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I was trying out the merging of two sorted linked list.

The code snippet doesn't work for below two list :

List 1 : 1->3->5->7->9->null
List 2 : 2->4->6->8->10->null

Expected List : 1->2->3->4->5->6->7->8->9->10->null

But the output for below programs turns out to be this :

Output :  1->2->3->4->5->6->7->8->9->null // element 10 is missing.

Am I missing something ? Live Demo : http://ideone.com/O7MBlo

class Node {

    Node next;
    int value;

    Node(int val) {
        this.value = val;
        this.next = null;
    }

    @Override
    public String toString() {
        Node cur = this;
        String str = "";

        while(cur != null) {
            str += cur.value+"->";
            cur = cur.next;
        }

        return str;
    }
}

class MergeLL {

    public static Node merge(Node n1, Node n2) {

        Node result = null;

        if(n1 != null && n2 != null) {
            if(n1.value < n2.value) {
                result = n1;
                result.next = merge(n1.next, n2);
            } else {
                result = n2;
                result.next = merge(n1, n2.next);
            }
        }
        return result;
    }

    public static void main(String[] args) {
        Node n1 = new Node(1);
        Node n3 = new Node(3);
        Node n5 = new Node(5);
        Node n7 = new Node(7);
        Node n9 = new Node(9);

        n1.next = n3;
        n3.next = n5;
        n5.next = n7;
        n7.next = n9;
        n9.next = null;

        Node n2 = new Node(2);
        Node n4 = new Node(4);
        Node n6 = new Node(6);
        Node n8 = new Node(8);
        Node n10 = new Node(10);

        n2.next = n4;
        n4.next = n6;
        n6.next = n8;
        n8.next = n10;
        n10.next = null;

        System.out.println("Merge : " + merge(n1, n2));
    }
}
share|improve this question
    
What about adding all elements to a single collection, sort it then loop to update attribute next ? –  Arnaud Denoyelle Jul 19 '13 at 11:55

5 Answers 5

up vote 7 down vote accepted

You need to add two more conditions, for when either n1 or n2 exhausts earlier. So, your condition - n1 != null && n2 != null, will only work in the case when both the list are of same size.

Just add code for below two conditions, after that if:

if(n1 != null && n2 != null) {
        if(n1.value < n2.value) {
            result = n1;
            result.next = merge(n1.next, n2);
        } else {
            result = n2;
            result.next = merge(n1, n2.next);
        }

} else if (n1 != null) {  
    result = n1;  // Add all the elements of `n1` to `result`
} else if (n2 != null) {
    result = n2;  // Add all the elements of `n2` to `result`
}

Actually, you don't need to build a new result list there. You can simply extend one of the passed Nodes.

You can modify your method as below:

public static Node merge(Node n1, Node n2) {
    if (n1 == null) return n2;
    if (n2 == null) return n1;

    if (n1.value < n2.value) {
        n1.next = merge(n1.next, n2);
        return n1;
    } else {
        n2.next = merge(n2.next, n1);
        return n2;
    }
}
share|improve this answer
    
I tried this .. else if(n1 != null) { result.next = n1; } else if(n2 != null) { result.next = n2; } .. but it throws NPE .. !! –  tmgr Jul 19 '13 at 11:54
    
@tm99. Updated the code. Also check the 2nd code I've posted. It would be much cleaner. –  Rohit Jain Jul 19 '13 at 12:00
    
thanks for your clean code! –  tmgr Jul 19 '13 at 13:59
    
@tm99. You're welcome :) –  Rohit Jain Jul 19 '13 at 14:01
    
Can you help me with this ? stackoverflow.com/questions/17748078/… –  tmgr Jul 19 '13 at 14:03

A recursive algorithm has a base condition.So your base condition are:

  • empty list n1 and n2
  • n1 empty and n2 not empty.
  • n2 empty and n1 empty.

Handle your base conditions 2 and 3 well as:

In condition 2, base condition is n2 empty so we will return n1:

else if(n1!=null ){
        result=n1;
    }

In condition 3, base condition is n1 empty so we will return n2:

else if(n2!=null ){
        result=n2;
    }

Hence problem is in design of your base conditions in algorithm!!

So try this, it surely works

public static Node merge(Node n1, Node n2) {
    Node result = null;

    if(n1 != null && n2 != null) {
        if(n1.value < n2.value) {
            result = n1;
            result.next = merge(n1.next, n2);
        } else {
            result = n2;
            result.next = merge(n1, n2.next);
        }

    }
    else if(n1!=null ){
        result=n1;
    }
    else if(n2!=null){
        result=n2;
    }
    return result;
}

Good luck!!

Edit: This link should help you in designing recursive algorithms.

share|improve this answer
    
thanks...it works ow!!!!!!!! –  tmgr Jul 19 '13 at 11:56
    
So pls mark it as answer!! –  rahulserver Jul 19 '13 at 11:57
if(n1 != null && n2 != null) {

What happens when one of the lists is null but the other one is not?

It returns null. But instead it should return the list that is not null.

A possible solution would be like;

if(n1 == null)
  return n2;
if(n2 == null)
  return n1;

if(n1.value < n2.value) {
  result = n1;
  result.next = merge(n1.next, n2);
  } else {
  result = n2;
  result.next = merge(n1, n2.next);
}
share|improve this answer

It can be optimized too. Just for understanding

public static Node merge(Node n1, Node n2) {

        Node result = null;

        if(n1 != null && n2 != null) {
            if(n1.value < n2.value) {
                result = n1;
                result.next = merge(n1.next, n2);
            } else {
                result = n2;
                result.next = merge(n1, n2.next);
            }
        }
        else if(n1 != null) {
            result = n1;
            result.next = merge(n1.next, n2);
        }
        else if(n2 != null) {
            result = n2;
            result.next = merge(n1, n2.next);
        }
        return result;
    }
share|improve this answer
package test;

import java.util.*;

public class TestMergeLists<T extends Comparable<? super T>>
{
    static <T extends Comparable<? super T>> List<T> merge(List<T> a,List<T>b)
    {
        Collections.sort(a);
        Collections.sort(b);
        List<T> result = new ArrayList<T>();
        int i = 0;
        int j = 0;

        for (;;)
        {
            T a1 = a.get(i);
            T b1 = b.get(j);
            if (a1.compareTo(b1) > 0)
            {
                result.add(b1);
                j++;
                if (j == b.size())// no more
                {
                    if (i < a.size() - 1)
                        result.addAll(a.subList(i + 1, a.size()));
                    break;
                }
            } else if (a1.compareTo(b1) == 0)
            {
                result.add(a1);
                result.add(b1);
                i++;
                if (i == a.size())
                {
                    if (j < b.size() - 1)
                        result.addAll(b.subList(j + 1, b.size()));
                    break;
                }
                j++;
                if (j == b.size())// no more
                {
                    if (i < a.size() - 1)
                        result.addAll(a.subList(i + 1, a.size()));
                    break;
                }
            } else
            {
                result.add(a1);
                i++;
                if (i == a.size())// no more
                {
                    if (j < b.size() - 1)
                        result.addAll(b.subList(j + 1, b.size()));
                    break;
                }
            }
        }
        return result;
    }
    public static void main(String args[])
    {
        List<String> a = new ArrayList<String>();
        a.addAll(Arrays.asList("the statement you found confusing is how MergeSort merges two ".split(" ")));
        List<String> b = new ArrayList<String>();
        b.addAll(Arrays.asList("then increment the current index for ".split(" ")));
        List<String> result = merge(a,b);
        System.out.println(result);
    }
}
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