leetCode(6):Reorder list

链表重排序算法
最新推荐文章于 2020-07-18 13:27:31 发布
原创 最新推荐文章于 2020-07-18 13:27:31 发布 · 589 阅读 · 0 ·
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#链表重排

本文介绍了一种链表重排序算法的两种实现方法:一种是通过遍历链表并重新连接节点;另一种则是先找到链表中点,将后半部分链表反转,再与前半部分交错合并。

Given a singly linked list LL0L1→…→Ln-1Ln,
reorder it to: L0LnL1Ln-1L2Ln-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}.

常规版本:遍历链表的方式,事实证明,遍历永远不是最好的!

void reorderList(ListNode* head)
{//递归、循环效果应该差不多
	ListNode* p=head;
	if(head==NULL || head->next==NULL)
		return;
	ListNode* currentNode=p;
	ListNode* nextNode=p->next;
	ListNode* newNextNode=nextNode;
	
	while(nextNode && nextNode->next)
	{
		ListNode* preNewNextNode=currentNode;
		ListNode* prePreNewNextNode=currentNode;
		while(newNextNode->next)
		{
			preNewNextNode=preNewNextNode->next;
			newNextNode=newNextNode->next;
		}
		prePreNewNextNode->next=NULL;
		preNewNextNode->next=NULL;
		
		currentNode->next=newNextNode;
		newNextNode->next=nextNode;
		currentNode=nextNode;
		nextNode=currentNode->next;		
		newNextNode=nextNode;
	}
}

反转子链表版本:用两个指针,一快一慢遍历整个链表,直到较快的链表到达末尾,慢指针刚好到达中点,然后断开链表。把后段链表反转,再逐个插入。


/**
 * Definition for singly-linked list.
 * struct ListNode {
 *     int val;
 *     ListNode *next;
 *     ListNode(int x) : val(x), next(NULL) {}
 * };
 */
class Solution {
public:
    ListNode* reverseList(ListNode* head)
    {	
    	if(!head)
    		return head;
    	ListNode* p=head;
    	ListNode* q=p->next;	
    	if(!q)
    		return head;
    	ListNode* k=q->next;
    	p->next=NULL;
    	while(k)
    	{
    		q->next=p;
    		p=q;
    		q=k;
    		k=k->next;
    	}	
    	q->next=p;
    	return q;//返回头结点
    }
    void reorderList(ListNode* head) {
    	if(head==NULL || head->next==NULL)
    		return;
    	ListNode* p=head;
    	ListNode* fast=p;
    	ListNode* slow=p;
    	while(fast && fast->next)
    	{
    		fast=fast->next->next;
    		slow=slow->next;
    	}
    	ListNode* subHead=slow->next;
    	slow->next=NULL;
    	subHead=reverseList(subHead);
    	ListNode* p2=subHead;
    	while(p2!=NULL)
    	{
    		ListNode* tmp1=p->next;
    		ListNode* tmp2=p2->next;
    		p->next=p2;
    		p2->next=tmp1;
    		p2=tmp2;
    		p=tmp1;	
    	}
    }
};



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