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Sort a linked list in O(n log n) time using constant space complexity.
这题要求我们对链表进行排序,我们可以使用divide and conquer的方式,依次递归的对链表左右两半进行排序就可以了。代码如下:
class Solution {public:ListNode *sortList(ListNode *head) {if(head == NULL || head->next == NULL) {return head;}ListNode* fast = head;ListNode* slow = head;//快慢指针得到中间点while(fast->next && fast->next->next) {fast = fast->next->next;slow = slow->next;}//将链表拆成两半fast = slow->next;slow->next = NULL;//左右两半分别排序ListNode* p1 = sortList(head);ListNode* p2 = sortList(fast);//合并return merge(p1, p2);}ListNode *merge(ListNode* l1, ListNode* l2) {if(!l1) {return l2;} else if (!l2) {return l1;} else if (!l1 && !l2) {return NULL;}ListNode dummy(0);ListNode* p = &dummy;while(l1 && l2) {if(l1->val < l2->val) {p->next = l1;l1 = l1->next;} else {p->next = l2;l2 = l2->next;}p = p->next;}if(l1) {p->next = l1;} else if(l2){p->next = l2;}return dummy.next;}};
Insertion Sort List
Sort a linked list using insertion sort.
这题要求我们使用插入排序的方式对链表进行排序,假设一个链表前n个节点是有序,第n + 1的节点需要遍历前n个,插入到合适位置就可以了。
代码如下:
class Solution {public:ListNode *insertionSortList(ListNode *head) {if(head == NULL || head->next == NULL) {return head;}ListNode dummy(0);ListNode* p = &dummy;ListNode* cur = head;while(cur) {p = &dummy;while(p->next && p->next->val <= cur->val) {p = p->next;}ListNode* n = p->next;p->next = cur;cur = cur->next;p->next->next = n;}return dummy.next;}};
