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I was implementing a code to return the nth Largest Number in an array, Following is the code I implemented;

public int getNthLargestNum(int [] givenArr, int n){

    int nTotal=0;
    int nNthNum = -1;

    // Remove Duplicates
    Set<Integer> o_hs = new TreeSet<Integer>();
    for(int insert=0; insert<givenArr.length; insert++)
    {o_hs.add(givenArr[insert]);}

    Iterator it  = o_hs.iterator();
    int count=0;

    while(it.hasNext()){
        if(count == n){

        // IF I MOVE THE LINE HERE
        // nNthNum = (Integer)it.next();

            break;
        }
        nNthNum = (Integer)it.next();
        count++; 
    }

return nNthNum;    
}

If I input the array givenArr[4,14,4,5,6,8,9] and n=2 the output is 5 for the above program but if I move the line nNthNum = (Integer)it.next(); inside the if loop it outputs 4.

So I was curious to know to iterate through the loop we should always implement it.next()?

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2 Answers 2

up vote 1 down vote accepted

A HashSet is inherently unordered, so getting the N-th item from the set is meaningless. You have no idea what value you get. The algorithm is inherently arbitrary. Instead iterate the sorted array to get the N-th largest value, or use a TreeSet which is not unordered.

Since you don't actually need the entire data in the sorted set you can remove items from the set as you go. Technically, since the set only ever has a maximum of 5 items if you do that each operation is O(1), making the whole algorithm O(n).

public int getNthLargestNum(int[] data, int n){
    TreeSet<Integer> set = new TreeSet<Integer>();
    foreach(int number : data)
    {
        set.add(number);
        if(set.size() > 5)
            set.pollFirst();
    }

    return set.first();
}
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I was planning to use Set to reomove the duplicates. But TreeSet would take a perfomrance hit if the data is huge right? Is there any other way to remove duplicates. I understand I can use HashMaps and store the count as value, is there any other alternative than HashMap too? –  JNL Jul 1 '13 at 20:47
    
TreeSet wouldn't incur any greater performance hit than you'd already get from Arrays.sort. –  Louis Wasserman Jul 1 '13 at 20:51
    
@JNL Calling Sort on your data will already have an equal performance impact to using a SortedSet. Adding n items to a SortedSet is O(nlog(n)), sorting n items is O(nlog(n)). By adding the items to a SortedSet you won't need to do the array sort. Also, focus on getting working data first, then optimize as needed. There's no sense using an algorithm that's way faster when it produces the wrong result. –  Servy Jul 1 '13 at 20:51
    
@Servy Thanks for the same Servy. I tried to break the earlier implementation with HashSet and including negative numbers and it did not work as intented. I edidted it to use TreeSet. I was wonderring if we can we do in O(n) time? –  JNL Jul 1 '13 at 20:56
    
@JNL Yous should include that in the question then, it's simple enough to do. –  Servy Jul 1 '13 at 21:09

Yes, if you don't do it.next(), next element in collection will not be fetched.

it.hasNext() call will not advance pointer to next element in collection.

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