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I'm having problems removing duplicates from an ArrayList. It's for an assignment for college. Here's the code I have already:

public int numberOfDiffWords() {
    ArrayList<String> list = new ArrayList<>();
    for(int i=0; i<words.size()-1; i++) {
        for(int j=i+1; j<words.size(); j++) {
            if(words.get(i).equals(words.get(j))) {
                // do nothing
            }
            else  {
                list.add(words.get(i));
            }
        }
    }
    return list.size();
}

The problem is in the numberOfDiffWords() method. The populate list method is working correctly, as my instructor has given me a sample string (containing 4465 words) to analyse - printing words.size() gives the correct result.

I want to return the size of the new ArrayList with all duplicates removed.

words is an ArrayList class attribute.

UPDATE: I should have mentioned I'm only allowed to use dynamic indexed-based storage for this part of the assignment, which means no hash-based storage.

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closed as too localized by bmargulies, jusio, Lafada, evilone, David Segonds Dec 3 '12 at 9:02

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1  
Post your code here. –  arshajii Dec 2 '12 at 16:48
    
sorry, I thought I read somewhere on the site before to post it on an external site if it was too long... –  Kieran Dec 2 '12 at 16:49
1  
If you are allowed to use the 'contains' method then this assignment is very straightforward. –  Perception Dec 2 '12 at 16:51
    
doesn't work for me...gives me 9965880 different words. –  Kieran Dec 2 '12 at 16:53
    
For your own personal knowledge, this could be done in one line: new HashSet<String>(words).size(), and this would probably be the most efficient way of doing it. –  arshajii Dec 2 '12 at 16:55

5 Answers 5

up vote 5 down vote accepted

Since this is an assignment, I'm not going to write code. However, I'd suggest a different approach.

  • iterate through the array as you are doing
  • use the subList() method to construct a view of the array from the start up to but not including the current element
  • use contains() to test whether the current element is in the sublist constructed in the previous step
  • just count how many elements are found that are not contained in the prefix

My recommended approach should result in much simpler and easier-to-understand code. Note that all this is an O(n2) solution (as is yours, if you were to get it right).

Another approach, if modifying the array is allowed by the assignment, is to sort the array. Then equal elements will be adjacent and it is easy to count how many are unique. This is an O(n log(n)) approach. (You can also just make a copy of the array, which won't change the assymptotic complexity, but will slow down the solution.)

You won't get better than that without using a hashing function of some kind (HashSet or HashMap).

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Upvoting as this is close enough for the OP, but there is an (nlogn) solution that doesn't use hashing. –  Perception Dec 2 '12 at 17:02
    
@Perception - I believe that I mentioned that. I don't know all the constraints that apply in OP's assignment. –  Ted Hopp Dec 2 '12 at 17:03
    
Ah, I didn't get the 'copy-array' part of your solution, but you did mention nlogn. Upvoted regardless! –  Perception Dec 2 '12 at 17:06
    
@Perception - I didn't put that first because I don't know all the constraints that apply in OP's assignment. The first approach is the only one that uses only indexing into arrays (and subList, which I would hope counts as indexing). Thanks for the upvote, by the way! –  Ted Hopp Dec 2 '12 at 17:09
    
Ted, thanks for the advice. I'm not sure how to properly use the subList() method to be honest. Is it something like (inside the second loop) if(words.subList(0, j-1).contains(words.get(j))) // add to new list ? –  Kieran Dec 2 '12 at 17:26

If you intend on using that method, then this is your problem: Modify the if-then-else such that it does not add the words inside the second loop. Verify in the inner loop whether there are duplicates, with a boolean variable, and if there is no duplicate, add the word to your list after the second loop.

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Instead of running loop for whole length you should check duplicate by calling contains() method on the arraylist.

  word.subList(fromIndex, toIndex).contains(arg);

this way your code will be very succinct.

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agree @Ted; have modified. –  rai.skumar Dec 2 '12 at 17:04
1  
Much better (and pretty much what I outlined. :) ) –  Ted Hopp Dec 2 '12 at 17:05

If you use a nested for loop structure to iterate through, remove dupes of each element, and then add the remaining elements to a new array, you can return a smaller array. I'm not sure if this is the fastest way to do it, but it works.

// Delete all dupes
for ( i=0; i<words.length; i++ ) {
  String word = words[i];
  for ( j=(i+1); j<words.length; j++) {
     if (words[j] == words[i]) {
        words[j] = null;
     }
  }
}

// Count the array w/o nulls
int countEl = 0;
for (i=0; i<words.length; i++) {
  if (words[i] != null) {
     countEl++;
  }
}

// Make a new array
String[] newArray = new String[countEl];

for (i=0; i<words.length; i++) {
  if (words[i] != null) {
    countEl.push(words[i]);
  }
}
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1  
You don't really want to use == to check equality of strings. –  Don Roby Dec 2 '12 at 17:05
    
Since when can you call a method (like push()) for an int? countE1.push(words[i]); won't compile. –  Ted Hopp Dec 2 '12 at 18:58

If you would like to make it more simple, try this

final ArrayList duplicateWords = new ArrayList() ;
ArrayList<String> words = new ArrayList() {
    @Override
    public boolean add(Object e) {
        if( !contains(e) ) {
        return super.add(e);
        } else {
            duplicateWords.add(e);
            return false ;
        }
    }
};
System.out.println("Unique words : " + words.size());
System.out.println("Duplicate words : " + duplicateWords.size());

This is an alternate answer.

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