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What's the simplest way to create a vector of distinct refs?

Using (repeat 5 (ref nil)) will return a list, but they will all reference the same ref:

user=> (repeat 5 (ref nil))
(#<Ref@16ef71: nil> #<Ref@16ef71: nil> #<Ref@16ef71: nil> #<Ref@16ef71: nil> #<R
ef@16ef71: nil>)

Same result with (replicate 5 (ref nil)):

user=> (replicate 5 (ref nil))
(#<Ref@1d88db7: nil> #<Ref@1d88db7: nil> #<Ref@1d88db7: nil> #<Ref@1d88db7: nil>
 #<Ref@1d88db7: nil>)
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up vote 8 down vote accepted
user> (doc repeatedly)
-------------------------
clojure.core/repeatedly
([f])
  Takes a function of no args, presumably with side effects, and returns an infinite
  lazy sequence of calls to it
nil

user> (take 5 (repeatedly #(ref nil)))
(#<Ref@1f10a67: nil> #<Ref@1e2161d: nil> #<Ref@1a034d: nil> #<Ref@1cee792: nil> #<Ref@c5577c: nil>)
us
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1  
and then wrap in (vec (take 5 (repeatedly #(ref nil)))) – Arthur Ulfeldt Jun 24 '09 at 20:37

Ok, this is pretty gross, but it works:

user=> (map (fn [_] (ref nil)) (range 5))
(#<Ref@27147d: nil> #<Ref@b248c8: nil> #<Ref@c86116: nil> #<Ref@5e06ef: nil> #<Ref@19719f: nil>)

That returns a LazySeq, so if you want/need a Vector, then just use:

user=> (vec (map (fn [_] (ref nil)) (range 5)))
[#<Ref@5bf9cf: nil> #<Ref@6dbfb0: nil> #<Ref@43f787: nil> #<Ref@2fe9bf: nil> #<Ref@9b1e15: nil>]
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