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This is a programming question asked during a written test for an interview. "You have two singly linked lists that are already sorted, you have to merge them and return a the head of the new list without creating any new extra nodes. The returned list should be sorted as well"

The method signature is: Node MergeLists(Node list1, Node list2);

Node class is below:

class Node{
    int data;
    Node next;
}

I tried many solutions but not creating an extra node screws things. Please help.

Here is the accompanying blog entry http://techieme.in/merging-two-sorted-singly-linked-list/

share|improve this question
    
is the last element from list1 smaller than first element from list2? –  Pier-Alexandre Bouchard May 22 '12 at 17:57
    
Please note: I also found a solution on stackoverflow.com/questions/2348374/merging-two-sorted-lists but this when run sticks into an infinite loop. –  dharam May 22 '12 at 17:58
    
@Pier: It can be anything. The two lists are individually sorted and the code must produce a third list which is sorted. –  dharam May 22 '12 at 17:59
    
It's because if the last element of list1 is smaller than the first element of list2, you could just change the last next node to the first list2 head node. –  Pier-Alexandre Bouchard May 22 '12 at 18:01
    
@Pier-alexandreBouchard That is extremely optimistic thinking about what kind of input you will get. –  Hunter McMillen May 22 '12 at 18:03

15 Answers 15

up vote 75 down vote accepted
Node MergeLists(Node list1, Node list2) {
  if (list1 == null) return list2;
  if (list2 == null) return list1;

  if (list1.data < list2.data) {
    list1.next = MergeLists(list1.next, list2);
    return list1;
  } else {
    list2.next = MergeLists(list2.next, list1);
    return list2;
  }
}
share|improve this answer
1  
Ah! recursion came to save my life. Correct Answer. Thanks for this. I love stackoverflow. –  dharam May 22 '12 at 18:09
31  
Recursion on arbitrarily long lists is a recipe for a stack overflow. But I guess this is Stack Overflow. Oh, the irony! ;-) –  Adrian McCarthy May 22 '12 at 20:34
2  
Beautiful solution. –  nikhil May 26 '12 at 10:41
1  
Not just for interview questions! I'm under a deadline and needed this for production code. Thanks! –  Paul Chernoch Mar 5 '13 at 19:46
4  
@PaulChernoch for prod code you may want to use the iterative version below.... –  Stefan Haustein Jul 6 '13 at 18:59

Recursion should not be needed to avoid allocating a new node:

Node MergeLists(Node list1, Node list2) {
  if (list1 == null) return list2;
  if (list2 == null) return list1;

  Node head;
  if (list1.data < list2.data) {
    head = list1;
  } else {
    head = list2;
    list2 = list1;
    list1 = head;
  }
  while(list1.next != null && list2 != null) {
    if (list1.next.data > list2.data) {
      Node tmp = list1.next;
      list1.next = list2;
      list2 = tmp;
    }
    list1 = list1.next;
  } 
  if (list1.next == null) list1.next = list2;
  return head;
}
share|improve this answer
    
I believe this solution is not working. Its lost in an infinite loop. :( –  dharam May 22 '12 at 18:41
    
Ooops, changed "<" to "<=" to address this where data is the same for two elements. –  Stefan Haustein May 22 '12 at 18:50
5  
+1 - The iterative approach is almost always preferable to recursion, where permissable. –  cheeken May 22 '12 at 20:52
2  
In an interview, you usually want to start with the cleanest / shortest / most elegant solution that meets the criteria and then improve -- in particular, if there is a risk that you may run out of time otherwise. –  Stefan Haustein May 22 '12 at 23:48
1  
Hey Stefan!! good answer.. I think you can add a statement list1 = list1.next; in the else statement of the while loop.. it would help in reducing the redundant comparisons.. Please check and let me know if I am mistaken!!! –  Sandy Apr 5 '14 at 20:55

Here is the algorithm on how to merge two sorted linked lists A and B:

while A not empty or B not empty:
   if first element of A < first element of B:
      remove first element from A
      insert element into C
   end if
   else:
      remove first element from B
      insert element into C
end while

