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For a linked list we are supposed to find duplicates in a linked list, however, the method that I've written seems to only go through once and does not remove all duplicates. Any idea on why it is doing that?

public void removeDuplicate(){
   LinkedListIterator iter = new LinkedListIterator();
   while(iter.hasNext()){
       Object j = iter.next();
       LinkedListIterator iter2 = iter;
       while(iter2.hasNext()){
           Object x = iter2.next();
           if(x.equals(j))
               iter2.remove();
       }
   }

   }
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Shouldn't you have tagged this homework? –  drdwilcox Nov 17 '11 at 17:04
1  
Firstly your iterator iter has nothing to iterate over. Secondly iter2 is a copy of the first when they need to be independent. –  Borodin Nov 17 '11 at 17:10
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6 Answers

when ever you need to remove a duplicates. try to think of Set interface

and in your case use LinkedHashSet to maintain order.

Here is the code

Set uniqueList = new LinkedHashSet();
uniqueList.addAll(yourList);
System.out.println(uniqueList);
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I'm assuming you need to use an iterator....

Your first problem is that you created an iterator, but not from your list. If you have a list myList you create an iterator with myList.iterator().

Your second problem is LinkedListIterator iter2 = iter;. You want another different iterator; your statement makes both iter2 and iter point to the same underlying instance.

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LinkedListIterator iter2 = iter;

You only have one iterator. Also, this seems to be pseudocode, or you're not using the standard Java library.

All the suggestions for a Set instead of a List are of course valid, and would be the preferred way if this was not an exercise.

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This solution is simplier

List uniqueList = new LinkedList(new HashSet(list));
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You loose the order like this and will get warnings since you're not specifying the generic type parameters. –  Puce Nov 17 '11 at 17:13
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You could use:

Set<Foo> uniqueFoos = new LinkedHashSet<Foo>(myList);
myList.clear();
myList.addAll(uniqueFoos);
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This line

LinkedListIterator iter2 = iter;

does not create a new iterator, but a new reference to the original iterator. So when you call

iter2.hasNext()

in your while statement, it is advancing iter (because it is the same as iter2). So when iter2 is done, so is iter. They are the same.

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