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The best I could come up with was:

(defn dups [seq]
  (map (fn [[id freq]] id) 
       (filter (fn [[id freq]] (> freq 1))
               (frequencies seq))))

Is there a more concise way?

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I like your solution but would simply replace (fn [[id freq]] id) with the key function. –  Julien Chastang Nov 8 '11 at 22:18
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2 Answers

up vote 9 down vote accepted

Use a list comprehension:

(defn dups [seq]
  (for [[id freq] (frequencies seq)  ;; get the frequencies, destructure
        :when (> freq 1)]            ;; this is the filter condition
   id))                              ;; just need the id, not the frequency
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(map key (remove (comp #{1} val) 
                 (frequencies seq)))
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Can you explain what (comp #{1} val) is doing? Thxs. –  Julien Chastang Nov 8 '11 at 22:20
    
(comp #{1} val) basically means (fn [x] (#{1} (val x))) - basically, it tests if the val of the argument is 1 (if it's contained in the set containing the number 1). val here is the count in the frequency pair. –  Joost Diepenmaat Nov 8 '11 at 22:56
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