I want to implement merge sort just with linked list without any array, using java. But i got stuck in a logical error; my code eliminates some inputs and sorts the remains. I have applied three class: Divide , Merg , MergSort as below:

public class Divide {

    List firstList = new List();
    List secondList = new List();

    public int GetLength(List list) {
        int Length = 0;
        Link temp = new Link();
        temp.next = list.head.next;
        while (temp.next != null) {
            temp.next = temp.next.next;
            Length++;
        }

        return Length;
    }

    public List rightSide(List list) {
        int Length = GetLength(list);
        Link temp = new Link();
        temp.next = list.head.next;

            for (int i = 1; i <= Math.floor(Length / 2); i++) {
                firstList.Insert(temp.next.data);
                temp.next = temp.next.next;
            }
            return firstList;
    }

    public List leftSide(List list) {
        int Length = GetLength(list);
        Link temp = new Link();
        temp.prev = list.head.prev;

            for (int i = 1; i <= Math.ceil(Length / 2); i++) {
                secondList.Insert( temp.prev.data);
                temp.prev =  temp.prev.prev;
            }
            return secondList;
        }
    }

merge:

public class Merg {

    public List MergedList = new List();
    private  List Temp = new List();

    public List Merg (List one, List two)
    {
        Link onelink = new Link();
        Link twolink = new Link();

        onelink.next = one.head.next;
        twolink.next = two.head.next;

        while (onelink.next!= null || twolink.next!= null)
        {

            if(onelink.next!= null && twolink.next != null)
            {
              if(onelink.next.data < twolink.next.data)
              {
                  Temp.Insert(onelink.next.data);
                  onelink.next = onelink.next.next;
              }
              else
              {
                  Temp.Insert(twolink.next.data);
                  twolink.next = twolink.next.next;
              }

            }

            if (onelink.next != null && twolink.next == null)
            {
                Temp.Insert(onelink.next.data);
                onelink.next = onelink.next.next;
            }
            if (twolink.next != null && onelink.next == null)
            {
                Temp.Insert(twolink.next.data);
                twolink.next = twolink.next.next;
            }

        }

        if (Temp.head.next.data > Temp.head.prev.data)
        {
            while (Temp.head.next != null)
            {
                MergedList.Insert(Temp.head.next.data);
                Temp.head.next = Temp.head.next.next;
            }
        }

        else
        {
            MergedList.head.next = Temp.head.next;
        }


        return MergedList;
    }

}

MergSort:

public class MergSort {

    public List mergSort (List list)
    {
        Divide divide = new Divide();
        Merg merg = new Merg();

        if (divide.GetLength(list) > 1) {
            return merg.Merg(mergSort(divide.leftSide(list)), mergSort(divide.rightSide(list)));
        }
        else
        {
            return list;
        }
    }
}

Although i have wrote the link and list classes too, but i think there is no trouble in there. (However if it was necessary i will mention them) Now, when i import some inputs such that : {100,3,1,7,6} the Output is: 3,6,7,100. (1 has been eliminated!) or another example: {100,3,1} the output is: 1,100 (where is 3??)

I wonder if someone can help me...

Link:

public class Link {
    public double data;
    public Link prev;
    public Link next;
}

list:

public class List {
    public Link head = new Link();

    public void setHead(Link head) {
        this.head = head;
        head.prev = null;
        head.next = null;
    }

    public void Insert(double x)
    {
        Link link = new Link();
        link.data = x;
        if (head.next == null)
        {
            head.next = link;
            head.prev = link;
        }
        else
        {
            head.next.prev = link;
            link.next = head.next;
            head.next = link;
        }
    }

    public Link delete()
    {
        Link temp = new Link();
        temp = head;
        head = head.next;
        return temp;
    }

    public Link search(double x)
    {
        Link link = new Link();
        link.next = head;
        while (link.next.data != x)
        {
            link.next = link.next.prev;
        }

