问题
Given 2 singly linked lists already sorted, merge the lists.
Example:
list1: 1 2 3 5 7
list2: 0 4 6 7 10
---> 0 1 2 3 4 5 6 7 7 10
Despite from the fact that the solution is quite simple and there are several different implementations of the problem with or without using recursion (like this http://www.geeksforgeeks.org/merge-two-sorted-linked-lists/ see Method 3),
I was wondering what would be the O big complexity of this implementation:
- If one of the lists is empty just return the other
- Otherwise insert each node of the second list into the first one using the sortedInsert function which basically scan the list until the right position is found. Because the 2 lists are both already sorted there's no need to compare each time the node with all the nodes in the first list, I can start the comparison from the last added node.
ex: continuing with the previous example if 4 has been already added I can safely start the next comparison from 4:
list1: 0 1 2 3 4 5 7
list2: 6 7 10
now compare 6 with 4 instead with 1 2 3 4....
If I would compare one element with all the elements in the first list it would be O(m*n) with m=#list2 and n=#list1, but considering this "optimisation" what is the complexity?
Implementation:
// Insert a new node in a sorted list
int sortedInsert(struct ListNode **head, struct ListNode* newNode) {
int headUpdated = 0;
struct ListNode *current;
// The list is empty or the new element has to be added as first element
if (*head == NULL || (*head)->data >= newNode->data) {
newNode->next = *head;
*head = newNode;
headUpdated = 1;
}
else {
// Locate the node before the point of insertion
current = *head;
while (current->next != NULL && current->next->data < newNode->data)
current = current->next;
newNode->next = current->next;
current->next = newNode;
}
return headUpdated;
}
struct ListNode *mergeLists(struct ListNode *head1, struct ListNode *head2) {
if (head1 == NULL)
return head2;
if (head2 == NULL)
return head1;
// Store the node in the first list where to start the comparisons
struct ListNode *first = head1;
while (head2) {
struct ListNode *head2Next = head2->next;
printf("Adding %d starting comparison from %d\n", head2->data, first->data);
if (sortedInsert(&first, head2))
head1 = first;
first = head2;
head2 = head2Next;
}
return head1;
}
回答1:
Actually the merge algorithm you have here is O(m + n)
, not O(m * n)
.
Since you have a pointer to the last inserted node, and start looking for the place to insert the next node from that on, the total number of
current = current->next
operations in sortedInsert
is at most m + n - 1
(length of result minus one). The number of insert operations (relinking the next
pointers) is n
(length of the second list). For each comparison
current->next->data < newNode->data
the next operation is either an insertion or a current = current->next
, so the number of comparisons is at most
m + 2*n - 1
Let us say that the resulting list starts with m_0
elements from the first list, then n_1
elements from the second, then m_1
from the first, n_2
from the second, ..., n_r
from the second, then finally m_r
from the first. m_0
and m_r
may be 0, all other numbers are strictly positive.
The first element of the n_1
block is compared to each element of the m_0
block and the first element of the m_1
block. All other elements of that block are compared to their predecessor in the second list, and the first element of the m_1
block [unless r = 1
and m_1 = 0
, in which case there are fewer comparisons].
That makes m_0 + 1 + (n_1 - 1)*2 = m_0 + 2*n_1 - 1
comparisons (or fewer).
For the later n_k
blocks, the first element is compared to the last element of the n_(k-1)
block, all elements of the m_(k-1)
block, and the first element of the m_k
block [if that exists]. The further elements of the block are all compared to their predecessor in list 2, and the first element of the m_k
block [if that exists], that makes
1 + m_(k-1) + 1 + (n_k - 1)*2 = m_(k-1) + 2*n_k
comparisons (or fewer). Since all comparisons involve at least one element of the second list, the total number of comparisons is at most
m_0 + 2*n_1 - 1 + m_1 + 2*n_2 + m_2 + 2*n_3 + ... + m_(r-1) + 2*n_r <= m + 2*n - 1.
We can slightly improve it by intialising
struct ListNode *first = head1;
and removing the
if (!first)
first = head1;
test from the loop.
来源:https://stackoverflow.com/questions/16495034/big-o-complexity-to-merge-two-lists