Here C will be the output list.

share|improve this answer
3  
THis is only possible if you are creating a new node. The question restricts the creation of new nodes. –  dharam May 23 '12 at 6:22
    
you need to check null as it could be that A or B will be empty. Another way to do it is to to loop until A not empty and B not empty –  Dejel Dec 31 '13 at 16:31

Look ma, no recursion!

struct llist * llist_merge(struct llist *one, struct llist *two, int (*cmp)(struct llist *l, struct llist *r) )
{
struct llist *result, **tail;

for (result=NULL, tail = &result; one && two; tail = &(*tail)->next ) {
        if (cmp(one,two) <=0) { *tail = one; one=one->next; }
        else { *tail = two; two=two->next; }
        }
*tail = one ? one: two;
return result;
}
share|improve this answer
Node MergeLists(Node node1, node2)
{
   if(node1 == null)
      return node2;
   else (node2 == null)
      return node1;

   Node head;
   if(node1.data < node2.data)
   {
      head = node1;
      node1 = node1.next;
   else
   {
      head = node2;
      node2 = node2.next;
   }

   Node current = head;
   while(node1 != null && node2 != null)
   {
      if(node1 == null) {
         current.next = node2;
         return head;
      }
      else if (node2 == null) {
         current.next = node1;
         return head;
      }

      if(node1.data < node2.data)
      {
          current.next = node1;
          current = current.next;

          node1 = node1.next;
      }
      else
      {
          current.next = node2;
          current = current.next;

          node2 = node2.next;
      }
   }

   return head;

}
share|improve this answer
3  
Kindly also add some explanation to your answer. Just having code at times may not be completely useful to a reader in future. :) –  Amar Dec 14 '12 at 21:31

Iteration can be done as below. Complexity = O(n)

public static LLNode mergeSortedListIteration(LLNode nodeA, LLNode nodeB) {
    LLNode mergedNode ;
    LLNode tempNode ;      

    if (nodeA == null) {
        return nodeB;
      } 
      if (nodeB == null) {
        return nodeA;
      }     


    if ( nodeA.getData() < nodeB.getData())
    {
        mergedNode = nodeA;
        nodeA = nodeA.getNext();
    }
    else
    {
        mergedNode = nodeB;
        nodeB = nodeB.getNext();
    }

    tempNode = mergedNode; 

    while (nodeA != null && nodeB != null)
    {           

        if ( nodeA.getData() < nodeB.getData())
        {               
            mergedNode.setNext(nodeA);
            nodeA = nodeA.getNext();
        }
        else
        {
            mergedNode.setNext(nodeB);
            nodeB = nodeB.getNext();                
        }       
        mergedNode = mergedNode.getNext();
    }

    if (nodeA != null)
    {
        mergedNode.setNext(nodeA);
    }

    if (nodeB != null)
    {
        mergedNode.setNext(nodeB);
    }       
    return tempNode;
}
share|improve this answer
Node mergeList(Node h1, Node h2) {
    if (h1 == null) return h2;
    if (h2 == null) return h1;
    Node head;
    if (h1.data < h2.data) {
        head = h1;
    } else {
        head = h2;
        h2 = h1;
        h1 = head;
    }

    while (h1.next != null && h2 != null) {
        if (h1.next.data < h2.data) {
            h1 = h1.next;
        } else {
            Node afterh2 = h2.next;
            Node afterh1 = h1.next;
            h1.next = h2;
            h2.next = afterh1;

            if (h2.next != null) {
                h2 = afterh2;
            }
        }
    }
    return head;
}
share|improve this answer

A simple iterative solution.

Node* MergeLists(Node* A, Node* B) { //handling the corner cases

//if both lists are empty
if(!A && !B)
{
    cout << "List is empty" << endl;
    return 0;
}
//either of list is empty
else if(!A) return B;
else if(!B) return A;
else
{
    Node* head = NULL;//this will be the head of the newList
    Node* previous = NULL;//this will act as the

    /* In this algorithm we will keep the
     previous pointer that will point to the last node of the output list.
     And, as given we have A & B as pointer to the given lists.

