Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I was recently brushing up on some fundamentals and found merge sorting a linked list to be a pretty good challenge. If you have a good implementation then show it off here.

share|improve this question

16 Answers 16

Wonder why it should be big challenge as it is stated here, here is a straightforward implementation in Java with out any "clever tricks".

//The main function
public Node merge_sort(Node head) {
    if(head == null || head.next == null) { return head; }
    Node middle = getMiddle(head);      //get the middle of the list
    Node sHalf = middle.next; middle.next = null;   //split the list into two halfs

    return merge(merge_sort(head),merge_sort(sHalf));  //recurse on that
}

//Merge subroutine to merge two sorted lists
public Node merge(Node a, Node b) {
    Node dummyHead, curr; dummyHead = new Node(); curr = dummyHead;
    while(a !=null && b!= null) {
        if(a.info <= b.info) { curr.next = a; a = a.next; }
        else { curr.next = b; b = b.next; }
        curr = curr.next;
    }
    curr.next = (a == null) ? b : a;
    return dummyHead.next;
}

//Finding the middle element of the list for splitting
public Node getMiddle(Node head) {
    if(head == null) { return head; }
    Node slow, fast; slow = fast = head;
    while(fast.next != null && fast.next.next != null) {
        slow = slow.next; fast = fast.next.next;
    }
    return slow;
}

Some more explanation here - http://www.dontforgettothink.com/2011/11/23/merge-sort-of-linked-list

share|improve this answer
    
excellently easy... –  L.E. Jul 28 '13 at 16:55
    
don't try cleaver tricks at home –  poolie Aug 5 '13 at 2:53
    
Very readable code! –  Chuntao Lu Apr 4 at 3:29

A simpler/clearer implementation might be the recursive implementation, from which the NLog(N) execution time is more clear.

typedef struct _aList {
    struct _aList* next;
    struct _aList* prev; // Optional.
    // some data
} aList;

aList* merge_sort_list_recursive(aList *list,int (*compare)(aList *one,aList *two))
{
    // Trivial case.
    if (!list || !list->next)
        return list;

    aList *right = list,
          *temp  = list,
          *last  = list,
          *result = 0,
          *next   = 0,
          *tail   = 0;

    // Find halfway through the list (by running two pointers, one at twice the speed of the other).
    while (temp && temp->next)
    {
        last = right;
        right = right->next;
        temp = temp->next->next;
    }

    // Break the list in two. (prev pointers are broken here, but we fix later)
    last->next = 0;

    // Recurse on the two smaller lists:
    list = merge_sort_list_recursive(list, compare);
    right = merge_sort_list_recursive(right, compare);

    // Merge:
    while (list || right)
    {
        // Take from empty lists, or compare:
        if (!right) {
            next = list;
            list = list->next;
        } else if (!list) {
            next = right;
            right = right->next;
        } else if (compare(list, right) < 0) {
            next = list;
            list = list->next;
        } else {
            next = right;
            right = right->next;
        }
        if (!result) {
            result=next;
        } else {
            tail->next=next;
        }
        next->prev = tail;  // Optional.
        tail = next;
    }
    return result;
}

NB: This has a Log(N) storage requirement for the recursion. Performance should be roughly comparable with the other strategy I posted. There is a potential optimisation here by running the merge loop while (list && right), and simple appending the remaining list (since we don't really care about the end of the lists; knowing that they're merged suffices).

share|improve this answer

Heavily based on the EXCELLENT code from: http://www.chiark.greenend.org.uk/~sgtatham/algorithms/listsort.html

Trimmed slightly, and tidied:


typedef struct _aList {
    struct _aList* next;
    struct _aList* prev; // Optional.
       // some data
} aList;

aList *merge_sort_list(aList *list,int (*compare)(aList *one,aList *two))
{
    int listSize=1,numMerges,leftSize,rightSize;
    aList *tail,*left,*right,*next;
    if (!list || !list->next) return list;  // Trivial case

    do { // For each power of two<=list length
        numMerges=0,left=list;tail=list=0; // Start at the start

        while (left) { // Do this list_len/listSize times:
            numMerges++,right=left,leftSize=0,rightSize=listSize;
            // Cut list into two halves (but don't overrun)
            while (right && leftSize<listSize) leftSize++,right=right->next;
            // Run through the lists appending onto what we have so far.
            while (leftSize>0 || (rightSize>0 && right)) {
                // Left empty, take right OR Right empty, take left, OR compare.
                if (!leftSize)                  {next=right;right=right->next;rightSize--;}
                else if (!rightSize || !right)  {next=left;left=left->next;leftSize--;}
                else if (compare(left,right)<0) {next=left;left=left->next;leftSize--;}
                else                            {next=right;right=right->next;rightSize--;}
                // Update pointers to keep track of where we are:
                if (tail) tail->next=next;  else list=next;
                // Sort prev pointer
                next->prev=tail; // Optional.
                tail=next;          
            }
            // Right is now AFTER the list we just sorted, so start the next sort there.
            left=right;
        }
        // Terminate the list, double the list-sort size.
        tail->next=0,listSize<<=1;
    } while (numMerges>1); // If we only did one merge, then we just sorted the whole list.
    return list;
}

