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My problem is that I am given a List<T> from which I need to remove duplicates and also keep the ordering.

I know I can use a HashSet to get rid of duplicates but it is based on hashcode and the class T does not implement it and I cannot modify it. And as I understand I will lose the ordering of my original list.

How can I achieve this?

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What does "duplicate" mean in this context? Same reference (i.e. "==") or are they equal by equals()? –  Michel Michael Meyer Jan 25 at 14:52
    
On what basis does two elements stand as duplicate? –  Rohit Jain Jan 25 at 14:52
    
I want to define the equality myself if possible –  Antoinecoding Jan 25 at 14:55
    
@Antoinecoding Exactly, how are you defining equality, if you are not overriding equals? And if you are overriding equals, then consider overriding hashCode. –  Rohit Jain Jan 25 at 14:57
    
I cannot modify T. But I think Vakh's solution enables me to do so. –  Antoinecoding Jan 25 at 15:02

3 Answers 3

up vote 1 down vote accepted

As you pointed out, most of the Java data structures getting rid of duplicates rely on hashcode/equals methods.

Since you cannot modify the code of T and want to define the equality yourself, I suggest you create a wrapper of it where you can properly override the hashcode/equals methods:

public class MyT {
    private final T t;
    public MyT(T t) { this.t = t; }
    // + getter
    // + define hashcode and equals based on t
}

Afterwards, you can simply convert your List<T> into List<MyT>. Then you can use a LinkedHashSet<MyT> that removes duplicates based on hashcode/equals you just implemented and also keeps the ordering of your original list. Finally you can easily convert it back to a List<T> if necessary.

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Take a look at LinkedHashSet class.

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But T doesn't implement hashCode(). –  arshajii Jan 25 at 14:52

And, if your lists are small and you don't want to deal with hashing at all, you can always go with the O(n^2) solution and walk the list several times, looking for duplicates and removing them:

 public <T> void removeDups(List<T> listWithDups)
 {

    for(int i = 0; i < listWithDups.size(); i++)
    {
       T firstItem = listWithDups.get(i);

       for(int j = i+1; j < listWithDups.size(); j++)
       {
          T secondItem = listWithDups.get(j);

          if( (firstItem == null && secondItem == null) ||
                (firstItem != null && firstItem.equals(secondItem))
            )
          {
             listWithDups.remove(j);
             i--;
          }
       }
    }
 }
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