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I have a list of set elements. Example:

'([0 1 2][1 2 3] [4 5 6] [5 6 7] [0 1 2 3] [4 5 6 7])

I want to remove the subsets -- [0 1 2] [1 2 3] [4 5 6] [5 6 7] -- and the final answer should be '([0 1 2 3] [4 5 6 7]).

Any help is greatly appreciated.

Thanks in advance.

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(defn toset [vect] (into #{} vect)) (not(empty?(remove false?(map #(clojure.set/subset? (toset [0 1 2]) %1)(into [] (map #(toset %1) '([0 1 2 4]))))))) This returns true or false based on if the list is a subset. –  durai Nov 17 '11 at 4:35
1  
Check my answer.. –  Abimaran Kugathasan Nov 17 '11 at 5:31
1  
accept an answer... –  Abimaran Kugathasan Nov 17 '11 at 8:06
    
Note that there is a set type which looks like #{0 1 2} –  Adrian Mouat Nov 17 '11 at 10:56
    
Re-reading this question, I realize it is stated in confusing fashion. Lists, sets, and subsets are described, but lists and vectors are shown. –  Julien Chastang Nov 17 '11 at 15:06

4 Answers 4

(defn to-superset [ coll ]
  (loop [result () coll coll]
    (if (empty? coll) result
      (let  [x  (first coll)
             xs (rest coll)]
            (if (some #(clojure.set/subset? x %) xs) 
                (recur result xs)
                (recur (cons x result) xs))))))

(to-superset '(#{0 1 2} #{1 2 3} #{4 5 6} #{5 6 7} #{0 1 2 3} #{4 5 6 7}))

DEMO

user=> (to-superset '(#{0 1 2} #{1 2 3} #{4 5 6} #{5 6 7} #{0 1 2 3} #{4 5 6 7}))
(#{4 5 6 7} #{0 1 2 3})
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2  
As far as I can tell, this is the only correct answer - the other answers seem to expect the subsets to be manually identified. –  Adrian Mouat Nov 17 '11 at 11:00
    
@Adrian Mouat , I think so too. –  BLUEPIXY Nov 17 '11 at 11:22
    
NOTE: My answer is with the assumption that order by the smaller number of elements. –  BLUEPIXY Nov 17 '11 at 21:20
    
@BLUEPIXY thanks for your help. the function works great. –  durai Nov 21 '11 at 9:40
    
But it works anyway, and if there is a better way .... –  BLUEPIXY Nov 21 '11 at 9:48
(def set1 '([0 1 2][1 2 3] [4 5 6] [5 6 7] [0 1 2 3] [4 5 6 7]))

(def set2 '([0 1 2] [1 2 3] [4 5 6] [5 6 7]))

(remove (set set2) set1)

Results :

([0 1 2 3] [4 5 6 7])
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1  
+1 This is a better solution. –  Julien Chastang Nov 17 '11 at 5:40
2  
Note that it is more idiomatic to write literal sequences with vectors instead of quoted lists. Also in this case, you could just use the set literal #{[0 1 2] ...} –  Alex Taggart Nov 17 '11 at 9:01
    
I don't think this answers the question, you shouldn't need to specify set2 –  Adrian Mouat Nov 17 '11 at 10:58
    
@AdrianMouat : he can make the second set, and remove it! –  Abimaran Kugathasan Nov 17 '11 at 11:07
    
@Kugathasan You've not explained how to make the second set though. Note that it should be automatically created by identifying elements that are a subset of other elements. –  Adrian Mouat Nov 17 '11 at 11:10

It should be as simple as (If you are not concerned about ordering)

(def a '( [1 2] [3 4] [5 6] ))
(def b '( [1 2] [33 34] [5 6] ))
(list* (set (conc­at a b)))
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Sorry this is not the answer i was looking for.. May be i did not put the question correctly.. Thanks for your help.. I really appreciate your effort. –  durai Nov 21 '11 at 9:35
    
Yeah, I got what you meant exactly, anyway I hope you have got the required answer :) –  Ankur Nov 21 '11 at 10:17
(apply list
       (difference
        (into #{}
              '([0 1 2] [1 2 3] [4 5 6] [5 6 7] [0 1 2 3] [4 5 6 7]))
        (into #{}
              '([0 1 2] [1 2 3] [4 5 6] [5 6 7]))))
share|improve this answer
    
(apply list ..) can be written as (list* ..). –  kotarak Nov 17 '11 at 7:02

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