Given a linked list, rotate the list to the right by k places, where k is non-negative.
Example 1:
Input: 1->2->3->4->5->NULL, k = 2 Output: 4->5->1->2->3->NULL Explanation: rotate 1 steps to the right: 5->1->2->3->4->NULL rotate 2 steps to the right: 4->5->1->2->3->NULL
Example 2:
Input: 0->1->2->NULL, k = 4 Output:2->0->1->NULL
Explanation: rotate 1 steps to the right: 2->0->1->NULL rotate 2 steps to the right: 1->2->0->NULL rotate 3 steps to the right:0->1->2->NULL
rotate 4 steps to the right:2->0->1->NULL
与189. Rotate Array 类似,但链表不能通过index来访问,要一步步的走,所以要麻烦一些。
要注意当k大于链表长度时的处理,需要先遍历一遍得到链表长度n,然后k对n取余,用余数来翻转。
Java:
public ListNode rotateRight(ListNode head, int n) { if (head==null||head.next==null) return head; ListNode dummy=new ListNode(0); dummy.next=head; ListNode fast=dummy,slow=dummy; int i; for (i=0;fast.next!=null;i++)//Get the total length fast=fast.next; for (int j=i-n%i;j>0;j--) //Get the i-n%i th node slow=slow.next; fast.next=dummy.next; //Do the rotation dummy.next=slow.next; slow.next=null; return dummy.next; }
Python:
# Definition for singly-linked list. class ListNode: def __init__(self, x): self.val = x self.next = None def __repr__(self): if self: return "{} -> {}".format(self.val, repr(self.next)) class Solution(object): def rotateRight(self, head, k): """ :type head: ListNode :type k: int :rtype: ListNode """ if not head or not head.next: return head n, cur = 1, head while cur.next: cur = cur.next n += 1 cur.next = head cur, tail = head, cur for _ in xrange(n - k % n): tail = cur cur = cur.next tail.next = None return cur
C++:
class Solution { public: ListNode *rotateRight(ListNode *head, int k) { if (!head) return NULL; int n = 0; ListNode *cur = head; while (cur) { ++n; cur = cur->next; } k %= n; ListNode *fast = head, *slow = head; for (int i = 0; i < k; ++i) { if (fast) fast = fast->next; } if (!fast) return head; while (fast->next) { fast = fast->next; slow = slow->next; } fast->next = head; fast = slow->next; slow->next = NULL; return fast; } };
C++:
class Solution { public: ListNode *rotateRight(ListNode *head, int k) { if (!head) return NULL; int n = 1; ListNode *cur = head; while (cur->next) { ++n; cur = cur->next; } cur->next = head; int m = n - k % n; for (int i = 0; i < m; ++i) { cur = cur->next; } ListNode *newhead = cur->next; cur->next = NULL; return newhead; } };
类似题目:
[LeetCode] 189. Rotate Array 旋转数组
[LeetCode] 48. Rotate Image 旋转图像
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