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I am trying to write a program that counts the number of comparisons in a quicksort program.

This is my code

package algo_quicksort;

public class Algo_quicksort {

    public static int partition(int[]A,int p,int r){
        int x=A[p];
        int i=p+1;
        int temp;
        for(int j=p+1;j<r;j++){
            if(A[j]<x){//if A[j] is bigger than the pivot do nothing 
                temp=A[j];
                A[j]=A[i];
                A[i]=temp;
                i++;
            }
        }
        temp=A[p];
        A[p]=A[i-1];
        A[i-1]=temp;
        return i-1;
    }
    public static long quickSort(int[]A,int startPos,int length){
        if(length==1){
            return 0;
        }
        else{
            if(startPos<length){
            int pivot= partition(A,0,length);
          quickSort(A,startPos,pivot+1);
          quickSort(A, pivot+2,length); 
            return length-startPos-1;
        }
            else{
                return 0;
            }
    }
    }


    public static void main(String[] args) {
        int a[]={3,2,4};
        System.out.println("# of comparisons is: " +quickSort(a,0,a.length));

        System.out.println("A[] after quicksort is: ");

        for(int i=0;i<a.length;i++){
            System.out.print(a[i]+"  ");
        }

    }
}

it works perfectly for any array of size 3 or less, but if it is any bigger than that it gives me a stackoverflow exception at the recursive call I tried debugging my code but could not figure out where it's going wrong?

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migrated from programmers.stackexchange.com Aug 5 '13 at 17:23

This question came from our site for professional programmers interested in conceptual questions about software development.

2 Answers 2

You have a recursive function, quickSort().

Usually when you get a stackoverflow condition with recursive methods it is because you either aren't getting the "end" condition right (or when to stop) or your input parameter is not correct.

I experimented with your code by tweaking the input parameter and got the following result.

int a[]={3,2,4,5};    
System.out.println("# of comparisons is: " +quickSort(a,0,a.length -1));
//changed from a.length to a.length - 1

Result

# of comparisons is: 2 A[] after quicksort is: 2 3 4 5


However I do not believe this is the fix because if I change the array to "int a[]={5,3,2,4};", then the stackoverflow error occurs again :(

This leads me to believe that there is something wrong in your end condition...somewhere in quickSort(). Check wikipedia or stackoverflow and validate your code with a correct implementation.


So after writing some tests for this, it seems that your implementation of quicksort is incorrect. It's returning zero if the length is 1. However if I pass it an array of length one with the value of 5, zero is returned whereas I would expect 5.

This means that your stopping condition is incorrect. After some googling, I found the following:

  1. First = Last; only one element in array means sorted.
  2. First > Last; no values in array means sorted.

Then you need to take a look at your arguments for quicksort. I don't believe you need start position or array length. It should just need the array itself.

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If you have four elements in the array, the first pass is 3 comparisons + 2 in the second pass + 1 in the third pass, or 6 deep. You must be pushing something onto the stack for each comparison. This suggests your stack is 8 levels deep given the other code calling subroutines, however stacks these days are usually done with stack pointers and might be thousands of entries long. JVM Organization explains the overall structure.

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