ehlxr/algorithm-base
1
0
Fork 0
mirror of https://github.com/chefyuan/algorithm-base.git synced 2024-11-24 21:08:53 +00:00
Code Issues Projects Releases Wiki Activity

添加py,提供另一种解法

Browse Source
This commit is contained in:
jaredliw 2021-07-13 12:27:36 +08:00
parent b48730dd5b
commit ea1335f661
1 changed files with 76 additions and 18 deletions
Show Stats Download Patch File Download Diff File Expand all files Collapse all files

90
animation-simulation/链表篇/leetcode206反转链表.md
View File

@ -25,11 +25,9 @@
则我们将 temp 指针指向 low 节点此时则完成了反转
反转之后我们继续反转下一节点
反转之后我们继续反转下一节点 low = temp 即可然后重复执行上诉操作直至最后这样则完成了反转链表
low = temp 即可然后重复执行上诉操作直至最后这样则完成了反转链表
我们下面看代码吧
我们下面看代码吧
我会对每个关键点进行注释大家可以参考动图理解
@ -45,11 +43,6 @@ class Solution {
if (head == null || head.next == null) {
return head;
}
//反转
return reverse(head);
}
public ListNode reverse (ListNode head) {
ListNode low = null;
ListNode pro = head;
while (pro != null) {
@ -64,28 +57,32 @@ class Solution {
}
return low;
}
}
```
JS Code:
```javascript
var reverseList = function(head) {
//特殊情况
if(!head || !head.next) {
return head;
}
let low = null;
let pro = head;
while (pro) {
//代表橙色指针
let temp = pro;
//移动绿色指针
pro = pro.next;
//反转节点
temp.next = low;
//移动黄色指针
low = temp;
}
return low;
};
```
C++代码
C++ Code:
```cpp
class Solution {
@ -95,11 +92,6 @@ public:
if (head == nullptr || head->next == nullptr) {
return head;
}
//反转
return reverse(head);
}
ListNode * reverse (ListNode * head) {
ListNode * low = nullptr;
ListNode * pro = head;
while (pro != nullptr) {
@ -117,6 +109,28 @@ public:
};
```
Python Code:
```py
class Solution:
def reverseList(self, head: ListNode) -> ListNode:
//特殊情况
if head is None or head.next is None:
return head
low = None
pro = head
while pro is not None:
# 代表橙色指针
temp = pro
# 移动绿色指针
pro = pro.next
# 反转节点
temp.next = low
# 移动黄色指针
low = temp
return low
```
上面的迭代写法是不是搞懂啦现在还有一种递归写法不是特别容易理解刚开始刷题的同学可以只看迭代解法
@ -148,11 +162,17 @@ class Solution {
JS Code:
```javascript
var reverseList = function(head) {
//结束条件
if (!head || !head.next) {
return head;
}
//保存最后一个节点
let pro = reverseList(head.next);
//将节点进行反转我们可以这样理解 4.next.next = 4;
//4.next = 5
// 5.next = 4 则实现了反转
head.next.next = head;
//防止循环
head.next = null;
return pro;
};
@ -181,3 +201,41 @@ public:
};
```
Python Code:
```py
class Solution:
def reverseList(self, head: ListNode) -> ListNode:
# 结束条件
if head is None or head.next is None:
return head
# 保存最后一个节点
pro = self.reverseList(head.next)
# 将节点进行反转我们可以这样理解 4->next->next = 4;
# 4->next = 5
# 5->next = 4 则实现了反转
head.next.next = head
# 防止循环
head.next = None
return pro
```
<br/>
> 贡献者[@jaredliw](https://github.com/jaredliw)
>
> 这里提供一个比较直观的递归写法供大家参考
>
> ```py
> class Solution:
> def reverseList(self, head: ListNode, prev_nd: ListNode = None) -> ListNode:
> # 结束条件
> if head is None:
> return prev_nd
> # 记录下一个节点并反转
> next_nd = head.next
> head.next = prev_nd
> # 给定下一组该反转的节点
> return self.reverseList(next_nd, head)
> ```