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i have an arrayList ( named error_dub ) i want to print the duplicates only one time here is my code

for(x=0 ; x<=error_dub.size()-1 ; x++){

     for(int h=x+0 ; h<=error_dub.size() ; h++){

            if(error_dub.get(x).equals(error_dub.get(h) && x!=h){

                 System.out.println(error_dub.get(x)+" is duplicated ");
              }
       }
  } 

here the line is printed more than once so how can i printed only once ?

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Consider using the enhanced for: for(Object obj : objects) to make your code more readable and better represent what you're doing. –  Philip Whitehouse Dec 24 '12 at 12:26
    
can you sort the array ? that would make the answer much simpler.. –  Oren Dec 24 '12 at 12:30
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3 Answers 3

Use two sets (this assumes X is the class of your object):

// Returns a set of all duplicates in a list
public Set<X> getDuplicates(final List<X> list)
{
    final Set<X> dups = new HashSet<X>();
    final Set<X> set = new HashSet<X>();

    /*
     * Cycle through all elements in the original list. Add it to "set":
     *
     * - if the .add() method returns true, this is the first time the element is seen;
     * - if it returns false, then this is not the first time, it is a duplicate:
     *   add it to "dups".
     */
    for (final X element: list)
        if (!set.add(element))
            dups.add(element);

    return dups;
}

Set's .add() will return false if the set is not modified as a result of the operation, which means if the element was already there.

Copy/paste that function into your existing code and replace the snippet above with:

for (final X dup: getDuplicates(error_dub))
    System.out.println(dup + " is duplicated");

Important note: the getDuplicates() function as it is written will NOT respect element order. If order matters to you, replace dups with a LinkedHashSet instead of a HashSet.

share|improve this answer
    
set will have the same content as dups, so why not just use one collection instead? –  André Hoffmann Dec 24 '12 at 12:31
    
It will not. set will contain all unique elements in the original list, and that includes elements appearing only once. It is only if the element is already in there, ie if set.add() returns false, that the element is added to dups. –  fge Dec 24 '12 at 12:32
    
Okay, my bad, but couldn't you just use contains() and one collection then? –  André Hoffmann Dec 24 '12 at 12:35
    
That would be another solution, sure, but the difference in cost is negligible: in all events, the Set implementation will have to compute the element's hash code and call .equals() if the hash code has already been seen. –  fge Dec 24 '12 at 12:37
    
sorry but what modification can i do on my code ?? –  user1926638 Dec 24 '12 at 12:38
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you can use .add() method of set to check for duplicates. Method posted below adds list elements to set1. If element is a duplicate (.add() returns true), then element is adde to setToReturn

public Set<Integer> findDuplicates(List<Integer> listContainingDuplicates)
{
    final Set<Integer> setToReturn = new HashSet();
    final Set<Integer> set1 = new HashSet();

    for (Integer yourInt : listContainingDuplicates)
    {
        if (!set1.add(yourInt))
        {
            setToReturn.add(yourInt);
        }
    }
    return setToReturn;
}
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    ArrayList<String> ar=new ArrayList<String>();
    ArrayList<String> ar2=new ArrayList<String>();

    ar.add("1");
    ar.add("2");
    ar.add("3");
    ar.add("4");
    ar.add("5");
    ar.add("1");
    ar.add("2");
    ar.add("1");

    for(int x=0;x<ar.size();x++)
    {
        if(!ar2.contains(ar.get(x)))
        {
             for(int y=x+1;y<ar.size()-1;y++)
            {

                  if((ar.get(y).equals(ar.get(x))))
                {
                    System.out.print("repeating "+ar.get(x));
                    ar2.add(ar.get(x));
                    break;

                }  


            } 

        } 

    }

you can do like this.

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edited. forgot to add break first time. –  Sachin Kadian Dec 24 '12 at 13:14
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