Reverse Nodes In K Group,将链表每k个元素为一组进行反转---特例Swap Nodes in Pairs,成对儿反转

问题描述:1->2->3->4,假设k=2进行反转,得到2->1->4->3;k=3进行反转,得到3->2->1->4

算法思想:基本操作就是链表反转,将k个元素当作滑动窗口,依次进行反转。

 1 public class ReverseNodesInKGroup {
 2     public ListNode reverseKGroup(ListNode head, int k) {
 3         if (k == 1 || head == null || head.next == null)
 4             return head;
 5         ListNode first = head, last = head;
 6         ListNode preHead = new ListNode(-1);
 7         preHead.next = head;
 8         ListNode preGroup = preHead, nextGroup = preHead;
 9         int count = 1;
10         while (last != null)
11         {
12             if (count != k) 
13             {
14                 last = last.next;
15                 count++;
16             } 
17             else
18             {
19                 nextGroup = last.next;
20                 reverseList(first, last);// 节点反转后,first <- ... <-clast
21                 preGroup.next = last;// 前面转换过的组连接到新的组,pregrou记录prehead,最后返回prehead
22                 preGroup = first;
23                 first.next = nextGroup;
24                 first = nextGroup;
25                 last = nextGroup;
26                 count = 1;
27             }
28 
29         }
30         return preHead.next;
31     }
32     //基本反转操作
33     private void reverseList(ListNode head, ListNode tail) {
34         ListNode pre = new ListNode(-1), node = head;
35         pre.next = head;
36         while (pre != tail) {
37             ListNode temp = node.next;
38             node.next = pre;
39             pre = node;
40             node = temp;
41         }
42     }
43 }

特例Swap nodes in pairs

问题描述:给一序列,交换每相邻的两个元素,并返回头结点。例如:1-2-3-4   返回序列2-1-4-3

算法思路:除了第一组元素,其他每次交换一对儿元素,要改变四个指针。所以,定义四个指针。其中只有两个指针是不想关,其他依赖这两个指针。

 方法一:

 1 public ListNode swapPairs(ListNode head) {
 2         if(head == null || head.next == null)
 3            {
 4                return head;
 5            }
 6         ListNode pPre = new ListNode(0);
 7         pPre.next = head;
 8         ListNode p1 = head;
 9         ListNode p2 = null;
10         ListNode pNext = null;
11         ListNode temp = null;
12         while(p1!= null && p1.next != null)
13         {
14             p2 = p1.next;
15             if(p1 == head)
16             {
17                 temp = p2; 
18             }
19             pNext = p2.next;
20             p2.next = p1;
21             p1.next = pNext;
22             pPre.next = p2;
23             pPre = p1;
24             p1 = pNext;
25         }
26         return temp;
27         
28     }

方法二:

public static ListNode swapPairs(ListNode head) {
        ListNode pPrepre = null;  //节点对的前前元素
        ListNode pPre = null;     //节点对的前一个元素,依赖p
        ListNode p = head;        //要移动的节点对的第一个元素
        ListNode pNext = null;    //节点对的第二个元素,依赖p
        while (p != null && p.next != null) {
            pPre = p;
            p = p.next;
            pNext = p.next;
            if (pPre == head) {
                head = p;
            }
            if (pPrepre != null) {
                pPrepre.next = p;
            }
            p.next = pPre;
            pPre.next = pNext;

            pPrepre = pPre;//其他元素都依赖p,但pPrepre不依赖p,所以每次移动pPrepre和p
            p = pNext;
        }
        return head;
    }

 

posted @ 2016-05-30 21:34  32ddd  阅读(226)  评论(0编辑  收藏  举报