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How to sort a list of objects for duplicates in java?basically that every object should be uniqe in list after sorting. Maybe someone knows a good example.

share|improve this question
    
Do you want to "sort and then remove duplicates" or is simply "removing duplicates" enough? If not, what about "removing duplicates and then sorting"? E.g. is there a particular reason to sort first (or at all) -- if not creating your own duplicate-remover that takes ordering of same-valued items into account? ;-) Please update the title/question accordingly. – user166390 Dec 11 '11 at 0:06
up vote 4 down vote accepted

You can add the elements of the List to a Set, and then create a new List with those elements, like this:

List<Object> originalList = new ArrayList<Object>();
// the elements of originalList get added here

Set<Object> set = new HashSet<Object>(originalList);
List<Object> newList = new ArrayList<Object>(set);

Be aware that:

  • I'm using Object as the type for the List and Set, replace it with the appropriate type to suit your needs
  • For the above to work correctly, the objects in the list must override both hashCode and equals
  • The elements in the new list will be in different order from those in the original list
share|improve this answer

To obtain a collection of only the unique elements from a list, you can just add all the elements to a Set.

List<String> l = new ArrayList<String>();
Set<String> s = new HashSet<String>(l);
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2  
What about using the constructor: HashSet(Collection<? extends E> c) – Justin Muller Dec 10 '11 at 23:14
    
Good point; edited accordingly. – Jonathan Newmuis Dec 10 '11 at 23:15

If you just want to remove duplicates, try this:

List<Object> l; //Your list of data

for(int i = l.size()-1; i > 0; i--)
  for(int j = i; j > 0; j--)
    if(l.get(i).equals(l.get(j))) //or == for primitives
      l.remove(j);

If you have a specific sort you want to apply, you can do it within the same for loop after the if statement. That's really the only advantage of this over a HashSet.

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1  
This doesn't work as written, since when you remove the jth element from the List l, all the higher elements move down and your indices are messed up. When removing elements using the index, always work backwards, e.g. for(int i = l.size()-1; i >= 0 ; i--) – user949300 Dec 10 '11 at 23:25
    
I forgot about that, edited now. – Jon Dec 10 '11 at 23:52
    
very very very inefficiant, you loop through the set per item of the set, it you have a set of 8 items, that's 8+7+6+5+4+3+2+1 or 36, as you do one less each time), but then say you have 24 items... (298), which increases by the max number each time you add one to the size, not very fast. – D3_JMultiply Dec 11 '11 at 4:33

As others have already pointed out, you can use a Set data structure. But since you are looking for a sorted list, instead of using HashSet, you can go for a TreeSet, whose elements are sorted in the natural order by default.

E.g.:

List<Integer> list = new ArrayList<Integer>();

list.add(8);
list.add(5);
list.add(3);
list.add(5);
list.add(9);

Set<Integer> s = new TreeSet<Integer>(list);

Iterator<Integer> itr = s.iterator();
while(itr.hasNext()) {
    System.out.print(itr.next() + " ");
}

Output:

3 5 8 9

share|improve this answer
    
the reason he wanted it sorted was so the duplicates could be removed easier. however +1 for being the only one who seemed to read the entire op. – D3_JMultiply Dec 11 '11 at 4:33

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