本题要求实现一个函数,将给定的单链表逆转。

函数接口定义:

List Reverse( List L );

其中List结构定义如下:

typedef struct Node *PtrToNode;
struct Node {
    ElementType Data; /* 存储结点数据 */
    PtrToNode   Next; /* 指向下一个结点的指针 */
};
typedef PtrToNode List; /* 定义单链表类型 */

L是给定单链表,函数Reverse要报道查看被逆转后的链表。

裁判测试程序样例:

#include <stdio.h>
#include <stdlib.h>

typedef int ElementType;
typedef struct Node *PtrToNode;
struct Node {
    ElementType Data;
    PtrToNode   Next;
};
typedef PtrToNode List;

List Read(); /* 细节在此不表 */
void Print( List L ); /* 细节在此不表 */

List Reverse( List L );

int main()
{
    List L1, L2;
    L1 = Read();
    L2 = Reverse(L1);
    Print(L1);
    Print(L2);
    return 0;
}

/* 你的代码将被嵌在这里 */

输入样例:

5
1 3 4 5 2

输出样例:

1
2 5 4 3 1  
代码1:
List Reverse(List head)
{
    if(head == NULL || head->Next == NULL)
    {
        return head;
    }
    List p;
    List pcur;
    List r;
    p = head;
    pcur = head->Next;
    head->Next = NULL;
    while(pcur)
    {
        r = pcur->Next;
        pcur->Next = p;
        p = pcur;
        pcur = r;
    }
    head=p;
    return head;
}
代码2:
List Reverse(List head)
{
    if(head == NULL || head->Next == NULL)
        return head;
    List p1 = head;
    List p2 = p1->Next;
    List p3 = p2->Next;
    p1->Next = NULL;
    while(p3 != NULL)
    {
        p2->Next = p1;
        p1 = p2;
        p2 = p3;
        p3 = p3->Next;
    }
    p2->Next = p1;
    head = p2;
    
    return head;
}
代码3:
List Reverse(List head)
{
    if(head == NULL || head->Next == NULL)
        return head;
    List p1 = head;
    List p2 = p1->Next;
    head = Reverse(p2);
    p2->Next = p1;
    p1->Next = NULL;
    
    return head;
}