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public static <E> ArrayList<E> union
        (ArrayList<E>array1, ArrayList<E>array2)
{
  //arrayUnion will be the arrayList that will be returned
  ArrayList <E> arrayUnion  = new ArrayList <E>(array1);   
  arrayUnion.addAll(array2);
  E current;

  for(int i = 0; i < arrayUnion.size(); i++)
  {
      for(int j = 0; j < arrayUnion.size(); j++)
      {
          current = arrayUnion.get(i);
          if(current.equals(arrayUnion.get(j)))
          {
              arrayUnion.remove(j);
          }
      }
  }

      return arrayUnion;
}

For my test of this method, this was the output:

The first list is [ww, ee, rr, t, yy]

The second list is [ww, ss, ee, dd]

The union of both ArrayLists is: [ee, t, ww, dd]

What went wrong..? I've been stuck on this for far too long and I never want to hear the word Union again. Plz help

share|improve this question
    
What happens when i == j? – Hot Licks Oct 11 '12 at 3:34
2  
You can't just do a Set<E> s = new HashSet<E>; s.addAll(array1); s.addAll(array2);? – nneonneo Oct 11 '12 at 3:35
    
can you try starting the second for loop with int j=i+1; – rbhawsar Oct 11 '12 at 3:36
    
My personal approach to this would be to iterate through both array lists and add any equalities to the arrayUnion list. – Vulcan Oct 11 '12 at 3:38
    
@Vulcan, union is a set operation which means the list should have only unique elements.. However it's kind of weird to do a union of two arraylists since array lists are not sets (since they can have duplicates) – Matt Wolfe Oct 11 '12 at 3:40
up vote 0 down vote accepted

Your code has to do check the current item is checked with itself. If not you have to remove the item and decrease the j with one as you have to check again the item replaced at j. I have modified your code to work for your case. Just look at the condition check for item to be removed.

public static <E> ArrayList< E > union( ArrayList< E > array1, ArrayList< E > array2 ) {
    // arrayUnion will be the arrayList that will be returned
    ArrayList< E > arrayUnion = new ArrayList< E >( array1 );
    arrayUnion.addAll( array2 );
    E current;

    for ( int i = 0; i < arrayUnion.size( ); i++ ) {

        for ( int j = 0; j < arrayUnion.size( ); j++ ) {
            current = arrayUnion.get( i );

            if ( i != j && current.equals( arrayUnion.get( j ) ) ) {
                arrayUnion.remove( j );
                --j;// This is set to check the item which replace the removed item at previous statement
            }
        }
    }

    return arrayUnion;
}
share|improve this answer

You can use a Set to get the union, which handles it much better. The only think you should notice is it might change the order of the elements.

Here is an example:

    List<String> setA = new ArrayList<String>();
    List<String> setB = new ArrayList<String>();

    setA.add("aa");
    setA.add("bb");
    setA.add("cc");

    setB.add("dd");
    setB.add("ee");
    setB.add("ff");

    Set<String> union = new HashSet<String>();
    union.addAll(setA);
    union.addAll(setB);

    System.out.println(setA);
    System.out.println(setB);
    System.out.println(union);
share|improve this answer

You remove the very first element (or any element for i=j) immediately since it is equal to itself.

share|improve this answer

You can change the way you are doing this. Add all elements of array1 to the arrayUnion. Then iterate over it and for each item check whether it is in the array2 (using array2.contains(<E>)). If it is not there remove it and you will end up with the union :-)

public static <E> ArrayList<E> union(ArrayList<E> array1,
        ArrayList<E> array2) {
    // arrayUnion will be the arrayList that will be returned
    ArrayList<E> arrayUnion = new ArrayList<E>(array1);
    // arrayUnion.addAll(array2);
    E current;

    for (int i = 0; i < arrayUnion.size(); i++) {       
            current = arrayUnion.get(i);
            if(!array2.contains(current)){
                arrayUnion.remove(current);
            }
    }

    return arrayUnion;
}
share|improve this answer

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