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If I have a set of maps like this

(def a #{
          {:a 1 :b 2}
          {:a 3 :b 4}
          {:b 1 :c 2}
          {:d 1 :e 2}
          {:d 1 :y 2}

: how can I find out all the keys? so doing :

(find-all-keys a)


(:a :b :c :d :e :y)


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4 Answers 4

up vote 0 down vote accepted

Something like:

user=> (into #{} (flatten (map keys a)))
#{:y :a :c :b :d :e}
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This is broken: flatten is way too aggressive. A simple mapcat will suffice. Consider (into #{} (flatten (map keys [{[1 2] 0}]))), which returns #{1 2} instead of the correct #{[1 2]}. – amalloy Apr 4 '11 at 19:20
yes, I understand this - I always forget about mapcat - I usually use generic list manipulation functions... – Alex Ott Apr 4 '11 at 19:40

Another way:

(distinct (mapcat keys a))
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Almost the same way:

(set (mapcat keys a))
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Another way:

(reduce #(into %1 (keys %2))  #{}  a)
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