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I've got a map looking like this:

user> (frequencies "aaabccddddee")
{\a 3, \b 1, \c 2, \d 4, \e 2}

And I'd like to have a function that would sort the key/value pairs according to the order each character is appearing in a string I'd pass as an argument.

Something like this:

user> (somesort "defgcab" (frequencies "aaabccddddee"))
[[\d 4] [\e 2] [\c 2] [\a 3] [\b 1]]

(in the example above 'f' and 'g' do not appear in the map and they're hence ignored. It is guaranteed that the string -- "defgcab" in this example -- shall contain every character/key in the map)

The resulting collection doesn't matter much as long as it is sorted.

I've tried several things but cannot find a way to make this work.

share|improve this question

I kinda prefer using sort-by to do the sorting logic, and just create a custom comparator for your collection:

(defn sorter [coll] (zipmap coll (range)))

(sort-by (comp (sorter "defgcab") key) 
         (frequencies "aaabccddddee"))

;=> ([\d 4] [\e 2] [\c 2] [\a 3] [\b 1])

Edit: this has the further advantage that you can keep your collection a map if you want, although you have to do a little more work:

(defn map-sorter [coll]
  (let [order (zipmap coll (range))]
    (fn [a b]
      (compare (order a) (order b)))))

(into (sorted-map-by (map-sorter "defgcab"))
      (frequencies "aaabccddddee"))

;=> {\d 4, \e 2, \c 2, \a 3, \b 1}
share|improve this answer
    
+1, I like the sorter trick! – mikera May 18 '12 at 2:11
(defn somesort [str st] 
    (filter (fn [[k v]] v ) (map (fn [c] [c (get st c)]) str)) )

How this works:

  • Using map on the "sorting string" for each character in that string get the corresponding key value as a vector from the set
  • Using filter, filter out the elements where the value is nil
share|improve this answer
    
it works fine but could you explain a bit how it works? – Cedric Martin May 16 '12 at 12:07
    
oh I see... Thanks. Does it means the complexity is O(n^2)? – Cedric Martin May 16 '12 at 12:16
    
Yup, seems so.. – Ankur May 16 '12 at 12:18
1  
@CedricMartin The complexity depends on the lookup in the map. If the map is large, then make sure it's a hash map, then the complexity is linear. – Rafał Dowgird May 16 '12 at 13:28

Ankur's solution expressed with for , which is maybe a bit easier to read:

(defn somesort [str st] 
    (for [c str :let [v  (get st c)] :when v] [c v]))

This works assuming the characters in the custom sorting string are unique.

The sorting string is iterated over once, each of its characters is looked up in a map. If you make sure the map passed to the function is a hash map, then this is linear.

share|improve this answer

You can also use find which returns [k v] with map :

(let [fs (frequencies "abbccc")]
  (map #(find fs %) "defgcab")
share|improve this answer
    
Doesn't this invoke frequencies for each letter in the given alphabet? – Jeremy Heiler May 16 '12 at 15:17
1  
@JeremyHeiler, Yes it does. Rafal or Ankur solutions are faster – dAni May 16 '12 at 20:24
    
Very inefficient indeed! Thank you guys for pointing that out. I was too focused on doing "looking up by value" and being too lazy to wrap it up in a function. – jbear May 16 '12 at 23:50
    
I made a minor adjustment so that the frequencies are only calculated once. – Jeremy Heiler May 17 '12 at 2:20
    
Thank you, Jeremy. It's exactly what I intended. It didn't even occur to me that I could edit. – jbear May 17 '12 at 22:13

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