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I have map of item names and vectors of vectors which store categories which the key string item are in. I am trying to parse this map into a couple hiccup defpartials which then can display them organized by category.

What I think I need to do is parse the map once to make a set of all possible categories and sub categories. Once I have that I can iterate that and filter all matches from the main map to get the proper key strings.

How can I go from the map below, to a set of all main and sub categories? Once I have that set, how do i use it query the original map by values not by key?

thanks for any help!

(def ITEM-CATEGORIES
 { "thingy"          [["CatergoryA" "SubcategoryA"]]
   "thingy2"         [["FFT"]]
   "thingy3"         [["Generators" "Chaotic"]]
   "thingy4"         [["Analysis" "Pitch"] ["MachineListening"]]
   "thingy5"         [["Multichannel" "Ambisonics"]]
 }

goal in sudo code

(generate-hiccup-partial (create-set-of-unique-categories ITEM-CATEGORIES) ITEM-CATEGORIES)
....
(defpartial generate-hiccup-partial
  [categories map]
   ;; hiccup code
   (in-each-sub/main-category-get-keys-by-value categories map))  ;; return a list of all keys with the same categories
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The definition of ITEM-CATEGORIES is missing a closing parenthesis at the end. I was going to fix it but SO will bounce a one-character edit. Can you change it? –  user100464 Mar 1 '12 at 18:09
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2 Answers

up vote 1 down vote accepted

I do not know what a defpartial is, but this will transform that map:

(defn xform [ic]
  (reduce (fn [result [k [vs]]]
        (reduce (fn [r v]
              (assoc r v (cons k (r v)))))
            result vs))
      {} ic))

user=> (xform ITEM-CATEGORIES)
{"SubcategoryA" ["thingy"], "CatergoryA" ["thingy"], "Ambisonics" ["thingy5"],
 "Multichannel" ["thingy5"], "Pitch" ["thingy4"], "Analysis" ["thingy4"],
 "Chaotic" ["thingy3"], "Generators" ["thingy3"], "FFT" ["thingy2"]}
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awesome! this is just what I needed. thanks a lot –  Jon Rose Feb 29 '12 at 22:51
1  
Couldn't you replace (if-let [rv (r v)] (cons k rv) [k]) with (cons k (r v nil))? –  Retief Mar 1 '12 at 15:59
    
Thank you Retief. In fact I can use (cons k (r v)). I will update my answer. –  user100464 Mar 1 '12 at 16:52
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When I find my self thinking about going up and down nested data structure my mind jumps to the zipper library you could take ITEM-CATECORIES and build a zipper of it then make any number of relations by 'zipping' up and down the tree.

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thanks, I hadn't checked out the zipper library yet this is very useful. –  Jon Rose Feb 29 '12 at 22:51
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