NB: This is O(NLog(N)) guaranteed, and uses O(1) resources (no recursion, no stack, nothing).

share|improve this answer
    
I thought I'd try this code on my own Linked List. For some reason it runs slower than the recursive version over an int list of 10 million items. It took around 6-7 seconds for the recursive version and around 10 for this one? –  Matt Jul 18 '11 at 5:01
1  
No surprise. The recursive one uses extra storage to speed things up. –  Dave Gamble Apr 8 '12 at 12:04

One interesting way is to maintain a stack, and only merge if the list on the stack has the same number of elements, and otherwise push the list, until you run out of elements in the incoming list, and then merge up the stack.

share|improve this answer

The simplest is from Gonnet + Baeza Yates Handbook of Algorithms. You call it with the number of sorted elements you want, which recursively gets bisected until it reaches a request for a size one list which you then just peel off the front of the original list. These all get merged up into a full sized sorted list.

[Note that the cool stack-based one in the first post is called the Online Mergesort and it gets the tiniest mention in an exercise in Knuth Vol 3]

share|improve this answer

Here's an alternative recursive version. This does not need to step along the list to split it: we supply a pointer to a head element (which is not part of the sort) and a length, and the recursive function returns a pointer to the end of the sorted list.

element* mergesort(element *head,long lengtho)
{ 
  long count1=(lengtho/2), count2=(lengtho-count1);
  element *next1,*next2,*tail1,*tail2,*tail;
  if (lengtho<=1) return head->next;  /* Trivial case. */

  tail1 = mergesort(head,count1);
  tail2 = mergesort(tail1,count2);
  tail=head;
  next1 = head->next;
  next2 = tail1->next;
  tail1->next = tail2->next; /* in case this ends up as the tail */
  while (1) {
    if(cmp(next1,next2)<=0) {
      tail->next=next1; tail=next1;
      if(--count1==0) { tail->next=next2; return tail2; }
      next1=next1->next;
    } else {
      tail->next=next2; tail=next2;
      if(--count2==0) { tail->next=next1; return tail1; }
      next2=next2->next;
    }
  }
}
share|improve this answer
    
I came up with essentially the same implementation, except with pointers-to-pointers instead of dummy nodes, thinking clearly my innovative code must be a quantum leap in computer science. Nothing new under the sun I suppose. Any suggestions for a clean way of speeding up the mostly pre-sorted case? –  doynax Jan 6 at 7:35

Here's another description, with an implementation in C

share|improve this answer

Here is my implementation of Knuth's "List merge sort" (Algorithm 5.2.4L from Vol.3 of TAOCP, 2nd ed.). I'll add some comments at the end, but here's a summary:

On random input, it runs a bit faster than Simon Tatham's code (see Dave Gamble's non-recursive answer, with a link) but a bit slower than Dave Gamble's recursive code. It's harder to understand than either. At least in my implementation, it requires each element to have TWO pointers to elements. (An alternative would be one pointer and a boolean flag.) So, it's probably not a useful approach. However, one distinctive point is that it runs very fast if the input has long stretches that are already sorted.

element *knuthsort(element *list)
{ /* This is my attempt at implementing Knuth's Algorithm 5.2.4L "List merge sort"
     from Vol.3 of TAOCP, 2nd ed. */
  element *p, *pnext, *q, *qnext, head1, head2, *s, *t;
  if(!list) return NULL;

L1: /* This is the clever L1 from exercise 12, p.167, solution p.647. */
  head1.next=list;
  t=&head2;
  for(p=list, pnext=p->next; pnext; p=pnext, pnext=p->next) {
    if( cmp(p,pnext) > 0 ) { t->next=NULL; t->spare=pnext; t=p; }
  }
  t->next=NULL; t->spare=NULL; p->spare=NULL;
  head2.next=head2.spare;

L2: /* begin a new pass: */
  t=&head2;
  q=t->next;
  if(!q) return head1.next;
  s=&head1;
  p=s->next;

