Leetcode ReorderList
Given a singly linked list L: L0→L1→…→Ln-1→Ln,
reorder it to: L0→Ln→L1→Ln-1→L2→Ln-2→…
You must do this in-place without altering the nodes' values.
For example,
Given {1,2,3,4}
, reorder it to {1,4,2,3}
.
(1)找出中间节点
(2)将后部分节点反转
(3)将前部分节点和后部分节点合并
#include <iostream> #include <vector> #include <algorithm> #include <unordered_map> #include <list> using namespace std; struct ListNode{ int val; ListNode *next; ListNode(int x):val(x), next(NULL){} }; void printList(ListNode* head){ while(head!=NULL){ cout<<"->"<<head->val; head = head->next; } cout<<endl; } ListNode* reverse(ListNode *head){ ListNode *pre = head; ListNode *p = head->next; head->next =NULL; while(p!=NULL){ ListNode* tmp = p->next; p->next = pre; pre = p; p = tmp; } return pre; } ListNode* merge(ListNode *head1, ListNode *head2){ ListNode* p = head1; while(head2!=NULL){ ListNode *tmp = head2->next; head2->next = p->next; p->next = head2; p = p->next->next; head2 = tmp; } return head1; } void reorderList(ListNode *head){ if(head == NULL || head->next == NULL) return; ListNode *slow = head,*fast = head; while(fast->next && fast->next->next){ slow = slow->next; fast = fast->next->next; } ListNode *head2 = slow->next; slow->next = NULL; ListNode *head1 = head; //printList(head2); head2 = reverse(head2); //printList(head2); head = merge(head1,head2); } int main(){ ListNode *head= new ListNode(1); ListNode *p = head; for(int i =2; i <= 7; ++ i){ ListNode *a= new ListNode(i); p->next = a; p = a; } reorderList(head); printList(head); }