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I have multiple Integer ArrayList, which contains some duplicate elements. I want to get the unique elements from them. But how?
java.util.ArrayList.removeAll() is not serving my purpose completely. See the below test code-

ArrayList<Integer> d = new ArrayList<Integer>();
d.add(2);
d.add(4);
d.add(5);
d.add(7);
d.add(8);
d.add(9);

ArrayList<Integer> e = new ArrayList<Integer>();
e.add(3);
e.add(7);

d.removeAll(e);

for (int t : d) {
    System.out.print(t+", ");
}

In output, i am getting 2, 4, 5, 8, 9, . Clearly 3 is missing. Also just to keep it simple, I am using only two ArrayList here but in my code, i have more than two ArrayList.

How I can find unique elements in multiple ArrayList in Java

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1  
based on your code the output that you are getting is obvious. What I understand is as 7 is common, only 7 should be removed and 3 should be added... right? then use Set. It will not add duplicates... that way you will have all unique list... –  Fahim Parkar Dec 8 '12 at 13:20
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4 Answers

up vote 3 down vote accepted

Create a Set<Integer> from your List<Integer>. The set will contain no duplicate objects:

List<Integer> lstNumbers = new ArrayList<Integer>();
//fill the list of integers...
Set<Integer> setNumbers = new HashSet<Integer>(lstNumbers);
//the set will contain no duplicate values...
for (int t : setNumbers) {
    System.out.print(t+", ");
}

Note that you can add more List<Integer> in the Set by using the Set#addAll method (as shown in rahulroc answer) to add more integers in your not duplicated elements collection:

//assuming setNumbers has been initialized before
setNumbers.addAll(anotherListOfNumbers);
setNumbers.addAll(andAnotherListOfNumbers);

Also, as best practice, try to program to interfaces (List, Set, etc), not to class implementations (ArrayList, HashSet), as shown here: What does it mean to “program to an interface”?

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First, i need to add all the ArrayList, then i have to create HashSet. Am i right? –  Ravi Joshi Dec 8 '12 at 13:20
1  
@RaviJoshi yes, first fill the ArrayList with duplicate elements, then create the Set. –  Luiggi Mendoza Dec 8 '12 at 13:23
    
+1 for the link What does it mean to program to an interface? –  Ravi Joshi Dec 8 '12 at 13:24
1  
@RaviJoshi you're welcome. –  Luiggi Mendoza Dec 8 '12 at 13:30
1  
@rahulroc yes, I didn't read the last part (shame on me). –  Luiggi Mendoza Dec 8 '12 at 13:35
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use java.util.HashSet

Set<Integer> uniqueEntries = new HashSet<Integer>();
for(all lists)
     uniqueEntries.addAll(list);

Now the set uniqueEntries will contain all the unique integer values.

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You can use a Collection<E> as parameter in the HashSet constructor. –  Luiggi Mendoza Dec 8 '12 at 13:22
1  
Yes, we can. but he doesn't have just one arraylist. He needs to add multiple array lists. Hence, the constructor wont fulfil the entire purpose as he has to iterate over the whole list of all the arraylists. –  rahulroc Dec 8 '12 at 13:24
    
Thank you buddy... –  Ravi Joshi Dec 8 '12 at 13:31
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Use Set

ArrayList<Integer> d = new ArrayList<Integer>();
d.add(2);
d.add(4);
d.add(5);
d.add(7);
d.add(8);
d.add(9);

d.add(3);
d.add(7);

// this will remove all duplicates
Set setNew = new HashSet(d);

System.out.print(setNew);

Demo

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I like the DEMO most. You rock buddy. Thank you. I got it now. –  Ravi Joshi Dec 8 '12 at 13:31
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 ArrayList<Integer> d = new ArrayList<Integer>();
        d.add(2);
        d.add(4);
        d.add(5);
        d.add(7);
        d.add(8);
        d.add(9);

        ArrayList<Integer> e = new ArrayList<Integer>();
        e.add(3);
        e.add(7);

        List<Integer> temp = new ArrayList<Integer>(d);

        System.out.println("d --> " + d);
        System.out.println("e --> " + e);

        d.removeAll(e);
        e.removeAll(temp);
        d.addAll(e);

        System.out.println("d --> " + d);
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