill in the _ blanks with, so I tried writing my own. I wrote it as a separate function as a test.

I intend this one to be: if x is a seq, then just repeat its first element. Otherwise, make it a seq.

(def f (fn [x] (if (seq? x) (cons (first x) x) (cons x '()))))

When I run it explicitly, it looks fine:

user=> (f :abc)
(:abc)
user=> (f (f :abc))
(:abc :abc)
user=> (f (f (f :abc)))
(:abc :abc :abc)

But using iterate adds an extra parenthesis:

user=> (take 1 (iterate f :abc))(:abc)
user=> (take 2 (iterate f :abc))
(:abc (:abc))
user=> (take 3 (iterate f :abc))
(:abc (:abc) (:abc :abc))

What causes this?
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4  
BTW, The exact builtin function is identity –  status203 Sep 11 '12 at 10:18
    
Yes. Unfortunately I couldn't figure out the koan and looked at someone else's solution. –  mparaz Sep 13 '12 at 6:37
    
The koans don't always build your knowledge that well; I knew exactly the function I wanted, but because Clojure has so many built in concepts, I didn't know it was called identity until I came here! –  Robert Grant Mar 19 at 11:30
    
The keyword function also happens to solves it for this specific case. Though that is just a side effect and identity is the "correct" answer :-) –  plasma147 May 11 at 21:39
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2 Answers

up vote 2 down vote accepted

Re-read the documentation for iterate:

Returns a lazy sequence of x, (f x), (f (f x)) etc.

Use nth instead of take if you want the results of a particular iteration:

user=> (nth (iterate f :abc) 0)
:abc
user=> (nth (iterate f :abc) 1)
(:abc)
user=> (nth (iterate f :abc) 2)
(:abc :abc)
user=> (nth (iterate f :abc) 3)
(:abc :abc :abc)
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Thanks. I got confused there. –  mparaz Sep 9 '12 at 9:15
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(fn [x] x)

solves this particular koan

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