首页 > 代码库 > 【Lintcode】099.Reorder List
【Lintcode】099.Reorder List
题目:
Given a singly linked list L: L0 → L1 → … → Ln-1 → Ln
reorder it to: L0 → Ln → L1 → Ln-1 → L2 → Ln-2 → …
Example
Given 1->2->3->4->null, reorder it to 1->4->2->3->null.
题解:
Spliting the list from the middle into two lists. One from head to middle, and the other from middle to the end. Then we reverse the second list. Finally we merge these two lists
Solution 1 ()
class Solution { public: void reorderList(ListNode *head) { if (!head || !head->next) { return; } ListNode* mid = findMiddle(head); ListNode* right = reverse(mid->next); mid->next = nullptr; merge(head, right); } ListNode* findMiddle(ListNode* head) { ListNode* slow = head; ListNode* fast = head->next; while (fast && fast->next) { slow = slow->next; fast = fast->next->next; } return slow; } ListNode* reverse(ListNode* head) { if (!head || !head->next) { return head; } ListNode* pre = nullptr; while (head) { ListNode* tmp = head->next; head->next = pre; pre = head; head = tmp; } return pre; } void merge(ListNode* left, ListNode* right) { ListNode* dummy = new ListNode(-1); int idx = 0; while (left && right) { if (idx % 2 == 0) { dummy->next = left; left = left->next; } else { dummy->next = right; right = right->next; } dummy = dummy->next; ++idx; } if (left) { dummy->next = left; } else { dummy->next = right; } } };
from here
Solution 2 ()
class Solution { public: /** * @param head: The first node of linked list. * @return: void */ void reorderList(ListNode *head) { // write your code here if (head == NULL) return; vector<ListNode*> nodes; ListNode* iter = head; while(iter != NULL) { nodes.push_back(iter); iter = iter->next; } int LEN = nodes.size(); int left = 0; int right = LEN -1; while(left < right) { nodes[left]->next = nodes[right]; nodes[right--]->next = nodes[++left]; } nodes[left]->next = NULL; } };
【Lintcode】099.Reorder List
声明:以上内容来自用户投稿及互联网公开渠道收集整理发布,本网站不拥有所有权,未作人工编辑处理,也不承担相关法律责任,若内容有误或涉及侵权可进行投诉: 投诉/举报 工作人员会在5个工作日内联系你,一经查实,本站将立刻删除涉嫌侵权内容。