使用 -> 运算符访问指向结构指针的指针
Accessing pointer to pointer of struct using -> operator
我有这个代码:
#include<stdio.h>
#include<stdlib.h>
struct node
{
int data;
struct node *next;
};
void pointerOfPointer(struct node **reference)
{
struct node *temporary = malloc(sizeof(struct node));
temporary->data = 100;
temporary->next = 0;
printf("before: temporary->data %d\n", temporary->data);
temporary = *reference;
printf("after: temporary->data %d\n", temporary->data);
}
int main()
{
struct node *linkedlist = malloc(sizeof(struct node));
linkedlist->data = 15;
linkedlist->next = 0;
pointerOfPointer(&linkedlist);
return 0;
}
如何在不将*引用地址复制到临时局部变量的情况下访问pointerOfPointer函数中指向struct指针的指针?所以最后我可以直接使用 operator -> 访问引用变量数据,比如 reference->data?
请记住 foo->bar 只是 (*foo).bar 的语法糖。您要求的本质上是 (**reference).data,如果您愿意,可以将其重写为 (*reference)->data。
我有这个代码:
#include<stdio.h>
#include<stdlib.h>
struct node
{
int data;
struct node *next;
};
void pointerOfPointer(struct node **reference)
{
struct node *temporary = malloc(sizeof(struct node));
temporary->data = 100;
temporary->next = 0;
printf("before: temporary->data %d\n", temporary->data);
temporary = *reference;
printf("after: temporary->data %d\n", temporary->data);
}
int main()
{
struct node *linkedlist = malloc(sizeof(struct node));
linkedlist->data = 15;
linkedlist->next = 0;
pointerOfPointer(&linkedlist);
return 0;
}
如何在不将*引用地址复制到临时局部变量的情况下访问pointerOfPointer函数中指向struct指针的指针?所以最后我可以直接使用 operator -> 访问引用变量数据,比如 reference->data?
请记住 foo->bar 只是 (*foo).bar 的语法糖。您要求的本质上是 (**reference).data,如果您愿意,可以将其重写为 (*reference)->data。