36
ArrayList<String> values=new ArrayList<String>();
values.add("s");
values.add("n");
values.add("a");
values.add("s");

In this Array, I want to remove repeated values.

1
  • 1
    Why dont you use a set then ? – Cshah Dec 10 '09 at 9:17
78

Try this...

    ArrayList<String> values=new ArrayList<String>();
    HashSet<String> hashSet = new HashSet<String>();
    hashSet.addAll(values);
    values.clear();
    values.addAll(hashSet);

Happy coding...

4
  • perfect hit shot point, very smart answer. – Gundu Bandgar Apr 13 '16 at 12:38
  • 4
    All you did was copy the top answer... – Brandon LaBraun Curry Jun 7 '16 at 16:04
  • @BrandonLaBraunCurry to be fair, the top answer copied his as well, from another post – Tim Jul 8 '16 at 14:02
  • mind blowing... – Ravi.Sh Mar 17 '20 at 10:47
33

Try below code,

ArrayList<String> values=new ArrayList<String>();
String newValue;

// repeated additions:
if (!values.contains(newValue)) {values.add(newValue);}
4
  • 2
    short and clever answer +1 – XtreemDeveloper Sep 18 '14 at 10:03
  • 1
    what about custom bean class ? How to solve duplicate value problem ? – Anand Savjani Jun 21 '16 at 11:17
  • @AnandSavjani override equals() and hash() in your bean, compare by custom field – Tim Jul 8 '16 at 14:01
  • This will also maintain order as opposed to hash set +1 – Rushi M Thakker Nov 15 '19 at 6:14
19
HashSet hs = new HashSet();

hs.addAll(demoArrayList); // demoArrayList= name of arrayList from which u want to remove duplicates 

demoArrayList.clear();
demoArrayList.addAll(hs);
2
  • 1
    Much Much more efficient than ArrayList.contains() – gor Dec 1 '16 at 13:48
  • Notice that the order of the elements added will be unorganized in a HashSet. – Prajwal Waingankar Feb 16 at 13:58
2

I think a real neat solution for enforcing unique array lists is this one, if it's not too much code for what you're trying to achieve.

public class UniqueOverridingList extends ArrayList {

    public enum LAST_RESULT {
        ADD, OVERRIDE, NOTHING;
    }

    private LAST_RESULT lastResult;

    public boolean add(T obj) {
        for (int i = 0; i < size(); i++) {
            if (obj.equals(get(i))) {
                set(i, obj);
                lastResult = LAST_RESULT.OVERRIDE;
                return true;
            }
        }
        boolean b = super.add(obj);
        if (b) {
            lastResult = LAST_RESULT.ADD;
        } else {
            lastResult = LAST_RESULT.NOTHING;
        }
        return b;
    }

    public boolean addAll(Collection c) {
        boolean result = true;
        for (T t : c) {
            if (!add(t)) {
                result = false;
            }
        }
        return result;
    }

    public LAST_RESULT getLastResult() {
        return lastResult;
    }

}
1
  • @JohanWikström these need to go through Faq forcefully before starting here – Tofeeq Ahmad Jan 7 '13 at 4:38
1

The class David Hedlund suggested can be made a lot shorter:

public class UniqueArrayList extends ArrayList {
    /**
     * Only add the object if there is not
     * another copy of it in the list
     */
    public boolean add(T obj) {
        if(this.contains(obj))
           return false;
        return super.add(obj);
    }

    public boolean addAll(Collection c) {
        boolean result = false;
        for (T t : c) {
            if (add(t)) {
                result = true;
            }
        }
        return result;
    }
}

The addAll operation is modified too. The documentation states:

Returns: true if this list changed as a result of the call.

I modified the method to reflect this behaviour. There's still one problem. The documentation of the addAll() method also states:

Appends all of the elements in the specified collection to the end of this list, in the order that they are returned by the specified collection's iterator.

The order might be broken by using this method. A possible workaround for this problem might be not supporting the addAll method.

1
  • 1
    This makes adding an element O(n). Use a Set instead! – Kevin Bourrillion Dec 10 '09 at 17:24

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