        return link.next;
    }
}
  • 1
    Debug your code please. It will show you what's happening step by step. – f1sh Nov 30 '16 at 10:23
  • Have you tried debugging it using the debugger? And why do you have different classes for divide and merge? Isn't that a bit too complicated? – rafid059 Nov 30 '16 at 10:23
  • Where is the link and list classes ? – Prasath Nov 30 '16 at 10:27
  • Your Merg class only checks for onelink.next.data < twolink.next.data (and vice-versa) - what if they are equal? – OldCurmudgeon Nov 30 '16 at 10:39
  • @Prasath I'v wrote them but really do you think may the trouble was in there? i mean that there is no suspected case in the other classes? if so i edit my post and add them... – Shahab_HK Nov 30 '16 at 10:48
up vote 0 down vote accepted

I have debugged a lot but I can't make sense of your Divide class. You don't need it at all.

public class MergSort {

    public List mergSort(List list) {
        Divide divide = new Divide();
        Merg merg = new Merg();
        int n = list.getLength();
        if (n > 1) {
//            return merg.Merg(mergSort(divide.leftSide(list)), mergSort(divide.rightSide(list)));
            Link cursor = list.head.next;
            List left = new List();
            List right = new List();
            // for (i = 0; ....... i will be 0 if head is not dummy
            for (int i = 1; cursor != null; i++) {
                if (i <= n/2)
                    left.Insert(cursor.data);
                else
                    right.Insert(cursor.data);
                cursor = cursor.next;
            }
            left = mergSort(left);
            right = mergSort(right);

            return merg.Merg(left, right);

        } else {
            return list;
        }
    }
}

Create a getLength() method in your List class. It should be in List class because you want the length of your list.

public int getLength() {
    int Length = 0;
    Link temp = head.next;
    while (temp != null) {
        temp = temp.next;
        Length++;
    }

    return Length;
}

Also, rename your Link class to Node. Because a Link means a link between to objects or an edge between nodes. What you really want is a Node. It's confusing.

In your List class, you have defined head like this:

public Link head = new Link();

I don't see why you would need a dummy headed linked list.

A linked list with a dummy head is basically a head with no values and hence dummy.

enter image description here

Because of your dummy head, you are starting your for loops in Divide class from i = 1. Why complicate things? If you really need a dummy head, then keep it or define it like this:

public Link head;
// don't instantiate the head. It's just a reference

Also, you seem to create a half-circular linked list. What I mean by that is that the head.prev points to the last link/node in the list. If you truly want a circular linked list then point your tail.next to head.

Here is what a circular linked list looks like:

enter image description here

Or if you don't want a circular list, then don't point your head.prev to the last object.

In your Insert() method in List.java:

if (head.next == null)
{
    head.next = link;
    // remove head.prev = link;
}
  • In the case of a double linked list with a dummy (aka sentinel or head) node, then dummy.prev points to the last node in the list, and as you mentioned, dummy.prev.next (last node.next) points to dummy. – rcgldr Nov 30 '16 at 15:45
  • @rcgldr Conventionally, a double linked list with a dummy head has head.prev set to null. – rafid059 Nov 30 '16 at 15:53
  • @rcgldr Yes, I agree with you, but OP here didn't make it fully circular. In OP's implementation, lastNode.next == null. Also, in my previous comment, I was talking about double (but not circular) linked list. – rafid059 Nov 30 '16 at 19:29
  • Thanks for your response! your hints was useful for me. – Shahab_HK Dec 1 '16 at 15:17
  • @RafiduzzamanSonnet - even in the case of a null terminated list, using head.prev to point to last node allows for a fast append, using the dummy node as a container for the head and tail pointers. A sort would need to update head.prev when complete. I agree that a dummy node is not needed for a null terminated linked list. It would make more sense to have a dummy node for a circular list, but even that isn't needed. For a circular list, just a tail reference is needed, as head can be created at anytime using head = tail.next . – rcgldr Dec 1 '16 at 16:16

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