[Leetcode]Reverse Linked List-再写单链表反转

Leetcode碰巧又出现这个问题,看来面试算法这个是很常见的题型,不过很久没写过,这次写来又花了不少时间,

主要耽搁在思想的选择上:

一是想通过遍历时直接将指针反转,这样比较高效,但是需要处理好前后指针及后续的关系;

/**
 * Definition for singly-linked list.
 * struct ListNode {
 *     int val;
 *     struct ListNode *next;
 * };
 */
struct ListNode* reverseList(struct ListNode* head) {
	struct ListNode *pre = NULL;
	struct ListNode *p = head;
	
	while(p)
	{
		struct ListNode *tmpNext = p->next;//current next node
		
		p->next = pre;
		pre = p;
		p = tmpNext;		
	}
	
	return pre;
}

二是通过构建一个新的链表头,然后遍历时直接将链表元素加入到新链接中,该算法比较简明;

/**
 * Definition for singly-linked list.
 * struct ListNode {
 *     int val;
 *     struct ListNode *next;
 * };
 */
struct ListNode* reverseList(struct ListNode* head) {
	struct ListNode newListHead = {
		0, NULL
	};
	
	struct ListNode *p = head;//first node
	
	while(p)
	{		
		struct ListNode *tmpnew = newListHead.next;
		struct ListNode *tmp = p->next;
		
		newListHead.next = p;
		p->next = tmpnew;
		
		p = tmp;
	}
	
	return newListHead.next;
}

三是使用递归遍历链表至倒数第二位元素,接着依次将next指针反转:

/**
 * Definition for singly-linked list.
 * struct ListNode {
 *     int val;
 *     struct ListNode *next;
 * };
 */
struct ListNode* reverseList(struct ListNode* head) {
	if (head == NULL || head->next == NULL){
		return head;
	}
	
	struct ListNode* p = reverseList(head->next);
	head->next->next = head;
	head->next = NULL;
	return p;
}
这种方法还是从leetcode中才看到,类似于栈的操作,有一定启发性。

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