Merge sort is often preferred for sorting a linked list. The slow random-access performance of a linked list makes some other algorithms (such as quicksort) perform poorly, and others (such as heapsort) completely impossible.
Let the head be the first node of the linked list to be sorted and headRef be the pointer to head. Note that we need a reference to head in MergeSort() as the below implementation changes next links to sort the linked lists (not data at the nodes), so the head node has to be changed if the data at the original head is not the smallest value in the linked list.
MergeSort(headRef) 1) If head is NULL or there is only one element in the Linked List then return. 2) Else divide the linked list into two halves. FrontBackSplit(head, &a, &b); /* a and b are two halves */ 3) Sort the two halves a and b. MergeSort(a); MergeSort(b); 4) Merge the sorted a and b (using SortedMerge() discussed here) and update the head pointer using headRef. *headRef = SortedMerge(a, b);
// C code for linked list merged sort #include <stdio.h> #include <stdlib.h> // Link list node struct Node
{ int data;
struct Node* next;
}; // Function prototypes struct Node* SortedMerge( struct Node* a,
struct Node* b);
void FrontBackSplit( struct Node* source,
struct Node** frontRef,
struct Node** backRef);
// Sorts the linked list by changing // next pointers (not data) void MergeSort( struct Node** headRef)
{ struct Node* head = *headRef;
struct Node* a;
struct Node* b;
// Base case -- length 0 or 1
if ((head == NULL) ||
(head->next == NULL))
{
return ;
}
// Split head into 'a' and 'b' sublists
FrontBackSplit(head, &a, &b);
// Recursively sort the sublists
MergeSort(&a);
MergeSort(&b);
/* answer = merge the two sorted
lists together */
*headRef = SortedMerge(a, b);
} /* See https:// www.geeksforgeeks.org/?p=3622 for details of this function */
struct Node* SortedMerge( struct Node* a,
struct Node* b)
{ struct Node* result = NULL;
// Base cases
if (a == NULL)
return (b);
else if (b == NULL)
return (a);
// Pick either a or b, and recur
if (a->data <= b->data)
{
result = a;
result->next =
SortedMerge(a->next, b);
}
else
{
result = b;
result->next = SortedMerge(a, b->next);
}
return (result);
} // UTILITY FUNCTIONS /* Split the nodes of the given list into front and back halves, and return the
two lists using the reference parameters.
If the length is odd, the extra node should
go in the front list.Uses the fast/slow
pointer strategy. */
void FrontBackSplit( struct Node* source,
struct Node** frontRef,
struct Node** backRef)
{ struct Node* fast;
struct Node* slow;
slow = source;
fast = source->next;
/* Advance 'fast' two nodes, and
advance 'slow' one node */
while (fast != NULL)
{
fast = fast->next;
if (fast != NULL)
{
slow = slow->next;
fast = fast->next;
}
}
/* 'slow' is before the midpoint in the
list, so split it in two at that point. */
*frontRef = source;
*backRef = slow->next;
slow->next = NULL;
} /* Function to print nodes in a given linked list */
void printList( struct Node* node)
{ while (node != NULL)
{
printf ( "%d " , node->data);
node = node->next;
}
} /* Function to insert a node at the beginning of the linked list */
void push( struct Node** head_ref,
int new_data)
{ // Allocate node
struct Node* new_node =
( struct Node*) malloc ( sizeof ( struct Node));
// Put in the data
new_node->data = new_data;
// Link the old list of the new node
new_node->next = (*head_ref);
// Move the head to point to the new node
(*head_ref) = new_node;
} // Driver code int main()
{ // Start with the empty list
struct Node* res = NULL;
struct Node* a = NULL;
/* Let us create a unsorted linked lists
to test the functions created lists shall
be a: 2->3->20->5->10->15 */
push(&a, 15);
push(&a, 10);
push(&a, 5);
push(&a, 20);
push(&a, 3);
push(&a, 2);
// Sort the above created Linked List
MergeSort(&a);
printf ( "Sorted Linked List is: \n" );
printList(a);
getchar ();
return 0;
} |
Output:
Sorted Linked List is: 2 3 5 10 15 20
Time Complexity: O(n*log n)
Space Complexity: O(n*log n)
Please refer complete article on Merge Sort for Linked Lists for more details!