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Can you explain what is wrong with this quicksort algorithm implementation in java?

static ArrayList<Integer> quickSort(ArrayList<Integer> array){

    if (array.size() <=1){
        ArrayList<Integer> a = new ArrayList<Integer>();

        return a;
    }

    int pivotIndex = array.size() / 2;

    int pivot = array.get(pivotIndex);
    ArrayList<Integer> left= new ArrayList<Integer>();
    ArrayList<Integer> right = new ArrayList<Integer>();

    for (int i = 0; i < array.size(); i++) {
        if (i!=pivotIndex){
        if (array.get(i) > pivot)
            right.add(array.get(i));
        else
            left.add(array.get(i));
        }

    }
    ArrayList<Integer> l = new ArrayList<Integer>();
    l.addAll(quickSort(left));
     l.add(pivot);
     l.addAll(quickSort(right)); 

    return l;

}
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Please ask some specific question. Any problem you faced with the implementation? Any errors, exceptions you got? Post it here. –  Rohit Jain Nov 17 '12 at 17:26
    
The code runs without exception or error but it doesnt sort the data! –  user847988 Nov 17 '12 at 17:32

3 Answers 3

One glaring error is that arrays of size one are not handled correctly. It's important to get this right since this is one of the base cases for the recursion.

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what is your suggestion for the base case? –  user847988 Nov 17 '12 at 17:34

instead of

if (array.size() <=1) {
    ArrayList<Integer> a = new ArrayList<Integer>();

    return a;
}

use

   if (array.size() <=1){
   return array
}
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The main issue with this algorithm - you're creating new ArrayLists for each invocation of the function. In this way you nullify the best thing about QuickSort - sorting in place without any additional memory. Try to work only with the first given array.

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