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I have a List<String> which I sorted alphabetically using Collections.sort(...). Now I have a reference String and I want to remove all Strings from the List which are "lower" (in the alphabetical ordering) than my reference String. Is there any nice way to do that or should I go through the List one by one and comparing each record to the reference value myself?

EDIT: Since someone had asked for working solution here it is. originalList is List<String> ... duplicities will be lost with this solution

String filterString = "...";
TreeSet<String> tSet = new TreeSet<String>(originalList);
List<String> filteredResources = new ArrayList<String>(tSet.tailSet());
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What happens with duplicated item in the original list. I am afraid that these duplicated items will NOT be present in the tailset. –  user1407552 May 21 '12 at 9:42
    
Yes, see the EDIT in the question, it is there from February 2011 :) –  Jan Zyka May 23 '12 at 12:16

3 Answers 3

up vote 4 down vote accepted

If there are no duplicates, then you can do this:

  1. Create a TreeSet using the TreeSet constructor that takes a collection
  2. Now simply call TreeSet.tailSet(refString)
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Of course! :) I had some black-out. Thanks! –  Jan Zyka Feb 23 '11 at 9:46
    
can you post how you solved it using a working example so that it can be handy for further reference.(+1 for tailSet) –  Deepak Feb 23 '11 at 11:40
    
@Deepak his text seems perfectly clear enough to me. –  Kevin Bourrillion Feb 23 '11 at 16:22
    
kevin i do understand.but i asked for a example. –  Deepak Feb 23 '11 at 17:14
    
I added it to the quiestion itself. –  Jan Zyka Feb 28 '11 at 14:21

Once it's sorted it would be trivial using a ListIterator to iterate the list and perform the comparison. Once you're comparison misses, you know you can stop the iteration since your list was sorted.

Note though, that sorting is a relatively expensive operation, hence it would be more efficient to just iterate the list from start to end performing your comparison.


You could also employ an algorithm which checks the middle (list.size()/2) element, then moves up or down again halfing the resultset, and so on until you've found the converging point.

E.g. looking for "f" with a list {"a", "b", "c", "d", "e", "f", "g"} would perform comparisons on middle element "d", then look at the middle "f" element of the second half {"e", "f", "g"} where a match is immediately found and the algorithm can stop.

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Here is the best way I can think of.

  1. Sort the list
  2. Start going through the list one by one, starting from the lowest.
  3. Reach a point until the list element is higher than the one you have.
  4. Break out of the loop.
  5. Keep a note of this index and split the list using subList function by this index.
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-1 because this style of solution should at least use binary search (O(log N)). –  Kevin Bourrillion Feb 23 '11 at 16:21

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