     The algorithm will keep on going untill either one of the list become empty.
     Inside of the while loop, it will divide the algorithm in two parts:
        - First, if the head of the output list is not obtained yet
        - Second, if head is already there then we will just compare the values and keep appending to the 'previous' pointer.
     When one of the list become empty we will append the other 'left over' list to the output list.
     */
     while(A && B)
     {
         if(!head)
         {
             if(A->data <= B->data)
             {
                 head = A;//setting head of the output list to A
                 previous = A; //initializing previous
                 A = A->next;
             }
             else
             {
                 head = B;//setting head of the output list to B
                 previous = B;//initializing previous
                 B = B->next;
             }
         }
         else//when head is already set
         {
             if(A->data <= B->data)
             {
                 if(previous->next != A)
                     previous->next = A;
                 A = A->next;//Moved A forward but keeping B at the same position
             }
             else
             {
                 if(previous->next != B)
                     previous->next = B;
                 B = B->next; //Moved B forward but keeping A at the same position
             }
             previous = previous->next;//Moving the Output list pointer forward
         }
     }
    //at the end either one of the list would finish
    //and we have to append the other list to the output list
    if(!A)
        previous->next = B;

    if(!B)
        previous->next = A;

    return head; //returning the head of the output list
}

}

share|improve this answer
public static Node merge(Node h1, Node h2) {

    Node h3 = new Node(0);
    Node current = h3;

    boolean isH1Left = false;
    boolean isH2Left = false;

    while (h1 != null || h2 != null) {
        if (h1.data <= h2.data) {
            current.next = h1;
            h1 = h1.next;
        } else {
            current.next = h2;
            h2 = h2.next;
        }
        current = current.next;

        if (h2 == null && h1 != null) {
            isH1Left = true;
            break;
        }

        if (h1 == null && h2 != null) {
            isH2Left = true;
            break;
        }
    }

    if (isH1Left) {
        while (h1 != null) {
            current.next = h1;
            current = current.next;
            h1 = h1.next;
        }
    } 

    if (isH2Left) {
        while (h2 != null) {
            current.next = h2;
            current = current.next;
            h2 = h2.next;
        }
    }

    h3 = h3.next;

    return h3;
}
share|improve this answer
    
no recursion and no extra objects created. Just a few extra references. –  Cong Wang Oct 28 '12 at 4:04
public Node NewMerge(Node head1, Node head2)
    {
        if (head1 != null && head2 != null)
        {
            if (head1.data > head2.data)
            {
                head2.next = NewMerge(head1, head2.next);
                return head2;
            }
            else if (head1.data == head2.data)
            {
                head1.next = NewMerge(head1.next, head2.next);
                return head1;
            }
            else
            {
                head1.next = NewMerge(head1.next, head2);
                return head1;
            }
        }
        else if (head1 == null)
            return head2;
        else
            return head1;
    }

I tried to run it in a Console application, after I initilized two NodeList ,which have more than 6400 nodes in total, I find my console application throw StackOverflowException exception. Anyone have similar problem?

share|improve this answer

First of all understand the mean of "without creating any new extra nodes", As I understand it does not mean that I can not have pointer(s) which points to an existing node(s).

You can not achieve it without talking pointers to existing nodes, even if you use recursion to achieve the same, system will create pointers for you as call stacks. It is just like telling system to add pointers which you have avoided in your code.

