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I have a sequence s and a list of indexes into this sequence indexes. How do I retain only the items given via the indexes?

Simple example:

(filter-by-index '(a b c d e f g) '(0 2 3 4)) ; => (a c d e)

My usecase:

(filter-by-index '(c c# d d# e f f# g g# a a# b) '(0 2 4 5 7 9 11)) ; => (c d e f g a b)
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7 Answers 7

up vote 7 down vote accepted

make a list of vectors containing the items combined with the indexes,

(def with-indexes (map #(vector %1 %2 ) ['a 'b 'c 'd 'e 'f] (range)))
#'clojure.core/with-indexes
 with-indexes
([a 0] [b 1] [c 2] [d 3] [e 4] [f 5])

filter this list

lojure.core=> (def filtered (filter #(#{1 3 5 7} (second % )) with-indexes))
#'clojure.core/filtered
clojure.core=> filtered
([b 1] [d 3] [f 5])

then remove the indexes.

clojure.core=> (map first filtered)                                          
(b d f)

then we thread it together with the "thread last" macro

(defn filter-by-index [coll idxs] 
    (->> coll
        (map #(vector %1 %2)(range)) 
        (filter #(idxs (first %)))
        (map second)))
clojure.core=> (filter-by-index ['a 'b 'c 'd 'e 'f 'g] #{2 3 1 6}) 
(b c d g)

The moral of the story is, break it into small independent parts, test them, then compose them into a working function.

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Great, thx! I had something like that, but I couldn't figure out to use "range" properly. –  qollin Oct 12 '11 at 19:07
    
i'm rolling it up into a nice looking funciton, edit soon :) –  Arthur Ulfeldt Oct 12 '11 at 19:16
    
ohh and note that I switched the list of indexes for a vector of indexes. This is because sets can be used as a filter function. –  Arthur Ulfeldt Oct 12 '11 at 19:41

I had a similar use case and came up with another easy solution. This one expects vectors.

I've changed the function name to match other similar clojure functions.

(defn select-indices [coll indices]
   (reverse (vals (select-keys coll indices))))
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The easiest solution is to use map:

(defn filter-by-index [coll idx]
  (map (partial nth coll) idx))
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=> (defn filter-by-index [src indexes]
     (reduce (fn [a i] (conj a (nth src i))) [] indexes))

=> (filter-by-index '(a b c d e f g) '(0 2 3 4))
[a c d e]
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I like Jonas's answer, but neither version will work well for an infinite sequence: the first tries to create an infinite set, and the latter runs into a stack overflow by layering too many unrealized lazy sequences on top of each other. To avoid both problems you have to do slightly more manual work:

(defn filter-by-index [coll idxs]
  ((fn helper [coll idxs offset]
     (lazy-seq
      (when-let [idx (first idxs)]
        (if (= idx offset)
          (cons (first coll)
                (helper (rest coll) (rest idxs) (inc offset)))
          (helper (rest coll) idxs (inc offset))))))
   coll idxs 0))

With this version, both coll and idxs can be infinite and you will still have no problems:

user> (nth (filter-by-index (range) (iterate #(+ 2 %) 0)) 1e6)
2000000

Edit: not trying to single out Jonas's answer: none of the other solutions work for infinite sequences, which is why I felt a solution that does is needed.

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I wonder which is a more remote edge-case, an infinite sequence of indices to keep, or indices not in monotonically increasing order. –  Alex Taggart Oct 13 '11 at 7:17
    
@AlexTaggart good point, since it's impossible to cater for both I guess you have to make a decision. Laziness seems more important to me, as part of the general Clojure philosophy, but for a given instance of the problem it could easily be wrong. –  amalloy Oct 13 '11 at 8:17

You can use keep-indexed:

(defn filter-by-index [coll idxs]
  (keep-indexed #(when ((set idxs) %1) %2) 
                coll))  

Another version using explicit recur and lazy-seq:

(defn filter-by-index [coll idxs]
  (lazy-seq
   (when-let [idx (first idxs)]
     (if (zero? idx)
       (cons (first coll)
             (filter-by-index (rest coll) (rest (map dec idxs))))
       (filter-by-index (drop idx coll)
                        (map #(- % idx) idxs))))))
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(defn filter-by-index [seq idxs]
  (let [idxs (into #{} idxs)]
    (reduce (fn [h [char idx]]
              (if (contains? idxs idx)
                (conj h char) h))
            [] (partition 2 (interleave seq (iterate inc 0))))))

(filter-by-index [\a \b \c \d \e \f \g] [0 2 3 4])
=>[\a \c \d \e]
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