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九度OJ上AC,採用归并的思想递归实现。
- 题目描写叙述:
输入两个单调递增的链表,输出两个链表合成后的链表,当然我们须要合成后的链表满足单调不减规则。
(hint: 请务必使用链表。)
- 输入:
输入可能包括多个測试例子,输入以EOF结束。
对于每一个測试案例,输入的第一行为两个整数n和m(0<=n<=1000, 0<=m<=1000):n代表将要输入的第一个链表的元素的个数,m代表将要输入的第二个链表的元素的个数。
以下一行包括n个数t(1<=t<=1000000):代表链表一中的元素。接下来一行包括m个元素,s(1<=t<=1000000)。
- 输出:
相应每一个測试案例,
若有结果,输出相应的链表。否则,输出NULL。
- 例子输入:
5 2 1 3 5 7 9 2 4 0 0
- 例子输出:
1 2 3 4 5 7 9 NULL
AC代码:
#include<stdio.h>
#include<stdlib.h>
typedef int ElemType;
typedef struct Node
{
ElemType data;
struct Node *next;
}Node,*pNode;
/*
合并两个升序链表,合并后的链表依旧升序排列
*/
pNode MergeList(pNode pHead1,pNode pHead2)
{
if(pHead1 == NULL)
return pHead2;
if(pHead2 == NULL)
return pHead1;
pNode pMergeHead = NULL;
if(pHead1->data > pHead2->data)
{
pMergeHead = pHead2;
pMergeHead->next = MergeList(pHead1,pHead2->next);
}
else
{
pMergeHead = pHead1;
pMergeHead->next = MergeList(pHead2,pHead1->next);
}
return pMergeHead;
}
int main()
{
int n,m;
while(scanf("%d %d",&n,&m) != EOF)
{
pNode pHead1 = NULL;
if(n > 0)
{
int i,data;
scanf("%d",&data);
pHead1 =(pNode)malloc(sizeof(Node));
if(pHead1 == NULL)
exit(EXIT_FAILURE);
pHead1->data = data;
pHead1->next = NULL;
pNode pCur = pHead1;
for(i=0;i<n-1;i++)
{
scanf("%d",&data);
pNode pNew =(pNode)malloc(sizeof(Node));
if(pNew == NULL)
exit(EXIT_FAILURE);
pNew->data = data;
pNew->next = NULL;
pCur->next = pNew;
pCur = pCur->next;
}
}
pNode pHead2 = NULL;
if(m > 0)
{
int i,data;
scanf("%d",&data);
pHead2 =(pNode)malloc(sizeof(Node));
if(pHead2 == NULL)
exit(EXIT_FAILURE);
pHead2->data = data;
pHead2->next = NULL;
pNode pCur = pHead2;
for(i=0;i<m-1;i++)
{
scanf("%d",&data);
pNode pNew =(pNode)malloc(sizeof(Node));
if(pNew == NULL)
exit(EXIT_FAILURE);
pNew->data = data;
pNew->next = NULL;
pCur->next = pNew;
pCur = pCur->next;
}
}
pNode pMergeHead = MergeList(pHead1,pHead2);
if(pMergeHead == NULL)
printf("NULL
");
else
{
pNode pCur = pMergeHead;
while(pCur != NULL)
{
//这里主要时要注意输出的格式
if(pCur->next == NULL)
printf("%d
",pCur->data);
else
printf("%d ",pCur->data);
pCur = pCur->next;
}
}
}
return 0;
}/************************************************************** Problem: 1519 User: mmc_maodun Language: C Result: Accepted Time:250 ms Memory:4080 kb****************************************************************/