L3: /* compare: */
  if( cmp(p,q) > 0 ) goto L6;
L4: /* add p onto the current end, s: */
  if(s->next) s->next=p; else s->spare=p;
  s=p;
  if(p->next) { p=p->next; goto L3; } 
  else p=p->spare;
L5: /* complete the sublist by adding q and all its successors: */
  s->next=q; s=t;
  for(qnext=q->next; qnext; q=qnext, qnext=q->next);
  t=q; q=q->spare;
  goto L8;
L6: /* add q onto the current end, s: */
  if(s->next) s->next=q; else s->spare=q;
  s=q;
  if(q->next) { q=q->next; goto L3; } 
  else q=q->spare;
L7: /* complete the sublist by adding p and all its successors: */
  s->next=p;
  s=t;
  for(pnext=p->next; pnext; p=pnext, pnext=p->next);
  t=p; p=p->spare;
L8: /* is this end of the pass? */
  if(q) goto L3;
  if(s->next) s->next=p; else s->spare=p;
  t->next=NULL; t->spare=NULL;
  goto L2;
}
share|improve this answer
1  
The overall strategy is that we hold two chains of sublists, extending from the two dummy elements head1 and head2. A sublist is known to be sorted. We make several passes, merging the first sublist from head1 with the first from head2, then the second with the second, and so on. (It is essential that there are equal numbers of sublists, or one extra in head1's chain.) The newly merged sublists are attached alternately to the first and second chain, in place, stably, and without recursion. –  Ed Wynn Jul 14 '12 at 19:18
    
A significant quirk of this implementation is that it uses a second pointer, e->spare, with each element. Before the end of a sublist, e->next gives the next element. At the end, e->next is NULL. The start of the next sublist (if any) is given by e->spare. At the end of the sort, the entire list is linked via ->next. Knuth's pseudo-code used array indices instead of pointers, and a negative index announced the end of a sublist (and the absolute value gave the next sublist's start). –  Ed Wynn Jul 14 '12 at 19:19
    
Step L1 arranges the input list into sublists. A "vanilla" version starts with all sublists of length 1. The "clever" version here keeps any ordered sequences in the input list. In particular, if the list is sorted on arrival, the sort terminates after (n-1) comparisons. The clever version therefore gives a massive saving on sorted input, and a lesser saving on input that has some bias towards being sorted. On random input, the clever version is usually very slightly faster (by a couple of percent) although it uses more comparisons. –  Ed Wynn Jul 14 '12 at 19:20
    
As I said at the start, I'm not expecting anyone to like this as an algorithm (unless you often sort an almost-perfectly-sorted list). I've added this (to a fairly old post) to save you the trouble and disappointment I've just gone through ;-) –  Ed Wynn Jul 14 '12 at 19:24

You can use that implementation of merge sort and write your own functions to interface with the linked list as if it were an array.

share|improve this answer

A recursive version is straight-forward. I'm currently working on an iterative one, but it's still buggy.

share|improve this answer

I once have developed one for linked lists in Delphi:

http://www.continuit.nl/index.php?LANGUAGE=EN&PAGE=DOCUMENTS_SORTING

share|improve this answer

There's a non-recursive linked-list mergesort in mono eglib.

The basic idea is that the control-loop for the various merges parallels the bitwise-increment of a binary integer. There are O(n) merges to "insert" n nodes into the merge tree, and the rank of those merges corresponds to the binary digit that gets incremented. Using this analogy, only O(log n) nodes of the merge-tree need to be materialized into a temporary holding array.

share|improve this answer

One of the drawback of the merge sort is that it uses up O(n) space to store the data. i.e. when you merge the two sublists For linked list, this can be avoided by keep changing the next pointer in the list node. The last implementation seems neat but fails to consider it.

share|improve this answer

Take a peek at this implementation of a merge sort. Hope this helps.

share|improve this answer
    
This clearly merge sorts an array.. –  Amit Sep 4 '09 at 5:49

A simple, quick and "it works" way is to copy the linked list elements into a array, sort it and then re-create the linked list back. However, such a solution won't work straight away if you have got for than one member in your node, such as:

struct node {
   int data1;
   int data2;
   struct node *next;
};

This one works for me: http://bitbucket.org/amitksaha/foobar-scripts/src/f732216b9649/merge-sort-struct.c

share|improve this answer
1  
This is definitely not how to sort a linked list. The existence of the stable, guaranteed NLog(N), O(1) resource mergesort means that if you HAVE data in a linked list, you should DEFINITELY NOT copy it out. (Unless you have specific circumstances, such as the availability of a radix sort). –  Dave Gamble Jun 13 '10 at 14:33
public int[] msort(int[] a) {
    if (a.Length > 1) {
        int min = a.Length / 2;
        int max = min;

        int[] b = new int[min];
        int[] c = new int[max]; // dividing main array into two half arrays
        for (int i = 0; i < min; i++) {
            b[i] = a[i];
        }

        for (int i = min; i < min + max; i++) {
            c[i - min] = a[i];
        }

        b = msort(b);
        c = msort(c);

        int x = 0;
        int y = 0;
        int z = 0;

        while (b.Length != y && c.Length != z) {
            if (b[y] < c[z]) {
                a[x] = b[y];
                //r--
                x++;
                y++;
            } else {
                a[x] = c[z];
                x++;
                z++;
            }
        }

        while (b.Length != y) {
            a[x] = b[y];
            x++;
            y++;
        }

        while (c.Length != z) {
            a[x] = c[z];
            x++;
            z++;
        }
    }

    return a;
}
share|improve this answer
    
i think this 1 is perfect!!!!!!!!!! –  Pramod Jul 7 '11 at 13:06

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.