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I am trying to create a simple program to find duplicate elements in two arrays. return True if duplicate elements exists else return false.

I have written this much of code but it always returns false.

 List<String> list1= new ArrayList<String>();

  list1.add("abc");
  list1.add("xyz");
  list1.add("rst");

 List<String> list2= new ArrayList<String>();

  list2.add("rst");
  list2.add("would");
  list2.add("why");

 Set<String> set1 = new HashSet<String>(list1);
 Set<String> set2 = new HashSet<String>(list2);

 if(set1.contains(set2)){
      System.out.println("exists");
 }else
      System.out.println("doesn't exists");

the above code should print "exists" i.e returns TRUE, but it doesn't. Am I missing something badly here?

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up vote 3 down vote accepted

You are adding all your elements to list1 twice, rather than to list2 in the second instance. This means that set2 will be empty, and there will therefore be no intersection between the two.

I'm also very dubious of your use of HashSet.contains. Don't you really want to check for set intersection, rather than the existence of a reference to set2 in set1? That doesn't seem well-typed. I'd suggest you want to do something like:

Set<String> intersection = new HashSet<String>(set1);
intersection.retainAll(set2);

if (intersection.size() > 0) {
    // print true
} else {
    // print false
}
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i figured it out :), typo mistake edited my question.. – S Jagdeesh May 7 '13 at 6:51
    
I can't imagine that it's working now though? – Gian May 7 '13 at 6:56
    
@SJagdeesh Yeah as gian said,without iteration it wont work even now I guess. – sᴜʀᴇsʜ ᴀᴛᴛᴀ May 7 '13 at 7:09

You are asking set1 if it contains the entire set2, which it does not. set1 may contain an element in set2. You should use a loop or use retainAll or removeAll and then check if the new size is the same as the old size.

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Change your code to

 for (String string : set2) {
           if(set1.contains(string)){
                 System.out.println("exists");
           }else
                 System.out.println("doesn't exists");
           }

prints :

doesn't exists
exists
doesn't exists
share|improve this answer
    
This is objectively a different program to the one that the OP was trying to write, I think. This will do n lookups and write out n * m lines of 'exists' or not. The OP's program output exactly once if any element existed. – Gian May 7 '13 at 7:12
    
@Gian agreed gian I personally tested it.With a single if condition is it possible?? – sᴜʀᴇsʜ ᴀᴛᴛᴀ May 7 '13 at 7:16
    
Yes, it is. I gave an example of such a condition in my answer. – Gian May 7 '13 at 7:31
    
Yeah..seems tricky @Gian.Anyways +1 for the brain :) – sᴜʀᴇsʜ ᴀᴛᴛᴀ May 7 '13 at 7:34

Cehck out Set conatins() API

Your code does not check whether each element of set2 is available or not rather it checks whether set2 object is available.

If i modify your code like this then it will run fine :

     set1.addAll(set2);
     if(set1.containsAll(set2)){
          System.out.println("exists");
     }else
          System.out.println("doesn't exists");

To check whether a particular string object inside set2, one of the solution can be you iterate through it and check individually.

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