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How could I go about detecting (returning true/false) whether an ArrayList contains more than one of the same element in Java?

Many thanks, Terry

Edit Forgot to mention that I am not looking to compare "Blocks" with each other but their integer values. Each "block" has an int and this is what makes them different. I find the int of a particular Block by calling a method named "getNum" (e.g. table1[0][2].getNum();

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If "Block" is compared by an int, you should probably have hashCode return that same int and have equals compare those ints. –  Paul Tomblin Feb 19 '09 at 1:26

9 Answers 9

up vote 70 down vote accepted

Simplest: dump the whole collection into a Set (using the Set(Collection) constructor or Set.addAll), then see if the Set has the same size as the ArrayList.

List<Integer> list = ...;
Set<Integer> set = new HashSet<Integer>(list);

if(set.size() < list.size()){
    /* There are duplicates */
}

Update: If I'm understanding your question correctly, you have a 2d array of Block, as in

Block table[][];

and you want to detect if any row of them has duplicates?

In that case, I could do the following, assuming that Block implements "equals" and "hashCode" correctly:

for (Block[] row : table) {
   Set set = new HashSet<Block>(); 
   for (Block cell : row) {
      set.add(cell);
   }
   if (set.size() < 6) { //has duplicate
   }
}

I'm not 100% sure of that for syntax, so it might be safer to write it as

for (int i = 0; i < 6; i++) {
   Set set = new HashSet<Block>(); 
   for (int j = 0; j < 6; j++)
    set.add(table[i][j]);

...

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8  
Make sure to implement hashCode/equals as well. –  jon077 Feb 18 '09 at 21:27
1  
Or even a bit easier: wrap it when creating the set, e.g. new HashSet(list), instead of using addAll. –  Fabian Steeg Feb 18 '09 at 21:28
    
@jon077: That depends on your definition of "duplicate". –  Michael Myers Feb 18 '09 at 21:29
    
Would the process of detecting the elements in a 2D array be the same? For example, checking from array[0][0] to array[0][6] (a 'row')..? Many thanks, Terry –  Terry Feb 18 '09 at 21:29
    
Each object in the array holds an integer value. By "duplicate", the object would have the same integer value. –  Terry Feb 18 '09 at 21:30

Improved code, using return value of Set#add instead of comparing the size of list and set.

public static <T> boolean hasDuplicate(Iterable<T> all) {
    Set<T> set = new HashSet<T>();
    // Set#add returns false if the set does not change, which
    // indicates that a duplicate element has been added.
    for (T each: all) if (!set.add(each)) return true;
    return false;
}
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2  
+1 for a more efficient solution –  assylias Dec 19 '12 at 9:47
2  
you'd think somethign like this might be in the core library –  NimChimpsky Dec 19 '12 at 10:01
2  
You can make this even more general by changing the signature to hasDuplicate(Iterable<T> iterable) –  Enwired Oct 10 '13 at 0:17
    
Good point, changed! –  akuhn Oct 10 '13 at 4:35
    
Would it be more efficient to tell the HashSet how much space to allocate: Set<T> set = new HashSet<T>(list.size());? Given a List parameter I think it is more efficient if it is common for the list to not contain duplicates. –  Paul Jackson Apr 28 at 22:50

If you are looking to avoid having duplicates at all, then you should just cut out the middle process of detecting duplicates and use a Set.

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Make sure to implement hashCode/equals :) –  jon077 Feb 18 '09 at 21:36
    
@jon077: Not necessarily, as I just said. –  Michael Myers Feb 18 '09 at 21:38

Improved code to return the duplicate elements

  • Can find duplicates in a Collection
  • return the set of duplicates
  • Unique Elements can be obtained from the Set

public static <T> List getDuplicate(Collection<T> list) {

    final List<T> duplicatedObjects = new ArrayList<T>();
    Set<T> set = new HashSet<T>() {
    @Override
    public boolean add(T e) {
        if (contains(e)) {
            duplicatedObjects.add(e);
        }
        return super.add(e);
    }
    };
   for (T t : list) {
        set.add(t);
    }
    return duplicatedObjects;
}


public static <T> boolean hasDuplicate(Collection<T> list) {
    if (getDuplicate(list).isEmpty())
        return false;
    return true;
}
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That's pretty awesome. you have some invalid code, and maybe it's not the most optimal way, but your approach totally rocks! (and it works great) –  Jules Colle Oct 3 '12 at 19:23

