数据结构:1.线性表
2.顺序表
3.链表
4.顺序表与链表的比较
线性表的定义:定义n个数据元素的有限序列,记作(a1, a2, …, an)ai 是表中数据元素,n 是表长度
特点: 除第一个元素外,其他每一个元素有一个且仅有一个 直接前驱。 除最后一个元素外其他每一个元素有一个且仅有一个 直接后继
顺序表的定义:将线性表中的元素相继存放在一个连续的存储空间中
特点:线性表的顺序存储方式
链表: 单链表 静态链表 循环链表 双向链表
特点: 每个元素由结点构成
结点可以连续,可以不连续存储
结点的逻辑熟悉怒与物理顺序可以不一致
表可以扩充
单链表的定义:
struct node
{
int num;
struct node * next;
};
typedef struct node Node;
typedef struct node * Link;
链表的插入:
前插:
void insert_node_head(Link *head,Link new_node)
{
new_node->next = *head;
*head = new_node;
后插:
void insert_node_tail(Link *head,Link new_node)
{
Link p=*head;
if(p ==NULL)
{
*head=new_node;
new_node->next = NULL;
}
else
{
while(p->next != NULL)
{
p=p->next;
}
p->next = new_node;
new_node->next = NULL;
}
}
中间插入:
void insert_node_mid(Link* head,Link new_node,int num_loc)
{
Link p,q;
p = q =*head;
if(p==NULL)
{
*head = new_node;
new_node->next = NULL;
}
else
{
while(p->num != num_loc && p->next != NULL)
{
q = p;
p= p->next;
}
if(p == *head)
{
new_node->next = *head;
*head = new_node;
}
else if(p->next == NULL &&p->num !=num_loc)
{
p->next = new_node;
new_node->next = p;
}
}
}
链表的删除:
void delete_node(Link * head,int num_val)
{
Link p,q;
p = q = *head;
if(p == NULL)
{
printf("Link is empty\n");
}
else
{
while(p->num !=num_val && p->next !=NULL)
{
q = p;
p = p->next;
}
if((*head)->num == num_val)
{
*head = (*head) ->next;
free(p);
}
else if(p->next == NULL && p->num !=num_val)
{
printf("no such node\n")
}
else
{
q->next = p->next;
free(p);
}
}
}
总代码:
#include <stdio.h>
#include <stdlib.h>
struct node
{
int num;
struct node * next;
};
typedef struct node Node;
typedef struct node * Link;
void create_link(Link * head)
{
*head = NULL;
}
void insert_node_head(Link *head,Link new_node)
{
new_node->next = *head;
*head = new_node;
}
void insert_node_tail(Link *head,Link new_node)
{
Link p=*head;
if(p ==NULL)
{
*head=new_node;
new_node->next = NULL;
}
else
{
while(p->next != NULL)
{
p=p->next;
}
p->next = new_node;
new_node->next = NULL;
}
}
void display_link(Link head)
{
Link p;
p = head;
while(p != NULL)
{
printf("num = %d\n",p->num);
p = p->next;
}
}
void is_malloc_ok(Link new_node)
{
if(new_node == NULL)
{
printf("malloc error!\n");
exit(-1);
}
}
void create_node(Link * new_node,int i)
{
*new_node =(Link)malloc(sizeof(Node));
is_malloc_ok(*new_node);
(*new_node)->num = i;
}
void insert_node_mid(Link* head,Link new_node,int num_loc)
{
Link p,q;
p = q =*head;
if(p==NULL)
{
*head = new_node;
new_node->next = NULL;
}
else
{
while(p->num != num_loc && p->next != NULL)
{
q = p;
p= p->next;
}
if(p == *head)
{
new_node->next = *head;
*head = new_node;
}
else if(p->next == NULL &&p->num !=num_loc)
{
p->next = new_node;
new_node->next = p;
}
}
}
void delete_node(Link * head,int num_val)
{
Link p,q;
p = q = *head;
if(p == NULL)
{
printf("Link is empty\n");
}
else
{
while(p->num !=num_val && p->next !=NULL)
{
q = p;
p = p->next;
}
if((*head)->num == num_val)
{
*head = (*head) ->next;
free(p);
}
else if(p->next == NULL && p->num !=num_val)
{
printf("no such node\n")
}
else
{
q->next = p->next;
free(p);
}
}
}
int main()
{
Link head = NULL;
Link new_node = NULL;
int i;
int num_val,num_loc;
create_link(&head);
for(i = 0;i < 10;i++)
{
create_node(&new_node,i);
// insert_node_tail(&head,new_node);
// insert_node_head(&head,new_node);
}
/*printf("please input loc : ");
scanf("%d",&num_loc);
printf("please input val : ");
scanf("%d",&num_val);
create_node(&new_node,num_val);
insert_node_mid(&head,new_node,num_loc);*/
display_link(head);
peintf("please input a num tp be deleted :");
scanf("%d",&num_val);
delete_node(&head,t);
display_link(head);
return 0;
}