1、
Reverse Linked List II
Reverse a linked list from position m to n. Do it in-place and in one-pass.
For example:
Given 1->2->3->4->5->NULL, m = 2 and n = 4,
return 1->4->3->2->5->NULL.
Note:
Given m, n satisfy the following condition:
1 ≤ m ≤ n ≤ length of list.
分析:開始看题目以为是仅仅交换两个指定位置的值。后来写出代码来出错。才发现是翻转位置m和n直接的链表,我的基本思路是先用双指针法找到要翻转链表的位置,将链表分成三段,要翻转的前一段,中间呀翻转的段,和剩下的段。最后写出代码来特别繁琐。例如以下所看到的:
class Solution {
public:
ListNode *reverseBetween(ListNode *head, int m, int n) {
if(m < 1 || m >= n){
return head;
}
//双指针法找到要翻转的链表段
ListNode* node1 = head;
ListNode* node2 = head;
int dis = n - m;
int i = 0;
for(; i<dis && node2; ++i){
node2 = node2->next;
}
if(i<dis){
return head;
}
while(i<n-2 && node2){
node1 = node1->next;
node2 = node2->next;
++i;
}
//node3为要翻转的链表段的開始结点
ListNode* node3 = node1->next;
if(m == 1){
node1 = NULL;
node3 = head;
}else{
node1->next = NULL;
node2 = node2->next;
if(!node2){
return head;
}
++i;
}
//node4为剩下的链表
ListNode* node4 = NULL;
node4 = node2->next;
node2->next = NULL;
//假设链表长度大于n时。能够进行
if(i == n-1){
ListNode* newHead = reverseList(node3); //翻转中间链表
//连接三段链表
node3->next = node4;
if(m !=1 ){
node1->next = newHead;
return head;
}else{
return newHead;
}
}
return head;
}
ListNode* reverseList(ListNode* head){
ListNode* node1 = NULL;
ListNode* node2 = head;
ListNode* tempNode = NULL;
while(node2){
tempNode = node2->next;
node2->next = node1;
node1 = node2;
node2 = tempNode;
}
return node1;
}
};改进:上述代码非常繁琐。搜了别人的代码,非常简洁,问题在于上述对中间链表进行了两次遍历,缩短为一次遍历。可缩减代码。上列代码没有考虑异常情况,比方链表长度<m或者<n等情况。
class Solution {
public:
ListNode *reverseBetween(ListNode *head, int m, int n) {
// Start typing your C/C++ solution below
// DO NOT write int main() function
if (head == NULL)
return NULL;
ListNode *q = NULL;
ListNode *p = head;
for(int i = 0; i < m - 1; i++)
{
q = p;
p = p->next;
}
ListNode *end = p;
ListNode *pPre = p;
p = p->next;
for(int i = m + 1; i <= n; i++)
{
ListNode *pNext = p->next;
p->next = pPre;
pPre = p;
p = pNext;
}
end->next = p;
if (q)
q->next = pPre;
else
head = pPre;
return head;
}
};