Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a map that is sorted by its keys which contains data like this:

    (def h {50 Text1
    70 Text2
    372 Text1
    391 Text2
    759 Text1
    778 Text2
    })

The map is sorted by Keys. The key (the number) can be interpreted as the position where the corresponding value was found in a large block of text. In the above example, "Text1" was found at position 50 in the text.

Now, I want to find all Texts that were found within k positions of each other. I define a function a like this:

     (defn nearest [m k]
         (for [m1 (keys m) m2 (keys m)
              :when (and (> m2 m1) (not= (m m1) (m m2)) (< (- m2 m1) k))]
              [m1 (get m m1)  m2 (get m m2)]))

     (nearest h 50)
     ; [[50 "Text1" 70 "Text2"] [372 "Text1" 391 "Text2"] [759 "Text1" 778 "Text2"]]

This works, but is too slow when the map m has 100s of thousands of elements. Because the for loop actually looks at all pairs of elements in the map. Since the map is sorted, for each element in the map, it is not necessary to check further elements, once the next element is already beyond k characters. I was able to write a version using loop and recur. But it is kind of unreadable. Is there a more natural way to do this using for? I am assuming for (:while ) should do the trick, but was not able to find a way.

(defn nearest-quick [m k]
      (let [m1 (keys m) m2 (keys m)]
        (loop [inp m res []  i (first m1) m1 (rest m1) j (first m2) m2 (rest m2)]
          (cond
            (nil? i) res
            (nil? j)(recur inp res (first m1) (rest m1) j m2)
            (= i j) (recur inp res i m1 (first m2) (rest m2))
            (< j i) (recur inp res i m1 (first m2) (rest m2))
            (= (inp i) (inp j)) (recur inp res i m1 (first m2) (rest m2))
            (< (- j i) k) (recur inp (conj res [i (inp i) j (inp j)]) i m1 (first m2) (rest m2))
            (>= (- j i) k) (recur inp res (first m1) (rest m1) (first (rest m1)) (rest (rest m1)))))))

Note: with a map with 42K elements, the first version takes 90 mins and the second version takes 3 mins.

share|improve this question

3 Answers 3

up vote 5 down vote accepted

One could probably exploit subseq when the map is a sorted-map.

(defn nearest
  [m n]
  (for [[k v]   m
        [nk nv] (subseq m < k < (+ k n))
        :when (not= v nv)]
    [k v nk nv]))

Code not benchmarked.

share|improve this answer
    
Yes, to actually use the ordering this is the only way to do it. +1. –  Rob Lachlan Apr 24 '13 at 22:07
    
Thanks - this works as expected. Could you explain how subseq works? I didn't quite understand even after going through the documentation. –  TIM S Apr 24 '13 at 22:08
    
@tim-s You give a start and an end value as well as the corresponding tests. Then you get all map entries with keys in the given value. subseq knows about the underlying data structure. So it doesn't need the search for the keys, but accesses them directly. Hence it should be quite fast. I'd like the see the result from your benchmark for this version. –  kotarak Apr 25 '13 at 5:58
    
kotarak, this is super fast. 3 mins. Thanks. –  TIM S Apr 25 '13 at 10:53
    
@tim-s Cool. :D –  kotarak Apr 26 '13 at 5:49

Clojure's for also has a :while modifier, so you can stop the iteration with a condition.

share|improve this answer

From whatever I have understood from you example:

(def h (sorted-map 50 "Text1"
                   70 "Text2"
                   372 "Text1"
                   391 "Text2"
                   759 "Text1"
                   778 "Text2"))


(->> (map #(-> [%1 %2]) h (rest h))
     (filter (fn [[[a b] [x y]]] (< (- x a) 50)))
     (map flatten))
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.