- jobhunt
- leetcode/lintcode题解/算法学习笔记
- 1. Part I - Basics
- 2. Data Structure
- 3. Basics Sorting
- 4. Basics Misc
- 5. Part II - Coding
- 6. String - 字符串
-
7.
Integer Array - 整型数组
- 7.1. Remove Element
- 7.2. Zero Sum Subarray
- 7.3. Subarray Sum K
- 7.4. Subarray Sum Closest
- 7.5. Product of Array Exclude Itself
- 7.6. Partition Array
- 7.7. First Missing Positive
- 7.8. 2 Sum
- 7.9. 3 Sum
- 7.10. 3 Sum Closest
- 7.11. Remove Duplicates from Sorted Array
- 7.12. Remove Duplicates from Sorted Array II
- 7.13. Merge Sorted Array
- 7.14. Merge Sorted Array II
-
8.
Binary Search - 二分搜索
- 8.1. Binary Search
- 8.2. Search Insert Position
- 8.3. Search for a Range
- 8.4. First Bad Version
- 8.5. Search a 2D Matrix
- 8.6. Find Peak Element
- 8.7. Search in Rotated Sorted Array
- 8.8. Find Minimum in Rotated Sorted Array
- 8.9. Search a 2D Matrix II
- 8.10. Median of two Sorted Arrays
- 8.11. Sqrt x
- 8.12. Wood Cut
- 9. Math and Bit Manipulation - 数学技巧与位运算
-
10.
Linked List - 链表
- 10.1. Remove Duplicates from Sorted List
- 10.2. Remove Duplicates from Sorted List II
- 10.3. Partition List
- 10.4. Two Lists Sum
- 10.5. Two Lists Sum Advanced
- 10.6. Remove Nth Node From End of List
- 10.7. Linked List Cycle
- 10.8. Linked List Cycle II
- 10.9. Reverse Linked List
- 10.10. Reverse Linked List II
- 10.11. Merge Two Sorted Lists
- 10.12. Merge k Sorted Lists
- 10.13. Reorder List
- 10.14. Copy List with Random Pointer
- 10.15. Sort List
- 10.16. Insertion Sort List
- 11. Reverse - 翻转法
- 12. Dynamic Programming - 动态规划
- 13. Binary Tree - 二叉树
- 14. Binary Search Tree - 二叉搜索树
- 15. Backtracking - 回溯法
- 16. Appendix I Interview and Resume
Reverse Linked List- 链表翻转
Source
- lintcode: (35) Reverse Linked List
Reverse a linked list.
Example
For linked list 1->2->3, the reversed linked list is 3->2->1
Challenge
Reverse it in-place and in one-pass
题解
联想到同样也可能需要翻转的数组,在数组中由于可以利用下标随机访问,翻转时使用下标即可完成。而在单向链表中,仅仅只知道头节点,而且只能单向往前走,故需另寻出路。分析由1->2->3变为3->2->1的过程,由于是单向链表,故只能由1开始遍历,1和2最开始的位置是1->2,最后变为2->1,故从这里开始寻找突破口,探讨如何交换1和2的节点。
temp = head->next;
head->next = prev;
prev = head;
head = temp;
要点在于维护两个指针变量prev和head. 分析如下图所示:
- 保存head下一节点
- 将head所指向的下一节点改为prev
- 将prev替换为head,波浪式前进
- 将第一步保存的下一节点替换为head,用于下一次循环
C++
/**
* http://www.jiuzhang.com/solutions/reverse-linked-list/
* Definition of ListNode
*
* class ListNode {
* public:
* int val;
* ListNode *next;
*
* ListNode(int val) {
* this->val = val;
* this->next = NULL;
* }
* }
*/
class Solution {
public:
/**
* @param head: The first node of linked list.
* @return: The new head of reversed linked list.
*/
ListNode *reverse(ListNode *head) {
ListNode *prev = NULL;
while (head) {
ListNode *temp = head->next;
head->next = prev;
prev = head;
head = temp;
}
return prev;
}
};
源码分析
题解中基本分析完毕,代码中的prev赋值比较精炼,值得借鉴。