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There are two arraylists:

ArrayList<Integer[]> arr1 = new ArrayList<Integer[]>();
ArrayList<Integer[]> arr2 = new ArrayList<Integer[]>();
arr1.add(new Integer[]{1,2,3});
arr1.add(new Integer[]{1,2,2});
arr1.add(new Integer[]{1,2,3});
arr1.add(new Integer[]{1,1,1});
arr1.add(new Integer[]{1,1,1});

arr2.add(new Integer[]{1,2,3});
arr2.add(new Integer[]{1,2,2});

How to delete rows from arr1 that appear in arr2 and that are non-unique in arr1? E.g. in this example I would need to delete only {1,2,3}, because it appears more than once in arr1. The only solution that comes to my mind is to use 4 FOR loops, but it seems to be very inefficient solution.

Edit#1 Resulting arr1: {1,2,3},{1,2,2},{1,1,1},{1,1,1}

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1  
In your example, what do you expect the resulting arr1 to be? –  NPE Jan 10 '12 at 18:38
    
Resulting arr1: {1,2,3},{1,2,2},{1,1,1},{1,1,1} –  Klausos Klausos Jan 10 '12 at 18:49

4 Answers 4

up vote 2 down vote accepted

In case if you can use a List instead of array then you could do something as follows:

List<List<Integer>> arr1 = new ArrayList<List<Integer>>();        
List<List<Integer>> arr2 = new ArrayList<List<Integer>>();

arr1.add(Arrays.asList(new Integer[]{1, 2, 3}));
arr1.add(Arrays.asList(new Integer[]{1, 2, 3}));
arr1.add(Arrays.asList(new Integer[]{1, 2, 2}));
arr1.add(Arrays.asList(new Integer[]{1, 2, 3}));
arr1.add(Arrays.asList(new Integer[]{1, 1, 1}));
arr1.add(Arrays.asList(new Integer[]{1, 1, 1}));

arr2.add(Arrays.asList(new Integer[]{1, 2, 3}));
arr2.add(Arrays.asList(new Integer[]{1, 2, 2}));

System.out.println(arr1);
System.out.println(arr2);

Set<List<Integer>> set1 = new HashSet<List<Integer>>();        
Iterator<List<Integer>> it = arr1.iterator(); 

while(it.hasNext()) {
    List<Integer> curr = it.next();
    if(!set1.add(curr) && arr2.contains(curr)) {
        it.remove();
    }
}

System.out.println(arr1);

Output:

[[1, 2, 3], [1, 2, 3], [1, 2, 2], [1, 2, 3], [1, 1, 1], [1, 1, 1]]
[[1, 2, 3], [1, 2, 2]]
[[1, 2, 3], [1, 2, 2], [1, 1, 1], [1, 1, 1]]
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How can I use Iterator in case I have List<MyClass> instead of List<Integer>? –  Klausos Klausos Jan 10 '12 at 19:08
    
@KlausosKlausos: Iterator<MyClass> it = myClassList.iterator(); –  Bhesh Gurung Jan 10 '12 at 19:10
    
I assume that if (!set1.add(curr) && selectedTokens.contains(curr)) does not work properly for List<MyClass>. MyClass has two fields: String key and Integer[] values. I checked your solution. It works fine for List<Integer>, but does not work for MyClass (?). –  Klausos Klausos Jan 10 '12 at 19:26
    
Make sure your class MyClass provides a proper implementations for the equals and the hashCode methods. –  Bhesh Gurung Jan 10 '12 at 19:28
    
@KlausosKlausos: If you are having trouble implementing those methods, post a new question. –  Bhesh Gurung Jan 10 '12 at 19:31

Sort list 1. Loop through list 1 starting at [1]. If there is a duplicate (a[i] == a[i-1]), then look for that array in list 2. If it's there, remove a[i].

Note that in Java, you cannot modify a list as you loop through it so you'll actually need to keep a separate list of arrays that you want to delete from list 1 once you're done looping.

This will result in removing all of the duplicates from list 1.

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Is it an efficient solution for two-dimensional arrays like arr1: {1,2,3},{1,2,2},{1,1,1}? –  Klausos Klausos Jan 10 '12 at 18:58

Use Sets, that would remove the non-uniques. You then can use removeAll and retainAll. Use a wrapper class for the Integer[] (or int[]) which can use Arrays.equals.

public class IntArray implements Comparable<IntArray> {
    Integer[] items;

    public IntArray() {
        this.items = new Integer[0];
    }

    public IntArray(int... items) {
        this.items = items;
    }
    ...
}
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How can I use removeAll and retainAll in this particular case? –  Klausos Klausos Jan 10 '12 at 18:59
    
arr1.removeAll(arr2) would shrink arr1 by removing all that also are in arr2. I mentioned retainAll only for its obscure name and its equal usefulness for the complement: removing the elements that are not in arr2. –  Joop Eggen Jan 10 '12 at 20:13

Using list will be something like this:

Loop through 2 
For every element A, loop through 1 and delete element B if it matches A.

If you simply leave the deleted element as null and only clean up the empty spot left by the deletion in the end rather than trying to shift the elements all the time, this will reduce the amount of shifting(an O(n) operation) and improve overall time from O(n^2*m^2) to O(n*m).

If you can use sorted List1, you can look up and delete in O(logn), the total complexity will then be mlogn

If you can use HashMap, which will allow you to look up and delete in O(1), you can further decrease the time complexity to basically O(m), then you can use one loop to go through list 2 and remove from set 1 all the same element.

Loop through List 1
     Add element to HashMap:Element -> Count (the count is here to preserve duplicates)
     If already exist in HashMap, Count++
Loop through List 2 
     For every element A, set B.get(A) = 0
Iterate through the HashMap
     For every entry, add the entry to the List *Count* times (rebuild list)

If you are doing this for real, there are helper methods each step of the way, use them.

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