If your elements are somehow Comparable (the fact that the order has any real meaning is indifferent -- it just needs to be consistent with your definition of equality), the fastest duplicate removal solution is going to sort the list ( 0(n log(n)) ) then to do a single pass and look for repeated elements (that is, equal elements that follow each other) (this is O(n)).

The overall complexity is going to be O(n log(n)), which is roughly the same as what you would get with a Set (n times long(n)), but with a much smaller constant. This is because the constant in sort/dedup results from the cost of comparing elements, whereas the cost from the set is most likely to result from a hash computation, plus one (possibly several) hash comparisons. If you are using a hash-based Set implementation, that is, because a Tree based is going to give you a O( n log²(n) ), which is even worse.

As I understand it, however, you do not need to remove duplicates, but merely test for their existence. So you should hand-code a merge or heap sort algorithm on your array, that simply exits returning true (i.e. "there is a dup") if your comparator returns 0, and otherwise completes the sort, and traverse the sorted array testing for repeats. In a merge or heap sort, indeed, when the sort is completed, you will have compared every duplicate pair unless both elements were already in their final positions (which is unlikely). Thus, a tweaked sort algorithm should yield a huge performance improvement (I would have to prove that, but I guess the tweaked algorithm should be in the O(log(n)) on uniformly random data)

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In this case, n is 6 so I wouldn't waste a lot of time on implementation details, but I'll keep your idea of the special heap sort if I ever need to do something like that. –  Paul Tomblin Feb 19 '09 at 1:25
    
I don't understand the third paragraph. Mergesort and heapsort are both O(nlog(n)), not O(log(n)) as you write; even if you exit once you identify a duplicate, that still doesn't change your time complexity... –  ChaimKut May 6 '12 at 14:33

Simply put: 1) make sure all items are comparable 2) sort the array 2) iterate over the array and find duplicates

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To know the Duplicates in a List use the following code:It will give you the set which contains duplicates.

 public Set<?> findDuplicatesInList(List<?> beanList) {
    System.out.println("findDuplicatesInList::"+beanList);
    Set<Object> duplicateRowSet=null;
    duplicateRowSet=new LinkedHashSet<Object>();
            for(int i=0;i<beanList.size();i++){
                Object superString=beanList.get(i);
                System.out.println("findDuplicatesInList::superString::"+superString);
                for(int j=0;j<beanList.size();j++){
                    if(i!=j){
                         Object subString=beanList.get(j);
                         System.out.println("findDuplicatesInList::subString::"+subString);
                         if(superString.equals(subString)){
                             duplicateRowSet.add(beanList.get(j));
                         }
                    }
                }
            }
            System.out.println("findDuplicatesInList::duplicationSet::"+duplicateRowSet);
        return duplicateRowSet;
  }
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The real answer is to learn what the different types of collections actually are.

  • List - ordered, null is ok, duplicates ok
  • Set - may be ordered, null may be ok, duplicates are not ok.

To be sure read the Javadoc and learn what Queues and all the other types are.

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While an interesting point, this is not an answer to the question. –  james.garriss Jun 16 at 19:52
    String tempVal = null;
    for (int i = 0; i < l.size(); i++) {
        tempVal = l.get(i); //take the ith object out of list
        while (l.contains(tempVal)) {
            l.remove(tempVal); //remove all matching entries
        }
        l.add(tempVal); //at last add one entry
    }

Note: this will have major performance hit though as items are removed from start of the list. To address this, we have two options. 1) iterate in reverse order and remove elements. 2) Use LinkedList instead of ArrayList. Due to biased questions asked in interviews to remove duplicates from List without using any other collection, above example is the answer. In real world though, if I have to achieve this, I will put elements from List to Set, simple!

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