Simple function to achieve the same with taking extra pointers:

typedef struct _LLNode{
    int             value;
    struct _LLNode* next;
}LLNode;


LLNode* CombineSortedLists(LLNode* a,LLNode* b){
    if(NULL == a){
        return b;
    }
    if(NULL == b){
        return a;
    }
    LLNode* root  = NULL;
    if(a->value < b->value){
        root = a;
        a = a->next;
    }
    else{
        root = b;
        b    = b->next;
    }
    LLNode* curr  = root;
    while(1){
        if(a->value < b->value){
            curr->next = a;
            curr = a;
            a=a->next;
            if(NULL == a){
                curr->next = b;
                break;
            }
        }
        else{
            curr->next = b;
            curr = b;
            b=b->next;
            if(NULL == b){
                curr->next = a;
                break;
            }
        }
    }
    return root;
}
share|improve this answer
private static Node mergeLists(Node L1, Node L2) {

    Node P1 = L1.val < L2.val ? L1 : L2;
    Node P2 = L1.val < L2.val ? L2 : L1;
    Node BigListHead = P1;
    Node tempNode = null;

    while (P1 != null && P2 != null) {
        if (P1.next != null && P1.next.val >P2.val) {
        tempNode = P1.next;
        P1.next = P2;
        P1 = P2;
        P2 = tempNode;
        } else if(P1.next != null) 
        P1 = P1.next;
        else {
        P1.next = P2;
        break;
        }
    }

    return BigListHead;
}
share|improve this answer
Node * merge_sort(Node *a, Node *b){
   Node *result = NULL;
   if(a ==  NULL)
      return b;
   else if(b == NULL)
      return a;

  /* For the first node, we would set the result to either a or b */
    if(a->data <= b->data){
       result = a;
    /* Result's next will point to smaller one in lists 
       starting at a->next  and b */
      result->next = merge_sort(a->next,b);
    }
    else {
      result = b;
     /*Result's next will point to smaller one in lists 
       starting at a and b->next */
       result->next = merge_sort(a,b->next);
    }
    return result;
 }

Please refer to my blog post for http://www.algorithmsandme.com/2013/10/linked-list-merge-two-sorted-linked.html

share|improve this answer

This could be done without creating the extra node, with just an another Node reference passing to the parameters (Node temp).

private static Node mergeTwoLists(Node nodeList1, Node nodeList2, Node temp) {
    if(nodeList1 == null) return nodeList2;
    if(nodeList2 == null) return nodeList1;

    if(nodeList1.data <= nodeList2.data){
        temp = nodeList1;
        temp.next = mergeTwoLists(nodeList1.next, nodeList2, temp);
    }
    else{
        temp = nodeList2;
        temp.next = mergeTwoLists(nodeList1, nodeList2.next, temp);
    }
    return temp;
}
share|improve this answer

Here is the code on how to merge two sorted linked lists headA and headB:

Node* MergeLists1(Node *headA, Node* headB)
{
    Node *p = headA;
    Node *q = headB;
    Node *result = NULL; 
    Node *pp = NULL;
    Node *qq = NULL;
    Node *head = NULL;
    int value1 = 0;
    int value2 = 0;
    if((headA == NULL) && (headB == NULL))
    {
        return NULL;
    }
    if(headA==NULL)
    {
        return headB;
    }
    else if(headB==NULL)
    {
        return headA;
    }
    else
    {
        while((p != NULL) || (q != NULL))
        {
            if((p != NULL) && (q != NULL))
            {
                int value1 = p->data;
                int value2 = q->data;
                if(value1 <= value2)
                {
                    pp = p->next;
                    p->next = NULL;
                    if(result == NULL)
                    {
                        head = result = p;
                    }
                    else
                    {
                        result->next = p;
                        result = p;
                    }
                    p = pp;
                }
                else
                {
                    qq = q->next;
                    q->next = NULL;
                    if(result == NULL)
                    {
                        head = result = q;
                    }
                    else
                    {
                        result->next = q;
                        result = q;
                    }
                    q = qq;
                }
            }
            else
            {
                if(p != NULL)
                {
                    pp = p->next;
                    p->next = NULL;
                    result->next = p;
                    result = p;
                    p = pp;
                }
                if(q != NULL)
                {
                    qq = q->next;
                    q->next = NULL;
                    result->next = q;
                    result = q;
                    q = qq;
                }
            }
        }
    }
    return head;
}
share|improve this answer
    
You should explain the code your posting to provide context for the benefit of the asker. –  loanburger Feb 22 at 5:51
    
Actually I forgot to explain my code... ;) –  Manisha Feb 22 at 6:00

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